xref: /llvm-project/llvm/lib/CodeGen/TargetPassConfig.cpp (revision c6638c813bd77c76f2a01c1831004deb64399be7)
1 //===- TargetPassConfig.cpp - Target independent code generation passes ---===//
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 interfaces to access the target independent code
11 // generation passes provided by the LLVM backend.
12 //
13 //===---------------------------------------------------------------------===//
14 
15 #include "llvm/CodeGen/TargetPassConfig.h"
16 #include "llvm/ADT/DenseMap.h"
17 #include "llvm/ADT/SmallVector.h"
18 #include "llvm/ADT/StringRef.h"
19 #include "llvm/Analysis/BasicAliasAnalysis.h"
20 #include "llvm/Analysis/CFLAndersAliasAnalysis.h"
21 #include "llvm/Analysis/CFLSteensAliasAnalysis.h"
22 #include "llvm/Analysis/CallGraphSCCPass.h"
23 #include "llvm/Analysis/ScopedNoAliasAA.h"
24 #include "llvm/Analysis/TargetTransformInfo.h"
25 #include "llvm/Analysis/TypeBasedAliasAnalysis.h"
26 #include "llvm/CodeGen/MachineFunctionPass.h"
27 #include "llvm/CodeGen/MachinePassRegistry.h"
28 #include "llvm/CodeGen/Passes.h"
29 #include "llvm/CodeGen/RegAllocRegistry.h"
30 #include "llvm/IR/IRPrintingPasses.h"
31 #include "llvm/IR/LegacyPassManager.h"
32 #include "llvm/IR/Verifier.h"
33 #include "llvm/MC/MCAsmInfo.h"
34 #include "llvm/MC/MCTargetOptions.h"
35 #include "llvm/Pass.h"
36 #include "llvm/Support/CodeGen.h"
37 #include "llvm/Support/CommandLine.h"
38 #include "llvm/Support/Compiler.h"
39 #include "llvm/Support/Debug.h"
40 #include "llvm/Support/ErrorHandling.h"
41 #include "llvm/Support/Threading.h"
42 #include "llvm/Target/TargetMachine.h"
43 #include "llvm/Transforms/Scalar.h"
44 #include "llvm/Transforms/Utils/SymbolRewriter.h"
45 #include <cassert>
46 #include <string>
47 
48 using namespace llvm;
49 
50 cl::opt<bool> EnableIPRA("enable-ipra", cl::init(false), cl::Hidden,
51                          cl::desc("Enable interprocedural register allocation "
52                                   "to reduce load/store at procedure calls."));
53 static cl::opt<bool> DisablePostRASched("disable-post-ra", cl::Hidden,
54     cl::desc("Disable Post Regalloc Scheduler"));
55 static cl::opt<bool> DisableBranchFold("disable-branch-fold", cl::Hidden,
56     cl::desc("Disable branch folding"));
57 static cl::opt<bool> DisableTailDuplicate("disable-tail-duplicate", cl::Hidden,
58     cl::desc("Disable tail duplication"));
59 static cl::opt<bool> DisableEarlyTailDup("disable-early-taildup", cl::Hidden,
60     cl::desc("Disable pre-register allocation tail duplication"));
61 static cl::opt<bool> DisableBlockPlacement("disable-block-placement",
62     cl::Hidden, cl::desc("Disable probability-driven block placement"));
63 static cl::opt<bool> EnableBlockPlacementStats("enable-block-placement-stats",
64     cl::Hidden, cl::desc("Collect probability-driven block placement stats"));
65 static cl::opt<bool> DisableSSC("disable-ssc", cl::Hidden,
66     cl::desc("Disable Stack Slot Coloring"));
67 static cl::opt<bool> DisableMachineDCE("disable-machine-dce", cl::Hidden,
68     cl::desc("Disable Machine Dead Code Elimination"));
69 static cl::opt<bool> DisableEarlyIfConversion("disable-early-ifcvt", cl::Hidden,
70     cl::desc("Disable Early If-conversion"));
71 static cl::opt<bool> DisableMachineLICM("disable-machine-licm", cl::Hidden,
72     cl::desc("Disable Machine LICM"));
73 static cl::opt<bool> DisableMachineCSE("disable-machine-cse", cl::Hidden,
74     cl::desc("Disable Machine Common Subexpression Elimination"));
75 static cl::opt<cl::boolOrDefault> OptimizeRegAlloc(
76     "optimize-regalloc", cl::Hidden,
77     cl::desc("Enable optimized register allocation compilation path."));
78 static cl::opt<bool> DisablePostRAMachineLICM("disable-postra-machine-licm",
79     cl::Hidden,
80     cl::desc("Disable Machine LICM"));
81 static cl::opt<bool> DisableMachineSink("disable-machine-sink", cl::Hidden,
82     cl::desc("Disable Machine Sinking"));
83 static cl::opt<bool> DisableLSR("disable-lsr", cl::Hidden,
84     cl::desc("Disable Loop Strength Reduction Pass"));
85 static cl::opt<bool> DisableConstantHoisting("disable-constant-hoisting",
86     cl::Hidden, cl::desc("Disable ConstantHoisting"));
87 static cl::opt<bool> DisableCGP("disable-cgp", cl::Hidden,
88     cl::desc("Disable Codegen Prepare"));
89 static cl::opt<bool> DisableCopyProp("disable-copyprop", cl::Hidden,
90     cl::desc("Disable Copy Propagation pass"));
91 static cl::opt<bool> DisablePartialLibcallInlining("disable-partial-libcall-inlining",
92     cl::Hidden, cl::desc("Disable Partial Libcall Inlining"));
93 static cl::opt<bool> EnableImplicitNullChecks(
94     "enable-implicit-null-checks",
95     cl::desc("Fold null checks into faulting memory operations"),
96     cl::init(false), cl::Hidden);
97 static cl::opt<bool>
98     EnableMergeICmps("enable-mergeicmps",
99                      cl::desc("Merge ICmp chains into a single memcmp"),
100                      cl::init(false), cl::Hidden);
101 static cl::opt<bool> PrintLSR("print-lsr-output", cl::Hidden,
102     cl::desc("Print LLVM IR produced by the loop-reduce pass"));
103 static cl::opt<bool> PrintISelInput("print-isel-input", cl::Hidden,
104     cl::desc("Print LLVM IR input to isel pass"));
105 static cl::opt<bool> PrintGCInfo("print-gc", cl::Hidden,
106     cl::desc("Dump garbage collector data"));
107 static cl::opt<bool> VerifyMachineCode("verify-machineinstrs", cl::Hidden,
108     cl::desc("Verify generated machine code"),
109     cl::init(false),
110     cl::ZeroOrMore);
111 static cl::opt<bool> EnableMachineOutliner("enable-machine-outliner",
112     cl::Hidden,
113     cl::desc("Enable machine outliner"));
114 static cl::opt<bool> EnableLinkOnceODROutlining(
115     "enable-linkonceodr-outlining",
116     cl::Hidden,
117     cl::desc("Enable the machine outliner on linkonceodr functions"),
118     cl::init(false));
119 // Enable or disable FastISel. Both options are needed, because
120 // FastISel is enabled by default with -fast, and we wish to be
121 // able to enable or disable fast-isel independently from -O0.
122 static cl::opt<cl::boolOrDefault>
123 EnableFastISelOption("fast-isel", cl::Hidden,
124   cl::desc("Enable the \"fast\" instruction selector"));
125 
126 static cl::opt<cl::boolOrDefault> EnableGlobalISelOption(
127     "global-isel", cl::Hidden,
128     cl::desc("Enable the \"global\" instruction selector"));
129 
130 static cl::opt<std::string> PrintMachineInstrs(
131     "print-machineinstrs", cl::ValueOptional, cl::desc("Print machine instrs"),
132     cl::value_desc("pass-name"), cl::init("option-unspecified"), cl::Hidden);
133 
134 static cl::opt<int> EnableGlobalISelAbort(
135     "global-isel-abort", cl::Hidden,
136     cl::desc("Enable abort calls when \"global\" instruction selection "
137              "fails to lower/select an instruction: 0 disable the abort, "
138              "1 enable the abort, and "
139              "2 disable the abort but emit a diagnostic on failure"),
140     cl::init(1));
141 
142 // Temporary option to allow experimenting with MachineScheduler as a post-RA
143 // scheduler. Targets can "properly" enable this with
144 // substitutePass(&PostRASchedulerID, &PostMachineSchedulerID).
145 // Targets can return true in targetSchedulesPostRAScheduling() and
146 // insert a PostRA scheduling pass wherever it wants.
147 cl::opt<bool> MISchedPostRA("misched-postra", cl::Hidden,
148   cl::desc("Run MachineScheduler post regalloc (independent of preRA sched)"));
149 
150 // Experimental option to run live interval analysis early.
151 static cl::opt<bool> EarlyLiveIntervals("early-live-intervals", cl::Hidden,
152     cl::desc("Run live interval analysis earlier in the pipeline"));
153 
154 // Experimental option to use CFL-AA in codegen
155 enum class CFLAAType { None, Steensgaard, Andersen, Both };
156 static cl::opt<CFLAAType> UseCFLAA(
157     "use-cfl-aa-in-codegen", cl::init(CFLAAType::None), cl::Hidden,
158     cl::desc("Enable the new, experimental CFL alias analysis in CodeGen"),
159     cl::values(clEnumValN(CFLAAType::None, "none", "Disable CFL-AA"),
160                clEnumValN(CFLAAType::Steensgaard, "steens",
161                           "Enable unification-based CFL-AA"),
162                clEnumValN(CFLAAType::Andersen, "anders",
163                           "Enable inclusion-based CFL-AA"),
164                clEnumValN(CFLAAType::Both, "both",
165                           "Enable both variants of CFL-AA")));
166 
167 /// Option names for limiting the codegen pipeline.
168 /// Those are used in error reporting and we didn't want
169 /// to duplicate their names all over the place.
170 const char *StartAfterOptName = "start-after";
171 const char *StartBeforeOptName = "start-before";
172 const char *StopAfterOptName = "stop-after";
173 const char *StopBeforeOptName = "stop-before";
174 
175 static cl::opt<std::string>
176     StartAfterOpt(StringRef(StartAfterOptName),
177                   cl::desc("Resume compilation after a specific pass"),
178                   cl::value_desc("pass-name"), cl::init(""), cl::Hidden);
179 
180 static cl::opt<std::string>
181     StartBeforeOpt(StringRef(StartBeforeOptName),
182                    cl::desc("Resume compilation before a specific pass"),
183                    cl::value_desc("pass-name"), cl::init(""), cl::Hidden);
184 
185 static cl::opt<std::string>
186     StopAfterOpt(StringRef(StopAfterOptName),
187                  cl::desc("Stop compilation after a specific pass"),
188                  cl::value_desc("pass-name"), cl::init(""), cl::Hidden);
189 
190 static cl::opt<std::string>
191     StopBeforeOpt(StringRef(StopBeforeOptName),
192                   cl::desc("Stop compilation before a specific pass"),
193                   cl::value_desc("pass-name"), cl::init(""), cl::Hidden);
194 
195 /// Allow standard passes to be disabled by command line options. This supports
196 /// simple binary flags that either suppress the pass or do nothing.
197 /// i.e. -disable-mypass=false has no effect.
198 /// These should be converted to boolOrDefault in order to use applyOverride.
199 static IdentifyingPassPtr applyDisable(IdentifyingPassPtr PassID,
200                                        bool Override) {
201   if (Override)
202     return IdentifyingPassPtr();
203   return PassID;
204 }
205 
206 /// Allow standard passes to be disabled by the command line, regardless of who
207 /// is adding the pass.
208 ///
209 /// StandardID is the pass identified in the standard pass pipeline and provided
210 /// to addPass(). It may be a target-specific ID in the case that the target
211 /// directly adds its own pass, but in that case we harmlessly fall through.
212 ///
213 /// TargetID is the pass that the target has configured to override StandardID.
214 ///
215 /// StandardID may be a pseudo ID. In that case TargetID is the name of the real
216 /// pass to run. This allows multiple options to control a single pass depending
217 /// on where in the pipeline that pass is added.
218 static IdentifyingPassPtr overridePass(AnalysisID StandardID,
219                                        IdentifyingPassPtr TargetID) {
220   if (StandardID == &PostRASchedulerID)
221     return applyDisable(TargetID, DisablePostRASched);
222 
223   if (StandardID == &BranchFolderPassID)
224     return applyDisable(TargetID, DisableBranchFold);
225 
226   if (StandardID == &TailDuplicateID)
227     return applyDisable(TargetID, DisableTailDuplicate);
228 
229   if (StandardID == &EarlyTailDuplicateID)
230     return applyDisable(TargetID, DisableEarlyTailDup);
231 
232   if (StandardID == &MachineBlockPlacementID)
233     return applyDisable(TargetID, DisableBlockPlacement);
234 
235   if (StandardID == &StackSlotColoringID)
236     return applyDisable(TargetID, DisableSSC);
237 
238   if (StandardID == &DeadMachineInstructionElimID)
239     return applyDisable(TargetID, DisableMachineDCE);
240 
241   if (StandardID == &EarlyIfConverterID)
242     return applyDisable(TargetID, DisableEarlyIfConversion);
243 
244   if (StandardID == &EarlyMachineLICMID)
245     return applyDisable(TargetID, DisableMachineLICM);
246 
247   if (StandardID == &MachineCSEID)
248     return applyDisable(TargetID, DisableMachineCSE);
249 
250   if (StandardID == &MachineLICMID)
251     return applyDisable(TargetID, DisablePostRAMachineLICM);
252 
253   if (StandardID == &MachineSinkingID)
254     return applyDisable(TargetID, DisableMachineSink);
255 
256   if (StandardID == &MachineCopyPropagationID)
257     return applyDisable(TargetID, DisableCopyProp);
258 
259   return TargetID;
260 }
261 
262 //===---------------------------------------------------------------------===//
263 /// TargetPassConfig
264 //===---------------------------------------------------------------------===//
265 
266 INITIALIZE_PASS(TargetPassConfig, "targetpassconfig",
267                 "Target Pass Configuration", false, false)
268 char TargetPassConfig::ID = 0;
269 
270 namespace {
271 
272 struct InsertedPass {
273   AnalysisID TargetPassID;
274   IdentifyingPassPtr InsertedPassID;
275   bool VerifyAfter;
276   bool PrintAfter;
277 
278   InsertedPass(AnalysisID TargetPassID, IdentifyingPassPtr InsertedPassID,
279                bool VerifyAfter, bool PrintAfter)
280       : TargetPassID(TargetPassID), InsertedPassID(InsertedPassID),
281         VerifyAfter(VerifyAfter), PrintAfter(PrintAfter) {}
282 
283   Pass *getInsertedPass() const {
284     assert(InsertedPassID.isValid() && "Illegal Pass ID!");
285     if (InsertedPassID.isInstance())
286       return InsertedPassID.getInstance();
287     Pass *NP = Pass::createPass(InsertedPassID.getID());
288     assert(NP && "Pass ID not registered");
289     return NP;
290   }
291 };
292 
293 } // end anonymous namespace
294 
295 namespace llvm {
296 
297 class PassConfigImpl {
298 public:
299   // List of passes explicitly substituted by this target. Normally this is
300   // empty, but it is a convenient way to suppress or replace specific passes
301   // that are part of a standard pass pipeline without overridding the entire
302   // pipeline. This mechanism allows target options to inherit a standard pass's
303   // user interface. For example, a target may disable a standard pass by
304   // default by substituting a pass ID of zero, and the user may still enable
305   // that standard pass with an explicit command line option.
306   DenseMap<AnalysisID,IdentifyingPassPtr> TargetPasses;
307 
308   /// Store the pairs of <AnalysisID, AnalysisID> of which the second pass
309   /// is inserted after each instance of the first one.
310   SmallVector<InsertedPass, 4> InsertedPasses;
311 };
312 
313 } // end namespace llvm
314 
315 // Out of line virtual method.
316 TargetPassConfig::~TargetPassConfig() {
317   delete Impl;
318 }
319 
320 static const PassInfo *getPassInfo(StringRef PassName) {
321   if (PassName.empty())
322     return nullptr;
323 
324   const PassRegistry &PR = *PassRegistry::getPassRegistry();
325   const PassInfo *PI = PR.getPassInfo(PassName);
326   if (!PI)
327     report_fatal_error(Twine('\"') + Twine(PassName) +
328                        Twine("\" pass is not registered."));
329   return PI;
330 }
331 
332 static AnalysisID getPassIDFromName(StringRef PassName) {
333   const PassInfo *PI = getPassInfo(PassName);
334   return PI ? PI->getTypeInfo() : nullptr;
335 }
336 
337 void TargetPassConfig::setStartStopPasses() {
338   StartBefore = getPassIDFromName(StartBeforeOpt);
339   StartAfter = getPassIDFromName(StartAfterOpt);
340   StopBefore = getPassIDFromName(StopBeforeOpt);
341   StopAfter = getPassIDFromName(StopAfterOpt);
342   if (StartBefore && StartAfter)
343     report_fatal_error(Twine(StartBeforeOptName) + Twine(" and ") +
344                        Twine(StartAfterOptName) + Twine(" specified!"));
345   if (StopBefore && StopAfter)
346     report_fatal_error(Twine(StopBeforeOptName) + Twine(" and ") +
347                        Twine(StopAfterOptName) + Twine(" specified!"));
348   Started = (StartAfter == nullptr) && (StartBefore == nullptr);
349 }
350 
351 // Out of line constructor provides default values for pass options and
352 // registers all common codegen passes.
353 TargetPassConfig::TargetPassConfig(LLVMTargetMachine &TM, PassManagerBase &pm)
354     : ImmutablePass(ID), PM(&pm), TM(&TM) {
355   Impl = new PassConfigImpl();
356 
357   // Register all target independent codegen passes to activate their PassIDs,
358   // including this pass itself.
359   initializeCodeGen(*PassRegistry::getPassRegistry());
360 
361   // Also register alias analysis passes required by codegen passes.
362   initializeBasicAAWrapperPassPass(*PassRegistry::getPassRegistry());
363   initializeAAResultsWrapperPassPass(*PassRegistry::getPassRegistry());
364 
365   if (StringRef(PrintMachineInstrs.getValue()).equals(""))
366     TM.Options.PrintMachineCode = true;
367 
368   if (EnableIPRA.getNumOccurrences())
369     TM.Options.EnableIPRA = EnableIPRA;
370   else {
371     // If not explicitly specified, use target default.
372     TM.Options.EnableIPRA = TM.useIPRA();
373   }
374 
375   if (TM.Options.EnableIPRA)
376     setRequiresCodeGenSCCOrder();
377 
378   setStartStopPasses();
379 }
380 
381 CodeGenOpt::Level TargetPassConfig::getOptLevel() const {
382   return TM->getOptLevel();
383 }
384 
385 /// Insert InsertedPassID pass after TargetPassID.
386 void TargetPassConfig::insertPass(AnalysisID TargetPassID,
387                                   IdentifyingPassPtr InsertedPassID,
388                                   bool VerifyAfter, bool PrintAfter) {
389   assert(((!InsertedPassID.isInstance() &&
390            TargetPassID != InsertedPassID.getID()) ||
391           (InsertedPassID.isInstance() &&
392            TargetPassID != InsertedPassID.getInstance()->getPassID())) &&
393          "Insert a pass after itself!");
394   Impl->InsertedPasses.emplace_back(TargetPassID, InsertedPassID, VerifyAfter,
395                                     PrintAfter);
396 }
397 
398 /// createPassConfig - Create a pass configuration object to be used by
399 /// addPassToEmitX methods for generating a pipeline of CodeGen passes.
400 ///
401 /// Targets may override this to extend TargetPassConfig.
402 TargetPassConfig *LLVMTargetMachine::createPassConfig(PassManagerBase &PM) {
403   return new TargetPassConfig(*this, PM);
404 }
405 
406 TargetPassConfig::TargetPassConfig()
407   : ImmutablePass(ID) {
408   report_fatal_error("Trying to construct TargetPassConfig without a target "
409                      "machine. Scheduling a CodeGen pass without a target "
410                      "triple set?");
411 }
412 
413 bool TargetPassConfig::hasLimitedCodeGenPipeline() const {
414   return StartBefore || StartAfter || StopBefore || StopAfter;
415 }
416 
417 std::string
418 TargetPassConfig::getLimitedCodeGenPipelineReason(const char *Separator) const {
419   if (!hasLimitedCodeGenPipeline())
420     return std::string();
421   std::string Res;
422   static cl::opt<std::string> *PassNames[] = {&StartAfterOpt, &StartBeforeOpt,
423                                               &StopAfterOpt, &StopBeforeOpt};
424   static const char *OptNames[] = {StartAfterOptName, StartBeforeOptName,
425                                    StopAfterOptName, StopBeforeOptName};
426   bool IsFirst = true;
427   for (int Idx = 0; Idx < 4; ++Idx)
428     if (!PassNames[Idx]->empty()) {
429       if (!IsFirst)
430         Res += Separator;
431       IsFirst = false;
432       Res += OptNames[Idx];
433     }
434   return Res;
435 }
436 
437 // Helper to verify the analysis is really immutable.
438 void TargetPassConfig::setOpt(bool &Opt, bool Val) {
439   assert(!Initialized && "PassConfig is immutable");
440   Opt = Val;
441 }
442 
443 void TargetPassConfig::substitutePass(AnalysisID StandardID,
444                                       IdentifyingPassPtr TargetID) {
445   Impl->TargetPasses[StandardID] = TargetID;
446 }
447 
448 IdentifyingPassPtr TargetPassConfig::getPassSubstitution(AnalysisID ID) const {
449   DenseMap<AnalysisID, IdentifyingPassPtr>::const_iterator
450     I = Impl->TargetPasses.find(ID);
451   if (I == Impl->TargetPasses.end())
452     return ID;
453   return I->second;
454 }
455 
456 bool TargetPassConfig::isPassSubstitutedOrOverridden(AnalysisID ID) const {
457   IdentifyingPassPtr TargetID = getPassSubstitution(ID);
458   IdentifyingPassPtr FinalPtr = overridePass(ID, TargetID);
459   return !FinalPtr.isValid() || FinalPtr.isInstance() ||
460       FinalPtr.getID() != ID;
461 }
462 
463 /// Add a pass to the PassManager if that pass is supposed to be run.  If the
464 /// Started/Stopped flags indicate either that the compilation should start at
465 /// a later pass or that it should stop after an earlier pass, then do not add
466 /// the pass.  Finally, compare the current pass against the StartAfter
467 /// and StopAfter options and change the Started/Stopped flags accordingly.
468 void TargetPassConfig::addPass(Pass *P, bool verifyAfter, bool printAfter) {
469   assert(!Initialized && "PassConfig is immutable");
470 
471   // Cache the Pass ID here in case the pass manager finds this pass is
472   // redundant with ones already scheduled / available, and deletes it.
473   // Fundamentally, once we add the pass to the manager, we no longer own it
474   // and shouldn't reference it.
475   AnalysisID PassID = P->getPassID();
476 
477   if (StartBefore == PassID)
478     Started = true;
479   if (StopBefore == PassID)
480     Stopped = true;
481   if (Started && !Stopped) {
482     std::string Banner;
483     // Construct banner message before PM->add() as that may delete the pass.
484     if (AddingMachinePasses && (printAfter || verifyAfter))
485       Banner = std::string("After ") + std::string(P->getPassName());
486     PM->add(P);
487     if (AddingMachinePasses) {
488       if (printAfter)
489         addPrintPass(Banner);
490       if (verifyAfter)
491         addVerifyPass(Banner);
492     }
493 
494     // Add the passes after the pass P if there is any.
495     for (auto IP : Impl->InsertedPasses) {
496       if (IP.TargetPassID == PassID)
497         addPass(IP.getInsertedPass(), IP.VerifyAfter, IP.PrintAfter);
498     }
499   } else {
500     delete P;
501   }
502   if (StopAfter == PassID)
503     Stopped = true;
504   if (StartAfter == PassID)
505     Started = true;
506   if (Stopped && !Started)
507     report_fatal_error("Cannot stop compilation after pass that is not run");
508 }
509 
510 /// Add a CodeGen pass at this point in the pipeline after checking for target
511 /// and command line overrides.
512 ///
513 /// addPass cannot return a pointer to the pass instance because is internal the
514 /// PassManager and the instance we create here may already be freed.
515 AnalysisID TargetPassConfig::addPass(AnalysisID PassID, bool verifyAfter,
516                                      bool printAfter) {
517   IdentifyingPassPtr TargetID = getPassSubstitution(PassID);
518   IdentifyingPassPtr FinalPtr = overridePass(PassID, TargetID);
519   if (!FinalPtr.isValid())
520     return nullptr;
521 
522   Pass *P;
523   if (FinalPtr.isInstance())
524     P = FinalPtr.getInstance();
525   else {
526     P = Pass::createPass(FinalPtr.getID());
527     if (!P)
528       llvm_unreachable("Pass ID not registered");
529   }
530   AnalysisID FinalID = P->getPassID();
531   addPass(P, verifyAfter, printAfter); // Ends the lifetime of P.
532 
533   return FinalID;
534 }
535 
536 void TargetPassConfig::printAndVerify(const std::string &Banner) {
537   addPrintPass(Banner);
538   addVerifyPass(Banner);
539 }
540 
541 void TargetPassConfig::addPrintPass(const std::string &Banner) {
542   if (TM->shouldPrintMachineCode())
543     PM->add(createMachineFunctionPrinterPass(dbgs(), Banner));
544 }
545 
546 void TargetPassConfig::addVerifyPass(const std::string &Banner) {
547   bool Verify = VerifyMachineCode;
548 #ifdef EXPENSIVE_CHECKS
549   if (VerifyMachineCode == cl::BOU_UNSET)
550     Verify = TM->isMachineVerifierClean();
551 #endif
552   if (Verify)
553     PM->add(createMachineVerifierPass(Banner));
554 }
555 
556 /// Add common target configurable passes that perform LLVM IR to IR transforms
557 /// following machine independent optimization.
558 void TargetPassConfig::addIRPasses() {
559   switch (UseCFLAA) {
560   case CFLAAType::Steensgaard:
561     addPass(createCFLSteensAAWrapperPass());
562     break;
563   case CFLAAType::Andersen:
564     addPass(createCFLAndersAAWrapperPass());
565     break;
566   case CFLAAType::Both:
567     addPass(createCFLAndersAAWrapperPass());
568     addPass(createCFLSteensAAWrapperPass());
569     break;
570   default:
571     break;
572   }
573 
574   // Basic AliasAnalysis support.
575   // Add TypeBasedAliasAnalysis before BasicAliasAnalysis so that
576   // BasicAliasAnalysis wins if they disagree. This is intended to help
577   // support "obvious" type-punning idioms.
578   addPass(createTypeBasedAAWrapperPass());
579   addPass(createScopedNoAliasAAWrapperPass());
580   addPass(createBasicAAWrapperPass());
581 
582   // Before running any passes, run the verifier to determine if the input
583   // coming from the front-end and/or optimizer is valid.
584   if (!DisableVerify)
585     addPass(createVerifierPass());
586 
587   // Run loop strength reduction before anything else.
588   if (getOptLevel() != CodeGenOpt::None && !DisableLSR) {
589     addPass(createLoopStrengthReducePass());
590     if (PrintLSR)
591       addPass(createPrintFunctionPass(dbgs(), "\n\n*** Code after LSR ***\n"));
592   }
593 
594   if (getOptLevel() != CodeGenOpt::None) {
595     // The MergeICmpsPass tries to create memcmp calls by grouping sequences of
596     // loads and compares. ExpandMemCmpPass then tries to expand those calls
597     // into optimally-sized loads and compares. The transforms are enabled by a
598     // target lowering hook.
599     if (EnableMergeICmps)
600       addPass(createMergeICmpsPass());
601     addPass(createExpandMemCmpPass());
602   }
603 
604   // Run GC lowering passes for builtin collectors
605   // TODO: add a pass insertion point here
606   addPass(createGCLoweringPass());
607   addPass(createShadowStackGCLoweringPass());
608 
609   // Make sure that no unreachable blocks are instruction selected.
610   addPass(createUnreachableBlockEliminationPass());
611 
612   // Prepare expensive constants for SelectionDAG.
613   if (getOptLevel() != CodeGenOpt::None && !DisableConstantHoisting)
614     addPass(createConstantHoistingPass());
615 
616   if (getOptLevel() != CodeGenOpt::None && !DisablePartialLibcallInlining)
617     addPass(createPartiallyInlineLibCallsPass());
618 
619   // Instrument function entry and exit, e.g. with calls to mcount().
620   addPass(createPostInlineEntryExitInstrumenterPass());
621 
622   // Add scalarization of target's unsupported masked memory intrinsics pass.
623   // the unsupported intrinsic will be replaced with a chain of basic blocks,
624   // that stores/loads element one-by-one if the appropriate mask bit is set.
625   addPass(createScalarizeMaskedMemIntrinPass());
626 
627   // Expand reduction intrinsics into shuffle sequences if the target wants to.
628   addPass(createExpandReductionsPass());
629 }
630 
631 /// Turn exception handling constructs into something the code generators can
632 /// handle.
633 void TargetPassConfig::addPassesToHandleExceptions() {
634   const MCAsmInfo *MCAI = TM->getMCAsmInfo();
635   assert(MCAI && "No MCAsmInfo");
636   switch (MCAI->getExceptionHandlingType()) {
637   case ExceptionHandling::SjLj:
638     // SjLj piggy-backs on dwarf for this bit. The cleanups done apply to both
639     // Dwarf EH prepare needs to be run after SjLj prepare. Otherwise,
640     // catch info can get misplaced when a selector ends up more than one block
641     // removed from the parent invoke(s). This could happen when a landing
642     // pad is shared by multiple invokes and is also a target of a normal
643     // edge from elsewhere.
644     addPass(createSjLjEHPreparePass());
645     LLVM_FALLTHROUGH;
646   case ExceptionHandling::DwarfCFI:
647   case ExceptionHandling::ARM:
648     addPass(createDwarfEHPass());
649     break;
650   case ExceptionHandling::WinEH:
651     // We support using both GCC-style and MSVC-style exceptions on Windows, so
652     // add both preparation passes. Each pass will only actually run if it
653     // recognizes the personality function.
654     addPass(createWinEHPass());
655     addPass(createDwarfEHPass());
656     break;
657   case ExceptionHandling::Wasm:
658     // TODO to prevent warning
659     break;
660   case ExceptionHandling::None:
661     addPass(createLowerInvokePass());
662 
663     // The lower invoke pass may create unreachable code. Remove it.
664     addPass(createUnreachableBlockEliminationPass());
665     break;
666   }
667 }
668 
669 /// Add pass to prepare the LLVM IR for code generation. This should be done
670 /// before exception handling preparation passes.
671 void TargetPassConfig::addCodeGenPrepare() {
672   if (getOptLevel() != CodeGenOpt::None && !DisableCGP)
673     addPass(createCodeGenPreparePass());
674   addPass(createRewriteSymbolsPass());
675 }
676 
677 /// Add common passes that perform LLVM IR to IR transforms in preparation for
678 /// instruction selection.
679 void TargetPassConfig::addISelPrepare() {
680   addPreISel();
681 
682   // Force codegen to run according to the callgraph.
683   if (requiresCodeGenSCCOrder())
684     addPass(new DummyCGSCCPass);
685 
686   // Add both the safe stack and the stack protection passes: each of them will
687   // only protect functions that have corresponding attributes.
688   addPass(createSafeStackPass());
689   addPass(createStackProtectorPass());
690 
691   if (PrintISelInput)
692     addPass(createPrintFunctionPass(
693         dbgs(), "\n\n*** Final LLVM Code input to ISel ***\n"));
694 
695   // All passes which modify the LLVM IR are now complete; run the verifier
696   // to ensure that the IR is valid.
697   if (!DisableVerify)
698     addPass(createVerifierPass());
699 }
700 
701 bool TargetPassConfig::addCoreISelPasses() {
702   // Enable FastISel with -fast-isel, but allow that to be overridden.
703   TM->setO0WantsFastISel(EnableFastISelOption != cl::BOU_FALSE);
704   if (EnableFastISelOption == cl::BOU_TRUE ||
705       (TM->getOptLevel() == CodeGenOpt::None && TM->getO0WantsFastISel()))
706     TM->setFastISel(true);
707 
708   // Ask the target for an instruction selector.
709   // Explicitly enabling fast-isel should override implicitly enabled
710   // global-isel.
711   if (EnableGlobalISelOption == cl::BOU_TRUE ||
712       (EnableGlobalISelOption == cl::BOU_UNSET &&
713        TM->Options.EnableGlobalISel && EnableFastISelOption != cl::BOU_TRUE)) {
714     TM->setFastISel(false);
715 
716     if (addIRTranslator())
717       return true;
718 
719     addPreLegalizeMachineIR();
720 
721     if (addLegalizeMachineIR())
722       return true;
723 
724     // Before running the register bank selector, ask the target if it
725     // wants to run some passes.
726     addPreRegBankSelect();
727 
728     if (addRegBankSelect())
729       return true;
730 
731     addPreGlobalInstructionSelect();
732 
733     if (addGlobalInstructionSelect())
734       return true;
735 
736     // Pass to reset the MachineFunction if the ISel failed.
737     addPass(createResetMachineFunctionPass(
738         reportDiagnosticWhenGlobalISelFallback(), isGlobalISelAbortEnabled()));
739 
740     // Provide a fallback path when we do not want to abort on
741     // not-yet-supported input.
742     if (!isGlobalISelAbortEnabled() && addInstSelector())
743       return true;
744 
745   } else if (addInstSelector())
746     return true;
747 
748   return false;
749 }
750 
751 bool TargetPassConfig::addISelPasses() {
752   if (TM->useEmulatedTLS())
753     addPass(createLowerEmuTLSPass());
754 
755   addPass(createPreISelIntrinsicLoweringPass());
756   addPass(createTargetTransformInfoWrapperPass(TM->getTargetIRAnalysis()));
757   addIRPasses();
758   addCodeGenPrepare();
759   addPassesToHandleExceptions();
760   addISelPrepare();
761 
762   return addCoreISelPasses();
763 }
764 
765 /// -regalloc=... command line option.
766 static FunctionPass *useDefaultRegisterAllocator() { return nullptr; }
767 static cl::opt<RegisterRegAlloc::FunctionPassCtor, false,
768                RegisterPassParser<RegisterRegAlloc>>
769     RegAlloc("regalloc", cl::Hidden, cl::init(&useDefaultRegisterAllocator),
770              cl::desc("Register allocator to use"));
771 
772 /// Add the complete set of target-independent postISel code generator passes.
773 ///
774 /// This can be read as the standard order of major LLVM CodeGen stages. Stages
775 /// with nontrivial configuration or multiple passes are broken out below in
776 /// add%Stage routines.
777 ///
778 /// Any TargetPassConfig::addXX routine may be overriden by the Target. The
779 /// addPre/Post methods with empty header implementations allow injecting
780 /// target-specific fixups just before or after major stages. Additionally,
781 /// targets have the flexibility to change pass order within a stage by
782 /// overriding default implementation of add%Stage routines below. Each
783 /// technique has maintainability tradeoffs because alternate pass orders are
784 /// not well supported. addPre/Post works better if the target pass is easily
785 /// tied to a common pass. But if it has subtle dependencies on multiple passes,
786 /// the target should override the stage instead.
787 ///
788 /// TODO: We could use a single addPre/Post(ID) hook to allow pass injection
789 /// before/after any target-independent pass. But it's currently overkill.
790 void TargetPassConfig::addMachinePasses() {
791   AddingMachinePasses = true;
792 
793   // Insert a machine instr printer pass after the specified pass.
794   if (!StringRef(PrintMachineInstrs.getValue()).equals("") &&
795       !StringRef(PrintMachineInstrs.getValue()).equals("option-unspecified")) {
796     const PassRegistry *PR = PassRegistry::getPassRegistry();
797     const PassInfo *TPI = PR->getPassInfo(PrintMachineInstrs.getValue());
798     const PassInfo *IPI = PR->getPassInfo(StringRef("machineinstr-printer"));
799     assert (TPI && IPI && "Pass ID not registered!");
800     const char *TID = (const char *)(TPI->getTypeInfo());
801     const char *IID = (const char *)(IPI->getTypeInfo());
802     insertPass(TID, IID);
803   }
804 
805   // Print the instruction selected machine code...
806   printAndVerify("After Instruction Selection");
807 
808   // Expand pseudo-instructions emitted by ISel.
809   addPass(&ExpandISelPseudosID);
810 
811   // Add passes that optimize machine instructions in SSA form.
812   if (getOptLevel() != CodeGenOpt::None) {
813     addMachineSSAOptimization();
814   } else {
815     // If the target requests it, assign local variables to stack slots relative
816     // to one another and simplify frame index references where possible.
817     addPass(&LocalStackSlotAllocationID, false);
818   }
819 
820   if (TM->Options.EnableIPRA)
821     addPass(createRegUsageInfoPropPass());
822 
823   // Run pre-ra passes.
824   addPreRegAlloc();
825 
826   // Run register allocation and passes that are tightly coupled with it,
827   // including phi elimination and scheduling.
828   if (getOptimizeRegAlloc())
829     addOptimizedRegAlloc(createRegAllocPass(true));
830   else {
831     if (RegAlloc != &useDefaultRegisterAllocator &&
832         RegAlloc != &createFastRegisterAllocator)
833       report_fatal_error("Must use fast (default) register allocator for unoptimized regalloc.");
834     addFastRegAlloc(createRegAllocPass(false));
835   }
836 
837   // Run post-ra passes.
838   addPostRegAlloc();
839 
840   // Insert prolog/epilog code.  Eliminate abstract frame index references...
841   if (getOptLevel() != CodeGenOpt::None)
842     addPass(&ShrinkWrapID);
843 
844   // Prolog/Epilog inserter needs a TargetMachine to instantiate. But only
845   // do so if it hasn't been disabled, substituted, or overridden.
846   if (!isPassSubstitutedOrOverridden(&PrologEpilogCodeInserterID))
847       addPass(createPrologEpilogInserterPass());
848 
849   /// Add passes that optimize machine instructions after register allocation.
850   if (getOptLevel() != CodeGenOpt::None)
851     addMachineLateOptimization();
852 
853   // Expand pseudo instructions before second scheduling pass.
854   addPass(&ExpandPostRAPseudosID);
855 
856   // Run pre-sched2 passes.
857   addPreSched2();
858 
859   if (EnableImplicitNullChecks)
860     addPass(&ImplicitNullChecksID);
861 
862   // Second pass scheduler.
863   // Let Target optionally insert this pass by itself at some other
864   // point.
865   if (getOptLevel() != CodeGenOpt::None &&
866       !TM->targetSchedulesPostRAScheduling()) {
867     if (MISchedPostRA)
868       addPass(&PostMachineSchedulerID);
869     else
870       addPass(&PostRASchedulerID);
871   }
872 
873   // GC
874   if (addGCPasses()) {
875     if (PrintGCInfo)
876       addPass(createGCInfoPrinter(dbgs()), false, false);
877   }
878 
879   // Basic block placement.
880   if (getOptLevel() != CodeGenOpt::None)
881     addBlockPlacement();
882 
883   addPreEmitPass();
884 
885   if (TM->Options.EnableIPRA)
886     // Collect register usage information and produce a register mask of
887     // clobbered registers, to be used to optimize call sites.
888     addPass(createRegUsageInfoCollector());
889 
890   addPass(&FuncletLayoutID, false);
891 
892   addPass(&StackMapLivenessID, false);
893   addPass(&LiveDebugValuesID, false);
894 
895   // Insert before XRay Instrumentation.
896   addPass(&FEntryInserterID, false);
897 
898   addPass(&XRayInstrumentationID, false);
899   addPass(&PatchableFunctionID, false);
900 
901   if (EnableMachineOutliner)
902     PM->add(createMachineOutlinerPass(EnableLinkOnceODROutlining));
903 
904   // Add passes that directly emit MI after all other MI passes.
905   addPreEmitPass2();
906 
907   AddingMachinePasses = false;
908 }
909 
910 /// Add passes that optimize machine instructions in SSA form.
911 void TargetPassConfig::addMachineSSAOptimization() {
912   // Pre-ra tail duplication.
913   addPass(&EarlyTailDuplicateID);
914 
915   // Optimize PHIs before DCE: removing dead PHI cycles may make more
916   // instructions dead.
917   addPass(&OptimizePHIsID, false);
918 
919   // This pass merges large allocas. StackSlotColoring is a different pass
920   // which merges spill slots.
921   addPass(&StackColoringID, false);
922 
923   // If the target requests it, assign local variables to stack slots relative
924   // to one another and simplify frame index references where possible.
925   addPass(&LocalStackSlotAllocationID, false);
926 
927   // With optimization, dead code should already be eliminated. However
928   // there is one known exception: lowered code for arguments that are only
929   // used by tail calls, where the tail calls reuse the incoming stack
930   // arguments directly (see t11 in test/CodeGen/X86/sibcall.ll).
931   addPass(&DeadMachineInstructionElimID);
932 
933   // Allow targets to insert passes that improve instruction level parallelism,
934   // like if-conversion. Such passes will typically need dominator trees and
935   // loop info, just like LICM and CSE below.
936   addILPOpts();
937 
938   addPass(&EarlyMachineLICMID, false);
939   addPass(&MachineCSEID, false);
940 
941   addPass(&MachineSinkingID);
942 
943   addPass(&PeepholeOptimizerID);
944   // Clean-up the dead code that may have been generated by peephole
945   // rewriting.
946   addPass(&DeadMachineInstructionElimID);
947 }
948 
949 //===---------------------------------------------------------------------===//
950 /// Register Allocation Pass Configuration
951 //===---------------------------------------------------------------------===//
952 
953 bool TargetPassConfig::getOptimizeRegAlloc() const {
954   switch (OptimizeRegAlloc) {
955   case cl::BOU_UNSET: return getOptLevel() != CodeGenOpt::None;
956   case cl::BOU_TRUE:  return true;
957   case cl::BOU_FALSE: return false;
958   }
959   llvm_unreachable("Invalid optimize-regalloc state");
960 }
961 
962 /// RegisterRegAlloc's global Registry tracks allocator registration.
963 MachinePassRegistry RegisterRegAlloc::Registry;
964 
965 /// A dummy default pass factory indicates whether the register allocator is
966 /// overridden on the command line.
967 static llvm::once_flag InitializeDefaultRegisterAllocatorFlag;
968 
969 static RegisterRegAlloc
970 defaultRegAlloc("default",
971                 "pick register allocator based on -O option",
972                 useDefaultRegisterAllocator);
973 
974 static void initializeDefaultRegisterAllocatorOnce() {
975   RegisterRegAlloc::FunctionPassCtor Ctor = RegisterRegAlloc::getDefault();
976 
977   if (!Ctor) {
978     Ctor = RegAlloc;
979     RegisterRegAlloc::setDefault(RegAlloc);
980   }
981 }
982 
983 /// Instantiate the default register allocator pass for this target for either
984 /// the optimized or unoptimized allocation path. This will be added to the pass
985 /// manager by addFastRegAlloc in the unoptimized case or addOptimizedRegAlloc
986 /// in the optimized case.
987 ///
988 /// A target that uses the standard regalloc pass order for fast or optimized
989 /// allocation may still override this for per-target regalloc
990 /// selection. But -regalloc=... always takes precedence.
991 FunctionPass *TargetPassConfig::createTargetRegisterAllocator(bool Optimized) {
992   if (Optimized)
993     return createGreedyRegisterAllocator();
994   else
995     return createFastRegisterAllocator();
996 }
997 
998 /// Find and instantiate the register allocation pass requested by this target
999 /// at the current optimization level.  Different register allocators are
1000 /// defined as separate passes because they may require different analysis.
1001 ///
1002 /// This helper ensures that the regalloc= option is always available,
1003 /// even for targets that override the default allocator.
1004 ///
1005 /// FIXME: When MachinePassRegistry register pass IDs instead of function ptrs,
1006 /// this can be folded into addPass.
1007 FunctionPass *TargetPassConfig::createRegAllocPass(bool Optimized) {
1008   // Initialize the global default.
1009   llvm::call_once(InitializeDefaultRegisterAllocatorFlag,
1010                   initializeDefaultRegisterAllocatorOnce);
1011 
1012   RegisterRegAlloc::FunctionPassCtor Ctor = RegisterRegAlloc::getDefault();
1013   if (Ctor != useDefaultRegisterAllocator)
1014     return Ctor();
1015 
1016   // With no -regalloc= override, ask the target for a regalloc pass.
1017   return createTargetRegisterAllocator(Optimized);
1018 }
1019 
1020 /// Return true if the default global register allocator is in use and
1021 /// has not be overriden on the command line with '-regalloc=...'
1022 bool TargetPassConfig::usingDefaultRegAlloc() const {
1023   return RegAlloc.getNumOccurrences() == 0;
1024 }
1025 
1026 /// Add the minimum set of target-independent passes that are required for
1027 /// register allocation. No coalescing or scheduling.
1028 void TargetPassConfig::addFastRegAlloc(FunctionPass *RegAllocPass) {
1029   addPass(&PHIEliminationID, false);
1030   addPass(&TwoAddressInstructionPassID, false);
1031 
1032   if (RegAllocPass)
1033     addPass(RegAllocPass);
1034 }
1035 
1036 /// Add standard target-independent passes that are tightly coupled with
1037 /// optimized register allocation, including coalescing, machine instruction
1038 /// scheduling, and register allocation itself.
1039 void TargetPassConfig::addOptimizedRegAlloc(FunctionPass *RegAllocPass) {
1040   addPass(&DetectDeadLanesID, false);
1041 
1042   addPass(&ProcessImplicitDefsID, false);
1043 
1044   // LiveVariables currently requires pure SSA form.
1045   //
1046   // FIXME: Once TwoAddressInstruction pass no longer uses kill flags,
1047   // LiveVariables can be removed completely, and LiveIntervals can be directly
1048   // computed. (We still either need to regenerate kill flags after regalloc, or
1049   // preferably fix the scavenger to not depend on them).
1050   addPass(&LiveVariablesID, false);
1051 
1052   // Edge splitting is smarter with machine loop info.
1053   addPass(&MachineLoopInfoID, false);
1054   addPass(&PHIEliminationID, false);
1055 
1056   // Eventually, we want to run LiveIntervals before PHI elimination.
1057   if (EarlyLiveIntervals)
1058     addPass(&LiveIntervalsID, false);
1059 
1060   addPass(&TwoAddressInstructionPassID, false);
1061   addPass(&RegisterCoalescerID);
1062 
1063   // The machine scheduler may accidentally create disconnected components
1064   // when moving subregister definitions around, avoid this by splitting them to
1065   // separate vregs before. Splitting can also improve reg. allocation quality.
1066   addPass(&RenameIndependentSubregsID);
1067 
1068   // PreRA instruction scheduling.
1069   addPass(&MachineSchedulerID);
1070 
1071   if (RegAllocPass) {
1072     // Add the selected register allocation pass.
1073     addPass(RegAllocPass);
1074 
1075     // Allow targets to change the register assignments before rewriting.
1076     addPreRewrite();
1077 
1078     // Finally rewrite virtual registers.
1079     addPass(&VirtRegRewriterID);
1080 
1081     // Perform stack slot coloring and post-ra machine LICM.
1082     //
1083     // FIXME: Re-enable coloring with register when it's capable of adding
1084     // kill markers.
1085     addPass(&StackSlotColoringID);
1086 
1087     // Copy propagate to forward register uses and try to eliminate COPYs that
1088     // were not coalesced.
1089     addPass(&MachineCopyPropagationID);
1090 
1091     // Run post-ra machine LICM to hoist reloads / remats.
1092     //
1093     // FIXME: can this move into MachineLateOptimization?
1094     addPass(&MachineLICMID);
1095   }
1096 }
1097 
1098 //===---------------------------------------------------------------------===//
1099 /// Post RegAlloc Pass Configuration
1100 //===---------------------------------------------------------------------===//
1101 
1102 /// Add passes that optimize machine instructions after register allocation.
1103 void TargetPassConfig::addMachineLateOptimization() {
1104   // Branch folding must be run after regalloc and prolog/epilog insertion.
1105   addPass(&BranchFolderPassID);
1106 
1107   // Tail duplication.
1108   // Note that duplicating tail just increases code size and degrades
1109   // performance for targets that require Structured Control Flow.
1110   // In addition it can also make CFG irreducible. Thus we disable it.
1111   if (!TM->requiresStructuredCFG())
1112     addPass(&TailDuplicateID);
1113 
1114   // Copy propagation.
1115   addPass(&MachineCopyPropagationID);
1116 }
1117 
1118 /// Add standard GC passes.
1119 bool TargetPassConfig::addGCPasses() {
1120   addPass(&GCMachineCodeAnalysisID, false);
1121   return true;
1122 }
1123 
1124 /// Add standard basic block placement passes.
1125 void TargetPassConfig::addBlockPlacement() {
1126   if (addPass(&MachineBlockPlacementID)) {
1127     // Run a separate pass to collect block placement statistics.
1128     if (EnableBlockPlacementStats)
1129       addPass(&MachineBlockPlacementStatsID);
1130   }
1131 }
1132 
1133 //===---------------------------------------------------------------------===//
1134 /// GlobalISel Configuration
1135 //===---------------------------------------------------------------------===//
1136 bool TargetPassConfig::isGlobalISelAbortEnabled() const {
1137   if (EnableGlobalISelAbort.getNumOccurrences() > 0)
1138     return EnableGlobalISelAbort == 1;
1139 
1140   // When no abort behaviour is specified, we don't abort if the target says
1141   // that GISel is enabled.
1142   return !TM->Options.EnableGlobalISel;
1143 }
1144 
1145 bool TargetPassConfig::reportDiagnosticWhenGlobalISelFallback() const {
1146   return EnableGlobalISelAbort == 2;
1147 }
1148