1 //===- LegacyPassManager.cpp - LLVM Pass Infrastructure Implementation ----===// 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 legacy LLVM Pass Manager infrastructure. 11 // 12 //===----------------------------------------------------------------------===// 13 14 15 #include "llvm/IR/IRPrintingPasses.h" 16 #include "llvm/IR/LegacyPassManager.h" 17 #include "llvm/IR/LegacyPassManagers.h" 18 #include "llvm/IR/LegacyPassNameParser.h" 19 #include "llvm/IR/Module.h" 20 #include "llvm/Support/CommandLine.h" 21 #include "llvm/Support/Debug.h" 22 #include "llvm/Support/ErrorHandling.h" 23 #include "llvm/Support/ManagedStatic.h" 24 #include "llvm/Support/Mutex.h" 25 #include "llvm/Support/Timer.h" 26 #include "llvm/Support/raw_ostream.h" 27 #include <algorithm> 28 #include <map> 29 using namespace llvm; 30 using namespace llvm::legacy; 31 32 // See PassManagers.h for Pass Manager infrastructure overview. 33 34 //===----------------------------------------------------------------------===// 35 // Pass debugging information. Often it is useful to find out what pass is 36 // running when a crash occurs in a utility. When this library is compiled with 37 // debugging on, a command line option (--debug-pass) is enabled that causes the 38 // pass name to be printed before it executes. 39 // 40 41 namespace { 42 // Different debug levels that can be enabled... 43 enum PassDebugLevel { 44 Disabled, Arguments, Structure, Executions, Details 45 }; 46 } 47 48 static cl::opt<enum PassDebugLevel> 49 PassDebugging("debug-pass", cl::Hidden, 50 cl::desc("Print PassManager debugging information"), 51 cl::values( 52 clEnumVal(Disabled , "disable debug output"), 53 clEnumVal(Arguments , "print pass arguments to pass to 'opt'"), 54 clEnumVal(Structure , "print pass structure before run()"), 55 clEnumVal(Executions, "print pass name before it is executed"), 56 clEnumVal(Details , "print pass details when it is executed"), 57 clEnumValEnd)); 58 59 namespace { 60 typedef llvm::cl::list<const llvm::PassInfo *, bool, PassNameParser> 61 PassOptionList; 62 } 63 64 // Print IR out before/after specified passes. 65 static PassOptionList 66 PrintBefore("print-before", 67 llvm::cl::desc("Print IR before specified passes"), 68 cl::Hidden); 69 70 static PassOptionList 71 PrintAfter("print-after", 72 llvm::cl::desc("Print IR after specified passes"), 73 cl::Hidden); 74 75 static cl::opt<bool> 76 PrintBeforeAll("print-before-all", 77 llvm::cl::desc("Print IR before each pass"), 78 cl::init(false)); 79 static cl::opt<bool> 80 PrintAfterAll("print-after-all", 81 llvm::cl::desc("Print IR after each pass"), 82 cl::init(false)); 83 84 /// This is a helper to determine whether to print IR before or 85 /// after a pass. 86 87 static bool ShouldPrintBeforeOrAfterPass(const PassInfo *PI, 88 PassOptionList &PassesToPrint) { 89 for (unsigned i = 0, ie = PassesToPrint.size(); i < ie; ++i) { 90 const llvm::PassInfo *PassInf = PassesToPrint[i]; 91 if (PassInf) 92 if (PassInf->getPassArgument() == PI->getPassArgument()) { 93 return true; 94 } 95 } 96 return false; 97 } 98 99 /// This is a utility to check whether a pass should have IR dumped 100 /// before it. 101 static bool ShouldPrintBeforePass(const PassInfo *PI) { 102 return PrintBeforeAll || ShouldPrintBeforeOrAfterPass(PI, PrintBefore); 103 } 104 105 /// This is a utility to check whether a pass should have IR dumped 106 /// after it. 107 static bool ShouldPrintAfterPass(const PassInfo *PI) { 108 return PrintAfterAll || ShouldPrintBeforeOrAfterPass(PI, PrintAfter); 109 } 110 111 /// isPassDebuggingExecutionsOrMore - Return true if -debug-pass=Executions 112 /// or higher is specified. 113 bool PMDataManager::isPassDebuggingExecutionsOrMore() const { 114 return PassDebugging >= Executions; 115 } 116 117 118 119 120 void PassManagerPrettyStackEntry::print(raw_ostream &OS) const { 121 if (!V && !M) 122 OS << "Releasing pass '"; 123 else 124 OS << "Running pass '"; 125 126 OS << P->getPassName() << "'"; 127 128 if (M) { 129 OS << " on module '" << M->getModuleIdentifier() << "'.\n"; 130 return; 131 } 132 if (!V) { 133 OS << '\n'; 134 return; 135 } 136 137 OS << " on "; 138 if (isa<Function>(V)) 139 OS << "function"; 140 else if (isa<BasicBlock>(V)) 141 OS << "basic block"; 142 else 143 OS << "value"; 144 145 OS << " '"; 146 V->printAsOperand(OS, /*PrintTy=*/false, M); 147 OS << "'\n"; 148 } 149 150 151 namespace { 152 //===----------------------------------------------------------------------===// 153 // BBPassManager 154 // 155 /// BBPassManager manages BasicBlockPass. It batches all the 156 /// pass together and sequence them to process one basic block before 157 /// processing next basic block. 158 class BBPassManager : public PMDataManager, public FunctionPass { 159 160 public: 161 static char ID; 162 explicit BBPassManager() 163 : PMDataManager(), FunctionPass(ID) {} 164 165 /// Execute all of the passes scheduled for execution. Keep track of 166 /// whether any of the passes modifies the function, and if so, return true. 167 bool runOnFunction(Function &F) override; 168 169 /// Pass Manager itself does not invalidate any analysis info. 170 void getAnalysisUsage(AnalysisUsage &Info) const override { 171 Info.setPreservesAll(); 172 } 173 174 bool doInitialization(Module &M) override; 175 bool doInitialization(Function &F); 176 bool doFinalization(Module &M) override; 177 bool doFinalization(Function &F); 178 179 PMDataManager *getAsPMDataManager() override { return this; } 180 Pass *getAsPass() override { return this; } 181 182 const char *getPassName() const override { 183 return "BasicBlock Pass Manager"; 184 } 185 186 // Print passes managed by this manager 187 void dumpPassStructure(unsigned Offset) override { 188 dbgs().indent(Offset*2) << "BasicBlockPass Manager\n"; 189 for (unsigned Index = 0; Index < getNumContainedPasses(); ++Index) { 190 BasicBlockPass *BP = getContainedPass(Index); 191 BP->dumpPassStructure(Offset + 1); 192 dumpLastUses(BP, Offset+1); 193 } 194 } 195 196 BasicBlockPass *getContainedPass(unsigned N) { 197 assert(N < PassVector.size() && "Pass number out of range!"); 198 BasicBlockPass *BP = static_cast<BasicBlockPass *>(PassVector[N]); 199 return BP; 200 } 201 202 PassManagerType getPassManagerType() const override { 203 return PMT_BasicBlockPassManager; 204 } 205 }; 206 207 char BBPassManager::ID = 0; 208 } // End anonymous namespace 209 210 namespace llvm { 211 namespace legacy { 212 //===----------------------------------------------------------------------===// 213 // FunctionPassManagerImpl 214 // 215 /// FunctionPassManagerImpl manages FPPassManagers 216 class FunctionPassManagerImpl : public Pass, 217 public PMDataManager, 218 public PMTopLevelManager { 219 virtual void anchor(); 220 private: 221 bool wasRun; 222 public: 223 static char ID; 224 explicit FunctionPassManagerImpl() : 225 Pass(PT_PassManager, ID), PMDataManager(), 226 PMTopLevelManager(new FPPassManager()), wasRun(false) {} 227 228 /// add - Add a pass to the queue of passes to run. This passes ownership of 229 /// the Pass to the PassManager. When the PassManager is destroyed, the pass 230 /// will be destroyed as well, so there is no need to delete the pass. This 231 /// implies that all passes MUST be allocated with 'new'. 232 void add(Pass *P) { 233 schedulePass(P); 234 } 235 236 /// createPrinterPass - Get a function printer pass. 237 Pass *createPrinterPass(raw_ostream &O, 238 const std::string &Banner) const override { 239 return createPrintFunctionPass(O, Banner); 240 } 241 242 // Prepare for running an on the fly pass, freeing memory if needed 243 // from a previous run. 244 void releaseMemoryOnTheFly(); 245 246 /// run - Execute all of the passes scheduled for execution. Keep track of 247 /// whether any of the passes modifies the module, and if so, return true. 248 bool run(Function &F); 249 250 /// doInitialization - Run all of the initializers for the function passes. 251 /// 252 bool doInitialization(Module &M) override; 253 254 /// doFinalization - Run all of the finalizers for the function passes. 255 /// 256 bool doFinalization(Module &M) override; 257 258 259 PMDataManager *getAsPMDataManager() override { return this; } 260 Pass *getAsPass() override { return this; } 261 PassManagerType getTopLevelPassManagerType() override { 262 return PMT_FunctionPassManager; 263 } 264 265 /// Pass Manager itself does not invalidate any analysis info. 266 void getAnalysisUsage(AnalysisUsage &Info) const override { 267 Info.setPreservesAll(); 268 } 269 270 FPPassManager *getContainedManager(unsigned N) { 271 assert(N < PassManagers.size() && "Pass number out of range!"); 272 FPPassManager *FP = static_cast<FPPassManager *>(PassManagers[N]); 273 return FP; 274 } 275 }; 276 277 void FunctionPassManagerImpl::anchor() {} 278 279 char FunctionPassManagerImpl::ID = 0; 280 } // End of legacy namespace 281 } // End of llvm namespace 282 283 namespace { 284 //===----------------------------------------------------------------------===// 285 // MPPassManager 286 // 287 /// MPPassManager manages ModulePasses and function pass managers. 288 /// It batches all Module passes and function pass managers together and 289 /// sequences them to process one module. 290 class MPPassManager : public Pass, public PMDataManager { 291 public: 292 static char ID; 293 explicit MPPassManager() : 294 Pass(PT_PassManager, ID), PMDataManager() { } 295 296 // Delete on the fly managers. 297 virtual ~MPPassManager() { 298 for (std::map<Pass *, FunctionPassManagerImpl *>::iterator 299 I = OnTheFlyManagers.begin(), E = OnTheFlyManagers.end(); 300 I != E; ++I) { 301 FunctionPassManagerImpl *FPP = I->second; 302 delete FPP; 303 } 304 } 305 306 /// createPrinterPass - Get a module printer pass. 307 Pass *createPrinterPass(raw_ostream &O, 308 const std::string &Banner) const override { 309 return createPrintModulePass(O, Banner); 310 } 311 312 /// run - Execute all of the passes scheduled for execution. Keep track of 313 /// whether any of the passes modifies the module, and if so, return true. 314 bool runOnModule(Module &M); 315 316 using llvm::Pass::doInitialization; 317 using llvm::Pass::doFinalization; 318 319 /// doInitialization - Run all of the initializers for the module passes. 320 /// 321 bool doInitialization(); 322 323 /// doFinalization - Run all of the finalizers for the module passes. 324 /// 325 bool doFinalization(); 326 327 /// Pass Manager itself does not invalidate any analysis info. 328 void getAnalysisUsage(AnalysisUsage &Info) const override { 329 Info.setPreservesAll(); 330 } 331 332 /// Add RequiredPass into list of lower level passes required by pass P. 333 /// RequiredPass is run on the fly by Pass Manager when P requests it 334 /// through getAnalysis interface. 335 void addLowerLevelRequiredPass(Pass *P, Pass *RequiredPass) override; 336 337 /// Return function pass corresponding to PassInfo PI, that is 338 /// required by module pass MP. Instantiate analysis pass, by using 339 /// its runOnFunction() for function F. 340 Pass* getOnTheFlyPass(Pass *MP, AnalysisID PI, Function &F) override; 341 342 const char *getPassName() const override { 343 return "Module Pass Manager"; 344 } 345 346 PMDataManager *getAsPMDataManager() override { return this; } 347 Pass *getAsPass() override { return this; } 348 349 // Print passes managed by this manager 350 void dumpPassStructure(unsigned Offset) override { 351 dbgs().indent(Offset*2) << "ModulePass Manager\n"; 352 for (unsigned Index = 0; Index < getNumContainedPasses(); ++Index) { 353 ModulePass *MP = getContainedPass(Index); 354 MP->dumpPassStructure(Offset + 1); 355 std::map<Pass *, FunctionPassManagerImpl *>::const_iterator I = 356 OnTheFlyManagers.find(MP); 357 if (I != OnTheFlyManagers.end()) 358 I->second->dumpPassStructure(Offset + 2); 359 dumpLastUses(MP, Offset+1); 360 } 361 } 362 363 ModulePass *getContainedPass(unsigned N) { 364 assert(N < PassVector.size() && "Pass number out of range!"); 365 return static_cast<ModulePass *>(PassVector[N]); 366 } 367 368 PassManagerType getPassManagerType() const override { 369 return PMT_ModulePassManager; 370 } 371 372 private: 373 /// Collection of on the fly FPPassManagers. These managers manage 374 /// function passes that are required by module passes. 375 std::map<Pass *, FunctionPassManagerImpl *> OnTheFlyManagers; 376 }; 377 378 char MPPassManager::ID = 0; 379 } // End anonymous namespace 380 381 namespace llvm { 382 namespace legacy { 383 //===----------------------------------------------------------------------===// 384 // PassManagerImpl 385 // 386 387 /// PassManagerImpl manages MPPassManagers 388 class PassManagerImpl : public Pass, 389 public PMDataManager, 390 public PMTopLevelManager { 391 virtual void anchor(); 392 393 public: 394 static char ID; 395 explicit PassManagerImpl() : 396 Pass(PT_PassManager, ID), PMDataManager(), 397 PMTopLevelManager(new MPPassManager()) {} 398 399 /// add - Add a pass to the queue of passes to run. This passes ownership of 400 /// the Pass to the PassManager. When the PassManager is destroyed, the pass 401 /// will be destroyed as well, so there is no need to delete the pass. This 402 /// implies that all passes MUST be allocated with 'new'. 403 void add(Pass *P) { 404 schedulePass(P); 405 } 406 407 /// createPrinterPass - Get a module printer pass. 408 Pass *createPrinterPass(raw_ostream &O, 409 const std::string &Banner) const override { 410 return createPrintModulePass(O, Banner); 411 } 412 413 /// run - Execute all of the passes scheduled for execution. Keep track of 414 /// whether any of the passes modifies the module, and if so, return true. 415 bool run(Module &M); 416 417 using llvm::Pass::doInitialization; 418 using llvm::Pass::doFinalization; 419 420 /// doInitialization - Run all of the initializers for the module passes. 421 /// 422 bool doInitialization(); 423 424 /// doFinalization - Run all of the finalizers for the module passes. 425 /// 426 bool doFinalization(); 427 428 /// Pass Manager itself does not invalidate any analysis info. 429 void getAnalysisUsage(AnalysisUsage &Info) const override { 430 Info.setPreservesAll(); 431 } 432 433 PMDataManager *getAsPMDataManager() override { return this; } 434 Pass *getAsPass() override { return this; } 435 PassManagerType getTopLevelPassManagerType() override { 436 return PMT_ModulePassManager; 437 } 438 439 MPPassManager *getContainedManager(unsigned N) { 440 assert(N < PassManagers.size() && "Pass number out of range!"); 441 MPPassManager *MP = static_cast<MPPassManager *>(PassManagers[N]); 442 return MP; 443 } 444 }; 445 446 void PassManagerImpl::anchor() {} 447 448 char PassManagerImpl::ID = 0; 449 } // End of legacy namespace 450 } // End of llvm namespace 451 452 namespace { 453 454 //===----------------------------------------------------------------------===// 455 /// TimingInfo Class - This class is used to calculate information about the 456 /// amount of time each pass takes to execute. This only happens when 457 /// -time-passes is enabled on the command line. 458 /// 459 460 static ManagedStatic<sys::SmartMutex<true> > TimingInfoMutex; 461 462 class TimingInfo { 463 DenseMap<Pass*, Timer*> TimingData; 464 TimerGroup TG; 465 public: 466 // Use 'create' member to get this. 467 TimingInfo() : TG("... Pass execution timing report ...") {} 468 469 // TimingDtor - Print out information about timing information 470 ~TimingInfo() { 471 // Delete all of the timers, which accumulate their info into the 472 // TimerGroup. 473 for (DenseMap<Pass*, Timer*>::iterator I = TimingData.begin(), 474 E = TimingData.end(); I != E; ++I) 475 delete I->second; 476 // TimerGroup is deleted next, printing the report. 477 } 478 479 // createTheTimeInfo - This method either initializes the TheTimeInfo pointer 480 // to a non-null value (if the -time-passes option is enabled) or it leaves it 481 // null. It may be called multiple times. 482 static void createTheTimeInfo(); 483 484 /// getPassTimer - Return the timer for the specified pass if it exists. 485 Timer *getPassTimer(Pass *P) { 486 if (P->getAsPMDataManager()) 487 return nullptr; 488 489 sys::SmartScopedLock<true> Lock(*TimingInfoMutex); 490 Timer *&T = TimingData[P]; 491 if (!T) 492 T = new Timer(P->getPassName(), TG); 493 return T; 494 } 495 }; 496 497 } // End of anon namespace 498 499 static TimingInfo *TheTimeInfo; 500 501 //===----------------------------------------------------------------------===// 502 // PMTopLevelManager implementation 503 504 /// Initialize top level manager. Create first pass manager. 505 PMTopLevelManager::PMTopLevelManager(PMDataManager *PMDM) { 506 PMDM->setTopLevelManager(this); 507 addPassManager(PMDM); 508 activeStack.push(PMDM); 509 } 510 511 /// Set pass P as the last user of the given analysis passes. 512 void 513 PMTopLevelManager::setLastUser(ArrayRef<Pass*> AnalysisPasses, Pass *P) { 514 unsigned PDepth = 0; 515 if (P->getResolver()) 516 PDepth = P->getResolver()->getPMDataManager().getDepth(); 517 518 for (SmallVectorImpl<Pass *>::const_iterator I = AnalysisPasses.begin(), 519 E = AnalysisPasses.end(); I != E; ++I) { 520 Pass *AP = *I; 521 LastUser[AP] = P; 522 523 if (P == AP) 524 continue; 525 526 // Update the last users of passes that are required transitive by AP. 527 AnalysisUsage *AnUsage = findAnalysisUsage(AP); 528 const AnalysisUsage::VectorType &IDs = AnUsage->getRequiredTransitiveSet(); 529 SmallVector<Pass *, 12> LastUses; 530 SmallVector<Pass *, 12> LastPMUses; 531 for (AnalysisUsage::VectorType::const_iterator I = IDs.begin(), 532 E = IDs.end(); I != E; ++I) { 533 Pass *AnalysisPass = findAnalysisPass(*I); 534 assert(AnalysisPass && "Expected analysis pass to exist."); 535 AnalysisResolver *AR = AnalysisPass->getResolver(); 536 assert(AR && "Expected analysis resolver to exist."); 537 unsigned APDepth = AR->getPMDataManager().getDepth(); 538 539 if (PDepth == APDepth) 540 LastUses.push_back(AnalysisPass); 541 else if (PDepth > APDepth) 542 LastPMUses.push_back(AnalysisPass); 543 } 544 545 setLastUser(LastUses, P); 546 547 // If this pass has a corresponding pass manager, push higher level 548 // analysis to this pass manager. 549 if (P->getResolver()) 550 setLastUser(LastPMUses, P->getResolver()->getPMDataManager().getAsPass()); 551 552 553 // If AP is the last user of other passes then make P last user of 554 // such passes. 555 for (DenseMap<Pass *, Pass *>::iterator LUI = LastUser.begin(), 556 LUE = LastUser.end(); LUI != LUE; ++LUI) { 557 if (LUI->second == AP) 558 // DenseMap iterator is not invalidated here because 559 // this is just updating existing entries. 560 LastUser[LUI->first] = P; 561 } 562 } 563 } 564 565 /// Collect passes whose last user is P 566 void PMTopLevelManager::collectLastUses(SmallVectorImpl<Pass *> &LastUses, 567 Pass *P) { 568 DenseMap<Pass *, SmallPtrSet<Pass *, 8> >::iterator DMI = 569 InversedLastUser.find(P); 570 if (DMI == InversedLastUser.end()) 571 return; 572 573 SmallPtrSet<Pass *, 8> &LU = DMI->second; 574 for (SmallPtrSet<Pass *, 8>::iterator I = LU.begin(), 575 E = LU.end(); I != E; ++I) { 576 LastUses.push_back(*I); 577 } 578 579 } 580 581 AnalysisUsage *PMTopLevelManager::findAnalysisUsage(Pass *P) { 582 AnalysisUsage *AnUsage = nullptr; 583 DenseMap<Pass *, AnalysisUsage *>::iterator DMI = AnUsageMap.find(P); 584 if (DMI != AnUsageMap.end()) 585 AnUsage = DMI->second; 586 else { 587 AnUsage = new AnalysisUsage(); 588 P->getAnalysisUsage(*AnUsage); 589 AnUsageMap[P] = AnUsage; 590 } 591 return AnUsage; 592 } 593 594 /// Schedule pass P for execution. Make sure that passes required by 595 /// P are run before P is run. Update analysis info maintained by 596 /// the manager. Remove dead passes. This is a recursive function. 597 void PMTopLevelManager::schedulePass(Pass *P) { 598 599 // TODO : Allocate function manager for this pass, other wise required set 600 // may be inserted into previous function manager 601 602 // Give pass a chance to prepare the stage. 603 P->preparePassManager(activeStack); 604 605 // If P is an analysis pass and it is available then do not 606 // generate the analysis again. Stale analysis info should not be 607 // available at this point. 608 const PassInfo *PI = 609 PassRegistry::getPassRegistry()->getPassInfo(P->getPassID()); 610 if (PI && PI->isAnalysis() && findAnalysisPass(P->getPassID())) { 611 delete P; 612 return; 613 } 614 615 AnalysisUsage *AnUsage = findAnalysisUsage(P); 616 617 bool checkAnalysis = true; 618 while (checkAnalysis) { 619 checkAnalysis = false; 620 621 const AnalysisUsage::VectorType &RequiredSet = AnUsage->getRequiredSet(); 622 for (AnalysisUsage::VectorType::const_iterator I = RequiredSet.begin(), 623 E = RequiredSet.end(); I != E; ++I) { 624 625 Pass *AnalysisPass = findAnalysisPass(*I); 626 if (!AnalysisPass) { 627 const PassInfo *PI = PassRegistry::getPassRegistry()->getPassInfo(*I); 628 629 if (!PI) { 630 // Pass P is not in the global PassRegistry 631 dbgs() << "Pass '" << P->getPassName() << "' is not initialized." << "\n"; 632 dbgs() << "Verify if there is a pass dependency cycle." << "\n"; 633 dbgs() << "Required Passes:" << "\n"; 634 for (AnalysisUsage::VectorType::const_iterator I2 = RequiredSet.begin(), 635 E = RequiredSet.end(); I2 != E && I2 != I; ++I2) { 636 Pass *AnalysisPass2 = findAnalysisPass(*I2); 637 if (AnalysisPass2) { 638 dbgs() << "\t" << AnalysisPass2->getPassName() << "\n"; 639 } else { 640 dbgs() << "\t" << "Error: Required pass not found! Possible causes:" << "\n"; 641 dbgs() << "\t\t" << "- Pass misconfiguration (e.g.: missing macros)" << "\n"; 642 dbgs() << "\t\t" << "- Corruption of the global PassRegistry" << "\n"; 643 } 644 } 645 } 646 647 assert(PI && "Expected required passes to be initialized"); 648 AnalysisPass = PI->createPass(); 649 if (P->getPotentialPassManagerType () == 650 AnalysisPass->getPotentialPassManagerType()) 651 // Schedule analysis pass that is managed by the same pass manager. 652 schedulePass(AnalysisPass); 653 else if (P->getPotentialPassManagerType () > 654 AnalysisPass->getPotentialPassManagerType()) { 655 // Schedule analysis pass that is managed by a new manager. 656 schedulePass(AnalysisPass); 657 // Recheck analysis passes to ensure that required analyses that 658 // are already checked are still available. 659 checkAnalysis = true; 660 } else 661 // Do not schedule this analysis. Lower level analsyis 662 // passes are run on the fly. 663 delete AnalysisPass; 664 } 665 } 666 } 667 668 // Now all required passes are available. 669 if (ImmutablePass *IP = P->getAsImmutablePass()) { 670 // P is a immutable pass and it will be managed by this 671 // top level manager. Set up analysis resolver to connect them. 672 PMDataManager *DM = getAsPMDataManager(); 673 AnalysisResolver *AR = new AnalysisResolver(*DM); 674 P->setResolver(AR); 675 DM->initializeAnalysisImpl(P); 676 addImmutablePass(IP); 677 DM->recordAvailableAnalysis(IP); 678 return; 679 } 680 681 if (PI && !PI->isAnalysis() && ShouldPrintBeforePass(PI)) { 682 Pass *PP = P->createPrinterPass( 683 dbgs(), std::string("*** IR Dump Before ") + P->getPassName() + " ***"); 684 PP->assignPassManager(activeStack, getTopLevelPassManagerType()); 685 } 686 687 // Add the requested pass to the best available pass manager. 688 P->assignPassManager(activeStack, getTopLevelPassManagerType()); 689 690 if (PI && !PI->isAnalysis() && ShouldPrintAfterPass(PI)) { 691 Pass *PP = P->createPrinterPass( 692 dbgs(), std::string("*** IR Dump After ") + P->getPassName() + " ***"); 693 PP->assignPassManager(activeStack, getTopLevelPassManagerType()); 694 } 695 } 696 697 /// Find the pass that implements Analysis AID. Search immutable 698 /// passes and all pass managers. If desired pass is not found 699 /// then return NULL. 700 Pass *PMTopLevelManager::findAnalysisPass(AnalysisID AID) { 701 702 // Check pass managers 703 for (SmallVectorImpl<PMDataManager *>::iterator I = PassManagers.begin(), 704 E = PassManagers.end(); I != E; ++I) 705 if (Pass *P = (*I)->findAnalysisPass(AID, false)) 706 return P; 707 708 // Check other pass managers 709 for (SmallVectorImpl<PMDataManager *>::iterator 710 I = IndirectPassManagers.begin(), 711 E = IndirectPassManagers.end(); I != E; ++I) 712 if (Pass *P = (*I)->findAnalysisPass(AID, false)) 713 return P; 714 715 // Check the immutable passes. Iterate in reverse order so that we find 716 // the most recently registered passes first. 717 for (SmallVectorImpl<ImmutablePass *>::reverse_iterator I = 718 ImmutablePasses.rbegin(), E = ImmutablePasses.rend(); I != E; ++I) { 719 AnalysisID PI = (*I)->getPassID(); 720 if (PI == AID) 721 return *I; 722 723 // If Pass not found then check the interfaces implemented by Immutable Pass 724 const PassInfo *PassInf = 725 PassRegistry::getPassRegistry()->getPassInfo(PI); 726 assert(PassInf && "Expected all immutable passes to be initialized"); 727 const std::vector<const PassInfo*> &ImmPI = 728 PassInf->getInterfacesImplemented(); 729 for (std::vector<const PassInfo*>::const_iterator II = ImmPI.begin(), 730 EE = ImmPI.end(); II != EE; ++II) { 731 if ((*II)->getTypeInfo() == AID) 732 return *I; 733 } 734 } 735 736 return nullptr; 737 } 738 739 // Print passes managed by this top level manager. 740 void PMTopLevelManager::dumpPasses() const { 741 742 if (PassDebugging < Structure) 743 return; 744 745 // Print out the immutable passes 746 for (unsigned i = 0, e = ImmutablePasses.size(); i != e; ++i) { 747 ImmutablePasses[i]->dumpPassStructure(0); 748 } 749 750 // Every class that derives from PMDataManager also derives from Pass 751 // (sometimes indirectly), but there's no inheritance relationship 752 // between PMDataManager and Pass, so we have to getAsPass to get 753 // from a PMDataManager* to a Pass*. 754 for (SmallVectorImpl<PMDataManager *>::const_iterator I = 755 PassManagers.begin(), E = PassManagers.end(); I != E; ++I) 756 (*I)->getAsPass()->dumpPassStructure(1); 757 } 758 759 void PMTopLevelManager::dumpArguments() const { 760 761 if (PassDebugging < Arguments) 762 return; 763 764 dbgs() << "Pass Arguments: "; 765 for (SmallVectorImpl<ImmutablePass *>::const_iterator I = 766 ImmutablePasses.begin(), E = ImmutablePasses.end(); I != E; ++I) 767 if (const PassInfo *PI = 768 PassRegistry::getPassRegistry()->getPassInfo((*I)->getPassID())) { 769 assert(PI && "Expected all immutable passes to be initialized"); 770 if (!PI->isAnalysisGroup()) 771 dbgs() << " -" << PI->getPassArgument(); 772 } 773 for (SmallVectorImpl<PMDataManager *>::const_iterator I = 774 PassManagers.begin(), E = PassManagers.end(); I != E; ++I) 775 (*I)->dumpPassArguments(); 776 dbgs() << "\n"; 777 } 778 779 void PMTopLevelManager::initializeAllAnalysisInfo() { 780 for (SmallVectorImpl<PMDataManager *>::iterator I = PassManagers.begin(), 781 E = PassManagers.end(); I != E; ++I) 782 (*I)->initializeAnalysisInfo(); 783 784 // Initailize other pass managers 785 for (SmallVectorImpl<PMDataManager *>::iterator 786 I = IndirectPassManagers.begin(), E = IndirectPassManagers.end(); 787 I != E; ++I) 788 (*I)->initializeAnalysisInfo(); 789 790 for (DenseMap<Pass *, Pass *>::iterator DMI = LastUser.begin(), 791 DME = LastUser.end(); DMI != DME; ++DMI) { 792 DenseMap<Pass *, SmallPtrSet<Pass *, 8> >::iterator InvDMI = 793 InversedLastUser.find(DMI->second); 794 if (InvDMI != InversedLastUser.end()) { 795 SmallPtrSet<Pass *, 8> &L = InvDMI->second; 796 L.insert(DMI->first); 797 } else { 798 SmallPtrSet<Pass *, 8> L; L.insert(DMI->first); 799 InversedLastUser[DMI->second] = L; 800 } 801 } 802 } 803 804 /// Destructor 805 PMTopLevelManager::~PMTopLevelManager() { 806 for (SmallVectorImpl<PMDataManager *>::iterator I = PassManagers.begin(), 807 E = PassManagers.end(); I != E; ++I) 808 delete *I; 809 810 for (SmallVectorImpl<ImmutablePass *>::iterator 811 I = ImmutablePasses.begin(), E = ImmutablePasses.end(); I != E; ++I) 812 delete *I; 813 814 for (DenseMap<Pass *, AnalysisUsage *>::iterator DMI = AnUsageMap.begin(), 815 DME = AnUsageMap.end(); DMI != DME; ++DMI) 816 delete DMI->second; 817 } 818 819 //===----------------------------------------------------------------------===// 820 // PMDataManager implementation 821 822 /// Augement AvailableAnalysis by adding analysis made available by pass P. 823 void PMDataManager::recordAvailableAnalysis(Pass *P) { 824 AnalysisID PI = P->getPassID(); 825 826 AvailableAnalysis[PI] = P; 827 828 assert(!AvailableAnalysis.empty()); 829 830 // This pass is the current implementation of all of the interfaces it 831 // implements as well. 832 const PassInfo *PInf = PassRegistry::getPassRegistry()->getPassInfo(PI); 833 if (!PInf) return; 834 const std::vector<const PassInfo*> &II = PInf->getInterfacesImplemented(); 835 for (unsigned i = 0, e = II.size(); i != e; ++i) 836 AvailableAnalysis[II[i]->getTypeInfo()] = P; 837 } 838 839 // Return true if P preserves high level analysis used by other 840 // passes managed by this manager 841 bool PMDataManager::preserveHigherLevelAnalysis(Pass *P) { 842 AnalysisUsage *AnUsage = TPM->findAnalysisUsage(P); 843 if (AnUsage->getPreservesAll()) 844 return true; 845 846 const AnalysisUsage::VectorType &PreservedSet = AnUsage->getPreservedSet(); 847 for (SmallVectorImpl<Pass *>::iterator I = HigherLevelAnalysis.begin(), 848 E = HigherLevelAnalysis.end(); I != E; ++I) { 849 Pass *P1 = *I; 850 if (P1->getAsImmutablePass() == nullptr && 851 std::find(PreservedSet.begin(), PreservedSet.end(), 852 P1->getPassID()) == 853 PreservedSet.end()) 854 return false; 855 } 856 857 return true; 858 } 859 860 /// verifyPreservedAnalysis -- Verify analysis preserved by pass P. 861 void PMDataManager::verifyPreservedAnalysis(Pass *P) { 862 // Don't do this unless assertions are enabled. 863 #ifdef NDEBUG 864 return; 865 #endif 866 AnalysisUsage *AnUsage = TPM->findAnalysisUsage(P); 867 const AnalysisUsage::VectorType &PreservedSet = AnUsage->getPreservedSet(); 868 869 // Verify preserved analysis 870 for (AnalysisUsage::VectorType::const_iterator I = PreservedSet.begin(), 871 E = PreservedSet.end(); I != E; ++I) { 872 AnalysisID AID = *I; 873 if (Pass *AP = findAnalysisPass(AID, true)) { 874 TimeRegion PassTimer(getPassTimer(AP)); 875 AP->verifyAnalysis(); 876 } 877 } 878 } 879 880 /// Remove Analysis not preserved by Pass P 881 void PMDataManager::removeNotPreservedAnalysis(Pass *P) { 882 AnalysisUsage *AnUsage = TPM->findAnalysisUsage(P); 883 if (AnUsage->getPreservesAll()) 884 return; 885 886 const AnalysisUsage::VectorType &PreservedSet = AnUsage->getPreservedSet(); 887 for (DenseMap<AnalysisID, Pass*>::iterator I = AvailableAnalysis.begin(), 888 E = AvailableAnalysis.end(); I != E; ) { 889 DenseMap<AnalysisID, Pass*>::iterator Info = I++; 890 if (Info->second->getAsImmutablePass() == nullptr && 891 std::find(PreservedSet.begin(), PreservedSet.end(), Info->first) == 892 PreservedSet.end()) { 893 // Remove this analysis 894 if (PassDebugging >= Details) { 895 Pass *S = Info->second; 896 dbgs() << " -- '" << P->getPassName() << "' is not preserving '"; 897 dbgs() << S->getPassName() << "'\n"; 898 } 899 AvailableAnalysis.erase(Info); 900 } 901 } 902 903 // Check inherited analysis also. If P is not preserving analysis 904 // provided by parent manager then remove it here. 905 for (unsigned Index = 0; Index < PMT_Last; ++Index) { 906 907 if (!InheritedAnalysis[Index]) 908 continue; 909 910 for (DenseMap<AnalysisID, Pass*>::iterator 911 I = InheritedAnalysis[Index]->begin(), 912 E = InheritedAnalysis[Index]->end(); I != E; ) { 913 DenseMap<AnalysisID, Pass *>::iterator Info = I++; 914 if (Info->second->getAsImmutablePass() == nullptr && 915 std::find(PreservedSet.begin(), PreservedSet.end(), Info->first) == 916 PreservedSet.end()) { 917 // Remove this analysis 918 if (PassDebugging >= Details) { 919 Pass *S = Info->second; 920 dbgs() << " -- '" << P->getPassName() << "' is not preserving '"; 921 dbgs() << S->getPassName() << "'\n"; 922 } 923 InheritedAnalysis[Index]->erase(Info); 924 } 925 } 926 } 927 } 928 929 /// Remove analysis passes that are not used any longer 930 void PMDataManager::removeDeadPasses(Pass *P, StringRef Msg, 931 enum PassDebuggingString DBG_STR) { 932 933 SmallVector<Pass *, 12> DeadPasses; 934 935 // If this is a on the fly manager then it does not have TPM. 936 if (!TPM) 937 return; 938 939 TPM->collectLastUses(DeadPasses, P); 940 941 if (PassDebugging >= Details && !DeadPasses.empty()) { 942 dbgs() << " -*- '" << P->getPassName(); 943 dbgs() << "' is the last user of following pass instances."; 944 dbgs() << " Free these instances\n"; 945 } 946 947 for (SmallVectorImpl<Pass *>::iterator I = DeadPasses.begin(), 948 E = DeadPasses.end(); I != E; ++I) 949 freePass(*I, Msg, DBG_STR); 950 } 951 952 void PMDataManager::freePass(Pass *P, StringRef Msg, 953 enum PassDebuggingString DBG_STR) { 954 dumpPassInfo(P, FREEING_MSG, DBG_STR, Msg); 955 956 { 957 // If the pass crashes releasing memory, remember this. 958 PassManagerPrettyStackEntry X(P); 959 TimeRegion PassTimer(getPassTimer(P)); 960 961 P->releaseMemory(); 962 } 963 964 AnalysisID PI = P->getPassID(); 965 if (const PassInfo *PInf = PassRegistry::getPassRegistry()->getPassInfo(PI)) { 966 // Remove the pass itself (if it is not already removed). 967 AvailableAnalysis.erase(PI); 968 969 // Remove all interfaces this pass implements, for which it is also 970 // listed as the available implementation. 971 const std::vector<const PassInfo*> &II = PInf->getInterfacesImplemented(); 972 for (unsigned i = 0, e = II.size(); i != e; ++i) { 973 DenseMap<AnalysisID, Pass*>::iterator Pos = 974 AvailableAnalysis.find(II[i]->getTypeInfo()); 975 if (Pos != AvailableAnalysis.end() && Pos->second == P) 976 AvailableAnalysis.erase(Pos); 977 } 978 } 979 } 980 981 /// Add pass P into the PassVector. Update 982 /// AvailableAnalysis appropriately if ProcessAnalysis is true. 983 void PMDataManager::add(Pass *P, bool ProcessAnalysis) { 984 // This manager is going to manage pass P. Set up analysis resolver 985 // to connect them. 986 AnalysisResolver *AR = new AnalysisResolver(*this); 987 P->setResolver(AR); 988 989 // If a FunctionPass F is the last user of ModulePass info M 990 // then the F's manager, not F, records itself as a last user of M. 991 SmallVector<Pass *, 12> TransferLastUses; 992 993 if (!ProcessAnalysis) { 994 // Add pass 995 PassVector.push_back(P); 996 return; 997 } 998 999 // At the moment, this pass is the last user of all required passes. 1000 SmallVector<Pass *, 12> LastUses; 1001 SmallVector<Pass *, 8> RequiredPasses; 1002 SmallVector<AnalysisID, 8> ReqAnalysisNotAvailable; 1003 1004 unsigned PDepth = this->getDepth(); 1005 1006 collectRequiredAnalysis(RequiredPasses, 1007 ReqAnalysisNotAvailable, P); 1008 for (SmallVectorImpl<Pass *>::iterator I = RequiredPasses.begin(), 1009 E = RequiredPasses.end(); I != E; ++I) { 1010 Pass *PRequired = *I; 1011 unsigned RDepth = 0; 1012 1013 assert(PRequired->getResolver() && "Analysis Resolver is not set"); 1014 PMDataManager &DM = PRequired->getResolver()->getPMDataManager(); 1015 RDepth = DM.getDepth(); 1016 1017 if (PDepth == RDepth) 1018 LastUses.push_back(PRequired); 1019 else if (PDepth > RDepth) { 1020 // Let the parent claim responsibility of last use 1021 TransferLastUses.push_back(PRequired); 1022 // Keep track of higher level analysis used by this manager. 1023 HigherLevelAnalysis.push_back(PRequired); 1024 } else 1025 llvm_unreachable("Unable to accommodate Required Pass"); 1026 } 1027 1028 // Set P as P's last user until someone starts using P. 1029 // However, if P is a Pass Manager then it does not need 1030 // to record its last user. 1031 if (!P->getAsPMDataManager()) 1032 LastUses.push_back(P); 1033 TPM->setLastUser(LastUses, P); 1034 1035 if (!TransferLastUses.empty()) { 1036 Pass *My_PM = getAsPass(); 1037 TPM->setLastUser(TransferLastUses, My_PM); 1038 TransferLastUses.clear(); 1039 } 1040 1041 // Now, take care of required analyses that are not available. 1042 for (SmallVectorImpl<AnalysisID>::iterator 1043 I = ReqAnalysisNotAvailable.begin(), 1044 E = ReqAnalysisNotAvailable.end() ;I != E; ++I) { 1045 const PassInfo *PI = PassRegistry::getPassRegistry()->getPassInfo(*I); 1046 Pass *AnalysisPass = PI->createPass(); 1047 this->addLowerLevelRequiredPass(P, AnalysisPass); 1048 } 1049 1050 // Take a note of analysis required and made available by this pass. 1051 // Remove the analysis not preserved by this pass 1052 removeNotPreservedAnalysis(P); 1053 recordAvailableAnalysis(P); 1054 1055 // Add pass 1056 PassVector.push_back(P); 1057 } 1058 1059 1060 /// Populate RP with analysis pass that are required by 1061 /// pass P and are available. Populate RP_NotAvail with analysis 1062 /// pass that are required by pass P but are not available. 1063 void PMDataManager::collectRequiredAnalysis(SmallVectorImpl<Pass *> &RP, 1064 SmallVectorImpl<AnalysisID> &RP_NotAvail, 1065 Pass *P) { 1066 AnalysisUsage *AnUsage = TPM->findAnalysisUsage(P); 1067 const AnalysisUsage::VectorType &RequiredSet = AnUsage->getRequiredSet(); 1068 for (AnalysisUsage::VectorType::const_iterator 1069 I = RequiredSet.begin(), E = RequiredSet.end(); I != E; ++I) { 1070 if (Pass *AnalysisPass = findAnalysisPass(*I, true)) 1071 RP.push_back(AnalysisPass); 1072 else 1073 RP_NotAvail.push_back(*I); 1074 } 1075 1076 const AnalysisUsage::VectorType &IDs = AnUsage->getRequiredTransitiveSet(); 1077 for (AnalysisUsage::VectorType::const_iterator I = IDs.begin(), 1078 E = IDs.end(); I != E; ++I) { 1079 if (Pass *AnalysisPass = findAnalysisPass(*I, true)) 1080 RP.push_back(AnalysisPass); 1081 else 1082 RP_NotAvail.push_back(*I); 1083 } 1084 } 1085 1086 // All Required analyses should be available to the pass as it runs! Here 1087 // we fill in the AnalysisImpls member of the pass so that it can 1088 // successfully use the getAnalysis() method to retrieve the 1089 // implementations it needs. 1090 // 1091 void PMDataManager::initializeAnalysisImpl(Pass *P) { 1092 AnalysisUsage *AnUsage = TPM->findAnalysisUsage(P); 1093 1094 for (AnalysisUsage::VectorType::const_iterator 1095 I = AnUsage->getRequiredSet().begin(), 1096 E = AnUsage->getRequiredSet().end(); I != E; ++I) { 1097 Pass *Impl = findAnalysisPass(*I, true); 1098 if (!Impl) 1099 // This may be analysis pass that is initialized on the fly. 1100 // If that is not the case then it will raise an assert when it is used. 1101 continue; 1102 AnalysisResolver *AR = P->getResolver(); 1103 assert(AR && "Analysis Resolver is not set"); 1104 AR->addAnalysisImplsPair(*I, Impl); 1105 } 1106 } 1107 1108 /// Find the pass that implements Analysis AID. If desired pass is not found 1109 /// then return NULL. 1110 Pass *PMDataManager::findAnalysisPass(AnalysisID AID, bool SearchParent) { 1111 1112 // Check if AvailableAnalysis map has one entry. 1113 DenseMap<AnalysisID, Pass*>::const_iterator I = AvailableAnalysis.find(AID); 1114 1115 if (I != AvailableAnalysis.end()) 1116 return I->second; 1117 1118 // Search Parents through TopLevelManager 1119 if (SearchParent) 1120 return TPM->findAnalysisPass(AID); 1121 1122 return nullptr; 1123 } 1124 1125 // Print list of passes that are last used by P. 1126 void PMDataManager::dumpLastUses(Pass *P, unsigned Offset) const{ 1127 1128 SmallVector<Pass *, 12> LUses; 1129 1130 // If this is a on the fly manager then it does not have TPM. 1131 if (!TPM) 1132 return; 1133 1134 TPM->collectLastUses(LUses, P); 1135 1136 for (SmallVectorImpl<Pass *>::iterator I = LUses.begin(), 1137 E = LUses.end(); I != E; ++I) { 1138 dbgs() << "--" << std::string(Offset*2, ' '); 1139 (*I)->dumpPassStructure(0); 1140 } 1141 } 1142 1143 void PMDataManager::dumpPassArguments() const { 1144 for (SmallVectorImpl<Pass *>::const_iterator I = PassVector.begin(), 1145 E = PassVector.end(); I != E; ++I) { 1146 if (PMDataManager *PMD = (*I)->getAsPMDataManager()) 1147 PMD->dumpPassArguments(); 1148 else 1149 if (const PassInfo *PI = 1150 PassRegistry::getPassRegistry()->getPassInfo((*I)->getPassID())) 1151 if (!PI->isAnalysisGroup()) 1152 dbgs() << " -" << PI->getPassArgument(); 1153 } 1154 } 1155 1156 void PMDataManager::dumpPassInfo(Pass *P, enum PassDebuggingString S1, 1157 enum PassDebuggingString S2, 1158 StringRef Msg) { 1159 if (PassDebugging < Executions) 1160 return; 1161 dbgs() << (void*)this << std::string(getDepth()*2+1, ' '); 1162 switch (S1) { 1163 case EXECUTION_MSG: 1164 dbgs() << "Executing Pass '" << P->getPassName(); 1165 break; 1166 case MODIFICATION_MSG: 1167 dbgs() << "Made Modification '" << P->getPassName(); 1168 break; 1169 case FREEING_MSG: 1170 dbgs() << " Freeing Pass '" << P->getPassName(); 1171 break; 1172 default: 1173 break; 1174 } 1175 switch (S2) { 1176 case ON_BASICBLOCK_MSG: 1177 dbgs() << "' on BasicBlock '" << Msg << "'...\n"; 1178 break; 1179 case ON_FUNCTION_MSG: 1180 dbgs() << "' on Function '" << Msg << "'...\n"; 1181 break; 1182 case ON_MODULE_MSG: 1183 dbgs() << "' on Module '" << Msg << "'...\n"; 1184 break; 1185 case ON_REGION_MSG: 1186 dbgs() << "' on Region '" << Msg << "'...\n"; 1187 break; 1188 case ON_LOOP_MSG: 1189 dbgs() << "' on Loop '" << Msg << "'...\n"; 1190 break; 1191 case ON_CG_MSG: 1192 dbgs() << "' on Call Graph Nodes '" << Msg << "'...\n"; 1193 break; 1194 default: 1195 break; 1196 } 1197 } 1198 1199 void PMDataManager::dumpRequiredSet(const Pass *P) const { 1200 if (PassDebugging < Details) 1201 return; 1202 1203 AnalysisUsage analysisUsage; 1204 P->getAnalysisUsage(analysisUsage); 1205 dumpAnalysisUsage("Required", P, analysisUsage.getRequiredSet()); 1206 } 1207 1208 void PMDataManager::dumpPreservedSet(const Pass *P) const { 1209 if (PassDebugging < Details) 1210 return; 1211 1212 AnalysisUsage analysisUsage; 1213 P->getAnalysisUsage(analysisUsage); 1214 dumpAnalysisUsage("Preserved", P, analysisUsage.getPreservedSet()); 1215 } 1216 1217 void PMDataManager::dumpAnalysisUsage(StringRef Msg, const Pass *P, 1218 const AnalysisUsage::VectorType &Set) const { 1219 assert(PassDebugging >= Details); 1220 if (Set.empty()) 1221 return; 1222 dbgs() << (const void*)P << std::string(getDepth()*2+3, ' ') << Msg << " Analyses:"; 1223 for (unsigned i = 0; i != Set.size(); ++i) { 1224 if (i) dbgs() << ','; 1225 const PassInfo *PInf = PassRegistry::getPassRegistry()->getPassInfo(Set[i]); 1226 if (!PInf) { 1227 // Some preserved passes, such as AliasAnalysis, may not be initialized by 1228 // all drivers. 1229 dbgs() << " Uninitialized Pass"; 1230 continue; 1231 } 1232 dbgs() << ' ' << PInf->getPassName(); 1233 } 1234 dbgs() << '\n'; 1235 } 1236 1237 /// Add RequiredPass into list of lower level passes required by pass P. 1238 /// RequiredPass is run on the fly by Pass Manager when P requests it 1239 /// through getAnalysis interface. 1240 /// This should be handled by specific pass manager. 1241 void PMDataManager::addLowerLevelRequiredPass(Pass *P, Pass *RequiredPass) { 1242 if (TPM) { 1243 TPM->dumpArguments(); 1244 TPM->dumpPasses(); 1245 } 1246 1247 // Module Level pass may required Function Level analysis info 1248 // (e.g. dominator info). Pass manager uses on the fly function pass manager 1249 // to provide this on demand. In that case, in Pass manager terminology, 1250 // module level pass is requiring lower level analysis info managed by 1251 // lower level pass manager. 1252 1253 // When Pass manager is not able to order required analysis info, Pass manager 1254 // checks whether any lower level manager will be able to provide this 1255 // analysis info on demand or not. 1256 #ifndef NDEBUG 1257 dbgs() << "Unable to schedule '" << RequiredPass->getPassName(); 1258 dbgs() << "' required by '" << P->getPassName() << "'\n"; 1259 #endif 1260 llvm_unreachable("Unable to schedule pass"); 1261 } 1262 1263 Pass *PMDataManager::getOnTheFlyPass(Pass *P, AnalysisID PI, Function &F) { 1264 llvm_unreachable("Unable to find on the fly pass"); 1265 } 1266 1267 // Destructor 1268 PMDataManager::~PMDataManager() { 1269 for (SmallVectorImpl<Pass *>::iterator I = PassVector.begin(), 1270 E = PassVector.end(); I != E; ++I) 1271 delete *I; 1272 } 1273 1274 //===----------------------------------------------------------------------===// 1275 // NOTE: Is this the right place to define this method ? 1276 // getAnalysisIfAvailable - Return analysis result or null if it doesn't exist. 1277 Pass *AnalysisResolver::getAnalysisIfAvailable(AnalysisID ID, bool dir) const { 1278 return PM.findAnalysisPass(ID, dir); 1279 } 1280 1281 Pass *AnalysisResolver::findImplPass(Pass *P, AnalysisID AnalysisPI, 1282 Function &F) { 1283 return PM.getOnTheFlyPass(P, AnalysisPI, F); 1284 } 1285 1286 //===----------------------------------------------------------------------===// 1287 // BBPassManager implementation 1288 1289 /// Execute all of the passes scheduled for execution by invoking 1290 /// runOnBasicBlock method. Keep track of whether any of the passes modifies 1291 /// the function, and if so, return true. 1292 bool BBPassManager::runOnFunction(Function &F) { 1293 if (F.isDeclaration()) 1294 return false; 1295 1296 bool Changed = doInitialization(F); 1297 1298 for (Function::iterator I = F.begin(), E = F.end(); I != E; ++I) 1299 for (unsigned Index = 0; Index < getNumContainedPasses(); ++Index) { 1300 BasicBlockPass *BP = getContainedPass(Index); 1301 bool LocalChanged = false; 1302 1303 dumpPassInfo(BP, EXECUTION_MSG, ON_BASICBLOCK_MSG, I->getName()); 1304 dumpRequiredSet(BP); 1305 1306 initializeAnalysisImpl(BP); 1307 1308 { 1309 // If the pass crashes, remember this. 1310 PassManagerPrettyStackEntry X(BP, *I); 1311 TimeRegion PassTimer(getPassTimer(BP)); 1312 1313 LocalChanged |= BP->runOnBasicBlock(*I); 1314 } 1315 1316 Changed |= LocalChanged; 1317 if (LocalChanged) 1318 dumpPassInfo(BP, MODIFICATION_MSG, ON_BASICBLOCK_MSG, 1319 I->getName()); 1320 dumpPreservedSet(BP); 1321 1322 verifyPreservedAnalysis(BP); 1323 removeNotPreservedAnalysis(BP); 1324 recordAvailableAnalysis(BP); 1325 removeDeadPasses(BP, I->getName(), ON_BASICBLOCK_MSG); 1326 } 1327 1328 return doFinalization(F) || Changed; 1329 } 1330 1331 // Implement doInitialization and doFinalization 1332 bool BBPassManager::doInitialization(Module &M) { 1333 bool Changed = false; 1334 1335 for (unsigned Index = 0; Index < getNumContainedPasses(); ++Index) 1336 Changed |= getContainedPass(Index)->doInitialization(M); 1337 1338 return Changed; 1339 } 1340 1341 bool BBPassManager::doFinalization(Module &M) { 1342 bool Changed = false; 1343 1344 for (int Index = getNumContainedPasses() - 1; Index >= 0; --Index) 1345 Changed |= getContainedPass(Index)->doFinalization(M); 1346 1347 return Changed; 1348 } 1349 1350 bool BBPassManager::doInitialization(Function &F) { 1351 bool Changed = false; 1352 1353 for (unsigned Index = 0; Index < getNumContainedPasses(); ++Index) { 1354 BasicBlockPass *BP = getContainedPass(Index); 1355 Changed |= BP->doInitialization(F); 1356 } 1357 1358 return Changed; 1359 } 1360 1361 bool BBPassManager::doFinalization(Function &F) { 1362 bool Changed = false; 1363 1364 for (unsigned Index = 0; Index < getNumContainedPasses(); ++Index) { 1365 BasicBlockPass *BP = getContainedPass(Index); 1366 Changed |= BP->doFinalization(F); 1367 } 1368 1369 return Changed; 1370 } 1371 1372 1373 //===----------------------------------------------------------------------===// 1374 // FunctionPassManager implementation 1375 1376 /// Create new Function pass manager 1377 FunctionPassManager::FunctionPassManager(Module *m) : M(m) { 1378 FPM = new FunctionPassManagerImpl(); 1379 // FPM is the top level manager. 1380 FPM->setTopLevelManager(FPM); 1381 1382 AnalysisResolver *AR = new AnalysisResolver(*FPM); 1383 FPM->setResolver(AR); 1384 } 1385 1386 FunctionPassManager::~FunctionPassManager() { 1387 delete FPM; 1388 } 1389 1390 /// add - Add a pass to the queue of passes to run. This passes 1391 /// ownership of the Pass to the PassManager. When the 1392 /// PassManager_X is destroyed, the pass will be destroyed as well, so 1393 /// there is no need to delete the pass. (TODO delete passes.) 1394 /// This implies that all passes MUST be allocated with 'new'. 1395 void FunctionPassManager::add(Pass *P) { 1396 FPM->add(P); 1397 } 1398 1399 /// run - Execute all of the passes scheduled for execution. Keep 1400 /// track of whether any of the passes modifies the function, and if 1401 /// so, return true. 1402 /// 1403 bool FunctionPassManager::run(Function &F) { 1404 if (F.isMaterializable()) { 1405 std::string errstr; 1406 if (F.Materialize(&errstr)) 1407 report_fatal_error("Error reading bitcode file: " + Twine(errstr)); 1408 } 1409 return FPM->run(F); 1410 } 1411 1412 1413 /// doInitialization - Run all of the initializers for the function passes. 1414 /// 1415 bool FunctionPassManager::doInitialization() { 1416 return FPM->doInitialization(*M); 1417 } 1418 1419 /// doFinalization - Run all of the finalizers for the function passes. 1420 /// 1421 bool FunctionPassManager::doFinalization() { 1422 return FPM->doFinalization(*M); 1423 } 1424 1425 //===----------------------------------------------------------------------===// 1426 // FunctionPassManagerImpl implementation 1427 // 1428 bool FunctionPassManagerImpl::doInitialization(Module &M) { 1429 bool Changed = false; 1430 1431 dumpArguments(); 1432 dumpPasses(); 1433 1434 SmallVectorImpl<ImmutablePass *>& IPV = getImmutablePasses(); 1435 for (SmallVectorImpl<ImmutablePass *>::const_iterator I = IPV.begin(), 1436 E = IPV.end(); I != E; ++I) { 1437 Changed |= (*I)->doInitialization(M); 1438 } 1439 1440 for (unsigned Index = 0; Index < getNumContainedManagers(); ++Index) 1441 Changed |= getContainedManager(Index)->doInitialization(M); 1442 1443 return Changed; 1444 } 1445 1446 bool FunctionPassManagerImpl::doFinalization(Module &M) { 1447 bool Changed = false; 1448 1449 for (int Index = getNumContainedManagers() - 1; Index >= 0; --Index) 1450 Changed |= getContainedManager(Index)->doFinalization(M); 1451 1452 SmallVectorImpl<ImmutablePass *>& IPV = getImmutablePasses(); 1453 for (SmallVectorImpl<ImmutablePass *>::const_iterator I = IPV.begin(), 1454 E = IPV.end(); I != E; ++I) { 1455 Changed |= (*I)->doFinalization(M); 1456 } 1457 1458 return Changed; 1459 } 1460 1461 /// cleanup - After running all passes, clean up pass manager cache. 1462 void FPPassManager::cleanup() { 1463 for (unsigned Index = 0; Index < getNumContainedPasses(); ++Index) { 1464 FunctionPass *FP = getContainedPass(Index); 1465 AnalysisResolver *AR = FP->getResolver(); 1466 assert(AR && "Analysis Resolver is not set"); 1467 AR->clearAnalysisImpls(); 1468 } 1469 } 1470 1471 void FunctionPassManagerImpl::releaseMemoryOnTheFly() { 1472 if (!wasRun) 1473 return; 1474 for (unsigned Index = 0; Index < getNumContainedManagers(); ++Index) { 1475 FPPassManager *FPPM = getContainedManager(Index); 1476 for (unsigned Index = 0; Index < FPPM->getNumContainedPasses(); ++Index) { 1477 FPPM->getContainedPass(Index)->releaseMemory(); 1478 } 1479 } 1480 wasRun = false; 1481 } 1482 1483 // Execute all the passes managed by this top level manager. 1484 // Return true if any function is modified by a pass. 1485 bool FunctionPassManagerImpl::run(Function &F) { 1486 bool Changed = false; 1487 TimingInfo::createTheTimeInfo(); 1488 1489 initializeAllAnalysisInfo(); 1490 for (unsigned Index = 0; Index < getNumContainedManagers(); ++Index) 1491 Changed |= getContainedManager(Index)->runOnFunction(F); 1492 1493 for (unsigned Index = 0; Index < getNumContainedManagers(); ++Index) 1494 getContainedManager(Index)->cleanup(); 1495 1496 wasRun = true; 1497 return Changed; 1498 } 1499 1500 //===----------------------------------------------------------------------===// 1501 // FPPassManager implementation 1502 1503 char FPPassManager::ID = 0; 1504 /// Print passes managed by this manager 1505 void FPPassManager::dumpPassStructure(unsigned Offset) { 1506 dbgs().indent(Offset*2) << "FunctionPass Manager\n"; 1507 for (unsigned Index = 0; Index < getNumContainedPasses(); ++Index) { 1508 FunctionPass *FP = getContainedPass(Index); 1509 FP->dumpPassStructure(Offset + 1); 1510 dumpLastUses(FP, Offset+1); 1511 } 1512 } 1513 1514 1515 /// Execute all of the passes scheduled for execution by invoking 1516 /// runOnFunction method. Keep track of whether any of the passes modifies 1517 /// the function, and if so, return true. 1518 bool FPPassManager::runOnFunction(Function &F) { 1519 if (F.isDeclaration()) 1520 return false; 1521 1522 bool Changed = false; 1523 1524 // Collect inherited analysis from Module level pass manager. 1525 populateInheritedAnalysis(TPM->activeStack); 1526 1527 for (unsigned Index = 0; Index < getNumContainedPasses(); ++Index) { 1528 FunctionPass *FP = getContainedPass(Index); 1529 bool LocalChanged = false; 1530 1531 dumpPassInfo(FP, EXECUTION_MSG, ON_FUNCTION_MSG, F.getName()); 1532 dumpRequiredSet(FP); 1533 1534 initializeAnalysisImpl(FP); 1535 1536 { 1537 PassManagerPrettyStackEntry X(FP, F); 1538 TimeRegion PassTimer(getPassTimer(FP)); 1539 1540 LocalChanged |= FP->runOnFunction(F); 1541 } 1542 1543 Changed |= LocalChanged; 1544 if (LocalChanged) 1545 dumpPassInfo(FP, MODIFICATION_MSG, ON_FUNCTION_MSG, F.getName()); 1546 dumpPreservedSet(FP); 1547 1548 verifyPreservedAnalysis(FP); 1549 removeNotPreservedAnalysis(FP); 1550 recordAvailableAnalysis(FP); 1551 removeDeadPasses(FP, F.getName(), ON_FUNCTION_MSG); 1552 } 1553 return Changed; 1554 } 1555 1556 bool FPPassManager::runOnModule(Module &M) { 1557 bool Changed = false; 1558 1559 for (Module::iterator I = M.begin(), E = M.end(); I != E; ++I) 1560 Changed |= runOnFunction(*I); 1561 1562 return Changed; 1563 } 1564 1565 bool FPPassManager::doInitialization(Module &M) { 1566 bool Changed = false; 1567 1568 for (unsigned Index = 0; Index < getNumContainedPasses(); ++Index) 1569 Changed |= getContainedPass(Index)->doInitialization(M); 1570 1571 return Changed; 1572 } 1573 1574 bool FPPassManager::doFinalization(Module &M) { 1575 bool Changed = false; 1576 1577 for (int Index = getNumContainedPasses() - 1; Index >= 0; --Index) 1578 Changed |= getContainedPass(Index)->doFinalization(M); 1579 1580 return Changed; 1581 } 1582 1583 //===----------------------------------------------------------------------===// 1584 // MPPassManager implementation 1585 1586 /// Execute all of the passes scheduled for execution by invoking 1587 /// runOnModule method. Keep track of whether any of the passes modifies 1588 /// the module, and if so, return true. 1589 bool 1590 MPPassManager::runOnModule(Module &M) { 1591 bool Changed = false; 1592 1593 // Initialize on-the-fly passes 1594 for (std::map<Pass *, FunctionPassManagerImpl *>::iterator 1595 I = OnTheFlyManagers.begin(), E = OnTheFlyManagers.end(); 1596 I != E; ++I) { 1597 FunctionPassManagerImpl *FPP = I->second; 1598 Changed |= FPP->doInitialization(M); 1599 } 1600 1601 // Initialize module passes 1602 for (unsigned Index = 0; Index < getNumContainedPasses(); ++Index) 1603 Changed |= getContainedPass(Index)->doInitialization(M); 1604 1605 for (unsigned Index = 0; Index < getNumContainedPasses(); ++Index) { 1606 ModulePass *MP = getContainedPass(Index); 1607 bool LocalChanged = false; 1608 1609 dumpPassInfo(MP, EXECUTION_MSG, ON_MODULE_MSG, M.getModuleIdentifier()); 1610 dumpRequiredSet(MP); 1611 1612 initializeAnalysisImpl(MP); 1613 1614 { 1615 PassManagerPrettyStackEntry X(MP, M); 1616 TimeRegion PassTimer(getPassTimer(MP)); 1617 1618 LocalChanged |= MP->runOnModule(M); 1619 } 1620 1621 Changed |= LocalChanged; 1622 if (LocalChanged) 1623 dumpPassInfo(MP, MODIFICATION_MSG, ON_MODULE_MSG, 1624 M.getModuleIdentifier()); 1625 dumpPreservedSet(MP); 1626 1627 verifyPreservedAnalysis(MP); 1628 removeNotPreservedAnalysis(MP); 1629 recordAvailableAnalysis(MP); 1630 removeDeadPasses(MP, M.getModuleIdentifier(), ON_MODULE_MSG); 1631 } 1632 1633 // Finalize module passes 1634 for (int Index = getNumContainedPasses() - 1; Index >= 0; --Index) 1635 Changed |= getContainedPass(Index)->doFinalization(M); 1636 1637 // Finalize on-the-fly passes 1638 for (std::map<Pass *, FunctionPassManagerImpl *>::iterator 1639 I = OnTheFlyManagers.begin(), E = OnTheFlyManagers.end(); 1640 I != E; ++I) { 1641 FunctionPassManagerImpl *FPP = I->second; 1642 // We don't know when is the last time an on-the-fly pass is run, 1643 // so we need to releaseMemory / finalize here 1644 FPP->releaseMemoryOnTheFly(); 1645 Changed |= FPP->doFinalization(M); 1646 } 1647 1648 return Changed; 1649 } 1650 1651 /// Add RequiredPass into list of lower level passes required by pass P. 1652 /// RequiredPass is run on the fly by Pass Manager when P requests it 1653 /// through getAnalysis interface. 1654 void MPPassManager::addLowerLevelRequiredPass(Pass *P, Pass *RequiredPass) { 1655 assert(P->getPotentialPassManagerType() == PMT_ModulePassManager && 1656 "Unable to handle Pass that requires lower level Analysis pass"); 1657 assert((P->getPotentialPassManagerType() < 1658 RequiredPass->getPotentialPassManagerType()) && 1659 "Unable to handle Pass that requires lower level Analysis pass"); 1660 if (!RequiredPass) 1661 return; 1662 1663 FunctionPassManagerImpl *FPP = OnTheFlyManagers[P]; 1664 if (!FPP) { 1665 FPP = new FunctionPassManagerImpl(); 1666 // FPP is the top level manager. 1667 FPP->setTopLevelManager(FPP); 1668 1669 OnTheFlyManagers[P] = FPP; 1670 } 1671 const PassInfo * RequiredPassPI = 1672 PassRegistry::getPassRegistry()->getPassInfo(RequiredPass->getPassID()); 1673 1674 Pass *FoundPass = nullptr; 1675 if (RequiredPassPI && RequiredPassPI->isAnalysis()) { 1676 FoundPass = 1677 ((PMTopLevelManager*)FPP)->findAnalysisPass(RequiredPass->getPassID()); 1678 } 1679 if (!FoundPass) { 1680 FoundPass = RequiredPass; 1681 // This should be guaranteed to add RequiredPass to the passmanager given 1682 // that we checked for an avaiable analysis above. 1683 FPP->add(RequiredPass); 1684 } 1685 // Register P as the last user of FoundPass or RequiredPass. 1686 SmallVector<Pass *, 1> LU; 1687 LU.push_back(FoundPass); 1688 FPP->setLastUser(LU, P); 1689 } 1690 1691 /// Return function pass corresponding to PassInfo PI, that is 1692 /// required by module pass MP. Instantiate analysis pass, by using 1693 /// its runOnFunction() for function F. 1694 Pass* MPPassManager::getOnTheFlyPass(Pass *MP, AnalysisID PI, Function &F){ 1695 FunctionPassManagerImpl *FPP = OnTheFlyManagers[MP]; 1696 assert(FPP && "Unable to find on the fly pass"); 1697 1698 FPP->releaseMemoryOnTheFly(); 1699 FPP->run(F); 1700 return ((PMTopLevelManager*)FPP)->findAnalysisPass(PI); 1701 } 1702 1703 1704 //===----------------------------------------------------------------------===// 1705 // PassManagerImpl implementation 1706 1707 // 1708 /// run - Execute all of the passes scheduled for execution. Keep track of 1709 /// whether any of the passes modifies the module, and if so, return true. 1710 bool PassManagerImpl::run(Module &M) { 1711 bool Changed = false; 1712 TimingInfo::createTheTimeInfo(); 1713 1714 dumpArguments(); 1715 dumpPasses(); 1716 1717 SmallVectorImpl<ImmutablePass *>& IPV = getImmutablePasses(); 1718 for (SmallVectorImpl<ImmutablePass *>::const_iterator I = IPV.begin(), 1719 E = IPV.end(); I != E; ++I) { 1720 Changed |= (*I)->doInitialization(M); 1721 } 1722 1723 initializeAllAnalysisInfo(); 1724 for (unsigned Index = 0; Index < getNumContainedManagers(); ++Index) 1725 Changed |= getContainedManager(Index)->runOnModule(M); 1726 1727 for (SmallVectorImpl<ImmutablePass *>::const_iterator I = IPV.begin(), 1728 E = IPV.end(); I != E; ++I) { 1729 Changed |= (*I)->doFinalization(M); 1730 } 1731 1732 return Changed; 1733 } 1734 1735 //===----------------------------------------------------------------------===// 1736 // PassManager implementation 1737 1738 /// Create new pass manager 1739 PassManager::PassManager() { 1740 PM = new PassManagerImpl(); 1741 // PM is the top level manager 1742 PM->setTopLevelManager(PM); 1743 } 1744 1745 PassManager::~PassManager() { 1746 delete PM; 1747 } 1748 1749 /// add - Add a pass to the queue of passes to run. This passes ownership of 1750 /// the Pass to the PassManager. When the PassManager is destroyed, the pass 1751 /// will be destroyed as well, so there is no need to delete the pass. This 1752 /// implies that all passes MUST be allocated with 'new'. 1753 void PassManager::add(Pass *P) { 1754 PM->add(P); 1755 } 1756 1757 /// run - Execute all of the passes scheduled for execution. Keep track of 1758 /// whether any of the passes modifies the module, and if so, return true. 1759 bool PassManager::run(Module &M) { 1760 return PM->run(M); 1761 } 1762 1763 //===----------------------------------------------------------------------===// 1764 // TimingInfo implementation 1765 1766 bool llvm::TimePassesIsEnabled = false; 1767 static cl::opt<bool,true> 1768 EnableTiming("time-passes", cl::location(TimePassesIsEnabled), 1769 cl::desc("Time each pass, printing elapsed time for each on exit")); 1770 1771 // createTheTimeInfo - This method either initializes the TheTimeInfo pointer to 1772 // a non-null value (if the -time-passes option is enabled) or it leaves it 1773 // null. It may be called multiple times. 1774 void TimingInfo::createTheTimeInfo() { 1775 if (!TimePassesIsEnabled || TheTimeInfo) return; 1776 1777 // Constructed the first time this is called, iff -time-passes is enabled. 1778 // This guarantees that the object will be constructed before static globals, 1779 // thus it will be destroyed before them. 1780 static ManagedStatic<TimingInfo> TTI; 1781 TheTimeInfo = &*TTI; 1782 } 1783 1784 /// If TimingInfo is enabled then start pass timer. 1785 Timer *llvm::getPassTimer(Pass *P) { 1786 if (TheTimeInfo) 1787 return TheTimeInfo->getPassTimer(P); 1788 return nullptr; 1789 } 1790 1791 //===----------------------------------------------------------------------===// 1792 // PMStack implementation 1793 // 1794 1795 // Pop Pass Manager from the stack and clear its analysis info. 1796 void PMStack::pop() { 1797 1798 PMDataManager *Top = this->top(); 1799 Top->initializeAnalysisInfo(); 1800 1801 S.pop_back(); 1802 } 1803 1804 // Push PM on the stack and set its top level manager. 1805 void PMStack::push(PMDataManager *PM) { 1806 assert(PM && "Unable to push. Pass Manager expected"); 1807 assert(PM->getDepth()==0 && "Pass Manager depth set too early"); 1808 1809 if (!this->empty()) { 1810 assert(PM->getPassManagerType() > this->top()->getPassManagerType() 1811 && "pushing bad pass manager to PMStack"); 1812 PMTopLevelManager *TPM = this->top()->getTopLevelManager(); 1813 1814 assert(TPM && "Unable to find top level manager"); 1815 TPM->addIndirectPassManager(PM); 1816 PM->setTopLevelManager(TPM); 1817 PM->setDepth(this->top()->getDepth()+1); 1818 } else { 1819 assert((PM->getPassManagerType() == PMT_ModulePassManager 1820 || PM->getPassManagerType() == PMT_FunctionPassManager) 1821 && "pushing bad pass manager to PMStack"); 1822 PM->setDepth(1); 1823 } 1824 1825 S.push_back(PM); 1826 } 1827 1828 // Dump content of the pass manager stack. 1829 void PMStack::dump() const { 1830 for (std::vector<PMDataManager *>::const_iterator I = S.begin(), 1831 E = S.end(); I != E; ++I) 1832 dbgs() << (*I)->getAsPass()->getPassName() << ' '; 1833 1834 if (!S.empty()) 1835 dbgs() << '\n'; 1836 } 1837 1838 /// Find appropriate Module Pass Manager in the PM Stack and 1839 /// add self into that manager. 1840 void ModulePass::assignPassManager(PMStack &PMS, 1841 PassManagerType PreferredType) { 1842 // Find Module Pass Manager 1843 while (!PMS.empty()) { 1844 PassManagerType TopPMType = PMS.top()->getPassManagerType(); 1845 if (TopPMType == PreferredType) 1846 break; // We found desired pass manager 1847 else if (TopPMType > PMT_ModulePassManager) 1848 PMS.pop(); // Pop children pass managers 1849 else 1850 break; 1851 } 1852 assert(!PMS.empty() && "Unable to find appropriate Pass Manager"); 1853 PMS.top()->add(this); 1854 } 1855 1856 /// Find appropriate Function Pass Manager or Call Graph Pass Manager 1857 /// in the PM Stack and add self into that manager. 1858 void FunctionPass::assignPassManager(PMStack &PMS, 1859 PassManagerType PreferredType) { 1860 1861 // Find Function Pass Manager 1862 while (!PMS.empty()) { 1863 if (PMS.top()->getPassManagerType() > PMT_FunctionPassManager) 1864 PMS.pop(); 1865 else 1866 break; 1867 } 1868 1869 // Create new Function Pass Manager if needed. 1870 FPPassManager *FPP; 1871 if (PMS.top()->getPassManagerType() == PMT_FunctionPassManager) { 1872 FPP = (FPPassManager *)PMS.top(); 1873 } else { 1874 assert(!PMS.empty() && "Unable to create Function Pass Manager"); 1875 PMDataManager *PMD = PMS.top(); 1876 1877 // [1] Create new Function Pass Manager 1878 FPP = new FPPassManager(); 1879 FPP->populateInheritedAnalysis(PMS); 1880 1881 // [2] Set up new manager's top level manager 1882 PMTopLevelManager *TPM = PMD->getTopLevelManager(); 1883 TPM->addIndirectPassManager(FPP); 1884 1885 // [3] Assign manager to manage this new manager. This may create 1886 // and push new managers into PMS 1887 FPP->assignPassManager(PMS, PMD->getPassManagerType()); 1888 1889 // [4] Push new manager into PMS 1890 PMS.push(FPP); 1891 } 1892 1893 // Assign FPP as the manager of this pass. 1894 FPP->add(this); 1895 } 1896 1897 /// Find appropriate Basic Pass Manager or Call Graph Pass Manager 1898 /// in the PM Stack and add self into that manager. 1899 void BasicBlockPass::assignPassManager(PMStack &PMS, 1900 PassManagerType PreferredType) { 1901 BBPassManager *BBP; 1902 1903 // Basic Pass Manager is a leaf pass manager. It does not handle 1904 // any other pass manager. 1905 if (!PMS.empty() && 1906 PMS.top()->getPassManagerType() == PMT_BasicBlockPassManager) { 1907 BBP = (BBPassManager *)PMS.top(); 1908 } else { 1909 // If leaf manager is not Basic Block Pass manager then create new 1910 // basic Block Pass manager. 1911 assert(!PMS.empty() && "Unable to create BasicBlock Pass Manager"); 1912 PMDataManager *PMD = PMS.top(); 1913 1914 // [1] Create new Basic Block Manager 1915 BBP = new BBPassManager(); 1916 1917 // [2] Set up new manager's top level manager 1918 // Basic Block Pass Manager does not live by itself 1919 PMTopLevelManager *TPM = PMD->getTopLevelManager(); 1920 TPM->addIndirectPassManager(BBP); 1921 1922 // [3] Assign manager to manage this new manager. This may create 1923 // and push new managers into PMS 1924 BBP->assignPassManager(PMS, PreferredType); 1925 1926 // [4] Push new manager into PMS 1927 PMS.push(BBP); 1928 } 1929 1930 // Assign BBP as the manager of this pass. 1931 BBP->add(this); 1932 } 1933 1934 PassManagerBase::~PassManagerBase() {} 1935