1 //===- PassManagerBuilder.cpp - Build Standard Pass -----------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file defines the PassManagerBuilder class, which is used to set up a 11 // "standard" optimization sequence suitable for languages like C and C++. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "llvm/Transforms/IPO/PassManagerBuilder.h" 16 #include "llvm-c/Transforms/PassManagerBuilder.h" 17 #include "llvm/ADT/SmallVector.h" 18 #include "llvm/Analysis/BasicAliasAnalysis.h" 19 #include "llvm/Analysis/CFLAndersAliasAnalysis.h" 20 #include "llvm/Analysis/CFLSteensAliasAnalysis.h" 21 #include "llvm/Analysis/GlobalsModRef.h" 22 #include "llvm/Analysis/InlineCost.h" 23 #include "llvm/Analysis/Passes.h" 24 #include "llvm/Analysis/ScopedNoAliasAA.h" 25 #include "llvm/Analysis/TargetLibraryInfo.h" 26 #include "llvm/Analysis/TypeBasedAliasAnalysis.h" 27 #include "llvm/IR/DataLayout.h" 28 #include "llvm/IR/LegacyPassManager.h" 29 #include "llvm/IR/ModuleSummaryIndex.h" 30 #include "llvm/IR/Verifier.h" 31 #include "llvm/Support/CommandLine.h" 32 #include "llvm/Support/ManagedStatic.h" 33 #include "llvm/Target/TargetMachine.h" 34 #include "llvm/Transforms/IPO.h" 35 #include "llvm/Transforms/IPO/ForceFunctionAttrs.h" 36 #include "llvm/Transforms/IPO/FunctionAttrs.h" 37 #include "llvm/Transforms/IPO/InferFunctionAttrs.h" 38 #include "llvm/Transforms/Instrumentation.h" 39 #include "llvm/Transforms/Scalar.h" 40 #include "llvm/Transforms/Scalar/GVN.h" 41 #include "llvm/Transforms/Scalar/SimpleLoopUnswitch.h" 42 #include "llvm/Transforms/Vectorize.h" 43 44 using namespace llvm; 45 46 static cl::opt<bool> 47 RunPartialInlining("enable-partial-inlining", cl::init(false), cl::Hidden, 48 cl::ZeroOrMore, cl::desc("Run Partial inlinining pass")); 49 50 static cl::opt<bool> 51 RunLoopVectorization("vectorize-loops", cl::Hidden, 52 cl::desc("Run the Loop vectorization passes")); 53 54 static cl::opt<bool> 55 RunSLPVectorization("vectorize-slp", cl::Hidden, 56 cl::desc("Run the SLP vectorization passes")); 57 58 static cl::opt<bool> 59 UseGVNAfterVectorization("use-gvn-after-vectorization", 60 cl::init(false), cl::Hidden, 61 cl::desc("Run GVN instead of Early CSE after vectorization passes")); 62 63 static cl::opt<bool> ExtraVectorizerPasses( 64 "extra-vectorizer-passes", cl::init(false), cl::Hidden, 65 cl::desc("Run cleanup optimization passes after vectorization.")); 66 67 static cl::opt<bool> 68 RunLoopRerolling("reroll-loops", cl::Hidden, 69 cl::desc("Run the loop rerolling pass")); 70 71 static cl::opt<bool> RunNewGVN("enable-newgvn", cl::init(false), cl::Hidden, 72 cl::desc("Run the NewGVN pass")); 73 74 static cl::opt<bool> 75 RunSLPAfterLoopVectorization("run-slp-after-loop-vectorization", 76 cl::init(true), cl::Hidden, 77 cl::desc("Run the SLP vectorizer (and BB vectorizer) after the Loop " 78 "vectorizer instead of before")); 79 80 // Experimental option to use CFL-AA 81 enum class CFLAAType { None, Steensgaard, Andersen, Both }; 82 static cl::opt<CFLAAType> 83 UseCFLAA("use-cfl-aa", cl::init(CFLAAType::None), cl::Hidden, 84 cl::desc("Enable the new, experimental CFL alias analysis"), 85 cl::values(clEnumValN(CFLAAType::None, "none", "Disable CFL-AA"), 86 clEnumValN(CFLAAType::Steensgaard, "steens", 87 "Enable unification-based CFL-AA"), 88 clEnumValN(CFLAAType::Andersen, "anders", 89 "Enable inclusion-based CFL-AA"), 90 clEnumValN(CFLAAType::Both, "both", 91 "Enable both variants of CFL-AA"))); 92 93 static cl::opt<bool> EnableLoopInterchange( 94 "enable-loopinterchange", cl::init(false), cl::Hidden, 95 cl::desc("Enable the new, experimental LoopInterchange Pass")); 96 97 static cl::opt<bool> 98 EnablePrepareForThinLTO("prepare-for-thinlto", cl::init(false), cl::Hidden, 99 cl::desc("Enable preparation for ThinLTO.")); 100 101 static cl::opt<bool> RunPGOInstrGen( 102 "profile-generate", cl::init(false), cl::Hidden, 103 cl::desc("Enable PGO instrumentation.")); 104 105 static cl::opt<std::string> 106 PGOOutputFile("profile-generate-file", cl::init(""), cl::Hidden, 107 cl::desc("Specify the path of profile data file.")); 108 109 static cl::opt<std::string> RunPGOInstrUse( 110 "profile-use", cl::init(""), cl::Hidden, cl::value_desc("filename"), 111 cl::desc("Enable use phase of PGO instrumentation and specify the path " 112 "of profile data file")); 113 114 static cl::opt<bool> UseLoopVersioningLICM( 115 "enable-loop-versioning-licm", cl::init(false), cl::Hidden, 116 cl::desc("Enable the experimental Loop Versioning LICM pass")); 117 118 static cl::opt<bool> 119 DisablePreInliner("disable-preinline", cl::init(false), cl::Hidden, 120 cl::desc("Disable pre-instrumentation inliner")); 121 122 static cl::opt<int> PreInlineThreshold( 123 "preinline-threshold", cl::Hidden, cl::init(75), cl::ZeroOrMore, 124 cl::desc("Control the amount of inlining in pre-instrumentation inliner " 125 "(default = 75)")); 126 127 static cl::opt<bool> EnableEarlyCSEMemSSA( 128 "enable-earlycse-memssa", cl::init(true), cl::Hidden, 129 cl::desc("Enable the EarlyCSE w/ MemorySSA pass (default = on)")); 130 131 static cl::opt<bool> EnableGVNHoist( 132 "enable-gvn-hoist", cl::init(false), cl::Hidden, 133 cl::desc("Enable the GVN hoisting pass (default = off)")); 134 135 static cl::opt<bool> 136 DisableLibCallsShrinkWrap("disable-libcalls-shrinkwrap", cl::init(false), 137 cl::Hidden, 138 cl::desc("Disable shrink-wrap library calls")); 139 140 static cl::opt<bool> 141 EnableSimpleLoopUnswitch("enable-simple-loop-unswitch", cl::init(false), 142 cl::Hidden, 143 cl::desc("Enable the simple loop unswitch pass.")); 144 145 static cl::opt<bool> EnableGVNSink( 146 "enable-gvn-sink", cl::init(false), cl::Hidden, 147 cl::desc("Enable the GVN sinking pass (default = off)")); 148 149 PassManagerBuilder::PassManagerBuilder() { 150 OptLevel = 2; 151 SizeLevel = 0; 152 LibraryInfo = nullptr; 153 Inliner = nullptr; 154 DisableUnrollLoops = false; 155 SLPVectorize = RunSLPVectorization; 156 LoopVectorize = RunLoopVectorization; 157 RerollLoops = RunLoopRerolling; 158 NewGVN = RunNewGVN; 159 DisableGVNLoadPRE = false; 160 VerifyInput = false; 161 VerifyOutput = false; 162 MergeFunctions = false; 163 PrepareForLTO = false; 164 EnablePGOInstrGen = RunPGOInstrGen; 165 PGOInstrGen = PGOOutputFile; 166 PGOInstrUse = RunPGOInstrUse; 167 PrepareForThinLTO = EnablePrepareForThinLTO; 168 PerformThinLTO = false; 169 DivergentTarget = false; 170 } 171 172 PassManagerBuilder::~PassManagerBuilder() { 173 delete LibraryInfo; 174 delete Inliner; 175 } 176 177 /// Set of global extensions, automatically added as part of the standard set. 178 static ManagedStatic<SmallVector<std::pair<PassManagerBuilder::ExtensionPointTy, 179 PassManagerBuilder::ExtensionFn>, 8> > GlobalExtensions; 180 181 /// Check if GlobalExtensions is constructed and not empty. 182 /// Since GlobalExtensions is a managed static, calling 'empty()' will trigger 183 /// the construction of the object. 184 static bool GlobalExtensionsNotEmpty() { 185 return GlobalExtensions.isConstructed() && !GlobalExtensions->empty(); 186 } 187 188 void PassManagerBuilder::addGlobalExtension( 189 PassManagerBuilder::ExtensionPointTy Ty, 190 PassManagerBuilder::ExtensionFn Fn) { 191 GlobalExtensions->push_back(std::make_pair(Ty, std::move(Fn))); 192 } 193 194 void PassManagerBuilder::addExtension(ExtensionPointTy Ty, ExtensionFn Fn) { 195 Extensions.push_back(std::make_pair(Ty, std::move(Fn))); 196 } 197 198 void PassManagerBuilder::addExtensionsToPM(ExtensionPointTy ETy, 199 legacy::PassManagerBase &PM) const { 200 if (GlobalExtensionsNotEmpty()) { 201 for (auto &Ext : *GlobalExtensions) { 202 if (Ext.first == ETy) 203 Ext.second(*this, PM); 204 } 205 } 206 for (unsigned i = 0, e = Extensions.size(); i != e; ++i) 207 if (Extensions[i].first == ETy) 208 Extensions[i].second(*this, PM); 209 } 210 211 void PassManagerBuilder::addInitialAliasAnalysisPasses( 212 legacy::PassManagerBase &PM) const { 213 switch (UseCFLAA) { 214 case CFLAAType::Steensgaard: 215 PM.add(createCFLSteensAAWrapperPass()); 216 break; 217 case CFLAAType::Andersen: 218 PM.add(createCFLAndersAAWrapperPass()); 219 break; 220 case CFLAAType::Both: 221 PM.add(createCFLSteensAAWrapperPass()); 222 PM.add(createCFLAndersAAWrapperPass()); 223 break; 224 default: 225 break; 226 } 227 228 // Add TypeBasedAliasAnalysis before BasicAliasAnalysis so that 229 // BasicAliasAnalysis wins if they disagree. This is intended to help 230 // support "obvious" type-punning idioms. 231 PM.add(createTypeBasedAAWrapperPass()); 232 PM.add(createScopedNoAliasAAWrapperPass()); 233 } 234 235 void PassManagerBuilder::addInstructionCombiningPass( 236 legacy::PassManagerBase &PM) const { 237 bool ExpensiveCombines = OptLevel > 2; 238 PM.add(createInstructionCombiningPass(ExpensiveCombines)); 239 } 240 241 void PassManagerBuilder::populateFunctionPassManager( 242 legacy::FunctionPassManager &FPM) { 243 addExtensionsToPM(EP_EarlyAsPossible, FPM); 244 245 // Add LibraryInfo if we have some. 246 if (LibraryInfo) 247 FPM.add(new TargetLibraryInfoWrapperPass(*LibraryInfo)); 248 249 if (OptLevel == 0) return; 250 251 addInitialAliasAnalysisPasses(FPM); 252 253 FPM.add(createCFGSimplificationPass()); 254 FPM.add(createSROAPass()); 255 FPM.add(createEarlyCSEPass()); 256 FPM.add(createLowerExpectIntrinsicPass()); 257 } 258 259 // Do PGO instrumentation generation or use pass as the option specified. 260 void PassManagerBuilder::addPGOInstrPasses(legacy::PassManagerBase &MPM) { 261 if (!EnablePGOInstrGen && PGOInstrUse.empty() && PGOSampleUse.empty()) 262 return; 263 // Perform the preinline and cleanup passes for O1 and above. 264 // And avoid doing them if optimizing for size. 265 if (OptLevel > 0 && SizeLevel == 0 && !DisablePreInliner && 266 PGOSampleUse.empty()) { 267 // Create preinline pass. We construct an InlineParams object and specify 268 // the threshold here to avoid the command line options of the regular 269 // inliner to influence pre-inlining. The only fields of InlineParams we 270 // care about are DefaultThreshold and HintThreshold. 271 InlineParams IP; 272 IP.DefaultThreshold = PreInlineThreshold; 273 // FIXME: The hint threshold has the same value used by the regular inliner. 274 // This should probably be lowered after performance testing. 275 IP.HintThreshold = 325; 276 277 MPM.add(createFunctionInliningPass(IP)); 278 MPM.add(createSROAPass()); 279 MPM.add(createEarlyCSEPass()); // Catch trivial redundancies 280 MPM.add(createCFGSimplificationPass()); // Merge & remove BBs 281 MPM.add(createInstructionCombiningPass()); // Combine silly seq's 282 addExtensionsToPM(EP_Peephole, MPM); 283 } 284 if (EnablePGOInstrGen) { 285 MPM.add(createPGOInstrumentationGenLegacyPass()); 286 // Add the profile lowering pass. 287 InstrProfOptions Options; 288 if (!PGOInstrGen.empty()) 289 Options.InstrProfileOutput = PGOInstrGen; 290 Options.DoCounterPromotion = true; 291 MPM.add(createLoopRotatePass()); 292 MPM.add(createInstrProfilingLegacyPass(Options)); 293 } 294 if (!PGOInstrUse.empty()) 295 MPM.add(createPGOInstrumentationUseLegacyPass(PGOInstrUse)); 296 // Indirect call promotion that promotes intra-module targets only. 297 // For ThinLTO this is done earlier due to interactions with globalopt 298 // for imported functions. We don't run this at -O0. 299 if (OptLevel > 0) 300 MPM.add( 301 createPGOIndirectCallPromotionLegacyPass(false, !PGOSampleUse.empty())); 302 } 303 void PassManagerBuilder::addFunctionSimplificationPasses( 304 legacy::PassManagerBase &MPM) { 305 // Start of function pass. 306 // Break up aggregate allocas, using SSAUpdater. 307 MPM.add(createSROAPass()); 308 MPM.add(createEarlyCSEPass(EnableEarlyCSEMemSSA)); // Catch trivial redundancies 309 if (EnableGVNHoist) 310 MPM.add(createGVNHoistPass()); 311 if (EnableGVNSink) { 312 MPM.add(createGVNSinkPass()); 313 MPM.add(createCFGSimplificationPass()); 314 } 315 316 // Speculative execution if the target has divergent branches; otherwise nop. 317 MPM.add(createSpeculativeExecutionIfHasBranchDivergencePass()); 318 MPM.add(createJumpThreadingPass()); // Thread jumps. 319 MPM.add(createCorrelatedValuePropagationPass()); // Propagate conditionals 320 MPM.add(createCFGSimplificationPass()); // Merge & remove BBs 321 // Combine silly seq's 322 addInstructionCombiningPass(MPM); 323 if (SizeLevel == 0 && !DisableLibCallsShrinkWrap) 324 MPM.add(createLibCallsShrinkWrapPass()); 325 addExtensionsToPM(EP_Peephole, MPM); 326 327 // Optimize memory intrinsic calls based on the profiled size information. 328 if (SizeLevel == 0) 329 MPM.add(createPGOMemOPSizeOptLegacyPass()); 330 331 MPM.add(createTailCallEliminationPass()); // Eliminate tail calls 332 MPM.add(createCFGSimplificationPass()); // Merge & remove BBs 333 MPM.add(createReassociatePass()); // Reassociate expressions 334 // Rotate Loop - disable header duplication at -Oz 335 MPM.add(createLoopRotatePass(SizeLevel == 2 ? 0 : -1)); 336 MPM.add(createLICMPass()); // Hoist loop invariants 337 if (EnableSimpleLoopUnswitch) 338 MPM.add(createSimpleLoopUnswitchLegacyPass()); 339 else 340 MPM.add(createLoopUnswitchPass(SizeLevel || OptLevel < 3, DivergentTarget)); 341 MPM.add(createCFGSimplificationPass()); 342 addInstructionCombiningPass(MPM); 343 MPM.add(createIndVarSimplifyPass()); // Canonicalize indvars 344 MPM.add(createLoopIdiomPass()); // Recognize idioms like memset. 345 addExtensionsToPM(EP_LateLoopOptimizations, MPM); 346 MPM.add(createLoopDeletionPass()); // Delete dead loops 347 348 if (EnableLoopInterchange) { 349 MPM.add(createLoopInterchangePass()); // Interchange loops 350 MPM.add(createCFGSimplificationPass()); 351 } 352 if (!DisableUnrollLoops) 353 MPM.add(createSimpleLoopUnrollPass(OptLevel)); // Unroll small loops 354 addExtensionsToPM(EP_LoopOptimizerEnd, MPM); 355 356 if (OptLevel > 1) { 357 MPM.add(createMergedLoadStoreMotionPass()); // Merge ld/st in diamonds 358 MPM.add(NewGVN ? createNewGVNPass() 359 : createGVNPass(DisableGVNLoadPRE)); // Remove redundancies 360 } 361 MPM.add(createMemCpyOptPass()); // Remove memcpy / form memset 362 MPM.add(createSCCPPass()); // Constant prop with SCCP 363 364 // Delete dead bit computations (instcombine runs after to fold away the dead 365 // computations, and then ADCE will run later to exploit any new DCE 366 // opportunities that creates). 367 MPM.add(createBitTrackingDCEPass()); // Delete dead bit computations 368 369 // Run instcombine after redundancy elimination to exploit opportunities 370 // opened up by them. 371 addInstructionCombiningPass(MPM); 372 addExtensionsToPM(EP_Peephole, MPM); 373 MPM.add(createJumpThreadingPass()); // Thread jumps 374 MPM.add(createCorrelatedValuePropagationPass()); 375 MPM.add(createDeadStoreEliminationPass()); // Delete dead stores 376 MPM.add(createLICMPass()); 377 378 addExtensionsToPM(EP_ScalarOptimizerLate, MPM); 379 380 if (RerollLoops) 381 MPM.add(createLoopRerollPass()); 382 if (!RunSLPAfterLoopVectorization && SLPVectorize) 383 MPM.add(createSLPVectorizerPass()); // Vectorize parallel scalar chains. 384 385 MPM.add(createAggressiveDCEPass()); // Delete dead instructions 386 MPM.add(createCFGSimplificationPass()); // Merge & remove BBs 387 // Clean up after everything. 388 addInstructionCombiningPass(MPM); 389 addExtensionsToPM(EP_Peephole, MPM); 390 } 391 392 void PassManagerBuilder::populateModulePassManager( 393 legacy::PassManagerBase &MPM) { 394 if (!PGOSampleUse.empty()) { 395 MPM.add(createPruneEHPass()); 396 MPM.add(createSampleProfileLoaderPass(PGOSampleUse)); 397 } 398 399 // Allow forcing function attributes as a debugging and tuning aid. 400 MPM.add(createForceFunctionAttrsLegacyPass()); 401 402 // If all optimizations are disabled, just run the always-inline pass and, 403 // if enabled, the function merging pass. 404 if (OptLevel == 0) { 405 addPGOInstrPasses(MPM); 406 if (Inliner) { 407 MPM.add(Inliner); 408 Inliner = nullptr; 409 } 410 411 // FIXME: The BarrierNoopPass is a HACK! The inliner pass above implicitly 412 // creates a CGSCC pass manager, but we don't want to add extensions into 413 // that pass manager. To prevent this we insert a no-op module pass to reset 414 // the pass manager to get the same behavior as EP_OptimizerLast in non-O0 415 // builds. The function merging pass is 416 if (MergeFunctions) 417 MPM.add(createMergeFunctionsPass()); 418 else if (GlobalExtensionsNotEmpty() || !Extensions.empty()) 419 MPM.add(createBarrierNoopPass()); 420 421 if (PerformThinLTO) { 422 // Drop available_externally and unreferenced globals. This is necessary 423 // with ThinLTO in order to avoid leaving undefined references to dead 424 // globals in the object file. 425 MPM.add(createEliminateAvailableExternallyPass()); 426 MPM.add(createGlobalDCEPass()); 427 } 428 429 addExtensionsToPM(EP_EnabledOnOptLevel0, MPM); 430 431 // Rename anon globals to be able to export them in the summary. 432 // This has to be done after we add the extensions to the pass manager 433 // as there could be passes (e.g. Adddress sanitizer) which introduce 434 // new unnamed globals. 435 if (PrepareForThinLTO) 436 MPM.add(createNameAnonGlobalPass()); 437 return; 438 } 439 440 // Add LibraryInfo if we have some. 441 if (LibraryInfo) 442 MPM.add(new TargetLibraryInfoWrapperPass(*LibraryInfo)); 443 444 addInitialAliasAnalysisPasses(MPM); 445 446 // For ThinLTO there are two passes of indirect call promotion. The 447 // first is during the compile phase when PerformThinLTO=false and 448 // intra-module indirect call targets are promoted. The second is during 449 // the ThinLTO backend when PerformThinLTO=true, when we promote imported 450 // inter-module indirect calls. For that we perform indirect call promotion 451 // earlier in the pass pipeline, here before globalopt. Otherwise imported 452 // available_externally functions look unreferenced and are removed. 453 if (PerformThinLTO) 454 MPM.add(createPGOIndirectCallPromotionLegacyPass(/*InLTO = */ true, 455 !PGOSampleUse.empty())); 456 457 // For SamplePGO in ThinLTO compile phase, we do not want to unroll loops 458 // as it will change the CFG too much to make the 2nd profile annotation 459 // in backend more difficult. 460 bool PrepareForThinLTOUsingPGOSampleProfile = 461 PrepareForThinLTO && !PGOSampleUse.empty(); 462 if (PrepareForThinLTOUsingPGOSampleProfile) 463 DisableUnrollLoops = true; 464 465 // Infer attributes about declarations if possible. 466 MPM.add(createInferFunctionAttrsLegacyPass()); 467 468 addExtensionsToPM(EP_ModuleOptimizerEarly, MPM); 469 470 MPM.add(createIPSCCPPass()); // IP SCCP 471 MPM.add(createCalledValuePropagationPass()); 472 MPM.add(createGlobalOptimizerPass()); // Optimize out global vars 473 // Promote any localized global vars. 474 MPM.add(createPromoteMemoryToRegisterPass()); 475 476 MPM.add(createDeadArgEliminationPass()); // Dead argument elimination 477 478 addInstructionCombiningPass(MPM); // Clean up after IPCP & DAE 479 addExtensionsToPM(EP_Peephole, MPM); 480 MPM.add(createCFGSimplificationPass()); // Clean up after IPCP & DAE 481 482 // For SamplePGO in ThinLTO compile phase, we do not want to do indirect 483 // call promotion as it will change the CFG too much to make the 2nd 484 // profile annotation in backend more difficult. 485 // PGO instrumentation is added during the compile phase for ThinLTO, do 486 // not run it a second time 487 if (!PerformThinLTO && !PrepareForThinLTOUsingPGOSampleProfile) 488 addPGOInstrPasses(MPM); 489 490 // We add a module alias analysis pass here. In part due to bugs in the 491 // analysis infrastructure this "works" in that the analysis stays alive 492 // for the entire SCC pass run below. 493 MPM.add(createGlobalsAAWrapperPass()); 494 495 // Start of CallGraph SCC passes. 496 MPM.add(createPruneEHPass()); // Remove dead EH info 497 bool RunInliner = false; 498 if (Inliner) { 499 MPM.add(Inliner); 500 Inliner = nullptr; 501 RunInliner = true; 502 } 503 504 MPM.add(createPostOrderFunctionAttrsLegacyPass()); 505 if (OptLevel > 2) 506 MPM.add(createArgumentPromotionPass()); // Scalarize uninlined fn args 507 508 addExtensionsToPM(EP_CGSCCOptimizerLate, MPM); 509 addFunctionSimplificationPasses(MPM); 510 511 // FIXME: This is a HACK! The inliner pass above implicitly creates a CGSCC 512 // pass manager that we are specifically trying to avoid. To prevent this 513 // we must insert a no-op module pass to reset the pass manager. 514 MPM.add(createBarrierNoopPass()); 515 516 if (RunPartialInlining) 517 MPM.add(createPartialInliningPass()); 518 519 if (OptLevel > 1 && !PrepareForLTO && !PrepareForThinLTO) 520 // Remove avail extern fns and globals definitions if we aren't 521 // compiling an object file for later LTO. For LTO we want to preserve 522 // these so they are eligible for inlining at link-time. Note if they 523 // are unreferenced they will be removed by GlobalDCE later, so 524 // this only impacts referenced available externally globals. 525 // Eventually they will be suppressed during codegen, but eliminating 526 // here enables more opportunity for GlobalDCE as it may make 527 // globals referenced by available external functions dead 528 // and saves running remaining passes on the eliminated functions. 529 MPM.add(createEliminateAvailableExternallyPass()); 530 531 MPM.add(createReversePostOrderFunctionAttrsPass()); 532 533 // The inliner performs some kind of dead code elimination as it goes, 534 // but there are cases that are not really caught by it. We might 535 // at some point consider teaching the inliner about them, but it 536 // is OK for now to run GlobalOpt + GlobalDCE in tandem as their 537 // benefits generally outweight the cost, making the whole pipeline 538 // faster. 539 if (RunInliner) { 540 MPM.add(createGlobalOptimizerPass()); 541 MPM.add(createGlobalDCEPass()); 542 } 543 544 // If we are planning to perform ThinLTO later, let's not bloat the code with 545 // unrolling/vectorization/... now. We'll first run the inliner + CGSCC passes 546 // during ThinLTO and perform the rest of the optimizations afterward. 547 if (PrepareForThinLTO) { 548 // Rename anon globals to be able to export them in the summary. 549 MPM.add(createNameAnonGlobalPass()); 550 return; 551 } 552 553 if (PerformThinLTO) 554 // Optimize globals now when performing ThinLTO, this enables more 555 // optimizations later. 556 MPM.add(createGlobalOptimizerPass()); 557 558 // Scheduling LoopVersioningLICM when inlining is over, because after that 559 // we may see more accurate aliasing. Reason to run this late is that too 560 // early versioning may prevent further inlining due to increase of code 561 // size. By placing it just after inlining other optimizations which runs 562 // later might get benefit of no-alias assumption in clone loop. 563 if (UseLoopVersioningLICM) { 564 MPM.add(createLoopVersioningLICMPass()); // Do LoopVersioningLICM 565 MPM.add(createLICMPass()); // Hoist loop invariants 566 } 567 568 // We add a fresh GlobalsModRef run at this point. This is particularly 569 // useful as the above will have inlined, DCE'ed, and function-attr 570 // propagated everything. We should at this point have a reasonably minimal 571 // and richly annotated call graph. By computing aliasing and mod/ref 572 // information for all local globals here, the late loop passes and notably 573 // the vectorizer will be able to use them to help recognize vectorizable 574 // memory operations. 575 // 576 // Note that this relies on a bug in the pass manager which preserves 577 // a module analysis into a function pass pipeline (and throughout it) so 578 // long as the first function pass doesn't invalidate the module analysis. 579 // Thus both Float2Int and LoopRotate have to preserve AliasAnalysis for 580 // this to work. Fortunately, it is trivial to preserve AliasAnalysis 581 // (doing nothing preserves it as it is required to be conservatively 582 // correct in the face of IR changes). 583 MPM.add(createGlobalsAAWrapperPass()); 584 585 MPM.add(createFloat2IntPass()); 586 587 addExtensionsToPM(EP_VectorizerStart, MPM); 588 589 // Re-rotate loops in all our loop nests. These may have fallout out of 590 // rotated form due to GVN or other transformations, and the vectorizer relies 591 // on the rotated form. Disable header duplication at -Oz. 592 MPM.add(createLoopRotatePass(SizeLevel == 2 ? 0 : -1)); 593 594 // Distribute loops to allow partial vectorization. I.e. isolate dependences 595 // into separate loop that would otherwise inhibit vectorization. This is 596 // currently only performed for loops marked with the metadata 597 // llvm.loop.distribute=true or when -enable-loop-distribute is specified. 598 MPM.add(createLoopDistributePass()); 599 600 MPM.add(createLoopVectorizePass(DisableUnrollLoops, LoopVectorize)); 601 602 // Eliminate loads by forwarding stores from the previous iteration to loads 603 // of the current iteration. 604 MPM.add(createLoopLoadEliminationPass()); 605 606 // FIXME: Because of #pragma vectorize enable, the passes below are always 607 // inserted in the pipeline, even when the vectorizer doesn't run (ex. when 608 // on -O1 and no #pragma is found). Would be good to have these two passes 609 // as function calls, so that we can only pass them when the vectorizer 610 // changed the code. 611 addInstructionCombiningPass(MPM); 612 if (OptLevel > 1 && ExtraVectorizerPasses) { 613 // At higher optimization levels, try to clean up any runtime overlap and 614 // alignment checks inserted by the vectorizer. We want to track correllated 615 // runtime checks for two inner loops in the same outer loop, fold any 616 // common computations, hoist loop-invariant aspects out of any outer loop, 617 // and unswitch the runtime checks if possible. Once hoisted, we may have 618 // dead (or speculatable) control flows or more combining opportunities. 619 MPM.add(createEarlyCSEPass()); 620 MPM.add(createCorrelatedValuePropagationPass()); 621 addInstructionCombiningPass(MPM); 622 MPM.add(createLICMPass()); 623 MPM.add(createLoopUnswitchPass(SizeLevel || OptLevel < 3, DivergentTarget)); 624 MPM.add(createCFGSimplificationPass()); 625 addInstructionCombiningPass(MPM); 626 } 627 628 if (RunSLPAfterLoopVectorization && SLPVectorize) { 629 MPM.add(createSLPVectorizerPass()); // Vectorize parallel scalar chains. 630 if (OptLevel > 1 && ExtraVectorizerPasses) { 631 MPM.add(createEarlyCSEPass()); 632 } 633 } 634 635 addExtensionsToPM(EP_Peephole, MPM); 636 // Switches to lookup tables and other transforms that may not be considered 637 // canonical by other IR passes. 638 MPM.add(createCFGSimplificationPass(1, true, true, false)); 639 addInstructionCombiningPass(MPM); 640 641 if (!DisableUnrollLoops) { 642 MPM.add(createLoopUnrollPass(OptLevel)); // Unroll small loops 643 644 // LoopUnroll may generate some redundency to cleanup. 645 addInstructionCombiningPass(MPM); 646 647 // Runtime unrolling will introduce runtime check in loop prologue. If the 648 // unrolled loop is a inner loop, then the prologue will be inside the 649 // outer loop. LICM pass can help to promote the runtime check out if the 650 // checked value is loop invariant. 651 MPM.add(createLICMPass()); 652 } 653 654 // After vectorization and unrolling, assume intrinsics may tell us more 655 // about pointer alignments. 656 MPM.add(createAlignmentFromAssumptionsPass()); 657 658 // FIXME: We shouldn't bother with this anymore. 659 MPM.add(createStripDeadPrototypesPass()); // Get rid of dead prototypes 660 661 // GlobalOpt already deletes dead functions and globals, at -O2 try a 662 // late pass of GlobalDCE. It is capable of deleting dead cycles. 663 if (OptLevel > 1) { 664 MPM.add(createGlobalDCEPass()); // Remove dead fns and globals. 665 MPM.add(createConstantMergePass()); // Merge dup global constants 666 } 667 668 if (MergeFunctions) 669 MPM.add(createMergeFunctionsPass()); 670 671 // LoopSink pass sinks instructions hoisted by LICM, which serves as a 672 // canonicalization pass that enables other optimizations. As a result, 673 // LoopSink pass needs to be a very late IR pass to avoid undoing LICM 674 // result too early. 675 MPM.add(createLoopSinkPass()); 676 // Get rid of LCSSA nodes. 677 MPM.add(createInstructionSimplifierPass()); 678 679 // This hoists/decomposes div/rem ops. It should run after other sink/hoist 680 // passes to avoid re-sinking, but before SimplifyCFG because it can allow 681 // flattening of blocks. 682 MPM.add(createDivRemPairsPass()); 683 684 // LoopSink (and other loop passes since the last simplifyCFG) might have 685 // resulted in single-entry-single-exit or empty blocks. Clean up the CFG. 686 MPM.add(createCFGSimplificationPass()); 687 688 addExtensionsToPM(EP_OptimizerLast, MPM); 689 } 690 691 void PassManagerBuilder::addLTOOptimizationPasses(legacy::PassManagerBase &PM) { 692 // Remove unused virtual tables to improve the quality of code generated by 693 // whole-program devirtualization and bitset lowering. 694 PM.add(createGlobalDCEPass()); 695 696 // Provide AliasAnalysis services for optimizations. 697 addInitialAliasAnalysisPasses(PM); 698 699 // Allow forcing function attributes as a debugging and tuning aid. 700 PM.add(createForceFunctionAttrsLegacyPass()); 701 702 // Infer attributes about declarations if possible. 703 PM.add(createInferFunctionAttrsLegacyPass()); 704 705 if (OptLevel > 1) { 706 // Indirect call promotion. This should promote all the targets that are 707 // left by the earlier promotion pass that promotes intra-module targets. 708 // This two-step promotion is to save the compile time. For LTO, it should 709 // produce the same result as if we only do promotion here. 710 PM.add( 711 createPGOIndirectCallPromotionLegacyPass(true, !PGOSampleUse.empty())); 712 713 // Propagate constants at call sites into the functions they call. This 714 // opens opportunities for globalopt (and inlining) by substituting function 715 // pointers passed as arguments to direct uses of functions. 716 PM.add(createIPSCCPPass()); 717 718 // Attach metadata to indirect call sites indicating the set of functions 719 // they may target at run-time. This should follow IPSCCP. 720 PM.add(createCalledValuePropagationPass()); 721 } 722 723 // Infer attributes about definitions. The readnone attribute in particular is 724 // required for virtual constant propagation. 725 PM.add(createPostOrderFunctionAttrsLegacyPass()); 726 PM.add(createReversePostOrderFunctionAttrsPass()); 727 728 // Split globals using inrange annotations on GEP indices. This can help 729 // improve the quality of generated code when virtual constant propagation or 730 // control flow integrity are enabled. 731 PM.add(createGlobalSplitPass()); 732 733 // Apply whole-program devirtualization and virtual constant propagation. 734 PM.add(createWholeProgramDevirtPass(ExportSummary, nullptr)); 735 736 // That's all we need at opt level 1. 737 if (OptLevel == 1) 738 return; 739 740 // Now that we internalized some globals, see if we can hack on them! 741 PM.add(createGlobalOptimizerPass()); 742 // Promote any localized global vars. 743 PM.add(createPromoteMemoryToRegisterPass()); 744 745 // Linking modules together can lead to duplicated global constants, only 746 // keep one copy of each constant. 747 PM.add(createConstantMergePass()); 748 749 // Remove unused arguments from functions. 750 PM.add(createDeadArgEliminationPass()); 751 752 // Reduce the code after globalopt and ipsccp. Both can open up significant 753 // simplification opportunities, and both can propagate functions through 754 // function pointers. When this happens, we often have to resolve varargs 755 // calls, etc, so let instcombine do this. 756 addInstructionCombiningPass(PM); 757 addExtensionsToPM(EP_Peephole, PM); 758 759 // Inline small functions 760 bool RunInliner = Inliner; 761 if (RunInliner) { 762 PM.add(Inliner); 763 Inliner = nullptr; 764 } 765 766 PM.add(createPruneEHPass()); // Remove dead EH info. 767 768 // Optimize globals again if we ran the inliner. 769 if (RunInliner) 770 PM.add(createGlobalOptimizerPass()); 771 PM.add(createGlobalDCEPass()); // Remove dead functions. 772 773 // If we didn't decide to inline a function, check to see if we can 774 // transform it to pass arguments by value instead of by reference. 775 PM.add(createArgumentPromotionPass()); 776 777 // The IPO passes may leave cruft around. Clean up after them. 778 addInstructionCombiningPass(PM); 779 addExtensionsToPM(EP_Peephole, PM); 780 PM.add(createJumpThreadingPass()); 781 782 // Break up allocas 783 PM.add(createSROAPass()); 784 785 // Run a few AA driven optimizations here and now, to cleanup the code. 786 PM.add(createPostOrderFunctionAttrsLegacyPass()); // Add nocapture. 787 PM.add(createGlobalsAAWrapperPass()); // IP alias analysis. 788 789 PM.add(createLICMPass()); // Hoist loop invariants. 790 PM.add(createMergedLoadStoreMotionPass()); // Merge ld/st in diamonds. 791 PM.add(NewGVN ? createNewGVNPass() 792 : createGVNPass(DisableGVNLoadPRE)); // Remove redundancies. 793 PM.add(createMemCpyOptPass()); // Remove dead memcpys. 794 795 // Nuke dead stores. 796 PM.add(createDeadStoreEliminationPass()); 797 798 // More loops are countable; try to optimize them. 799 PM.add(createIndVarSimplifyPass()); 800 PM.add(createLoopDeletionPass()); 801 if (EnableLoopInterchange) 802 PM.add(createLoopInterchangePass()); 803 804 if (!DisableUnrollLoops) 805 PM.add(createSimpleLoopUnrollPass(OptLevel)); // Unroll small loops 806 PM.add(createLoopVectorizePass(true, LoopVectorize)); 807 // The vectorizer may have significantly shortened a loop body; unroll again. 808 if (!DisableUnrollLoops) 809 PM.add(createLoopUnrollPass(OptLevel)); 810 811 // Now that we've optimized loops (in particular loop induction variables), 812 // we may have exposed more scalar opportunities. Run parts of the scalar 813 // optimizer again at this point. 814 addInstructionCombiningPass(PM); // Initial cleanup 815 PM.add(createCFGSimplificationPass()); // if-convert 816 PM.add(createSCCPPass()); // Propagate exposed constants 817 addInstructionCombiningPass(PM); // Clean up again 818 PM.add(createBitTrackingDCEPass()); 819 820 // More scalar chains could be vectorized due to more alias information 821 if (RunSLPAfterLoopVectorization) 822 if (SLPVectorize) 823 PM.add(createSLPVectorizerPass()); // Vectorize parallel scalar chains. 824 825 // After vectorization, assume intrinsics may tell us more about pointer 826 // alignments. 827 PM.add(createAlignmentFromAssumptionsPass()); 828 829 // Cleanup and simplify the code after the scalar optimizations. 830 addInstructionCombiningPass(PM); 831 addExtensionsToPM(EP_Peephole, PM); 832 833 PM.add(createJumpThreadingPass()); 834 } 835 836 void PassManagerBuilder::addLateLTOOptimizationPasses( 837 legacy::PassManagerBase &PM) { 838 // Delete basic blocks, which optimization passes may have killed. 839 PM.add(createCFGSimplificationPass()); 840 841 // Drop bodies of available externally objects to improve GlobalDCE. 842 PM.add(createEliminateAvailableExternallyPass()); 843 844 // Now that we have optimized the program, discard unreachable functions. 845 PM.add(createGlobalDCEPass()); 846 847 // FIXME: this is profitable (for compiler time) to do at -O0 too, but 848 // currently it damages debug info. 849 if (MergeFunctions) 850 PM.add(createMergeFunctionsPass()); 851 } 852 853 void PassManagerBuilder::populateThinLTOPassManager( 854 legacy::PassManagerBase &PM) { 855 PerformThinLTO = true; 856 857 if (VerifyInput) 858 PM.add(createVerifierPass()); 859 860 if (ImportSummary) { 861 // These passes import type identifier resolutions for whole-program 862 // devirtualization and CFI. They must run early because other passes may 863 // disturb the specific instruction patterns that these passes look for, 864 // creating dependencies on resolutions that may not appear in the summary. 865 // 866 // For example, GVN may transform the pattern assume(type.test) appearing in 867 // two basic blocks into assume(phi(type.test, type.test)), which would 868 // transform a dependency on a WPD resolution into a dependency on a type 869 // identifier resolution for CFI. 870 // 871 // Also, WPD has access to more precise information than ICP and can 872 // devirtualize more effectively, so it should operate on the IR first. 873 PM.add(createWholeProgramDevirtPass(nullptr, ImportSummary)); 874 PM.add(createLowerTypeTestsPass(nullptr, ImportSummary)); 875 } 876 877 populateModulePassManager(PM); 878 879 if (VerifyOutput) 880 PM.add(createVerifierPass()); 881 PerformThinLTO = false; 882 } 883 884 void PassManagerBuilder::populateLTOPassManager(legacy::PassManagerBase &PM) { 885 if (LibraryInfo) 886 PM.add(new TargetLibraryInfoWrapperPass(*LibraryInfo)); 887 888 if (VerifyInput) 889 PM.add(createVerifierPass()); 890 891 if (OptLevel != 0) 892 addLTOOptimizationPasses(PM); 893 else { 894 // The whole-program-devirt pass needs to run at -O0 because only it knows 895 // about the llvm.type.checked.load intrinsic: it needs to both lower the 896 // intrinsic itself and handle it in the summary. 897 PM.add(createWholeProgramDevirtPass(ExportSummary, nullptr)); 898 } 899 900 // Create a function that performs CFI checks for cross-DSO calls with targets 901 // in the current module. 902 PM.add(createCrossDSOCFIPass()); 903 904 // Lower type metadata and the type.test intrinsic. This pass supports Clang's 905 // control flow integrity mechanisms (-fsanitize=cfi*) and needs to run at 906 // link time if CFI is enabled. The pass does nothing if CFI is disabled. 907 PM.add(createLowerTypeTestsPass(ExportSummary, nullptr)); 908 909 if (OptLevel != 0) 910 addLateLTOOptimizationPasses(PM); 911 912 if (VerifyOutput) 913 PM.add(createVerifierPass()); 914 } 915 916 inline PassManagerBuilder *unwrap(LLVMPassManagerBuilderRef P) { 917 return reinterpret_cast<PassManagerBuilder*>(P); 918 } 919 920 inline LLVMPassManagerBuilderRef wrap(PassManagerBuilder *P) { 921 return reinterpret_cast<LLVMPassManagerBuilderRef>(P); 922 } 923 924 LLVMPassManagerBuilderRef LLVMPassManagerBuilderCreate() { 925 PassManagerBuilder *PMB = new PassManagerBuilder(); 926 return wrap(PMB); 927 } 928 929 void LLVMPassManagerBuilderDispose(LLVMPassManagerBuilderRef PMB) { 930 PassManagerBuilder *Builder = unwrap(PMB); 931 delete Builder; 932 } 933 934 void 935 LLVMPassManagerBuilderSetOptLevel(LLVMPassManagerBuilderRef PMB, 936 unsigned OptLevel) { 937 PassManagerBuilder *Builder = unwrap(PMB); 938 Builder->OptLevel = OptLevel; 939 } 940 941 void 942 LLVMPassManagerBuilderSetSizeLevel(LLVMPassManagerBuilderRef PMB, 943 unsigned SizeLevel) { 944 PassManagerBuilder *Builder = unwrap(PMB); 945 Builder->SizeLevel = SizeLevel; 946 } 947 948 void 949 LLVMPassManagerBuilderSetDisableUnitAtATime(LLVMPassManagerBuilderRef PMB, 950 LLVMBool Value) { 951 // NOTE: The DisableUnitAtATime switch has been removed. 952 } 953 954 void 955 LLVMPassManagerBuilderSetDisableUnrollLoops(LLVMPassManagerBuilderRef PMB, 956 LLVMBool Value) { 957 PassManagerBuilder *Builder = unwrap(PMB); 958 Builder->DisableUnrollLoops = Value; 959 } 960 961 void 962 LLVMPassManagerBuilderSetDisableSimplifyLibCalls(LLVMPassManagerBuilderRef PMB, 963 LLVMBool Value) { 964 // NOTE: The simplify-libcalls pass has been removed. 965 } 966 967 void 968 LLVMPassManagerBuilderUseInlinerWithThreshold(LLVMPassManagerBuilderRef PMB, 969 unsigned Threshold) { 970 PassManagerBuilder *Builder = unwrap(PMB); 971 Builder->Inliner = createFunctionInliningPass(Threshold); 972 } 973 974 void 975 LLVMPassManagerBuilderPopulateFunctionPassManager(LLVMPassManagerBuilderRef PMB, 976 LLVMPassManagerRef PM) { 977 PassManagerBuilder *Builder = unwrap(PMB); 978 legacy::FunctionPassManager *FPM = unwrap<legacy::FunctionPassManager>(PM); 979 Builder->populateFunctionPassManager(*FPM); 980 } 981 982 void 983 LLVMPassManagerBuilderPopulateModulePassManager(LLVMPassManagerBuilderRef PMB, 984 LLVMPassManagerRef PM) { 985 PassManagerBuilder *Builder = unwrap(PMB); 986 legacy::PassManagerBase *MPM = unwrap(PM); 987 Builder->populateModulePassManager(*MPM); 988 } 989 990 void LLVMPassManagerBuilderPopulateLTOPassManager(LLVMPassManagerBuilderRef PMB, 991 LLVMPassManagerRef PM, 992 LLVMBool Internalize, 993 LLVMBool RunInliner) { 994 PassManagerBuilder *Builder = unwrap(PMB); 995 legacy::PassManagerBase *LPM = unwrap(PM); 996 997 // A small backwards compatibility hack. populateLTOPassManager used to take 998 // an RunInliner option. 999 if (RunInliner && !Builder->Inliner) 1000 Builder->Inliner = createFunctionInliningPass(); 1001 1002 Builder->populateLTOPassManager(*LPM); 1003 } 1004