1 //===-- Passes.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/Passes.h"
16 #include "llvm/Analysis/Passes.h"
17 #include "llvm/Analysis/Verifier.h"
18 #include "llvm/Assembly/PrintModulePass.h"
19 #include "llvm/CodeGen/GCStrategy.h"
20 #include "llvm/CodeGen/MachineFunctionPass.h"
21 #include "llvm/CodeGen/RegAllocRegistry.h"
22 #include "llvm/MC/MCAsmInfo.h"
23 #include "llvm/PassManager.h"
24 #include "llvm/Support/CommandLine.h"
25 #include "llvm/Support/Debug.h"
26 #include "llvm/Support/ErrorHandling.h"
27 #include "llvm/Target/TargetLowering.h"
28 #include "llvm/Target/TargetSubtargetInfo.h"
29 #include "llvm/Transforms/Scalar.h"
30
31 using namespace llvm;
32
33 static cl::opt<bool> DisablePostRA("disable-post-ra", cl::Hidden,
34 cl::desc("Disable Post Regalloc"));
35 static cl::opt<bool> DisableBranchFold("disable-branch-fold", cl::Hidden,
36 cl::desc("Disable branch folding"));
37 static cl::opt<bool> DisableTailDuplicate("disable-tail-duplicate", cl::Hidden,
38 cl::desc("Disable tail duplication"));
39 static cl::opt<bool> DisableEarlyTailDup("disable-early-taildup", cl::Hidden,
40 cl::desc("Disable pre-register allocation tail duplication"));
41 static cl::opt<bool> DisableBlockPlacement("disable-block-placement",
42 cl::Hidden, cl::desc("Disable probability-driven block placement"));
43 static cl::opt<bool> EnableBlockPlacementStats("enable-block-placement-stats",
44 cl::Hidden, cl::desc("Collect probability-driven block placement stats"));
45 static cl::opt<bool> DisableSSC("disable-ssc", cl::Hidden,
46 cl::desc("Disable Stack Slot Coloring"));
47 static cl::opt<bool> DisableMachineDCE("disable-machine-dce", cl::Hidden,
48 cl::desc("Disable Machine Dead Code Elimination"));
49 static cl::opt<bool> DisableEarlyIfConversion("disable-early-ifcvt", cl::Hidden,
50 cl::desc("Disable Early If-conversion"));
51 static cl::opt<bool> DisableMachineLICM("disable-machine-licm", cl::Hidden,
52 cl::desc("Disable Machine LICM"));
53 static cl::opt<bool> DisableMachineCSE("disable-machine-cse", cl::Hidden,
54 cl::desc("Disable Machine Common Subexpression Elimination"));
55 static cl::opt<cl::boolOrDefault>
56 OptimizeRegAlloc("optimize-regalloc", cl::Hidden,
57 cl::desc("Enable optimized register allocation compilation path."));
58 static cl::opt<cl::boolOrDefault>
59 EnableMachineSched("enable-misched", cl::Hidden,
60 cl::desc("Enable the machine instruction scheduling pass."));
61 static cl::opt<bool> DisablePostRAMachineLICM("disable-postra-machine-licm",
62 cl::Hidden,
63 cl::desc("Disable Machine LICM"));
64 static cl::opt<bool> DisableMachineSink("disable-machine-sink", cl::Hidden,
65 cl::desc("Disable Machine Sinking"));
66 static cl::opt<bool> DisableLSR("disable-lsr", cl::Hidden,
67 cl::desc("Disable Loop Strength Reduction Pass"));
68 static cl::opt<bool> DisableCGP("disable-cgp", cl::Hidden,
69 cl::desc("Disable Codegen Prepare"));
70 static cl::opt<bool> DisableCopyProp("disable-copyprop", cl::Hidden,
71 cl::desc("Disable Copy Propagation pass"));
72 static cl::opt<bool> PrintLSR("print-lsr-output", cl::Hidden,
73 cl::desc("Print LLVM IR produced by the loop-reduce pass"));
74 static cl::opt<bool> PrintISelInput("print-isel-input", cl::Hidden,
75 cl::desc("Print LLVM IR input to isel pass"));
76 static cl::opt<bool> PrintGCInfo("print-gc", cl::Hidden,
77 cl::desc("Dump garbage collector data"));
78 static cl::opt<bool> VerifyMachineCode("verify-machineinstrs", cl::Hidden,
79 cl::desc("Verify generated machine code"),
80 cl::init(getenv("LLVM_VERIFY_MACHINEINSTRS")!=NULL));
81 static cl::opt<std::string>
82 PrintMachineInstrs("print-machineinstrs", cl::ValueOptional,
83 cl::desc("Print machine instrs"),
84 cl::value_desc("pass-name"), cl::init("option-unspecified"));
85
86 // Experimental option to run live interval analysis early.
87 static cl::opt<bool> EarlyLiveIntervals("early-live-intervals", cl::Hidden,
88 cl::desc("Run live interval analysis earlier in the pipeline"));
89
90 /// Allow standard passes to be disabled by command line options. This supports
91 /// simple binary flags that either suppress the pass or do nothing.
92 /// i.e. -disable-mypass=false has no effect.
93 /// These should be converted to boolOrDefault in order to use applyOverride.
applyDisable(IdentifyingPassPtr PassID,bool Override)94 static IdentifyingPassPtr applyDisable(IdentifyingPassPtr PassID,
95 bool Override) {
96 if (Override)
97 return IdentifyingPassPtr();
98 return PassID;
99 }
100
101 /// Allow Pass selection to be overriden by command line options. This supports
102 /// flags with ternary conditions. TargetID is passed through by default. The
103 /// pass is suppressed when the option is false. When the option is true, the
104 /// StandardID is selected if the target provides no default.
applyOverride(IdentifyingPassPtr TargetID,cl::boolOrDefault Override,AnalysisID StandardID)105 static IdentifyingPassPtr applyOverride(IdentifyingPassPtr TargetID,
106 cl::boolOrDefault Override,
107 AnalysisID StandardID) {
108 switch (Override) {
109 case cl::BOU_UNSET:
110 return TargetID;
111 case cl::BOU_TRUE:
112 if (TargetID.isValid())
113 return TargetID;
114 if (StandardID == 0)
115 report_fatal_error("Target cannot enable pass");
116 return StandardID;
117 case cl::BOU_FALSE:
118 return IdentifyingPassPtr();
119 }
120 llvm_unreachable("Invalid command line option state");
121 }
122
123 /// Allow standard passes to be disabled by the command line, regardless of who
124 /// is adding the pass.
125 ///
126 /// StandardID is the pass identified in the standard pass pipeline and provided
127 /// to addPass(). It may be a target-specific ID in the case that the target
128 /// directly adds its own pass, but in that case we harmlessly fall through.
129 ///
130 /// TargetID is the pass that the target has configured to override StandardID.
131 ///
132 /// StandardID may be a pseudo ID. In that case TargetID is the name of the real
133 /// pass to run. This allows multiple options to control a single pass depending
134 /// on where in the pipeline that pass is added.
overridePass(AnalysisID StandardID,IdentifyingPassPtr TargetID)135 static IdentifyingPassPtr overridePass(AnalysisID StandardID,
136 IdentifyingPassPtr TargetID) {
137 if (StandardID == &PostRASchedulerID)
138 return applyDisable(TargetID, DisablePostRA);
139
140 if (StandardID == &BranchFolderPassID)
141 return applyDisable(TargetID, DisableBranchFold);
142
143 if (StandardID == &TailDuplicateID)
144 return applyDisable(TargetID, DisableTailDuplicate);
145
146 if (StandardID == &TargetPassConfig::EarlyTailDuplicateID)
147 return applyDisable(TargetID, DisableEarlyTailDup);
148
149 if (StandardID == &MachineBlockPlacementID)
150 return applyDisable(TargetID, DisableBlockPlacement);
151
152 if (StandardID == &StackSlotColoringID)
153 return applyDisable(TargetID, DisableSSC);
154
155 if (StandardID == &DeadMachineInstructionElimID)
156 return applyDisable(TargetID, DisableMachineDCE);
157
158 if (StandardID == &EarlyIfConverterID)
159 return applyDisable(TargetID, DisableEarlyIfConversion);
160
161 if (StandardID == &MachineLICMID)
162 return applyDisable(TargetID, DisableMachineLICM);
163
164 if (StandardID == &MachineCSEID)
165 return applyDisable(TargetID, DisableMachineCSE);
166
167 if (StandardID == &MachineSchedulerID)
168 return applyOverride(TargetID, EnableMachineSched, StandardID);
169
170 if (StandardID == &TargetPassConfig::PostRAMachineLICMID)
171 return applyDisable(TargetID, DisablePostRAMachineLICM);
172
173 if (StandardID == &MachineSinkingID)
174 return applyDisable(TargetID, DisableMachineSink);
175
176 if (StandardID == &MachineCopyPropagationID)
177 return applyDisable(TargetID, DisableCopyProp);
178
179 return TargetID;
180 }
181
182 //===---------------------------------------------------------------------===//
183 /// TargetPassConfig
184 //===---------------------------------------------------------------------===//
185
186 INITIALIZE_PASS(TargetPassConfig, "targetpassconfig",
187 "Target Pass Configuration", false, false)
188 char TargetPassConfig::ID = 0;
189
190 // Pseudo Pass IDs.
191 char TargetPassConfig::EarlyTailDuplicateID = 0;
192 char TargetPassConfig::PostRAMachineLICMID = 0;
193
194 namespace llvm {
195 class PassConfigImpl {
196 public:
197 // List of passes explicitly substituted by this target. Normally this is
198 // empty, but it is a convenient way to suppress or replace specific passes
199 // that are part of a standard pass pipeline without overridding the entire
200 // pipeline. This mechanism allows target options to inherit a standard pass's
201 // user interface. For example, a target may disable a standard pass by
202 // default by substituting a pass ID of zero, and the user may still enable
203 // that standard pass with an explicit command line option.
204 DenseMap<AnalysisID,IdentifyingPassPtr> TargetPasses;
205
206 /// Store the pairs of <AnalysisID, AnalysisID> of which the second pass
207 /// is inserted after each instance of the first one.
208 SmallVector<std::pair<AnalysisID, IdentifyingPassPtr>, 4> InsertedPasses;
209 };
210 } // namespace llvm
211
212 // Out of line virtual method.
~TargetPassConfig()213 TargetPassConfig::~TargetPassConfig() {
214 delete Impl;
215 }
216
217 // Out of line constructor provides default values for pass options and
218 // registers all common codegen passes.
TargetPassConfig(TargetMachine * tm,PassManagerBase & pm)219 TargetPassConfig::TargetPassConfig(TargetMachine *tm, PassManagerBase &pm)
220 : ImmutablePass(ID), PM(&pm), StartAfter(0), StopAfter(0),
221 Started(true), Stopped(false), TM(tm), Impl(0), Initialized(false),
222 DisableVerify(false),
223 EnableTailMerge(true) {
224
225 Impl = new PassConfigImpl();
226
227 // Register all target independent codegen passes to activate their PassIDs,
228 // including this pass itself.
229 initializeCodeGen(*PassRegistry::getPassRegistry());
230
231 // Substitute Pseudo Pass IDs for real ones.
232 substitutePass(&EarlyTailDuplicateID, &TailDuplicateID);
233 substitutePass(&PostRAMachineLICMID, &MachineLICMID);
234
235 // Temporarily disable experimental passes.
236 const TargetSubtargetInfo &ST = TM->getSubtarget<TargetSubtargetInfo>();
237 if (!ST.useMachineScheduler())
238 disablePass(&MachineSchedulerID);
239 }
240
241 /// Insert InsertedPassID pass after TargetPassID.
insertPass(AnalysisID TargetPassID,IdentifyingPassPtr InsertedPassID)242 void TargetPassConfig::insertPass(AnalysisID TargetPassID,
243 IdentifyingPassPtr InsertedPassID) {
244 assert(((!InsertedPassID.isInstance() &&
245 TargetPassID != InsertedPassID.getID()) ||
246 (InsertedPassID.isInstance() &&
247 TargetPassID != InsertedPassID.getInstance()->getPassID())) &&
248 "Insert a pass after itself!");
249 std::pair<AnalysisID, IdentifyingPassPtr> P(TargetPassID, InsertedPassID);
250 Impl->InsertedPasses.push_back(P);
251 }
252
253 /// createPassConfig - Create a pass configuration object to be used by
254 /// addPassToEmitX methods for generating a pipeline of CodeGen passes.
255 ///
256 /// Targets may override this to extend TargetPassConfig.
createPassConfig(PassManagerBase & PM)257 TargetPassConfig *LLVMTargetMachine::createPassConfig(PassManagerBase &PM) {
258 return new TargetPassConfig(this, PM);
259 }
260
TargetPassConfig()261 TargetPassConfig::TargetPassConfig()
262 : ImmutablePass(ID), PM(0) {
263 llvm_unreachable("TargetPassConfig should not be constructed on-the-fly");
264 }
265
266 // Helper to verify the analysis is really immutable.
setOpt(bool & Opt,bool Val)267 void TargetPassConfig::setOpt(bool &Opt, bool Val) {
268 assert(!Initialized && "PassConfig is immutable");
269 Opt = Val;
270 }
271
substitutePass(AnalysisID StandardID,IdentifyingPassPtr TargetID)272 void TargetPassConfig::substitutePass(AnalysisID StandardID,
273 IdentifyingPassPtr TargetID) {
274 Impl->TargetPasses[StandardID] = TargetID;
275 }
276
getPassSubstitution(AnalysisID ID) const277 IdentifyingPassPtr TargetPassConfig::getPassSubstitution(AnalysisID ID) const {
278 DenseMap<AnalysisID, IdentifyingPassPtr>::const_iterator
279 I = Impl->TargetPasses.find(ID);
280 if (I == Impl->TargetPasses.end())
281 return ID;
282 return I->second;
283 }
284
285 /// Add a pass to the PassManager if that pass is supposed to be run. If the
286 /// Started/Stopped flags indicate either that the compilation should start at
287 /// a later pass or that it should stop after an earlier pass, then do not add
288 /// the pass. Finally, compare the current pass against the StartAfter
289 /// and StopAfter options and change the Started/Stopped flags accordingly.
addPass(Pass * P)290 void TargetPassConfig::addPass(Pass *P) {
291 assert(!Initialized && "PassConfig is immutable");
292
293 // Cache the Pass ID here in case the pass manager finds this pass is
294 // redundant with ones already scheduled / available, and deletes it.
295 // Fundamentally, once we add the pass to the manager, we no longer own it
296 // and shouldn't reference it.
297 AnalysisID PassID = P->getPassID();
298
299 if (Started && !Stopped)
300 PM->add(P);
301 else
302 delete P;
303 if (StopAfter == PassID)
304 Stopped = true;
305 if (StartAfter == PassID)
306 Started = true;
307 if (Stopped && !Started)
308 report_fatal_error("Cannot stop compilation after pass that is not run");
309 }
310
311 /// Add a CodeGen pass at this point in the pipeline after checking for target
312 /// and command line overrides.
313 ///
314 /// addPass cannot return a pointer to the pass instance because is internal the
315 /// PassManager and the instance we create here may already be freed.
addPass(AnalysisID PassID)316 AnalysisID TargetPassConfig::addPass(AnalysisID PassID) {
317 IdentifyingPassPtr TargetID = getPassSubstitution(PassID);
318 IdentifyingPassPtr FinalPtr = overridePass(PassID, TargetID);
319 if (!FinalPtr.isValid())
320 return 0;
321
322 Pass *P;
323 if (FinalPtr.isInstance())
324 P = FinalPtr.getInstance();
325 else {
326 P = Pass::createPass(FinalPtr.getID());
327 if (!P)
328 llvm_unreachable("Pass ID not registered");
329 }
330 AnalysisID FinalID = P->getPassID();
331 addPass(P); // Ends the lifetime of P.
332
333 // Add the passes after the pass P if there is any.
334 for (SmallVectorImpl<std::pair<AnalysisID, IdentifyingPassPtr> >::iterator
335 I = Impl->InsertedPasses.begin(), E = Impl->InsertedPasses.end();
336 I != E; ++I) {
337 if ((*I).first == PassID) {
338 assert((*I).second.isValid() && "Illegal Pass ID!");
339 Pass *NP;
340 if ((*I).second.isInstance())
341 NP = (*I).second.getInstance();
342 else {
343 NP = Pass::createPass((*I).second.getID());
344 assert(NP && "Pass ID not registered");
345 }
346 addPass(NP);
347 }
348 }
349 return FinalID;
350 }
351
printAndVerify(const char * Banner)352 void TargetPassConfig::printAndVerify(const char *Banner) {
353 if (TM->shouldPrintMachineCode())
354 addPass(createMachineFunctionPrinterPass(dbgs(), Banner));
355
356 if (VerifyMachineCode)
357 addPass(createMachineVerifierPass(Banner));
358 }
359
360 /// Add common target configurable passes that perform LLVM IR to IR transforms
361 /// following machine independent optimization.
addIRPasses()362 void TargetPassConfig::addIRPasses() {
363 // Basic AliasAnalysis support.
364 // Add TypeBasedAliasAnalysis before BasicAliasAnalysis so that
365 // BasicAliasAnalysis wins if they disagree. This is intended to help
366 // support "obvious" type-punning idioms.
367 addPass(createTypeBasedAliasAnalysisPass());
368 addPass(createBasicAliasAnalysisPass());
369
370 // Before running any passes, run the verifier to determine if the input
371 // coming from the front-end and/or optimizer is valid.
372 if (!DisableVerify)
373 addPass(createVerifierPass());
374
375 // Run loop strength reduction before anything else.
376 if (getOptLevel() != CodeGenOpt::None && !DisableLSR) {
377 addPass(createLoopStrengthReducePass());
378 if (PrintLSR)
379 addPass(createPrintFunctionPass("\n\n*** Code after LSR ***\n", &dbgs()));
380 }
381
382 addPass(createGCLoweringPass());
383
384 // Make sure that no unreachable blocks are instruction selected.
385 addPass(createUnreachableBlockEliminationPass());
386 }
387
388 /// Turn exception handling constructs into something the code generators can
389 /// handle.
addPassesToHandleExceptions()390 void TargetPassConfig::addPassesToHandleExceptions() {
391 switch (TM->getMCAsmInfo()->getExceptionHandlingType()) {
392 case ExceptionHandling::SjLj:
393 // SjLj piggy-backs on dwarf for this bit. The cleanups done apply to both
394 // Dwarf EH prepare needs to be run after SjLj prepare. Otherwise,
395 // catch info can get misplaced when a selector ends up more than one block
396 // removed from the parent invoke(s). This could happen when a landing
397 // pad is shared by multiple invokes and is also a target of a normal
398 // edge from elsewhere.
399 addPass(createSjLjEHPreparePass(TM));
400 // FALLTHROUGH
401 case ExceptionHandling::DwarfCFI:
402 case ExceptionHandling::ARM:
403 case ExceptionHandling::Win64:
404 addPass(createDwarfEHPass(TM));
405 break;
406 case ExceptionHandling::None:
407 addPass(createLowerInvokePass(TM));
408
409 // The lower invoke pass may create unreachable code. Remove it.
410 addPass(createUnreachableBlockEliminationPass());
411 break;
412 }
413 }
414
415 /// Add pass to prepare the LLVM IR for code generation. This should be done
416 /// before exception handling preparation passes.
addCodeGenPrepare()417 void TargetPassConfig::addCodeGenPrepare() {
418 if (getOptLevel() != CodeGenOpt::None && !DisableCGP)
419 addPass(createCodeGenPreparePass(TM));
420 }
421
422 /// Add common passes that perform LLVM IR to IR transforms in preparation for
423 /// instruction selection.
addISelPrepare()424 void TargetPassConfig::addISelPrepare() {
425 addPass(createStackProtectorPass(TM));
426
427 addPreISel();
428
429 if (PrintISelInput)
430 addPass(createPrintFunctionPass("\n\n"
431 "*** Final LLVM Code input to ISel ***\n",
432 &dbgs()));
433
434 // All passes which modify the LLVM IR are now complete; run the verifier
435 // to ensure that the IR is valid.
436 if (!DisableVerify)
437 addPass(createVerifierPass());
438 }
439
440 /// Add the complete set of target-independent postISel code generator passes.
441 ///
442 /// This can be read as the standard order of major LLVM CodeGen stages. Stages
443 /// with nontrivial configuration or multiple passes are broken out below in
444 /// add%Stage routines.
445 ///
446 /// Any TargetPassConfig::addXX routine may be overriden by the Target. The
447 /// addPre/Post methods with empty header implementations allow injecting
448 /// target-specific fixups just before or after major stages. Additionally,
449 /// targets have the flexibility to change pass order within a stage by
450 /// overriding default implementation of add%Stage routines below. Each
451 /// technique has maintainability tradeoffs because alternate pass orders are
452 /// not well supported. addPre/Post works better if the target pass is easily
453 /// tied to a common pass. But if it has subtle dependencies on multiple passes,
454 /// the target should override the stage instead.
455 ///
456 /// TODO: We could use a single addPre/Post(ID) hook to allow pass injection
457 /// before/after any target-independent pass. But it's currently overkill.
addMachinePasses()458 void TargetPassConfig::addMachinePasses() {
459 // Insert a machine instr printer pass after the specified pass.
460 // If -print-machineinstrs specified, print machineinstrs after all passes.
461 if (StringRef(PrintMachineInstrs.getValue()).equals(""))
462 TM->Options.PrintMachineCode = true;
463 else if (!StringRef(PrintMachineInstrs.getValue())
464 .equals("option-unspecified")) {
465 const PassRegistry *PR = PassRegistry::getPassRegistry();
466 const PassInfo *TPI = PR->getPassInfo(PrintMachineInstrs.getValue());
467 const PassInfo *IPI = PR->getPassInfo(StringRef("print-machineinstrs"));
468 assert (TPI && IPI && "Pass ID not registered!");
469 const char *TID = (const char *)(TPI->getTypeInfo());
470 const char *IID = (const char *)(IPI->getTypeInfo());
471 insertPass(TID, IID);
472 }
473
474 // Print the instruction selected machine code...
475 printAndVerify("After Instruction Selection");
476
477 // Expand pseudo-instructions emitted by ISel.
478 if (addPass(&ExpandISelPseudosID))
479 printAndVerify("After ExpandISelPseudos");
480
481 // Add passes that optimize machine instructions in SSA form.
482 if (getOptLevel() != CodeGenOpt::None) {
483 addMachineSSAOptimization();
484 } else {
485 // If the target requests it, assign local variables to stack slots relative
486 // to one another and simplify frame index references where possible.
487 addPass(&LocalStackSlotAllocationID);
488 }
489
490 // Run pre-ra passes.
491 if (addPreRegAlloc())
492 printAndVerify("After PreRegAlloc passes");
493
494 // Run register allocation and passes that are tightly coupled with it,
495 // including phi elimination and scheduling.
496 if (getOptimizeRegAlloc())
497 addOptimizedRegAlloc(createRegAllocPass(true));
498 else
499 addFastRegAlloc(createRegAllocPass(false));
500
501 // Run post-ra passes.
502 if (addPostRegAlloc())
503 printAndVerify("After PostRegAlloc passes");
504
505 // Insert prolog/epilog code. Eliminate abstract frame index references...
506 addPass(&PrologEpilogCodeInserterID);
507 printAndVerify("After PrologEpilogCodeInserter");
508
509 /// Add passes that optimize machine instructions after register allocation.
510 if (getOptLevel() != CodeGenOpt::None)
511 addMachineLateOptimization();
512
513 // Expand pseudo instructions before second scheduling pass.
514 addPass(&ExpandPostRAPseudosID);
515 printAndVerify("After ExpandPostRAPseudos");
516
517 // Run pre-sched2 passes.
518 if (addPreSched2())
519 printAndVerify("After PreSched2 passes");
520
521 // Second pass scheduler.
522 if (getOptLevel() != CodeGenOpt::None) {
523 addPass(&PostRASchedulerID);
524 printAndVerify("After PostRAScheduler");
525 }
526
527 // GC
528 if (addGCPasses()) {
529 if (PrintGCInfo)
530 addPass(createGCInfoPrinter(dbgs()));
531 }
532
533 // Basic block placement.
534 if (getOptLevel() != CodeGenOpt::None)
535 addBlockPlacement();
536
537 if (addPreEmitPass())
538 printAndVerify("After PreEmit passes");
539 }
540
541 /// Add passes that optimize machine instructions in SSA form.
addMachineSSAOptimization()542 void TargetPassConfig::addMachineSSAOptimization() {
543 // Pre-ra tail duplication.
544 if (addPass(&EarlyTailDuplicateID))
545 printAndVerify("After Pre-RegAlloc TailDuplicate");
546
547 // Optimize PHIs before DCE: removing dead PHI cycles may make more
548 // instructions dead.
549 addPass(&OptimizePHIsID);
550
551 // This pass merges large allocas. StackSlotColoring is a different pass
552 // which merges spill slots.
553 addPass(&StackColoringID);
554
555 // If the target requests it, assign local variables to stack slots relative
556 // to one another and simplify frame index references where possible.
557 addPass(&LocalStackSlotAllocationID);
558
559 // With optimization, dead code should already be eliminated. However
560 // there is one known exception: lowered code for arguments that are only
561 // used by tail calls, where the tail calls reuse the incoming stack
562 // arguments directly (see t11 in test/CodeGen/X86/sibcall.ll).
563 addPass(&DeadMachineInstructionElimID);
564 printAndVerify("After codegen DCE pass");
565
566 // Allow targets to insert passes that improve instruction level parallelism,
567 // like if-conversion. Such passes will typically need dominator trees and
568 // loop info, just like LICM and CSE below.
569 if (addILPOpts())
570 printAndVerify("After ILP optimizations");
571
572 addPass(&MachineLICMID);
573 addPass(&MachineCSEID);
574 addPass(&MachineSinkingID);
575 printAndVerify("After Machine LICM, CSE and Sinking passes");
576
577 addPass(&PeepholeOptimizerID);
578 printAndVerify("After codegen peephole optimization pass");
579 }
580
581 //===---------------------------------------------------------------------===//
582 /// Register Allocation Pass Configuration
583 //===---------------------------------------------------------------------===//
584
getOptimizeRegAlloc() const585 bool TargetPassConfig::getOptimizeRegAlloc() const {
586 switch (OptimizeRegAlloc) {
587 case cl::BOU_UNSET: return getOptLevel() != CodeGenOpt::None;
588 case cl::BOU_TRUE: return true;
589 case cl::BOU_FALSE: return false;
590 }
591 llvm_unreachable("Invalid optimize-regalloc state");
592 }
593
594 /// RegisterRegAlloc's global Registry tracks allocator registration.
595 MachinePassRegistry RegisterRegAlloc::Registry;
596
597 /// A dummy default pass factory indicates whether the register allocator is
598 /// overridden on the command line.
useDefaultRegisterAllocator()599 static FunctionPass *useDefaultRegisterAllocator() { return 0; }
600 static RegisterRegAlloc
601 defaultRegAlloc("default",
602 "pick register allocator based on -O option",
603 useDefaultRegisterAllocator);
604
605 /// -regalloc=... command line option.
606 static cl::opt<RegisterRegAlloc::FunctionPassCtor, false,
607 RegisterPassParser<RegisterRegAlloc> >
608 RegAlloc("regalloc",
609 cl::init(&useDefaultRegisterAllocator),
610 cl::desc("Register allocator to use"));
611
612
613 /// Instantiate the default register allocator pass for this target for either
614 /// the optimized or unoptimized allocation path. This will be added to the pass
615 /// manager by addFastRegAlloc in the unoptimized case or addOptimizedRegAlloc
616 /// in the optimized case.
617 ///
618 /// A target that uses the standard regalloc pass order for fast or optimized
619 /// allocation may still override this for per-target regalloc
620 /// selection. But -regalloc=... always takes precedence.
createTargetRegisterAllocator(bool Optimized)621 FunctionPass *TargetPassConfig::createTargetRegisterAllocator(bool Optimized) {
622 if (Optimized)
623 return createGreedyRegisterAllocator();
624 else
625 return createFastRegisterAllocator();
626 }
627
628 /// Find and instantiate the register allocation pass requested by this target
629 /// at the current optimization level. Different register allocators are
630 /// defined as separate passes because they may require different analysis.
631 ///
632 /// This helper ensures that the regalloc= option is always available,
633 /// even for targets that override the default allocator.
634 ///
635 /// FIXME: When MachinePassRegistry register pass IDs instead of function ptrs,
636 /// this can be folded into addPass.
createRegAllocPass(bool Optimized)637 FunctionPass *TargetPassConfig::createRegAllocPass(bool Optimized) {
638 RegisterRegAlloc::FunctionPassCtor Ctor = RegisterRegAlloc::getDefault();
639
640 // Initialize the global default.
641 if (!Ctor) {
642 Ctor = RegAlloc;
643 RegisterRegAlloc::setDefault(RegAlloc);
644 }
645 if (Ctor != useDefaultRegisterAllocator)
646 return Ctor();
647
648 // With no -regalloc= override, ask the target for a regalloc pass.
649 return createTargetRegisterAllocator(Optimized);
650 }
651
652 /// Add the minimum set of target-independent passes that are required for
653 /// register allocation. No coalescing or scheduling.
addFastRegAlloc(FunctionPass * RegAllocPass)654 void TargetPassConfig::addFastRegAlloc(FunctionPass *RegAllocPass) {
655 addPass(&PHIEliminationID);
656 addPass(&TwoAddressInstructionPassID);
657
658 addPass(RegAllocPass);
659 printAndVerify("After Register Allocation");
660 }
661
662 /// Add standard target-independent passes that are tightly coupled with
663 /// optimized register allocation, including coalescing, machine instruction
664 /// scheduling, and register allocation itself.
addOptimizedRegAlloc(FunctionPass * RegAllocPass)665 void TargetPassConfig::addOptimizedRegAlloc(FunctionPass *RegAllocPass) {
666 addPass(&ProcessImplicitDefsID);
667
668 // LiveVariables currently requires pure SSA form.
669 //
670 // FIXME: Once TwoAddressInstruction pass no longer uses kill flags,
671 // LiveVariables can be removed completely, and LiveIntervals can be directly
672 // computed. (We still either need to regenerate kill flags after regalloc, or
673 // preferably fix the scavenger to not depend on them).
674 addPass(&LiveVariablesID);
675
676 // Edge splitting is smarter with machine loop info.
677 addPass(&MachineLoopInfoID);
678 addPass(&PHIEliminationID);
679
680 // Eventually, we want to run LiveIntervals before PHI elimination.
681 if (EarlyLiveIntervals)
682 addPass(&LiveIntervalsID);
683
684 addPass(&TwoAddressInstructionPassID);
685 addPass(&RegisterCoalescerID);
686
687 // PreRA instruction scheduling.
688 if (addPass(&MachineSchedulerID))
689 printAndVerify("After Machine Scheduling");
690
691 // Add the selected register allocation pass.
692 addPass(RegAllocPass);
693 printAndVerify("After Register Allocation, before rewriter");
694
695 // Allow targets to change the register assignments before rewriting.
696 if (addPreRewrite())
697 printAndVerify("After pre-rewrite passes");
698
699 // Finally rewrite virtual registers.
700 addPass(&VirtRegRewriterID);
701 printAndVerify("After Virtual Register Rewriter");
702
703 // Perform stack slot coloring and post-ra machine LICM.
704 //
705 // FIXME: Re-enable coloring with register when it's capable of adding
706 // kill markers.
707 addPass(&StackSlotColoringID);
708
709 // Run post-ra machine LICM to hoist reloads / remats.
710 //
711 // FIXME: can this move into MachineLateOptimization?
712 addPass(&PostRAMachineLICMID);
713
714 printAndVerify("After StackSlotColoring and postra Machine LICM");
715 }
716
717 //===---------------------------------------------------------------------===//
718 /// Post RegAlloc Pass Configuration
719 //===---------------------------------------------------------------------===//
720
721 /// Add passes that optimize machine instructions after register allocation.
addMachineLateOptimization()722 void TargetPassConfig::addMachineLateOptimization() {
723 // Branch folding must be run after regalloc and prolog/epilog insertion.
724 if (addPass(&BranchFolderPassID))
725 printAndVerify("After BranchFolding");
726
727 // Tail duplication.
728 if (addPass(&TailDuplicateID))
729 printAndVerify("After TailDuplicate");
730
731 // Copy propagation.
732 if (addPass(&MachineCopyPropagationID))
733 printAndVerify("After copy propagation pass");
734 }
735
736 /// Add standard GC passes.
addGCPasses()737 bool TargetPassConfig::addGCPasses() {
738 addPass(&GCMachineCodeAnalysisID);
739 return true;
740 }
741
742 /// Add standard basic block placement passes.
addBlockPlacement()743 void TargetPassConfig::addBlockPlacement() {
744 if (addPass(&MachineBlockPlacementID)) {
745 // Run a separate pass to collect block placement statistics.
746 if (EnableBlockPlacementStats)
747 addPass(&MachineBlockPlacementStatsID);
748
749 printAndVerify("After machine block placement.");
750 }
751 }
752