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> EnableNonLTOGlobalsModRef(
98     "enable-non-lto-gmr", cl::init(true), cl::Hidden,
99     cl::desc(
100         "Enable the GlobalsModRef AliasAnalysis outside of the LTO pipeline."));
101 
102 static cl::opt<bool> EnableLoopLoadElim(
103     "enable-loop-load-elim", cl::init(true), cl::Hidden,
104     cl::desc("Enable the LoopLoadElimination Pass"));
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> RunPGOInstrGen(
111     "profile-generate", cl::init(false), cl::Hidden,
112     cl::desc("Enable PGO instrumentation."));
113 
114 static cl::opt<std::string>
115     PGOOutputFile("profile-generate-file", cl::init(""), cl::Hidden,
116                       cl::desc("Specify the path of profile data file."));
117 
118 static cl::opt<std::string> RunPGOInstrUse(
119     "profile-use", cl::init(""), cl::Hidden, cl::value_desc("filename"),
120     cl::desc("Enable use phase of PGO instrumentation and specify the path "
121              "of profile data file"));
122 
123 static cl::opt<bool> UseLoopVersioningLICM(
124     "enable-loop-versioning-licm", cl::init(false), cl::Hidden,
125     cl::desc("Enable the experimental Loop Versioning LICM pass"));
126 
127 static cl::opt<bool>
128     DisablePreInliner("disable-preinline", cl::init(false), cl::Hidden,
129                       cl::desc("Disable pre-instrumentation inliner"));
130 
131 static cl::opt<int> PreInlineThreshold(
132     "preinline-threshold", cl::Hidden, cl::init(75), cl::ZeroOrMore,
133     cl::desc("Control the amount of inlining in pre-instrumentation inliner "
134              "(default = 75)"));
135 
136 static cl::opt<bool> EnableEarlyCSEMemSSA(
137     "enable-earlycse-memssa", cl::init(true), cl::Hidden,
138     cl::desc("Enable the EarlyCSE w/ MemorySSA pass (default = on)"));
139 
140 static cl::opt<bool> EnableGVNHoist(
141     "enable-gvn-hoist", cl::init(false), cl::Hidden,
142     cl::desc("Enable the GVN hoisting pass (default = off)"));
143 
144 static cl::opt<bool>
145     DisableLibCallsShrinkWrap("disable-libcalls-shrinkwrap", cl::init(false),
146                               cl::Hidden,
147                               cl::desc("Disable shrink-wrap library calls"));
148 
149 static cl::opt<bool>
150     EnableSimpleLoopUnswitch("enable-simple-loop-unswitch", cl::init(false),
151                              cl::Hidden,
152                              cl::desc("Enable the simple loop unswitch pass."));
153 
154 static cl::opt<bool> EnableGVNSink(
155     "enable-gvn-sink", cl::init(false), cl::Hidden,
156     cl::desc("Enable the GVN sinking pass (default = off)"));
157 
158 PassManagerBuilder::PassManagerBuilder() {
159     OptLevel = 2;
160     SizeLevel = 0;
161     LibraryInfo = nullptr;
162     Inliner = nullptr;
163     DisableUnitAtATime = false;
164     DisableUnrollLoops = false;
165     SLPVectorize = RunSLPVectorization;
166     LoopVectorize = RunLoopVectorization;
167     RerollLoops = RunLoopRerolling;
168     NewGVN = RunNewGVN;
169     DisableGVNLoadPRE = false;
170     VerifyInput = false;
171     VerifyOutput = false;
172     MergeFunctions = false;
173     PrepareForLTO = false;
174     EnablePGOInstrGen = RunPGOInstrGen;
175     PGOInstrGen = PGOOutputFile;
176     PGOInstrUse = RunPGOInstrUse;
177     PrepareForThinLTO = EnablePrepareForThinLTO;
178     PerformThinLTO = false;
179     DivergentTarget = false;
180 }
181 
182 PassManagerBuilder::~PassManagerBuilder() {
183   delete LibraryInfo;
184   delete Inliner;
185 }
186 
187 /// Set of global extensions, automatically added as part of the standard set.
188 static ManagedStatic<SmallVector<std::pair<PassManagerBuilder::ExtensionPointTy,
189    PassManagerBuilder::ExtensionFn>, 8> > GlobalExtensions;
190 
191 void PassManagerBuilder::addGlobalExtension(
192     PassManagerBuilder::ExtensionPointTy Ty,
193     PassManagerBuilder::ExtensionFn Fn) {
194   GlobalExtensions->push_back(std::make_pair(Ty, std::move(Fn)));
195 }
196 
197 void PassManagerBuilder::addExtension(ExtensionPointTy Ty, ExtensionFn Fn) {
198   Extensions.push_back(std::make_pair(Ty, std::move(Fn)));
199 }
200 
201 void PassManagerBuilder::addExtensionsToPM(ExtensionPointTy ETy,
202                                            legacy::PassManagerBase &PM) const {
203   for (unsigned i = 0, e = GlobalExtensions->size(); i != e; ++i)
204     if ((*GlobalExtensions)[i].first == ETy)
205       (*GlobalExtensions)[i].second(*this, PM);
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 (!GlobalExtensions->empty() || !Extensions.empty())
419       MPM.add(createBarrierNoopPass());
420 
421     addExtensionsToPM(EP_EnabledOnOptLevel0, MPM);
422 
423     // Rename anon globals to be able to export them in the summary.
424     // This has to be done after we add the extensions to the pass manager
425     // as there could be passes (e.g. Adddress sanitizer) which introduce
426     // new unnamed globals.
427     if (PrepareForThinLTO)
428       MPM.add(createNameAnonGlobalPass());
429     return;
430   }
431 
432   // Add LibraryInfo if we have some.
433   if (LibraryInfo)
434     MPM.add(new TargetLibraryInfoWrapperPass(*LibraryInfo));
435 
436   addInitialAliasAnalysisPasses(MPM);
437 
438   // For ThinLTO there are two passes of indirect call promotion. The
439   // first is during the compile phase when PerformThinLTO=false and
440   // intra-module indirect call targets are promoted. The second is during
441   // the ThinLTO backend when PerformThinLTO=true, when we promote imported
442   // inter-module indirect calls. For that we perform indirect call promotion
443   // earlier in the pass pipeline, here before globalopt. Otherwise imported
444   // available_externally functions look unreferenced and are removed.
445   if (PerformThinLTO)
446     MPM.add(createPGOIndirectCallPromotionLegacyPass(/*InLTO = */ true,
447                                                      !PGOSampleUse.empty()));
448 
449   // For SamplePGO in ThinLTO compile phase, we do not want to unroll loops
450   // as it will change the CFG too much to make the 2nd profile annotation
451   // in backend more difficult.
452   bool PrepareForThinLTOUsingPGOSampleProfile =
453       PrepareForThinLTO && !PGOSampleUse.empty();
454   if (PrepareForThinLTOUsingPGOSampleProfile)
455     DisableUnrollLoops = true;
456 
457   if (!DisableUnitAtATime) {
458     // Infer attributes about declarations if possible.
459     MPM.add(createInferFunctionAttrsLegacyPass());
460 
461     addExtensionsToPM(EP_ModuleOptimizerEarly, MPM);
462 
463     MPM.add(createIPSCCPPass());          // IP SCCP
464     MPM.add(createGlobalOptimizerPass()); // Optimize out global vars
465     // Promote any localized global vars.
466     MPM.add(createPromoteMemoryToRegisterPass());
467 
468     MPM.add(createDeadArgEliminationPass()); // Dead argument elimination
469 
470     addInstructionCombiningPass(MPM); // Clean up after IPCP & DAE
471     addExtensionsToPM(EP_Peephole, MPM);
472     MPM.add(createCFGSimplificationPass()); // Clean up after IPCP & DAE
473   }
474 
475   // For SamplePGO in ThinLTO compile phase, we do not want to do indirect
476   // call promotion as it will change the CFG too much to make the 2nd
477   // profile annotation in backend more difficult.
478   // PGO instrumentation is added during the compile phase for ThinLTO, do
479   // not run it a second time
480   if (!PerformThinLTO && !PrepareForThinLTOUsingPGOSampleProfile)
481     addPGOInstrPasses(MPM);
482 
483   if (EnableNonLTOGlobalsModRef)
484     // We add a module alias analysis pass here. In part due to bugs in the
485     // analysis infrastructure this "works" in that the analysis stays alive
486     // for the entire SCC pass run below.
487     MPM.add(createGlobalsAAWrapperPass());
488 
489   // Start of CallGraph SCC passes.
490   if (!DisableUnitAtATime)
491     MPM.add(createPruneEHPass()); // Remove dead EH info
492   if (Inliner) {
493     MPM.add(Inliner);
494     Inliner = nullptr;
495   }
496   if (!DisableUnitAtATime)
497     MPM.add(createPostOrderFunctionAttrsLegacyPass());
498   if (OptLevel > 2)
499     MPM.add(createArgumentPromotionPass()); // Scalarize uninlined fn args
500 
501   addExtensionsToPM(EP_CGSCCOptimizerLate, MPM);
502   addFunctionSimplificationPasses(MPM);
503 
504   // FIXME: This is a HACK! The inliner pass above implicitly creates a CGSCC
505   // pass manager that we are specifically trying to avoid. To prevent this
506   // we must insert a no-op module pass to reset the pass manager.
507   MPM.add(createBarrierNoopPass());
508   if (RunPartialInlining)
509     MPM.add(createPartialInliningPass());
510 
511   if (!DisableUnitAtATime && OptLevel > 1 && !PrepareForLTO &&
512       !PrepareForThinLTO)
513     // Remove avail extern fns and globals definitions if we aren't
514     // compiling an object file for later LTO. For LTO we want to preserve
515     // these so they are eligible for inlining at link-time. Note if they
516     // are unreferenced they will be removed by GlobalDCE later, so
517     // this only impacts referenced available externally globals.
518     // Eventually they will be suppressed during codegen, but eliminating
519     // here enables more opportunity for GlobalDCE as it may make
520     // globals referenced by available external functions dead
521     // and saves running remaining passes on the eliminated functions.
522     MPM.add(createEliminateAvailableExternallyPass());
523 
524   if (!DisableUnitAtATime)
525     MPM.add(createReversePostOrderFunctionAttrsPass());
526 
527   // If we are planning to perform ThinLTO later, let's not bloat the code with
528   // unrolling/vectorization/... now. We'll first run the inliner + CGSCC passes
529   // during ThinLTO and perform the rest of the optimizations afterward.
530   if (PrepareForThinLTO) {
531     // Reduce the size of the IR as much as possible.
532     MPM.add(createGlobalOptimizerPass());
533     // Rename anon globals to be able to export them in the summary.
534     MPM.add(createNameAnonGlobalPass());
535     return;
536   }
537 
538   if (PerformThinLTO)
539     // Optimize globals now when performing ThinLTO, this enables more
540     // optimizations later.
541     MPM.add(createGlobalOptimizerPass());
542 
543   // Scheduling LoopVersioningLICM when inlining is over, because after that
544   // we may see more accurate aliasing. Reason to run this late is that too
545   // early versioning may prevent further inlining due to increase of code
546   // size. By placing it just after inlining other optimizations which runs
547   // later might get benefit of no-alias assumption in clone loop.
548   if (UseLoopVersioningLICM) {
549     MPM.add(createLoopVersioningLICMPass());    // Do LoopVersioningLICM
550     MPM.add(createLICMPass());                  // Hoist loop invariants
551   }
552 
553   if (EnableNonLTOGlobalsModRef)
554     // We add a fresh GlobalsModRef run at this point. This is particularly
555     // useful as the above will have inlined, DCE'ed, and function-attr
556     // propagated everything. We should at this point have a reasonably minimal
557     // and richly annotated call graph. By computing aliasing and mod/ref
558     // information for all local globals here, the late loop passes and notably
559     // the vectorizer will be able to use them to help recognize vectorizable
560     // memory operations.
561     //
562     // Note that this relies on a bug in the pass manager which preserves
563     // a module analysis into a function pass pipeline (and throughout it) so
564     // long as the first function pass doesn't invalidate the module analysis.
565     // Thus both Float2Int and LoopRotate have to preserve AliasAnalysis for
566     // this to work. Fortunately, it is trivial to preserve AliasAnalysis
567     // (doing nothing preserves it as it is required to be conservatively
568     // correct in the face of IR changes).
569     MPM.add(createGlobalsAAWrapperPass());
570 
571   MPM.add(createFloat2IntPass());
572 
573   addExtensionsToPM(EP_VectorizerStart, MPM);
574 
575   // Re-rotate loops in all our loop nests. These may have fallout out of
576   // rotated form due to GVN or other transformations, and the vectorizer relies
577   // on the rotated form. Disable header duplication at -Oz.
578   MPM.add(createLoopRotatePass(SizeLevel == 2 ? 0 : -1));
579 
580   // Distribute loops to allow partial vectorization.  I.e. isolate dependences
581   // into separate loop that would otherwise inhibit vectorization.  This is
582   // currently only performed for loops marked with the metadata
583   // llvm.loop.distribute=true or when -enable-loop-distribute is specified.
584   MPM.add(createLoopDistributePass());
585 
586   MPM.add(createLoopVectorizePass(DisableUnrollLoops, LoopVectorize));
587 
588   // Eliminate loads by forwarding stores from the previous iteration to loads
589   // of the current iteration.
590   if (EnableLoopLoadElim)
591     MPM.add(createLoopLoadEliminationPass());
592 
593   // FIXME: Because of #pragma vectorize enable, the passes below are always
594   // inserted in the pipeline, even when the vectorizer doesn't run (ex. when
595   // on -O1 and no #pragma is found). Would be good to have these two passes
596   // as function calls, so that we can only pass them when the vectorizer
597   // changed the code.
598   addInstructionCombiningPass(MPM);
599   if (OptLevel > 1 && ExtraVectorizerPasses) {
600     // At higher optimization levels, try to clean up any runtime overlap and
601     // alignment checks inserted by the vectorizer. We want to track correllated
602     // runtime checks for two inner loops in the same outer loop, fold any
603     // common computations, hoist loop-invariant aspects out of any outer loop,
604     // and unswitch the runtime checks if possible. Once hoisted, we may have
605     // dead (or speculatable) control flows or more combining opportunities.
606     MPM.add(createEarlyCSEPass());
607     MPM.add(createCorrelatedValuePropagationPass());
608     addInstructionCombiningPass(MPM);
609     MPM.add(createLICMPass());
610     MPM.add(createLoopUnswitchPass(SizeLevel || OptLevel < 3, DivergentTarget));
611     MPM.add(createCFGSimplificationPass());
612     addInstructionCombiningPass(MPM);
613   }
614 
615   if (RunSLPAfterLoopVectorization && SLPVectorize) {
616     MPM.add(createSLPVectorizerPass()); // Vectorize parallel scalar chains.
617     if (OptLevel > 1 && ExtraVectorizerPasses) {
618       MPM.add(createEarlyCSEPass());
619     }
620   }
621 
622   addExtensionsToPM(EP_Peephole, MPM);
623   MPM.add(createLateCFGSimplificationPass()); // Switches to lookup tables
624   addInstructionCombiningPass(MPM);
625 
626   if (!DisableUnrollLoops) {
627     MPM.add(createLoopUnrollPass(OptLevel));    // Unroll small loops
628 
629     // LoopUnroll may generate some redundency to cleanup.
630     addInstructionCombiningPass(MPM);
631 
632     // Runtime unrolling will introduce runtime check in loop prologue. If the
633     // unrolled loop is a inner loop, then the prologue will be inside the
634     // outer loop. LICM pass can help to promote the runtime check out if the
635     // checked value is loop invariant.
636     MPM.add(createLICMPass());
637  }
638 
639   // After vectorization and unrolling, assume intrinsics may tell us more
640   // about pointer alignments.
641   MPM.add(createAlignmentFromAssumptionsPass());
642 
643   if (!DisableUnitAtATime) {
644     // FIXME: We shouldn't bother with this anymore.
645     MPM.add(createStripDeadPrototypesPass()); // Get rid of dead prototypes
646 
647     // GlobalOpt already deletes dead functions and globals, at -O2 try a
648     // late pass of GlobalDCE.  It is capable of deleting dead cycles.
649     if (OptLevel > 1) {
650       MPM.add(createGlobalDCEPass());         // Remove dead fns and globals.
651       MPM.add(createConstantMergePass());     // Merge dup global constants
652     }
653   }
654 
655   if (MergeFunctions)
656     MPM.add(createMergeFunctionsPass());
657 
658   // LoopSink pass sinks instructions hoisted by LICM, which serves as a
659   // canonicalization pass that enables other optimizations. As a result,
660   // LoopSink pass needs to be a very late IR pass to avoid undoing LICM
661   // result too early.
662   MPM.add(createLoopSinkPass());
663   // Get rid of LCSSA nodes.
664   MPM.add(createInstructionSimplifierPass());
665 
666   // LoopSink (and other loop passes since the last simplifyCFG) might have
667   // resulted in single-entry-single-exit or empty blocks. Clean up the CFG.
668   MPM.add(createCFGSimplificationPass());
669 
670   addExtensionsToPM(EP_OptimizerLast, MPM);
671 }
672 
673 void PassManagerBuilder::addLTOOptimizationPasses(legacy::PassManagerBase &PM) {
674   // Remove unused virtual tables to improve the quality of code generated by
675   // whole-program devirtualization and bitset lowering.
676   PM.add(createGlobalDCEPass());
677 
678   // Provide AliasAnalysis services for optimizations.
679   addInitialAliasAnalysisPasses(PM);
680 
681   // Allow forcing function attributes as a debugging and tuning aid.
682   PM.add(createForceFunctionAttrsLegacyPass());
683 
684   // Infer attributes about declarations if possible.
685   PM.add(createInferFunctionAttrsLegacyPass());
686 
687   if (OptLevel > 1) {
688     // Indirect call promotion. This should promote all the targets that are
689     // left by the earlier promotion pass that promotes intra-module targets.
690     // This two-step promotion is to save the compile time. For LTO, it should
691     // produce the same result as if we only do promotion here.
692     PM.add(
693         createPGOIndirectCallPromotionLegacyPass(true, !PGOSampleUse.empty()));
694 
695     // Propagate constants at call sites into the functions they call.  This
696     // opens opportunities for globalopt (and inlining) by substituting function
697     // pointers passed as arguments to direct uses of functions.
698     PM.add(createIPSCCPPass());
699   }
700 
701   // Infer attributes about definitions. The readnone attribute in particular is
702   // required for virtual constant propagation.
703   PM.add(createPostOrderFunctionAttrsLegacyPass());
704   PM.add(createReversePostOrderFunctionAttrsPass());
705 
706   // Split globals using inrange annotations on GEP indices. This can help
707   // improve the quality of generated code when virtual constant propagation or
708   // control flow integrity are enabled.
709   PM.add(createGlobalSplitPass());
710 
711   // Apply whole-program devirtualization and virtual constant propagation.
712   PM.add(createWholeProgramDevirtPass(ExportSummary, nullptr));
713 
714   // That's all we need at opt level 1.
715   if (OptLevel == 1)
716     return;
717 
718   // Now that we internalized some globals, see if we can hack on them!
719   PM.add(createGlobalOptimizerPass());
720   // Promote any localized global vars.
721   PM.add(createPromoteMemoryToRegisterPass());
722 
723   // Linking modules together can lead to duplicated global constants, only
724   // keep one copy of each constant.
725   PM.add(createConstantMergePass());
726 
727   // Remove unused arguments from functions.
728   PM.add(createDeadArgEliminationPass());
729 
730   // Reduce the code after globalopt and ipsccp.  Both can open up significant
731   // simplification opportunities, and both can propagate functions through
732   // function pointers.  When this happens, we often have to resolve varargs
733   // calls, etc, so let instcombine do this.
734   addInstructionCombiningPass(PM);
735   addExtensionsToPM(EP_Peephole, PM);
736 
737   // Inline small functions
738   bool RunInliner = Inliner;
739   if (RunInliner) {
740     PM.add(Inliner);
741     Inliner = nullptr;
742   }
743 
744   PM.add(createPruneEHPass());   // Remove dead EH info.
745 
746   // Optimize globals again if we ran the inliner.
747   if (RunInliner)
748     PM.add(createGlobalOptimizerPass());
749   PM.add(createGlobalDCEPass()); // Remove dead functions.
750 
751   // If we didn't decide to inline a function, check to see if we can
752   // transform it to pass arguments by value instead of by reference.
753   PM.add(createArgumentPromotionPass());
754 
755   // The IPO passes may leave cruft around.  Clean up after them.
756   addInstructionCombiningPass(PM);
757   addExtensionsToPM(EP_Peephole, PM);
758   PM.add(createJumpThreadingPass());
759 
760   // Break up allocas
761   PM.add(createSROAPass());
762 
763   // Run a few AA driven optimizations here and now, to cleanup the code.
764   PM.add(createPostOrderFunctionAttrsLegacyPass()); // Add nocapture.
765   PM.add(createGlobalsAAWrapperPass()); // IP alias analysis.
766 
767   PM.add(createLICMPass());                 // Hoist loop invariants.
768   PM.add(createMergedLoadStoreMotionPass()); // Merge ld/st in diamonds.
769   PM.add(NewGVN ? createNewGVNPass()
770                 : createGVNPass(DisableGVNLoadPRE)); // Remove redundancies.
771   PM.add(createMemCpyOptPass());            // Remove dead memcpys.
772 
773   // Nuke dead stores.
774   PM.add(createDeadStoreEliminationPass());
775 
776   // More loops are countable; try to optimize them.
777   PM.add(createIndVarSimplifyPass());
778   PM.add(createLoopDeletionPass());
779   if (EnableLoopInterchange)
780     PM.add(createLoopInterchangePass());
781 
782   if (!DisableUnrollLoops)
783     PM.add(createSimpleLoopUnrollPass(OptLevel));   // Unroll small loops
784   PM.add(createLoopVectorizePass(true, LoopVectorize));
785   // The vectorizer may have significantly shortened a loop body; unroll again.
786   if (!DisableUnrollLoops)
787     PM.add(createLoopUnrollPass(OptLevel));
788 
789   // Now that we've optimized loops (in particular loop induction variables),
790   // we may have exposed more scalar opportunities. Run parts of the scalar
791   // optimizer again at this point.
792   addInstructionCombiningPass(PM); // Initial cleanup
793   PM.add(createCFGSimplificationPass()); // if-convert
794   PM.add(createSCCPPass()); // Propagate exposed constants
795   addInstructionCombiningPass(PM); // Clean up again
796   PM.add(createBitTrackingDCEPass());
797 
798   // More scalar chains could be vectorized due to more alias information
799   if (RunSLPAfterLoopVectorization)
800     if (SLPVectorize)
801       PM.add(createSLPVectorizerPass()); // Vectorize parallel scalar chains.
802 
803   // After vectorization, assume intrinsics may tell us more about pointer
804   // alignments.
805   PM.add(createAlignmentFromAssumptionsPass());
806 
807   // Cleanup and simplify the code after the scalar optimizations.
808   addInstructionCombiningPass(PM);
809   addExtensionsToPM(EP_Peephole, PM);
810 
811   PM.add(createJumpThreadingPass());
812 }
813 
814 void PassManagerBuilder::addLateLTOOptimizationPasses(
815     legacy::PassManagerBase &PM) {
816   // Delete basic blocks, which optimization passes may have killed.
817   PM.add(createCFGSimplificationPass());
818 
819   // Drop bodies of available externally objects to improve GlobalDCE.
820   PM.add(createEliminateAvailableExternallyPass());
821 
822   // Now that we have optimized the program, discard unreachable functions.
823   PM.add(createGlobalDCEPass());
824 
825   // FIXME: this is profitable (for compiler time) to do at -O0 too, but
826   // currently it damages debug info.
827   if (MergeFunctions)
828     PM.add(createMergeFunctionsPass());
829 }
830 
831 void PassManagerBuilder::populateThinLTOPassManager(
832     legacy::PassManagerBase &PM) {
833   PerformThinLTO = true;
834 
835   if (VerifyInput)
836     PM.add(createVerifierPass());
837 
838   if (ImportSummary) {
839     // These passes import type identifier resolutions for whole-program
840     // devirtualization and CFI. They must run early because other passes may
841     // disturb the specific instruction patterns that these passes look for,
842     // creating dependencies on resolutions that may not appear in the summary.
843     //
844     // For example, GVN may transform the pattern assume(type.test) appearing in
845     // two basic blocks into assume(phi(type.test, type.test)), which would
846     // transform a dependency on a WPD resolution into a dependency on a type
847     // identifier resolution for CFI.
848     //
849     // Also, WPD has access to more precise information than ICP and can
850     // devirtualize more effectively, so it should operate on the IR first.
851     PM.add(createWholeProgramDevirtPass(nullptr, ImportSummary));
852     PM.add(createLowerTypeTestsPass(nullptr, ImportSummary));
853   }
854 
855   populateModulePassManager(PM);
856 
857   if (VerifyOutput)
858     PM.add(createVerifierPass());
859   PerformThinLTO = false;
860 }
861 
862 void PassManagerBuilder::populateLTOPassManager(legacy::PassManagerBase &PM) {
863   if (LibraryInfo)
864     PM.add(new TargetLibraryInfoWrapperPass(*LibraryInfo));
865 
866   if (VerifyInput)
867     PM.add(createVerifierPass());
868 
869   if (OptLevel != 0)
870     addLTOOptimizationPasses(PM);
871   else {
872     // The whole-program-devirt pass needs to run at -O0 because only it knows
873     // about the llvm.type.checked.load intrinsic: it needs to both lower the
874     // intrinsic itself and handle it in the summary.
875     PM.add(createWholeProgramDevirtPass(ExportSummary, nullptr));
876   }
877 
878   // Create a function that performs CFI checks for cross-DSO calls with targets
879   // in the current module.
880   PM.add(createCrossDSOCFIPass());
881 
882   // Lower type metadata and the type.test intrinsic. This pass supports Clang's
883   // control flow integrity mechanisms (-fsanitize=cfi*) and needs to run at
884   // link time if CFI is enabled. The pass does nothing if CFI is disabled.
885   PM.add(createLowerTypeTestsPass(ExportSummary, nullptr));
886 
887   if (OptLevel != 0)
888     addLateLTOOptimizationPasses(PM);
889 
890   if (VerifyOutput)
891     PM.add(createVerifierPass());
892 }
893 
894 inline PassManagerBuilder *unwrap(LLVMPassManagerBuilderRef P) {
895     return reinterpret_cast<PassManagerBuilder*>(P);
896 }
897 
898 inline LLVMPassManagerBuilderRef wrap(PassManagerBuilder *P) {
899   return reinterpret_cast<LLVMPassManagerBuilderRef>(P);
900 }
901 
902 LLVMPassManagerBuilderRef LLVMPassManagerBuilderCreate() {
903   PassManagerBuilder *PMB = new PassManagerBuilder();
904   return wrap(PMB);
905 }
906 
907 void LLVMPassManagerBuilderDispose(LLVMPassManagerBuilderRef PMB) {
908   PassManagerBuilder *Builder = unwrap(PMB);
909   delete Builder;
910 }
911 
912 void
913 LLVMPassManagerBuilderSetOptLevel(LLVMPassManagerBuilderRef PMB,
914                                   unsigned OptLevel) {
915   PassManagerBuilder *Builder = unwrap(PMB);
916   Builder->OptLevel = OptLevel;
917 }
918 
919 void
920 LLVMPassManagerBuilderSetSizeLevel(LLVMPassManagerBuilderRef PMB,
921                                    unsigned SizeLevel) {
922   PassManagerBuilder *Builder = unwrap(PMB);
923   Builder->SizeLevel = SizeLevel;
924 }
925 
926 void
927 LLVMPassManagerBuilderSetDisableUnitAtATime(LLVMPassManagerBuilderRef PMB,
928                                             LLVMBool Value) {
929   PassManagerBuilder *Builder = unwrap(PMB);
930   Builder->DisableUnitAtATime = Value;
931 }
932 
933 void
934 LLVMPassManagerBuilderSetDisableUnrollLoops(LLVMPassManagerBuilderRef PMB,
935                                             LLVMBool Value) {
936   PassManagerBuilder *Builder = unwrap(PMB);
937   Builder->DisableUnrollLoops = Value;
938 }
939 
940 void
941 LLVMPassManagerBuilderSetDisableSimplifyLibCalls(LLVMPassManagerBuilderRef PMB,
942                                                  LLVMBool Value) {
943   // NOTE: The simplify-libcalls pass has been removed.
944 }
945 
946 void
947 LLVMPassManagerBuilderUseInlinerWithThreshold(LLVMPassManagerBuilderRef PMB,
948                                               unsigned Threshold) {
949   PassManagerBuilder *Builder = unwrap(PMB);
950   Builder->Inliner = createFunctionInliningPass(Threshold);
951 }
952 
953 void
954 LLVMPassManagerBuilderPopulateFunctionPassManager(LLVMPassManagerBuilderRef PMB,
955                                                   LLVMPassManagerRef PM) {
956   PassManagerBuilder *Builder = unwrap(PMB);
957   legacy::FunctionPassManager *FPM = unwrap<legacy::FunctionPassManager>(PM);
958   Builder->populateFunctionPassManager(*FPM);
959 }
960 
961 void
962 LLVMPassManagerBuilderPopulateModulePassManager(LLVMPassManagerBuilderRef PMB,
963                                                 LLVMPassManagerRef PM) {
964   PassManagerBuilder *Builder = unwrap(PMB);
965   legacy::PassManagerBase *MPM = unwrap(PM);
966   Builder->populateModulePassManager(*MPM);
967 }
968 
969 void LLVMPassManagerBuilderPopulateLTOPassManager(LLVMPassManagerBuilderRef PMB,
970                                                   LLVMPassManagerRef PM,
971                                                   LLVMBool Internalize,
972                                                   LLVMBool RunInliner) {
973   PassManagerBuilder *Builder = unwrap(PMB);
974   legacy::PassManagerBase *LPM = unwrap(PM);
975 
976   // A small backwards compatibility hack. populateLTOPassManager used to take
977   // an RunInliner option.
978   if (RunInliner && !Builder->Inliner)
979     Builder->Inliner = createFunctionInliningPass();
980 
981   Builder->populateLTOPassManager(*LPM);
982 }
983