1 //===- PassManagerBuilder.cpp - Build Standard Pass -----------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file defines the PassManagerBuilder class, which is used to set up a 10 // "standard" optimization sequence suitable for languages like C and C++. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/Transforms/IPO/PassManagerBuilder.h" 15 #include "llvm-c/Transforms/PassManagerBuilder.h" 16 #include "llvm/ADT/STLExtras.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/Verifier.h" 30 #include "llvm/InitializePasses.h" 31 #include "llvm/Support/CommandLine.h" 32 #include "llvm/Support/ManagedStatic.h" 33 #include "llvm/Target/CGPassBuilderOption.h" 34 #include "llvm/Transforms/AggressiveInstCombine/AggressiveInstCombine.h" 35 #include "llvm/Transforms/IPO.h" 36 #include "llvm/Transforms/IPO/Attributor.h" 37 #include "llvm/Transforms/IPO/ForceFunctionAttrs.h" 38 #include "llvm/Transforms/IPO/FunctionAttrs.h" 39 #include "llvm/Transforms/IPO/InferFunctionAttrs.h" 40 #include "llvm/Transforms/InstCombine/InstCombine.h" 41 #include "llvm/Transforms/Instrumentation.h" 42 #include "llvm/Transforms/Scalar.h" 43 #include "llvm/Transforms/Scalar/GVN.h" 44 #include "llvm/Transforms/Scalar/InstSimplifyPass.h" 45 #include "llvm/Transforms/Scalar/LICM.h" 46 #include "llvm/Transforms/Scalar/LoopUnrollPass.h" 47 #include "llvm/Transforms/Scalar/SCCP.h" 48 #include "llvm/Transforms/Scalar/SimpleLoopUnswitch.h" 49 #include "llvm/Transforms/Utils.h" 50 #include "llvm/Transforms/Vectorize.h" 51 #include "llvm/Transforms/Vectorize/LoopVectorize.h" 52 #include "llvm/Transforms/Vectorize/SLPVectorizer.h" 53 #include "llvm/Transforms/Vectorize/VectorCombine.h" 54 55 using namespace llvm; 56 57 namespace llvm { 58 cl::opt<bool> RunPartialInlining("enable-partial-inlining", cl::init(false), 59 cl::Hidden, cl::ZeroOrMore, 60 cl::desc("Run Partial inlinining pass")); 61 62 static cl::opt<bool> 63 UseGVNAfterVectorization("use-gvn-after-vectorization", 64 cl::init(false), cl::Hidden, 65 cl::desc("Run GVN instead of Early CSE after vectorization passes")); 66 67 cl::opt<bool> ExtraVectorizerPasses( 68 "extra-vectorizer-passes", cl::init(false), cl::Hidden, 69 cl::desc("Run cleanup optimization passes after vectorization.")); 70 71 static cl::opt<bool> 72 RunLoopRerolling("reroll-loops", cl::Hidden, 73 cl::desc("Run the loop rerolling pass")); 74 75 cl::opt<bool> RunNewGVN("enable-newgvn", cl::init(false), cl::Hidden, 76 cl::desc("Run the NewGVN pass")); 77 78 // Experimental option to use CFL-AA 79 static cl::opt<::CFLAAType> 80 UseCFLAA("use-cfl-aa", cl::init(::CFLAAType::None), cl::Hidden, 81 cl::desc("Enable the new, experimental CFL alias analysis"), 82 cl::values(clEnumValN(::CFLAAType::None, "none", "Disable CFL-AA"), 83 clEnumValN(::CFLAAType::Steensgaard, "steens", 84 "Enable unification-based CFL-AA"), 85 clEnumValN(::CFLAAType::Andersen, "anders", 86 "Enable inclusion-based CFL-AA"), 87 clEnumValN(::CFLAAType::Both, "both", 88 "Enable both variants of CFL-AA"))); 89 90 cl::opt<bool> EnableLoopInterchange( 91 "enable-loopinterchange", cl::init(false), cl::Hidden, 92 cl::desc("Enable the experimental LoopInterchange Pass")); 93 94 cl::opt<bool> EnableUnrollAndJam("enable-unroll-and-jam", cl::init(false), 95 cl::Hidden, 96 cl::desc("Enable Unroll And Jam Pass")); 97 98 cl::opt<bool> EnableLoopFlatten("enable-loop-flatten", cl::init(false), 99 cl::Hidden, 100 cl::desc("Enable the LoopFlatten Pass")); 101 102 cl::opt<bool> EnableDFAJumpThreading("enable-dfa-jump-thread", 103 cl::desc("Enable DFA jump threading."), 104 cl::init(false), cl::Hidden); 105 106 static cl::opt<bool> 107 EnablePrepareForThinLTO("prepare-for-thinlto", cl::init(false), cl::Hidden, 108 cl::desc("Enable preparation for ThinLTO.")); 109 110 static cl::opt<bool> 111 EnablePerformThinLTO("perform-thinlto", cl::init(false), cl::Hidden, 112 cl::desc("Enable performing ThinLTO.")); 113 114 cl::opt<bool> EnableHotColdSplit("hot-cold-split", cl::init(false), 115 cl::ZeroOrMore, cl::desc("Enable hot-cold splitting pass")); 116 117 cl::opt<bool> EnableIROutliner("ir-outliner", cl::init(false), cl::Hidden, 118 cl::desc("Enable ir outliner pass")); 119 120 static cl::opt<bool> UseLoopVersioningLICM( 121 "enable-loop-versioning-licm", cl::init(false), cl::Hidden, 122 cl::desc("Enable the experimental Loop Versioning LICM pass")); 123 124 cl::opt<bool> 125 DisablePreInliner("disable-preinline", cl::init(false), cl::Hidden, 126 cl::desc("Disable pre-instrumentation inliner")); 127 128 cl::opt<int> PreInlineThreshold( 129 "preinline-threshold", cl::Hidden, cl::init(75), cl::ZeroOrMore, 130 cl::desc("Control the amount of inlining in pre-instrumentation inliner " 131 "(default = 75)")); 132 133 cl::opt<bool> 134 EnableGVNHoist("enable-gvn-hoist", cl::init(false), cl::ZeroOrMore, 135 cl::desc("Enable the GVN hoisting pass (default = off)")); 136 137 static cl::opt<bool> 138 DisableLibCallsShrinkWrap("disable-libcalls-shrinkwrap", cl::init(false), 139 cl::Hidden, 140 cl::desc("Disable shrink-wrap library calls")); 141 142 static cl::opt<bool> EnableSimpleLoopUnswitch( 143 "enable-simple-loop-unswitch", cl::init(false), cl::Hidden, 144 cl::desc("Enable the simple loop unswitch pass. Also enables independent " 145 "cleanup passes integrated into the loop pass manager pipeline.")); 146 147 cl::opt<bool> 148 EnableGVNSink("enable-gvn-sink", cl::init(false), cl::ZeroOrMore, 149 cl::desc("Enable the GVN sinking pass (default = off)")); 150 151 // This option is used in simplifying testing SampleFDO optimizations for 152 // profile loading. 153 cl::opt<bool> 154 EnableCHR("enable-chr", cl::init(true), cl::Hidden, 155 cl::desc("Enable control height reduction optimization (CHR)")); 156 157 cl::opt<bool> FlattenedProfileUsed( 158 "flattened-profile-used", cl::init(false), cl::Hidden, 159 cl::desc("Indicate the sample profile being used is flattened, i.e., " 160 "no inline hierachy exists in the profile. ")); 161 162 cl::opt<bool> EnableOrderFileInstrumentation( 163 "enable-order-file-instrumentation", cl::init(false), cl::Hidden, 164 cl::desc("Enable order file instrumentation (default = off)")); 165 166 cl::opt<bool> EnableMatrix( 167 "enable-matrix", cl::init(false), cl::Hidden, 168 cl::desc("Enable lowering of the matrix intrinsics")); 169 170 cl::opt<bool> EnableConstraintElimination( 171 "enable-constraint-elimination", cl::init(false), cl::Hidden, 172 cl::desc( 173 "Enable pass to eliminate conditions based on linear constraints.")); 174 175 cl::opt<bool> EnableFunctionSpecialization( 176 "enable-function-specialization", cl::init(false), cl::Hidden, 177 cl::desc("Enable Function Specialization pass")); 178 179 cl::opt<AttributorRunOption> AttributorRun( 180 "attributor-enable", cl::Hidden, cl::init(AttributorRunOption::NONE), 181 cl::desc("Enable the attributor inter-procedural deduction pass."), 182 cl::values(clEnumValN(AttributorRunOption::ALL, "all", 183 "enable all attributor runs"), 184 clEnumValN(AttributorRunOption::MODULE, "module", 185 "enable module-wide attributor runs"), 186 clEnumValN(AttributorRunOption::CGSCC, "cgscc", 187 "enable call graph SCC attributor runs"), 188 clEnumValN(AttributorRunOption::NONE, "none", 189 "disable attributor runs"))); 190 191 extern cl::opt<bool> EnableKnowledgeRetention; 192 } // namespace llvm 193 194 PassManagerBuilder::PassManagerBuilder() { 195 OptLevel = 2; 196 SizeLevel = 0; 197 LibraryInfo = nullptr; 198 Inliner = nullptr; 199 DisableUnrollLoops = false; 200 SLPVectorize = false; 201 LoopVectorize = true; 202 LoopsInterleaved = true; 203 RerollLoops = RunLoopRerolling; 204 NewGVN = RunNewGVN; 205 LicmMssaOptCap = SetLicmMssaOptCap; 206 LicmMssaNoAccForPromotionCap = SetLicmMssaNoAccForPromotionCap; 207 DisableGVNLoadPRE = false; 208 ForgetAllSCEVInLoopUnroll = ForgetSCEVInLoopUnroll; 209 VerifyInput = false; 210 VerifyOutput = false; 211 MergeFunctions = false; 212 PrepareForLTO = false; 213 EnablePGOInstrGen = false; 214 EnablePGOCSInstrGen = false; 215 EnablePGOCSInstrUse = false; 216 PGOInstrGen = ""; 217 PGOInstrUse = ""; 218 PGOSampleUse = ""; 219 PrepareForThinLTO = EnablePrepareForThinLTO; 220 PerformThinLTO = EnablePerformThinLTO; 221 DivergentTarget = false; 222 CallGraphProfile = true; 223 } 224 225 PassManagerBuilder::~PassManagerBuilder() { 226 delete LibraryInfo; 227 delete Inliner; 228 } 229 230 /// Set of global extensions, automatically added as part of the standard set. 231 static ManagedStatic< 232 SmallVector<std::tuple<PassManagerBuilder::ExtensionPointTy, 233 PassManagerBuilder::ExtensionFn, 234 PassManagerBuilder::GlobalExtensionID>, 235 8>> 236 GlobalExtensions; 237 static PassManagerBuilder::GlobalExtensionID GlobalExtensionsCounter; 238 239 /// Check if GlobalExtensions is constructed and not empty. 240 /// Since GlobalExtensions is a managed static, calling 'empty()' will trigger 241 /// the construction of the object. 242 static bool GlobalExtensionsNotEmpty() { 243 return GlobalExtensions.isConstructed() && !GlobalExtensions->empty(); 244 } 245 246 PassManagerBuilder::GlobalExtensionID 247 PassManagerBuilder::addGlobalExtension(PassManagerBuilder::ExtensionPointTy Ty, 248 PassManagerBuilder::ExtensionFn Fn) { 249 auto ExtensionID = GlobalExtensionsCounter++; 250 GlobalExtensions->push_back(std::make_tuple(Ty, std::move(Fn), ExtensionID)); 251 return ExtensionID; 252 } 253 254 void PassManagerBuilder::removeGlobalExtension( 255 PassManagerBuilder::GlobalExtensionID ExtensionID) { 256 // RegisterStandardPasses may try to call this function after GlobalExtensions 257 // has already been destroyed; doing so should not generate an error. 258 if (!GlobalExtensions.isConstructed()) 259 return; 260 261 auto GlobalExtension = 262 llvm::find_if(*GlobalExtensions, [ExtensionID](const auto &elem) { 263 return std::get<2>(elem) == ExtensionID; 264 }); 265 assert(GlobalExtension != GlobalExtensions->end() && 266 "The extension ID to be removed should always be valid."); 267 268 GlobalExtensions->erase(GlobalExtension); 269 } 270 271 void PassManagerBuilder::addExtension(ExtensionPointTy Ty, ExtensionFn Fn) { 272 Extensions.push_back(std::make_pair(Ty, std::move(Fn))); 273 } 274 275 void PassManagerBuilder::addExtensionsToPM(ExtensionPointTy ETy, 276 legacy::PassManagerBase &PM) const { 277 if (GlobalExtensionsNotEmpty()) { 278 for (auto &Ext : *GlobalExtensions) { 279 if (std::get<0>(Ext) == ETy) 280 std::get<1>(Ext)(*this, PM); 281 } 282 } 283 for (unsigned i = 0, e = Extensions.size(); i != e; ++i) 284 if (Extensions[i].first == ETy) 285 Extensions[i].second(*this, PM); 286 } 287 288 void PassManagerBuilder::addInitialAliasAnalysisPasses( 289 legacy::PassManagerBase &PM) const { 290 switch (UseCFLAA) { 291 case ::CFLAAType::Steensgaard: 292 PM.add(createCFLSteensAAWrapperPass()); 293 break; 294 case ::CFLAAType::Andersen: 295 PM.add(createCFLAndersAAWrapperPass()); 296 break; 297 case ::CFLAAType::Both: 298 PM.add(createCFLSteensAAWrapperPass()); 299 PM.add(createCFLAndersAAWrapperPass()); 300 break; 301 default: 302 break; 303 } 304 305 // Add TypeBasedAliasAnalysis before BasicAliasAnalysis so that 306 // BasicAliasAnalysis wins if they disagree. This is intended to help 307 // support "obvious" type-punning idioms. 308 PM.add(createTypeBasedAAWrapperPass()); 309 PM.add(createScopedNoAliasAAWrapperPass()); 310 } 311 312 void PassManagerBuilder::populateFunctionPassManager( 313 legacy::FunctionPassManager &FPM) { 314 addExtensionsToPM(EP_EarlyAsPossible, FPM); 315 316 // Add LibraryInfo if we have some. 317 if (LibraryInfo) 318 FPM.add(new TargetLibraryInfoWrapperPass(*LibraryInfo)); 319 320 // The backends do not handle matrix intrinsics currently. 321 // Make sure they are also lowered in O0. 322 // FIXME: A lightweight version of the pass should run in the backend 323 // pipeline on demand. 324 if (EnableMatrix && OptLevel == 0) 325 FPM.add(createLowerMatrixIntrinsicsMinimalPass()); 326 327 if (OptLevel == 0) return; 328 329 addInitialAliasAnalysisPasses(FPM); 330 331 // Lower llvm.expect to metadata before attempting transforms. 332 // Compare/branch metadata may alter the behavior of passes like SimplifyCFG. 333 FPM.add(createLowerExpectIntrinsicPass()); 334 FPM.add(createCFGSimplificationPass()); 335 FPM.add(createSROAPass()); 336 FPM.add(createEarlyCSEPass()); 337 } 338 339 // Do PGO instrumentation generation or use pass as the option specified. 340 void PassManagerBuilder::addPGOInstrPasses(legacy::PassManagerBase &MPM, 341 bool IsCS = false) { 342 if (IsCS) { 343 if (!EnablePGOCSInstrGen && !EnablePGOCSInstrUse) 344 return; 345 } else if (!EnablePGOInstrGen && PGOInstrUse.empty() && PGOSampleUse.empty()) 346 return; 347 348 // Perform the preinline and cleanup passes for O1 and above. 349 // We will not do this inline for context sensitive PGO (when IsCS is true). 350 if (OptLevel > 0 && !DisablePreInliner && PGOSampleUse.empty() && !IsCS) { 351 // Create preinline pass. We construct an InlineParams object and specify 352 // the threshold here to avoid the command line options of the regular 353 // inliner to influence pre-inlining. The only fields of InlineParams we 354 // care about are DefaultThreshold and HintThreshold. 355 InlineParams IP; 356 IP.DefaultThreshold = PreInlineThreshold; 357 // FIXME: The hint threshold has the same value used by the regular inliner 358 // when not optimzing for size. This should probably be lowered after 359 // performance testing. 360 // Use PreInlineThreshold for both -Os and -Oz. Not running preinliner makes 361 // the instrumented binary unusably large. Even if PreInlineThreshold is not 362 // correct thresold for -Oz, it is better than not running preinliner. 363 IP.HintThreshold = SizeLevel > 0 ? PreInlineThreshold : 325; 364 365 MPM.add(createFunctionInliningPass(IP)); 366 MPM.add(createSROAPass()); 367 MPM.add(createEarlyCSEPass()); // Catch trivial redundancies 368 MPM.add(createCFGSimplificationPass()); // Merge & remove BBs 369 MPM.add(createInstructionCombiningPass()); // Combine silly seq's 370 addExtensionsToPM(EP_Peephole, MPM); 371 } 372 if ((EnablePGOInstrGen && !IsCS) || (EnablePGOCSInstrGen && IsCS)) { 373 MPM.add(createPGOInstrumentationGenLegacyPass(IsCS)); 374 // Add the profile lowering pass. 375 InstrProfOptions Options; 376 if (!PGOInstrGen.empty()) 377 Options.InstrProfileOutput = PGOInstrGen; 378 Options.DoCounterPromotion = true; 379 Options.UseBFIInPromotion = IsCS; 380 MPM.add(createLoopRotatePass()); 381 MPM.add(createInstrProfilingLegacyPass(Options, IsCS)); 382 } 383 if (!PGOInstrUse.empty()) 384 MPM.add(createPGOInstrumentationUseLegacyPass(PGOInstrUse, IsCS)); 385 // Indirect call promotion that promotes intra-module targets only. 386 // For ThinLTO this is done earlier due to interactions with globalopt 387 // for imported functions. We don't run this at -O0. 388 if (OptLevel > 0 && !IsCS) 389 MPM.add( 390 createPGOIndirectCallPromotionLegacyPass(false, !PGOSampleUse.empty())); 391 } 392 void PassManagerBuilder::addFunctionSimplificationPasses( 393 legacy::PassManagerBase &MPM) { 394 // Start of function pass. 395 // Break up aggregate allocas, using SSAUpdater. 396 assert(OptLevel >= 1 && "Calling function optimizer with no optimization level!"); 397 MPM.add(createSROAPass()); 398 MPM.add(createEarlyCSEPass(true /* Enable mem-ssa. */)); // Catch trivial redundancies 399 if (EnableKnowledgeRetention) 400 MPM.add(createAssumeSimplifyPass()); 401 402 if (OptLevel > 1) { 403 if (EnableGVNHoist) 404 MPM.add(createGVNHoistPass()); 405 if (EnableGVNSink) { 406 MPM.add(createGVNSinkPass()); 407 MPM.add(createCFGSimplificationPass()); 408 } 409 } 410 411 if (EnableConstraintElimination) 412 MPM.add(createConstraintEliminationPass()); 413 414 if (OptLevel > 1) { 415 // Speculative execution if the target has divergent branches; otherwise nop. 416 MPM.add(createSpeculativeExecutionIfHasBranchDivergencePass()); 417 418 MPM.add(createJumpThreadingPass()); // Thread jumps. 419 MPM.add(createCorrelatedValuePropagationPass()); // Propagate conditionals 420 } 421 MPM.add(createCFGSimplificationPass()); // Merge & remove BBs 422 // Combine silly seq's 423 if (OptLevel > 2) 424 MPM.add(createAggressiveInstCombinerPass()); 425 MPM.add(createInstructionCombiningPass()); 426 if (SizeLevel == 0 && !DisableLibCallsShrinkWrap) 427 MPM.add(createLibCallsShrinkWrapPass()); 428 addExtensionsToPM(EP_Peephole, MPM); 429 430 // Optimize memory intrinsic calls based on the profiled size information. 431 if (SizeLevel == 0) 432 MPM.add(createPGOMemOPSizeOptLegacyPass()); 433 434 // TODO: Investigate the cost/benefit of tail call elimination on debugging. 435 if (OptLevel > 1) 436 MPM.add(createTailCallEliminationPass()); // Eliminate tail calls 437 MPM.add(createCFGSimplificationPass()); // Merge & remove BBs 438 MPM.add(createReassociatePass()); // Reassociate expressions 439 440 // Begin the loop pass pipeline. 441 if (EnableSimpleLoopUnswitch) { 442 // The simple loop unswitch pass relies on separate cleanup passes. Schedule 443 // them first so when we re-process a loop they run before other loop 444 // passes. 445 MPM.add(createLoopInstSimplifyPass()); 446 MPM.add(createLoopSimplifyCFGPass()); 447 } 448 // Try to remove as much code from the loop header as possible, 449 // to reduce amount of IR that will have to be duplicated. 450 // TODO: Investigate promotion cap for O1. 451 MPM.add(createLICMPass(LicmMssaOptCap, LicmMssaNoAccForPromotionCap)); 452 // Rotate Loop - disable header duplication at -Oz 453 MPM.add(createLoopRotatePass(SizeLevel == 2 ? 0 : -1, PrepareForLTO)); 454 // TODO: Investigate promotion cap for O1. 455 MPM.add(createLICMPass(LicmMssaOptCap, LicmMssaNoAccForPromotionCap)); 456 if (EnableSimpleLoopUnswitch) 457 MPM.add(createSimpleLoopUnswitchLegacyPass()); 458 else 459 MPM.add(createLoopUnswitchPass(SizeLevel || OptLevel < 3, DivergentTarget)); 460 // FIXME: We break the loop pass pipeline here in order to do full 461 // simplifycfg. Eventually loop-simplifycfg should be enhanced to replace the 462 // need for this. 463 MPM.add(createCFGSimplificationPass()); 464 MPM.add(createInstructionCombiningPass()); 465 // We resume loop passes creating a second loop pipeline here. 466 if (EnableLoopFlatten) { 467 MPM.add(createLoopFlattenPass()); // Flatten loops 468 MPM.add(createLoopSimplifyCFGPass()); 469 } 470 MPM.add(createLoopIdiomPass()); // Recognize idioms like memset. 471 MPM.add(createIndVarSimplifyPass()); // Canonicalize indvars 472 addExtensionsToPM(EP_LateLoopOptimizations, MPM); 473 MPM.add(createLoopDeletionPass()); // Delete dead loops 474 475 if (EnableLoopInterchange) 476 MPM.add(createLoopInterchangePass()); // Interchange loops 477 478 // Unroll small loops and perform peeling. 479 MPM.add(createSimpleLoopUnrollPass(OptLevel, DisableUnrollLoops, 480 ForgetAllSCEVInLoopUnroll)); 481 addExtensionsToPM(EP_LoopOptimizerEnd, MPM); 482 // This ends the loop pass pipelines. 483 484 // Break up allocas that may now be splittable after loop unrolling. 485 MPM.add(createSROAPass()); 486 487 if (OptLevel > 1) { 488 MPM.add(createMergedLoadStoreMotionPass()); // Merge ld/st in diamonds 489 MPM.add(NewGVN ? createNewGVNPass() 490 : createGVNPass(DisableGVNLoadPRE)); // Remove redundancies 491 } 492 MPM.add(createSCCPPass()); // Constant prop with SCCP 493 494 if (EnableConstraintElimination) 495 MPM.add(createConstraintEliminationPass()); 496 497 // Delete dead bit computations (instcombine runs after to fold away the dead 498 // computations, and then ADCE will run later to exploit any new DCE 499 // opportunities that creates). 500 MPM.add(createBitTrackingDCEPass()); // Delete dead bit computations 501 502 // Run instcombine after redundancy elimination to exploit opportunities 503 // opened up by them. 504 MPM.add(createInstructionCombiningPass()); 505 addExtensionsToPM(EP_Peephole, MPM); 506 if (OptLevel > 1) { 507 if (EnableDFAJumpThreading && SizeLevel == 0) 508 MPM.add(createDFAJumpThreadingPass()); 509 510 MPM.add(createJumpThreadingPass()); // Thread jumps 511 MPM.add(createCorrelatedValuePropagationPass()); 512 } 513 MPM.add(createAggressiveDCEPass()); // Delete dead instructions 514 515 MPM.add(createMemCpyOptPass()); // Remove memcpy / form memset 516 // TODO: Investigate if this is too expensive at O1. 517 if (OptLevel > 1) { 518 MPM.add(createDeadStoreEliminationPass()); // Delete dead stores 519 MPM.add(createLICMPass(LicmMssaOptCap, LicmMssaNoAccForPromotionCap)); 520 } 521 522 addExtensionsToPM(EP_ScalarOptimizerLate, MPM); 523 524 if (RerollLoops) 525 MPM.add(createLoopRerollPass()); 526 527 // Merge & remove BBs and sink & hoist common instructions. 528 MPM.add(createCFGSimplificationPass( 529 SimplifyCFGOptions().hoistCommonInsts(true).sinkCommonInsts(true))); 530 // Clean up after everything. 531 MPM.add(createInstructionCombiningPass()); 532 addExtensionsToPM(EP_Peephole, MPM); 533 534 if (EnableCHR && OptLevel >= 3 && 535 (!PGOInstrUse.empty() || !PGOSampleUse.empty() || EnablePGOCSInstrGen)) 536 MPM.add(createControlHeightReductionLegacyPass()); 537 } 538 539 /// FIXME: Should LTO cause any differences to this set of passes? 540 void PassManagerBuilder::addVectorPasses(legacy::PassManagerBase &PM, 541 bool IsFullLTO) { 542 PM.add(createLoopVectorizePass(!LoopsInterleaved, !LoopVectorize)); 543 544 if (IsFullLTO) { 545 // The vectorizer may have significantly shortened a loop body; unroll 546 // again. Unroll small loops to hide loop backedge latency and saturate any 547 // parallel execution resources of an out-of-order processor. We also then 548 // need to clean up redundancies and loop invariant code. 549 // FIXME: It would be really good to use a loop-integrated instruction 550 // combiner for cleanup here so that the unrolling and LICM can be pipelined 551 // across the loop nests. 552 // We do UnrollAndJam in a separate LPM to ensure it happens before unroll 553 if (EnableUnrollAndJam && !DisableUnrollLoops) 554 PM.add(createLoopUnrollAndJamPass(OptLevel)); 555 PM.add(createLoopUnrollPass(OptLevel, DisableUnrollLoops, 556 ForgetAllSCEVInLoopUnroll)); 557 PM.add(createWarnMissedTransformationsPass()); 558 } 559 560 if (!IsFullLTO) { 561 // Eliminate loads by forwarding stores from the previous iteration to loads 562 // of the current iteration. 563 PM.add(createLoopLoadEliminationPass()); 564 } 565 // Cleanup after the loop optimization passes. 566 PM.add(createInstructionCombiningPass()); 567 568 if (OptLevel > 1 && ExtraVectorizerPasses) { 569 // At higher optimization levels, try to clean up any runtime overlap and 570 // alignment checks inserted by the vectorizer. We want to track correlated 571 // runtime checks for two inner loops in the same outer loop, fold any 572 // common computations, hoist loop-invariant aspects out of any outer loop, 573 // and unswitch the runtime checks if possible. Once hoisted, we may have 574 // dead (or speculatable) control flows or more combining opportunities. 575 PM.add(createEarlyCSEPass()); 576 PM.add(createCorrelatedValuePropagationPass()); 577 PM.add(createInstructionCombiningPass()); 578 PM.add(createLICMPass(LicmMssaOptCap, LicmMssaNoAccForPromotionCap)); 579 PM.add(createLoopUnswitchPass(SizeLevel || OptLevel < 3, DivergentTarget)); 580 PM.add(createCFGSimplificationPass()); 581 PM.add(createInstructionCombiningPass()); 582 } 583 584 // Now that we've formed fast to execute loop structures, we do further 585 // optimizations. These are run afterward as they might block doing complex 586 // analyses and transforms such as what are needed for loop vectorization. 587 588 // Cleanup after loop vectorization, etc. Simplification passes like CVP and 589 // GVN, loop transforms, and others have already run, so it's now better to 590 // convert to more optimized IR using more aggressive simplify CFG options. 591 // The extra sinking transform can create larger basic blocks, so do this 592 // before SLP vectorization. 593 PM.add(createCFGSimplificationPass(SimplifyCFGOptions() 594 .forwardSwitchCondToPhi(true) 595 .convertSwitchToLookupTable(true) 596 .needCanonicalLoops(false) 597 .hoistCommonInsts(true) 598 .sinkCommonInsts(true))); 599 600 if (IsFullLTO) { 601 PM.add(createSCCPPass()); // Propagate exposed constants 602 PM.add(createInstructionCombiningPass()); // Clean up again 603 PM.add(createBitTrackingDCEPass()); 604 } 605 606 // Optimize parallel scalar instruction chains into SIMD instructions. 607 if (SLPVectorize) { 608 PM.add(createSLPVectorizerPass()); 609 if (OptLevel > 1 && ExtraVectorizerPasses) 610 PM.add(createEarlyCSEPass()); 611 } 612 613 // Enhance/cleanup vector code. 614 PM.add(createVectorCombinePass()); 615 616 if (!IsFullLTO) { 617 addExtensionsToPM(EP_Peephole, PM); 618 PM.add(createInstructionCombiningPass()); 619 620 if (EnableUnrollAndJam && !DisableUnrollLoops) { 621 // Unroll and Jam. We do this before unroll but need to be in a separate 622 // loop pass manager in order for the outer loop to be processed by 623 // unroll and jam before the inner loop is unrolled. 624 PM.add(createLoopUnrollAndJamPass(OptLevel)); 625 } 626 627 // Unroll small loops 628 PM.add(createLoopUnrollPass(OptLevel, DisableUnrollLoops, 629 ForgetAllSCEVInLoopUnroll)); 630 631 if (!DisableUnrollLoops) { 632 // LoopUnroll may generate some redundency to cleanup. 633 PM.add(createInstructionCombiningPass()); 634 635 // Runtime unrolling will introduce runtime check in loop prologue. If the 636 // unrolled loop is a inner loop, then the prologue will be inside the 637 // outer loop. LICM pass can help to promote the runtime check out if the 638 // checked value is loop invariant. 639 PM.add(createLICMPass(LicmMssaOptCap, LicmMssaNoAccForPromotionCap)); 640 } 641 642 PM.add(createWarnMissedTransformationsPass()); 643 } 644 645 // After vectorization and unrolling, assume intrinsics may tell us more 646 // about pointer alignments. 647 PM.add(createAlignmentFromAssumptionsPass()); 648 649 if (IsFullLTO) 650 PM.add(createInstructionCombiningPass()); 651 } 652 653 void PassManagerBuilder::populateModulePassManager( 654 legacy::PassManagerBase &MPM) { 655 // Whether this is a default or *LTO pre-link pipeline. The FullLTO post-link 656 // is handled separately, so just check this is not the ThinLTO post-link. 657 bool DefaultOrPreLinkPipeline = !PerformThinLTO; 658 659 MPM.add(createAnnotation2MetadataLegacyPass()); 660 661 if (!PGOSampleUse.empty()) { 662 MPM.add(createPruneEHPass()); 663 // In ThinLTO mode, when flattened profile is used, all the available 664 // profile information will be annotated in PreLink phase so there is 665 // no need to load the profile again in PostLink. 666 if (!(FlattenedProfileUsed && PerformThinLTO)) 667 MPM.add(createSampleProfileLoaderPass(PGOSampleUse)); 668 } 669 670 // Allow forcing function attributes as a debugging and tuning aid. 671 MPM.add(createForceFunctionAttrsLegacyPass()); 672 673 // If all optimizations are disabled, just run the always-inline pass and, 674 // if enabled, the function merging pass. 675 if (OptLevel == 0) { 676 addPGOInstrPasses(MPM); 677 if (Inliner) { 678 MPM.add(Inliner); 679 Inliner = nullptr; 680 } 681 682 // FIXME: The BarrierNoopPass is a HACK! The inliner pass above implicitly 683 // creates a CGSCC pass manager, but we don't want to add extensions into 684 // that pass manager. To prevent this we insert a no-op module pass to reset 685 // the pass manager to get the same behavior as EP_OptimizerLast in non-O0 686 // builds. The function merging pass is 687 if (MergeFunctions) 688 MPM.add(createMergeFunctionsPass()); 689 else if (GlobalExtensionsNotEmpty() || !Extensions.empty()) 690 MPM.add(createBarrierNoopPass()); 691 692 if (PerformThinLTO) { 693 MPM.add(createLowerTypeTestsPass(nullptr, nullptr, true)); 694 // Drop available_externally and unreferenced globals. This is necessary 695 // with ThinLTO in order to avoid leaving undefined references to dead 696 // globals in the object file. 697 MPM.add(createEliminateAvailableExternallyPass()); 698 MPM.add(createGlobalDCEPass()); 699 } 700 701 addExtensionsToPM(EP_EnabledOnOptLevel0, MPM); 702 703 if (PrepareForLTO || PrepareForThinLTO) { 704 MPM.add(createCanonicalizeAliasesPass()); 705 // Rename anon globals to be able to export them in the summary. 706 // This has to be done after we add the extensions to the pass manager 707 // as there could be passes (e.g. Adddress sanitizer) which introduce 708 // new unnamed globals. 709 MPM.add(createNameAnonGlobalPass()); 710 } 711 712 MPM.add(createAnnotationRemarksLegacyPass()); 713 return; 714 } 715 716 // Add LibraryInfo if we have some. 717 if (LibraryInfo) 718 MPM.add(new TargetLibraryInfoWrapperPass(*LibraryInfo)); 719 720 addInitialAliasAnalysisPasses(MPM); 721 722 // For ThinLTO there are two passes of indirect call promotion. The 723 // first is during the compile phase when PerformThinLTO=false and 724 // intra-module indirect call targets are promoted. The second is during 725 // the ThinLTO backend when PerformThinLTO=true, when we promote imported 726 // inter-module indirect calls. For that we perform indirect call promotion 727 // earlier in the pass pipeline, here before globalopt. Otherwise imported 728 // available_externally functions look unreferenced and are removed. 729 if (PerformThinLTO) { 730 MPM.add(createPGOIndirectCallPromotionLegacyPass(/*InLTO = */ true, 731 !PGOSampleUse.empty())); 732 MPM.add(createLowerTypeTestsPass(nullptr, nullptr, true)); 733 } 734 735 // For SamplePGO in ThinLTO compile phase, we do not want to unroll loops 736 // as it will change the CFG too much to make the 2nd profile annotation 737 // in backend more difficult. 738 bool PrepareForThinLTOUsingPGOSampleProfile = 739 PrepareForThinLTO && !PGOSampleUse.empty(); 740 if (PrepareForThinLTOUsingPGOSampleProfile) 741 DisableUnrollLoops = true; 742 743 // Infer attributes about declarations if possible. 744 MPM.add(createInferFunctionAttrsLegacyPass()); 745 746 // Infer attributes on declarations, call sites, arguments, etc. 747 if (AttributorRun & AttributorRunOption::MODULE) 748 MPM.add(createAttributorLegacyPass()); 749 750 addExtensionsToPM(EP_ModuleOptimizerEarly, MPM); 751 752 if (OptLevel > 2) 753 MPM.add(createCallSiteSplittingPass()); 754 755 // Propage constant function arguments by specializing the functions. 756 if (OptLevel > 2 && EnableFunctionSpecialization) 757 MPM.add(createFunctionSpecializationPass()); 758 759 MPM.add(createIPSCCPPass()); // IP SCCP 760 MPM.add(createCalledValuePropagationPass()); 761 762 MPM.add(createGlobalOptimizerPass()); // Optimize out global vars 763 // Promote any localized global vars. 764 MPM.add(createPromoteMemoryToRegisterPass()); 765 766 MPM.add(createDeadArgEliminationPass()); // Dead argument elimination 767 768 MPM.add(createInstructionCombiningPass()); // Clean up after IPCP & DAE 769 addExtensionsToPM(EP_Peephole, MPM); 770 MPM.add(createCFGSimplificationPass()); // Clean up after IPCP & DAE 771 772 // For SamplePGO in ThinLTO compile phase, we do not want to do indirect 773 // call promotion as it will change the CFG too much to make the 2nd 774 // profile annotation in backend more difficult. 775 // PGO instrumentation is added during the compile phase for ThinLTO, do 776 // not run it a second time 777 if (DefaultOrPreLinkPipeline && !PrepareForThinLTOUsingPGOSampleProfile) 778 addPGOInstrPasses(MPM); 779 780 // Create profile COMDAT variables. Lld linker wants to see all variables 781 // before the LTO/ThinLTO link since it needs to resolve symbols/comdats. 782 if (!PerformThinLTO && EnablePGOCSInstrGen) 783 MPM.add(createPGOInstrumentationGenCreateVarLegacyPass(PGOInstrGen)); 784 785 // We add a module alias analysis pass here. In part due to bugs in the 786 // analysis infrastructure this "works" in that the analysis stays alive 787 // for the entire SCC pass run below. 788 MPM.add(createGlobalsAAWrapperPass()); 789 790 // Start of CallGraph SCC passes. 791 MPM.add(createPruneEHPass()); // Remove dead EH info 792 bool RunInliner = false; 793 if (Inliner) { 794 MPM.add(Inliner); 795 Inliner = nullptr; 796 RunInliner = true; 797 } 798 799 // Infer attributes on declarations, call sites, arguments, etc. for an SCC. 800 if (AttributorRun & AttributorRunOption::CGSCC) 801 MPM.add(createAttributorCGSCCLegacyPass()); 802 803 // Try to perform OpenMP specific optimizations. This is a (quick!) no-op if 804 // there are no OpenMP runtime calls present in the module. 805 if (OptLevel > 1) 806 MPM.add(createOpenMPOptCGSCCLegacyPass()); 807 808 MPM.add(createPostOrderFunctionAttrsLegacyPass()); 809 if (OptLevel > 2) 810 MPM.add(createArgumentPromotionPass()); // Scalarize uninlined fn args 811 812 addExtensionsToPM(EP_CGSCCOptimizerLate, MPM); 813 addFunctionSimplificationPasses(MPM); 814 815 // FIXME: This is a HACK! The inliner pass above implicitly creates a CGSCC 816 // pass manager that we are specifically trying to avoid. To prevent this 817 // we must insert a no-op module pass to reset the pass manager. 818 MPM.add(createBarrierNoopPass()); 819 820 if (RunPartialInlining) 821 MPM.add(createPartialInliningPass()); 822 823 if (OptLevel > 1 && !PrepareForLTO && !PrepareForThinLTO) 824 // Remove avail extern fns and globals definitions if we aren't 825 // compiling an object file for later LTO. For LTO we want to preserve 826 // these so they are eligible for inlining at link-time. Note if they 827 // are unreferenced they will be removed by GlobalDCE later, so 828 // this only impacts referenced available externally globals. 829 // Eventually they will be suppressed during codegen, but eliminating 830 // here enables more opportunity for GlobalDCE as it may make 831 // globals referenced by available external functions dead 832 // and saves running remaining passes on the eliminated functions. 833 MPM.add(createEliminateAvailableExternallyPass()); 834 835 // CSFDO instrumentation and use pass. Don't invoke this for Prepare pass 836 // for LTO and ThinLTO -- The actual pass will be called after all inlines 837 // are performed. 838 // Need to do this after COMDAT variables have been eliminated, 839 // (i.e. after EliminateAvailableExternallyPass). 840 if (!(PrepareForLTO || PrepareForThinLTO)) 841 addPGOInstrPasses(MPM, /* IsCS */ true); 842 843 if (EnableOrderFileInstrumentation) 844 MPM.add(createInstrOrderFilePass()); 845 846 MPM.add(createReversePostOrderFunctionAttrsPass()); 847 848 // The inliner performs some kind of dead code elimination as it goes, 849 // but there are cases that are not really caught by it. We might 850 // at some point consider teaching the inliner about them, but it 851 // is OK for now to run GlobalOpt + GlobalDCE in tandem as their 852 // benefits generally outweight the cost, making the whole pipeline 853 // faster. 854 if (RunInliner) { 855 MPM.add(createGlobalOptimizerPass()); 856 MPM.add(createGlobalDCEPass()); 857 } 858 859 // If we are planning to perform ThinLTO later, let's not bloat the code with 860 // unrolling/vectorization/... now. We'll first run the inliner + CGSCC passes 861 // during ThinLTO and perform the rest of the optimizations afterward. 862 if (PrepareForThinLTO) { 863 // Ensure we perform any last passes, but do so before renaming anonymous 864 // globals in case the passes add any. 865 addExtensionsToPM(EP_OptimizerLast, MPM); 866 MPM.add(createCanonicalizeAliasesPass()); 867 // Rename anon globals to be able to export them in the summary. 868 MPM.add(createNameAnonGlobalPass()); 869 return; 870 } 871 872 if (PerformThinLTO) 873 // Optimize globals now when performing ThinLTO, this enables more 874 // optimizations later. 875 MPM.add(createGlobalOptimizerPass()); 876 877 // Scheduling LoopVersioningLICM when inlining is over, because after that 878 // we may see more accurate aliasing. Reason to run this late is that too 879 // early versioning may prevent further inlining due to increase of code 880 // size. By placing it just after inlining other optimizations which runs 881 // later might get benefit of no-alias assumption in clone loop. 882 if (UseLoopVersioningLICM) { 883 MPM.add(createLoopVersioningLICMPass()); // Do LoopVersioningLICM 884 MPM.add(createLICMPass(LicmMssaOptCap, LicmMssaNoAccForPromotionCap)); 885 } 886 887 // We add a fresh GlobalsModRef run at this point. This is particularly 888 // useful as the above will have inlined, DCE'ed, and function-attr 889 // propagated everything. We should at this point have a reasonably minimal 890 // and richly annotated call graph. By computing aliasing and mod/ref 891 // information for all local globals here, the late loop passes and notably 892 // the vectorizer will be able to use them to help recognize vectorizable 893 // memory operations. 894 // 895 // Note that this relies on a bug in the pass manager which preserves 896 // a module analysis into a function pass pipeline (and throughout it) so 897 // long as the first function pass doesn't invalidate the module analysis. 898 // Thus both Float2Int and LoopRotate have to preserve AliasAnalysis for 899 // this to work. Fortunately, it is trivial to preserve AliasAnalysis 900 // (doing nothing preserves it as it is required to be conservatively 901 // correct in the face of IR changes). 902 MPM.add(createGlobalsAAWrapperPass()); 903 904 MPM.add(createFloat2IntPass()); 905 MPM.add(createLowerConstantIntrinsicsPass()); 906 907 if (EnableMatrix) { 908 MPM.add(createLowerMatrixIntrinsicsPass()); 909 // CSE the pointer arithmetic of the column vectors. This allows alias 910 // analysis to establish no-aliasing between loads and stores of different 911 // columns of the same matrix. 912 MPM.add(createEarlyCSEPass(false)); 913 } 914 915 addExtensionsToPM(EP_VectorizerStart, MPM); 916 917 // Re-rotate loops in all our loop nests. These may have fallout out of 918 // rotated form due to GVN or other transformations, and the vectorizer relies 919 // on the rotated form. Disable header duplication at -Oz. 920 MPM.add(createLoopRotatePass(SizeLevel == 2 ? 0 : -1, PrepareForLTO)); 921 922 // Distribute loops to allow partial vectorization. I.e. isolate dependences 923 // into separate loop that would otherwise inhibit vectorization. This is 924 // currently only performed for loops marked with the metadata 925 // llvm.loop.distribute=true or when -enable-loop-distribute is specified. 926 MPM.add(createLoopDistributePass()); 927 928 addVectorPasses(MPM, /* IsFullLTO */ false); 929 930 // FIXME: We shouldn't bother with this anymore. 931 MPM.add(createStripDeadPrototypesPass()); // Get rid of dead prototypes 932 933 // GlobalOpt already deletes dead functions and globals, at -O2 try a 934 // late pass of GlobalDCE. It is capable of deleting dead cycles. 935 if (OptLevel > 1) { 936 MPM.add(createGlobalDCEPass()); // Remove dead fns and globals. 937 MPM.add(createConstantMergePass()); // Merge dup global constants 938 } 939 940 // See comment in the new PM for justification of scheduling splitting at 941 // this stage (\ref buildModuleSimplificationPipeline). 942 if (EnableHotColdSplit && !(PrepareForLTO || PrepareForThinLTO)) 943 MPM.add(createHotColdSplittingPass()); 944 945 if (EnableIROutliner) 946 MPM.add(createIROutlinerPass()); 947 948 if (MergeFunctions) 949 MPM.add(createMergeFunctionsPass()); 950 951 // Add Module flag "CG Profile" based on Branch Frequency Information. 952 if (CallGraphProfile) 953 MPM.add(createCGProfileLegacyPass()); 954 955 // LoopSink pass sinks instructions hoisted by LICM, which serves as a 956 // canonicalization pass that enables other optimizations. As a result, 957 // LoopSink pass needs to be a very late IR pass to avoid undoing LICM 958 // result too early. 959 MPM.add(createLoopSinkPass()); 960 // Get rid of LCSSA nodes. 961 MPM.add(createInstSimplifyLegacyPass()); 962 963 // This hoists/decomposes div/rem ops. It should run after other sink/hoist 964 // passes to avoid re-sinking, but before SimplifyCFG because it can allow 965 // flattening of blocks. 966 MPM.add(createDivRemPairsPass()); 967 968 // LoopSink (and other loop passes since the last simplifyCFG) might have 969 // resulted in single-entry-single-exit or empty blocks. Clean up the CFG. 970 MPM.add(createCFGSimplificationPass()); 971 972 addExtensionsToPM(EP_OptimizerLast, MPM); 973 974 if (PrepareForLTO) { 975 MPM.add(createCanonicalizeAliasesPass()); 976 // Rename anon globals to be able to handle them in the summary 977 MPM.add(createNameAnonGlobalPass()); 978 } 979 980 MPM.add(createAnnotationRemarksLegacyPass()); 981 } 982 983 void PassManagerBuilder::addLTOOptimizationPasses(legacy::PassManagerBase &PM) { 984 // Load sample profile before running the LTO optimization pipeline. 985 if (!PGOSampleUse.empty()) { 986 PM.add(createPruneEHPass()); 987 PM.add(createSampleProfileLoaderPass(PGOSampleUse)); 988 } 989 990 // Remove unused virtual tables to improve the quality of code generated by 991 // whole-program devirtualization and bitset lowering. 992 PM.add(createGlobalDCEPass()); 993 994 // Provide AliasAnalysis services for optimizations. 995 addInitialAliasAnalysisPasses(PM); 996 997 // Allow forcing function attributes as a debugging and tuning aid. 998 PM.add(createForceFunctionAttrsLegacyPass()); 999 1000 // Infer attributes about declarations if possible. 1001 PM.add(createInferFunctionAttrsLegacyPass()); 1002 1003 if (OptLevel > 1) { 1004 // Split call-site with more constrained arguments. 1005 PM.add(createCallSiteSplittingPass()); 1006 1007 // Indirect call promotion. This should promote all the targets that are 1008 // left by the earlier promotion pass that promotes intra-module targets. 1009 // This two-step promotion is to save the compile time. For LTO, it should 1010 // produce the same result as if we only do promotion here. 1011 PM.add( 1012 createPGOIndirectCallPromotionLegacyPass(true, !PGOSampleUse.empty())); 1013 1014 // Propage constant function arguments by specializing the functions. 1015 if (EnableFunctionSpecialization) 1016 PM.add(createFunctionSpecializationPass()); 1017 1018 // Propagate constants at call sites into the functions they call. This 1019 // opens opportunities for globalopt (and inlining) by substituting function 1020 // pointers passed as arguments to direct uses of functions. 1021 PM.add(createIPSCCPPass()); 1022 1023 // Attach metadata to indirect call sites indicating the set of functions 1024 // they may target at run-time. This should follow IPSCCP. 1025 PM.add(createCalledValuePropagationPass()); 1026 1027 // Infer attributes on declarations, call sites, arguments, etc. 1028 if (AttributorRun & AttributorRunOption::MODULE) 1029 PM.add(createAttributorLegacyPass()); 1030 } 1031 1032 // Infer attributes about definitions. The readnone attribute in particular is 1033 // required for virtual constant propagation. 1034 PM.add(createPostOrderFunctionAttrsLegacyPass()); 1035 PM.add(createReversePostOrderFunctionAttrsPass()); 1036 1037 // Split globals using inrange annotations on GEP indices. This can help 1038 // improve the quality of generated code when virtual constant propagation or 1039 // control flow integrity are enabled. 1040 PM.add(createGlobalSplitPass()); 1041 1042 // Apply whole-program devirtualization and virtual constant propagation. 1043 PM.add(createWholeProgramDevirtPass(ExportSummary, nullptr)); 1044 1045 // That's all we need at opt level 1. 1046 if (OptLevel == 1) 1047 return; 1048 1049 // Now that we internalized some globals, see if we can hack on them! 1050 PM.add(createGlobalOptimizerPass()); 1051 // Promote any localized global vars. 1052 PM.add(createPromoteMemoryToRegisterPass()); 1053 1054 // Linking modules together can lead to duplicated global constants, only 1055 // keep one copy of each constant. 1056 PM.add(createConstantMergePass()); 1057 1058 // Remove unused arguments from functions. 1059 PM.add(createDeadArgEliminationPass()); 1060 1061 // Reduce the code after globalopt and ipsccp. Both can open up significant 1062 // simplification opportunities, and both can propagate functions through 1063 // function pointers. When this happens, we often have to resolve varargs 1064 // calls, etc, so let instcombine do this. 1065 if (OptLevel > 2) 1066 PM.add(createAggressiveInstCombinerPass()); 1067 PM.add(createInstructionCombiningPass()); 1068 addExtensionsToPM(EP_Peephole, PM); 1069 1070 // Inline small functions 1071 bool RunInliner = Inliner; 1072 if (RunInliner) { 1073 PM.add(Inliner); 1074 Inliner = nullptr; 1075 } 1076 1077 PM.add(createPruneEHPass()); // Remove dead EH info. 1078 1079 // CSFDO instrumentation and use pass. 1080 addPGOInstrPasses(PM, /* IsCS */ true); 1081 1082 // Infer attributes on declarations, call sites, arguments, etc. for an SCC. 1083 if (AttributorRun & AttributorRunOption::CGSCC) 1084 PM.add(createAttributorCGSCCLegacyPass()); 1085 1086 // Try to perform OpenMP specific optimizations. This is a (quick!) no-op if 1087 // there are no OpenMP runtime calls present in the module. 1088 if (OptLevel > 1) 1089 PM.add(createOpenMPOptCGSCCLegacyPass()); 1090 1091 // Optimize globals again if we ran the inliner. 1092 if (RunInliner) 1093 PM.add(createGlobalOptimizerPass()); 1094 PM.add(createGlobalDCEPass()); // Remove dead functions. 1095 1096 // If we didn't decide to inline a function, check to see if we can 1097 // transform it to pass arguments by value instead of by reference. 1098 PM.add(createArgumentPromotionPass()); 1099 1100 // The IPO passes may leave cruft around. Clean up after them. 1101 PM.add(createInstructionCombiningPass()); 1102 addExtensionsToPM(EP_Peephole, PM); 1103 PM.add(createJumpThreadingPass(/*FreezeSelectCond*/ true)); 1104 1105 // Break up allocas 1106 PM.add(createSROAPass()); 1107 1108 // LTO provides additional opportunities for tailcall elimination due to 1109 // link-time inlining, and visibility of nocapture attribute. 1110 if (OptLevel > 1) 1111 PM.add(createTailCallEliminationPass()); 1112 1113 // Infer attributes on declarations, call sites, arguments, etc. 1114 PM.add(createPostOrderFunctionAttrsLegacyPass()); // Add nocapture. 1115 // Run a few AA driven optimizations here and now, to cleanup the code. 1116 PM.add(createGlobalsAAWrapperPass()); // IP alias analysis. 1117 1118 PM.add(createLICMPass(LicmMssaOptCap, LicmMssaNoAccForPromotionCap)); 1119 PM.add(NewGVN ? createNewGVNPass() 1120 : createGVNPass(DisableGVNLoadPRE)); // Remove redundancies. 1121 PM.add(createMemCpyOptPass()); // Remove dead memcpys. 1122 1123 // Nuke dead stores. 1124 PM.add(createDeadStoreEliminationPass()); 1125 PM.add(createMergedLoadStoreMotionPass()); // Merge ld/st in diamonds. 1126 1127 // More loops are countable; try to optimize them. 1128 if (EnableLoopFlatten) 1129 PM.add(createLoopFlattenPass()); 1130 PM.add(createIndVarSimplifyPass()); 1131 PM.add(createLoopDeletionPass()); 1132 if (EnableLoopInterchange) 1133 PM.add(createLoopInterchangePass()); 1134 1135 if (EnableConstraintElimination) 1136 PM.add(createConstraintEliminationPass()); 1137 1138 // Unroll small loops and perform peeling. 1139 PM.add(createSimpleLoopUnrollPass(OptLevel, DisableUnrollLoops, 1140 ForgetAllSCEVInLoopUnroll)); 1141 PM.add(createLoopDistributePass()); 1142 1143 addVectorPasses(PM, /* IsFullLTO */ true); 1144 1145 addExtensionsToPM(EP_Peephole, PM); 1146 1147 PM.add(createJumpThreadingPass(/*FreezeSelectCond*/ true)); 1148 } 1149 1150 void PassManagerBuilder::addLateLTOOptimizationPasses( 1151 legacy::PassManagerBase &PM) { 1152 // See comment in the new PM for justification of scheduling splitting at 1153 // this stage (\ref buildLTODefaultPipeline). 1154 if (EnableHotColdSplit) 1155 PM.add(createHotColdSplittingPass()); 1156 1157 // Delete basic blocks, which optimization passes may have killed. 1158 PM.add( 1159 createCFGSimplificationPass(SimplifyCFGOptions().hoistCommonInsts(true))); 1160 1161 // Drop bodies of available externally objects to improve GlobalDCE. 1162 PM.add(createEliminateAvailableExternallyPass()); 1163 1164 // Now that we have optimized the program, discard unreachable functions. 1165 PM.add(createGlobalDCEPass()); 1166 1167 // FIXME: this is profitable (for compiler time) to do at -O0 too, but 1168 // currently it damages debug info. 1169 if (MergeFunctions) 1170 PM.add(createMergeFunctionsPass()); 1171 } 1172 1173 void PassManagerBuilder::populateThinLTOPassManager( 1174 legacy::PassManagerBase &PM) { 1175 PerformThinLTO = true; 1176 if (LibraryInfo) 1177 PM.add(new TargetLibraryInfoWrapperPass(*LibraryInfo)); 1178 1179 if (VerifyInput) 1180 PM.add(createVerifierPass()); 1181 1182 if (ImportSummary) { 1183 // This pass imports type identifier resolutions for whole-program 1184 // devirtualization and CFI. It must run early because other passes may 1185 // disturb the specific instruction patterns that these passes look for, 1186 // creating dependencies on resolutions that may not appear in the summary. 1187 // 1188 // For example, GVN may transform the pattern assume(type.test) appearing in 1189 // two basic blocks into assume(phi(type.test, type.test)), which would 1190 // transform a dependency on a WPD resolution into a dependency on a type 1191 // identifier resolution for CFI. 1192 // 1193 // Also, WPD has access to more precise information than ICP and can 1194 // devirtualize more effectively, so it should operate on the IR first. 1195 PM.add(createWholeProgramDevirtPass(nullptr, ImportSummary)); 1196 PM.add(createLowerTypeTestsPass(nullptr, ImportSummary)); 1197 } 1198 1199 populateModulePassManager(PM); 1200 1201 if (VerifyOutput) 1202 PM.add(createVerifierPass()); 1203 PerformThinLTO = false; 1204 } 1205 1206 void PassManagerBuilder::populateLTOPassManager(legacy::PassManagerBase &PM) { 1207 if (LibraryInfo) 1208 PM.add(new TargetLibraryInfoWrapperPass(*LibraryInfo)); 1209 1210 if (VerifyInput) 1211 PM.add(createVerifierPass()); 1212 1213 addExtensionsToPM(EP_FullLinkTimeOptimizationEarly, PM); 1214 1215 if (OptLevel != 0) 1216 addLTOOptimizationPasses(PM); 1217 else { 1218 // The whole-program-devirt pass needs to run at -O0 because only it knows 1219 // about the llvm.type.checked.load intrinsic: it needs to both lower the 1220 // intrinsic itself and handle it in the summary. 1221 PM.add(createWholeProgramDevirtPass(ExportSummary, nullptr)); 1222 } 1223 1224 // Create a function that performs CFI checks for cross-DSO calls with targets 1225 // in the current module. 1226 PM.add(createCrossDSOCFIPass()); 1227 1228 // Lower type metadata and the type.test intrinsic. This pass supports Clang's 1229 // control flow integrity mechanisms (-fsanitize=cfi*) and needs to run at 1230 // link time if CFI is enabled. The pass does nothing if CFI is disabled. 1231 PM.add(createLowerTypeTestsPass(ExportSummary, nullptr)); 1232 // Run a second time to clean up any type tests left behind by WPD for use 1233 // in ICP (which is performed earlier than this in the regular LTO pipeline). 1234 PM.add(createLowerTypeTestsPass(nullptr, nullptr, true)); 1235 1236 if (OptLevel != 0) 1237 addLateLTOOptimizationPasses(PM); 1238 1239 addExtensionsToPM(EP_FullLinkTimeOptimizationLast, PM); 1240 1241 PM.add(createAnnotationRemarksLegacyPass()); 1242 1243 if (VerifyOutput) 1244 PM.add(createVerifierPass()); 1245 } 1246 1247 LLVMPassManagerBuilderRef LLVMPassManagerBuilderCreate() { 1248 PassManagerBuilder *PMB = new PassManagerBuilder(); 1249 return wrap(PMB); 1250 } 1251 1252 void LLVMPassManagerBuilderDispose(LLVMPassManagerBuilderRef PMB) { 1253 PassManagerBuilder *Builder = unwrap(PMB); 1254 delete Builder; 1255 } 1256 1257 void 1258 LLVMPassManagerBuilderSetOptLevel(LLVMPassManagerBuilderRef PMB, 1259 unsigned OptLevel) { 1260 PassManagerBuilder *Builder = unwrap(PMB); 1261 Builder->OptLevel = OptLevel; 1262 } 1263 1264 void 1265 LLVMPassManagerBuilderSetSizeLevel(LLVMPassManagerBuilderRef PMB, 1266 unsigned SizeLevel) { 1267 PassManagerBuilder *Builder = unwrap(PMB); 1268 Builder->SizeLevel = SizeLevel; 1269 } 1270 1271 void 1272 LLVMPassManagerBuilderSetDisableUnitAtATime(LLVMPassManagerBuilderRef PMB, 1273 LLVMBool Value) { 1274 // NOTE: The DisableUnitAtATime switch has been removed. 1275 } 1276 1277 void 1278 LLVMPassManagerBuilderSetDisableUnrollLoops(LLVMPassManagerBuilderRef PMB, 1279 LLVMBool Value) { 1280 PassManagerBuilder *Builder = unwrap(PMB); 1281 Builder->DisableUnrollLoops = Value; 1282 } 1283 1284 void 1285 LLVMPassManagerBuilderSetDisableSimplifyLibCalls(LLVMPassManagerBuilderRef PMB, 1286 LLVMBool Value) { 1287 // NOTE: The simplify-libcalls pass has been removed. 1288 } 1289 1290 void 1291 LLVMPassManagerBuilderUseInlinerWithThreshold(LLVMPassManagerBuilderRef PMB, 1292 unsigned Threshold) { 1293 PassManagerBuilder *Builder = unwrap(PMB); 1294 Builder->Inliner = createFunctionInliningPass(Threshold); 1295 } 1296 1297 void 1298 LLVMPassManagerBuilderPopulateFunctionPassManager(LLVMPassManagerBuilderRef PMB, 1299 LLVMPassManagerRef PM) { 1300 PassManagerBuilder *Builder = unwrap(PMB); 1301 legacy::FunctionPassManager *FPM = unwrap<legacy::FunctionPassManager>(PM); 1302 Builder->populateFunctionPassManager(*FPM); 1303 } 1304 1305 void 1306 LLVMPassManagerBuilderPopulateModulePassManager(LLVMPassManagerBuilderRef PMB, 1307 LLVMPassManagerRef PM) { 1308 PassManagerBuilder *Builder = unwrap(PMB); 1309 legacy::PassManagerBase *MPM = unwrap(PM); 1310 Builder->populateModulePassManager(*MPM); 1311 } 1312 1313 void LLVMPassManagerBuilderPopulateLTOPassManager(LLVMPassManagerBuilderRef PMB, 1314 LLVMPassManagerRef PM, 1315 LLVMBool Internalize, 1316 LLVMBool RunInliner) { 1317 PassManagerBuilder *Builder = unwrap(PMB); 1318 legacy::PassManagerBase *LPM = unwrap(PM); 1319 1320 // A small backwards compatibility hack. populateLTOPassManager used to take 1321 // an RunInliner option. 1322 if (RunInliner && !Builder->Inliner) 1323 Builder->Inliner = createFunctionInliningPass(); 1324 1325 Builder->populateLTOPassManager(*LPM); 1326 } 1327