1 //===- MipsDelaySlotFiller.cpp - Mips Delay Slot Filler -------------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // Simple pass to fill delay slots with useful instructions.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "MCTargetDesc/MipsMCNaCl.h"
14 #include "Mips.h"
15 #include "MipsInstrInfo.h"
16 #include "MipsRegisterInfo.h"
17 #include "MipsSubtarget.h"
18 #include "llvm/ADT/BitVector.h"
19 #include "llvm/ADT/DenseMap.h"
20 #include "llvm/ADT/PointerUnion.h"
21 #include "llvm/ADT/SmallPtrSet.h"
22 #include "llvm/ADT/SmallVector.h"
23 #include "llvm/ADT/Statistic.h"
24 #include "llvm/ADT/StringRef.h"
25 #include "llvm/Analysis/AliasAnalysis.h"
26 #include "llvm/Analysis/ValueTracking.h"
27 #include "llvm/CodeGen/MachineBasicBlock.h"
28 #include "llvm/CodeGen/MachineBranchProbabilityInfo.h"
29 #include "llvm/CodeGen/MachineFunction.h"
30 #include "llvm/CodeGen/MachineFunctionPass.h"
31 #include "llvm/CodeGen/MachineInstr.h"
32 #include "llvm/CodeGen/MachineInstrBuilder.h"
33 #include "llvm/CodeGen/MachineOperand.h"
34 #include "llvm/CodeGen/MachineRegisterInfo.h"
35 #include "llvm/CodeGen/PseudoSourceValue.h"
36 #include "llvm/CodeGen/TargetRegisterInfo.h"
37 #include "llvm/CodeGen/TargetSubtargetInfo.h"
38 #include "llvm/MC/MCInstrDesc.h"
39 #include "llvm/MC/MCRegisterInfo.h"
40 #include "llvm/Support/Casting.h"
41 #include "llvm/Support/CodeGen.h"
42 #include "llvm/Support/CommandLine.h"
43 #include "llvm/Support/ErrorHandling.h"
44 #include "llvm/Target/TargetMachine.h"
45 #include <algorithm>
46 #include <cassert>
47 #include <iterator>
48 #include <memory>
49 #include <utility>
50 
51 using namespace llvm;
52 
53 #define DEBUG_TYPE "mips-delay-slot-filler"
54 
55 STATISTIC(FilledSlots, "Number of delay slots filled");
56 STATISTIC(UsefulSlots, "Number of delay slots filled with instructions that"
57                        " are not NOP.");
58 
59 static cl::opt<bool> DisableDelaySlotFiller(
60   "disable-mips-delay-filler",
61   cl::init(false),
62   cl::desc("Fill all delay slots with NOPs."),
63   cl::Hidden);
64 
65 static cl::opt<bool> DisableForwardSearch(
66   "disable-mips-df-forward-search",
67   cl::init(true),
68   cl::desc("Disallow MIPS delay filler to search forward."),
69   cl::Hidden);
70 
71 static cl::opt<bool> DisableSuccBBSearch(
72   "disable-mips-df-succbb-search",
73   cl::init(true),
74   cl::desc("Disallow MIPS delay filler to search successor basic blocks."),
75   cl::Hidden);
76 
77 static cl::opt<bool> DisableBackwardSearch(
78   "disable-mips-df-backward-search",
79   cl::init(false),
80   cl::desc("Disallow MIPS delay filler to search backward."),
81   cl::Hidden);
82 
83 enum CompactBranchPolicy {
84   CB_Never,   ///< The policy 'never' may in some circumstances or for some
85               ///< ISAs not be absolutely adhered to.
86   CB_Optimal, ///< Optimal is the default and will produce compact branches
87               ///< when delay slots cannot be filled.
88   CB_Always   ///< 'always' may in some circumstances may not be
89               ///< absolutely adhered to there may not be a corresponding
90               ///< compact form of a branch.
91 };
92 
93 static cl::opt<CompactBranchPolicy> MipsCompactBranchPolicy(
94     "mips-compact-branches", cl::Optional, cl::init(CB_Optimal),
95     cl::desc("MIPS Specific: Compact branch policy."),
96     cl::values(clEnumValN(CB_Never, "never",
97                           "Do not use compact branches if possible."),
98                clEnumValN(CB_Optimal, "optimal",
99                           "Use compact branches where appropriate (default)."),
100                clEnumValN(CB_Always, "always",
101                           "Always use compact branches if possible.")));
102 
103 namespace {
104 
105   using Iter = MachineBasicBlock::iterator;
106   using ReverseIter = MachineBasicBlock::reverse_iterator;
107   using BB2BrMap = SmallDenseMap<MachineBasicBlock *, MachineInstr *, 2>;
108 
109   class RegDefsUses {
110   public:
111     RegDefsUses(const TargetRegisterInfo &TRI);
112 
113     void init(const MachineInstr &MI);
114 
115     /// This function sets all caller-saved registers in Defs.
116     void setCallerSaved(const MachineInstr &MI);
117 
118     /// This function sets all unallocatable registers in Defs.
119     void setUnallocatableRegs(const MachineFunction &MF);
120 
121     /// Set bits in Uses corresponding to MBB's live-out registers except for
122     /// the registers that are live-in to SuccBB.
123     void addLiveOut(const MachineBasicBlock &MBB,
124                     const MachineBasicBlock &SuccBB);
125 
126     bool update(const MachineInstr &MI, unsigned Begin, unsigned End);
127 
128   private:
129     bool checkRegDefsUses(BitVector &NewDefs, BitVector &NewUses, unsigned Reg,
130                           bool IsDef) const;
131 
132     /// Returns true if Reg or its alias is in RegSet.
133     bool isRegInSet(const BitVector &RegSet, unsigned Reg) const;
134 
135     const TargetRegisterInfo &TRI;
136     BitVector Defs, Uses;
137   };
138 
139   /// Base class for inspecting loads and stores.
140   class InspectMemInstr {
141   public:
142     InspectMemInstr(bool ForbidMemInstr_) : ForbidMemInstr(ForbidMemInstr_) {}
143     virtual ~InspectMemInstr() = default;
144 
145     /// Return true if MI cannot be moved to delay slot.
146     bool hasHazard(const MachineInstr &MI);
147 
148   protected:
149     /// Flags indicating whether loads or stores have been seen.
150     bool OrigSeenLoad = false;
151     bool OrigSeenStore = false;
152     bool SeenLoad = false;
153     bool SeenStore = false;
154 
155     /// Memory instructions are not allowed to move to delay slot if this flag
156     /// is true.
157     bool ForbidMemInstr;
158 
159   private:
160     virtual bool hasHazard_(const MachineInstr &MI) = 0;
161   };
162 
163   /// This subclass rejects any memory instructions.
164   class NoMemInstr : public InspectMemInstr {
165   public:
166     NoMemInstr() : InspectMemInstr(true) {}
167 
168   private:
169     bool hasHazard_(const MachineInstr &MI) override { return true; }
170   };
171 
172   /// This subclass accepts loads from stacks and constant loads.
173   class LoadFromStackOrConst : public InspectMemInstr {
174   public:
175     LoadFromStackOrConst() : InspectMemInstr(false) {}
176 
177   private:
178     bool hasHazard_(const MachineInstr &MI) override;
179   };
180 
181   /// This subclass uses memory dependence information to determine whether a
182   /// memory instruction can be moved to a delay slot.
183   class MemDefsUses : public InspectMemInstr {
184   public:
185     explicit MemDefsUses(const MachineFrameInfo *MFI);
186 
187   private:
188     using ValueType = PointerUnion<const Value *, const PseudoSourceValue *>;
189 
190     bool hasHazard_(const MachineInstr &MI) override;
191 
192     /// Update Defs and Uses. Return true if there exist dependences that
193     /// disqualify the delay slot candidate between V and values in Uses and
194     /// Defs.
195     bool updateDefsUses(ValueType V, bool MayStore);
196 
197     /// Get the list of underlying objects of MI's memory operand.
198     bool getUnderlyingObjects(const MachineInstr &MI,
199                               SmallVectorImpl<ValueType> &Objects) const;
200 
201     const MachineFrameInfo *MFI;
202     SmallPtrSet<ValueType, 4> Uses, Defs;
203 
204     /// Flags indicating whether loads or stores with no underlying objects have
205     /// been seen.
206     bool SeenNoObjLoad = false;
207     bool SeenNoObjStore = false;
208   };
209 
210   class MipsDelaySlotFiller : public MachineFunctionPass {
211   public:
212     MipsDelaySlotFiller() : MachineFunctionPass(ID) {
213       initializeMipsDelaySlotFillerPass(*PassRegistry::getPassRegistry());
214     }
215 
216     StringRef getPassName() const override { return "Mips Delay Slot Filler"; }
217 
218     bool runOnMachineFunction(MachineFunction &F) override {
219       TM = &F.getTarget();
220       bool Changed = false;
221       for (MachineFunction::iterator FI = F.begin(), FE = F.end();
222            FI != FE; ++FI)
223         Changed |= runOnMachineBasicBlock(*FI);
224 
225       // This pass invalidates liveness information when it reorders
226       // instructions to fill delay slot. Without this, -verify-machineinstrs
227       // will fail.
228       if (Changed)
229         F.getRegInfo().invalidateLiveness();
230 
231       return Changed;
232     }
233 
234     MachineFunctionProperties getRequiredProperties() const override {
235       return MachineFunctionProperties().set(
236           MachineFunctionProperties::Property::NoVRegs);
237     }
238 
239     void getAnalysisUsage(AnalysisUsage &AU) const override {
240       AU.addRequired<MachineBranchProbabilityInfo>();
241       MachineFunctionPass::getAnalysisUsage(AU);
242     }
243 
244     static char ID;
245 
246   private:
247     bool runOnMachineBasicBlock(MachineBasicBlock &MBB);
248 
249     Iter replaceWithCompactBranch(MachineBasicBlock &MBB, Iter Branch,
250                                   const DebugLoc &DL);
251 
252     /// This function checks if it is valid to move Candidate to the delay slot
253     /// and returns true if it isn't. It also updates memory and register
254     /// dependence information.
255     bool delayHasHazard(const MachineInstr &Candidate, RegDefsUses &RegDU,
256                         InspectMemInstr &IM) const;
257 
258     /// This function searches range [Begin, End) for an instruction that can be
259     /// moved to the delay slot. Returns true on success.
260     template<typename IterTy>
261     bool searchRange(MachineBasicBlock &MBB, IterTy Begin, IterTy End,
262                      RegDefsUses &RegDU, InspectMemInstr &IM, Iter Slot,
263                      IterTy &Filler) const;
264 
265     /// This function searches in the backward direction for an instruction that
266     /// can be moved to the delay slot. Returns true on success.
267     bool searchBackward(MachineBasicBlock &MBB, MachineInstr &Slot) const;
268 
269     /// This function searches MBB in the forward direction for an instruction
270     /// that can be moved to the delay slot. Returns true on success.
271     bool searchForward(MachineBasicBlock &MBB, Iter Slot) const;
272 
273     /// This function searches one of MBB's successor blocks for an instruction
274     /// that can be moved to the delay slot and inserts clones of the
275     /// instruction into the successor's predecessor blocks.
276     bool searchSuccBBs(MachineBasicBlock &MBB, Iter Slot) const;
277 
278     /// Pick a successor block of MBB. Return NULL if MBB doesn't have a
279     /// successor block that is not a landing pad.
280     MachineBasicBlock *selectSuccBB(MachineBasicBlock &B) const;
281 
282     /// This function analyzes MBB and returns an instruction with an unoccupied
283     /// slot that branches to Dst.
284     std::pair<MipsInstrInfo::BranchType, MachineInstr *>
285     getBranch(MachineBasicBlock &MBB, const MachineBasicBlock &Dst) const;
286 
287     /// Examine Pred and see if it is possible to insert an instruction into
288     /// one of its branches delay slot or its end.
289     bool examinePred(MachineBasicBlock &Pred, const MachineBasicBlock &Succ,
290                      RegDefsUses &RegDU, bool &HasMultipleSuccs,
291                      BB2BrMap &BrMap) const;
292 
293     bool terminateSearch(const MachineInstr &Candidate) const;
294 
295     const TargetMachine *TM = nullptr;
296   };
297 
298 } // end anonymous namespace
299 
300 char MipsDelaySlotFiller::ID = 0;
301 
302 static bool hasUnoccupiedSlot(const MachineInstr *MI) {
303   return MI->hasDelaySlot() && !MI->isBundledWithSucc();
304 }
305 
306 INITIALIZE_PASS(MipsDelaySlotFiller, DEBUG_TYPE,
307                 "Fill delay slot for MIPS", false, false)
308 
309 /// This function inserts clones of Filler into predecessor blocks.
310 static void insertDelayFiller(Iter Filler, const BB2BrMap &BrMap) {
311   MachineFunction *MF = Filler->getParent()->getParent();
312 
313   for (BB2BrMap::const_iterator I = BrMap.begin(); I != BrMap.end(); ++I) {
314     if (I->second) {
315       MIBundleBuilder(I->second).append(MF->CloneMachineInstr(&*Filler));
316       ++UsefulSlots;
317     } else {
318       I->first->insert(I->first->end(), MF->CloneMachineInstr(&*Filler));
319     }
320   }
321 }
322 
323 /// This function adds registers Filler defines to MBB's live-in register list.
324 static void addLiveInRegs(Iter Filler, MachineBasicBlock &MBB) {
325   for (unsigned I = 0, E = Filler->getNumOperands(); I != E; ++I) {
326     const MachineOperand &MO = Filler->getOperand(I);
327     unsigned R;
328 
329     if (!MO.isReg() || !MO.isDef() || !(R = MO.getReg()))
330       continue;
331 
332 #ifndef NDEBUG
333     const MachineFunction &MF = *MBB.getParent();
334     assert(MF.getSubtarget().getRegisterInfo()->getAllocatableSet(MF).test(R) &&
335            "Shouldn't move an instruction with unallocatable registers across "
336            "basic block boundaries.");
337 #endif
338 
339     if (!MBB.isLiveIn(R))
340       MBB.addLiveIn(R);
341   }
342 }
343 
344 RegDefsUses::RegDefsUses(const TargetRegisterInfo &TRI)
345     : TRI(TRI), Defs(TRI.getNumRegs(), false), Uses(TRI.getNumRegs(), false) {}
346 
347 void RegDefsUses::init(const MachineInstr &MI) {
348   // Add all register operands which are explicit and non-variadic.
349   update(MI, 0, MI.getDesc().getNumOperands());
350 
351   // If MI is a call, add RA to Defs to prevent users of RA from going into
352   // delay slot.
353   if (MI.isCall())
354     Defs.set(Mips::RA);
355 
356   // Add all implicit register operands of branch instructions except
357   // register AT.
358   if (MI.isBranch()) {
359     update(MI, MI.getDesc().getNumOperands(), MI.getNumOperands());
360     Defs.reset(Mips::AT);
361   }
362 }
363 
364 void RegDefsUses::setCallerSaved(const MachineInstr &MI) {
365   assert(MI.isCall());
366 
367   // Add RA/RA_64 to Defs to prevent users of RA/RA_64 from going into
368   // the delay slot. The reason is that RA/RA_64 must not be changed
369   // in the delay slot so that the callee can return to the caller.
370   if (MI.definesRegister(Mips::RA) || MI.definesRegister(Mips::RA_64)) {
371     Defs.set(Mips::RA);
372     Defs.set(Mips::RA_64);
373   }
374 
375   // If MI is a call, add all caller-saved registers to Defs.
376   BitVector CallerSavedRegs(TRI.getNumRegs(), true);
377 
378   CallerSavedRegs.reset(Mips::ZERO);
379   CallerSavedRegs.reset(Mips::ZERO_64);
380 
381   for (const MCPhysReg *R = TRI.getCalleeSavedRegs(MI.getParent()->getParent());
382        *R; ++R)
383     for (MCRegAliasIterator AI(*R, &TRI, true); AI.isValid(); ++AI)
384       CallerSavedRegs.reset(*AI);
385 
386   Defs |= CallerSavedRegs;
387 }
388 
389 void RegDefsUses::setUnallocatableRegs(const MachineFunction &MF) {
390   BitVector AllocSet = TRI.getAllocatableSet(MF);
391 
392   for (unsigned R : AllocSet.set_bits())
393     for (MCRegAliasIterator AI(R, &TRI, false); AI.isValid(); ++AI)
394       AllocSet.set(*AI);
395 
396   AllocSet.set(Mips::ZERO);
397   AllocSet.set(Mips::ZERO_64);
398 
399   Defs |= AllocSet.flip();
400 }
401 
402 void RegDefsUses::addLiveOut(const MachineBasicBlock &MBB,
403                              const MachineBasicBlock &SuccBB) {
404   for (const MachineBasicBlock *S : MBB.successors())
405     if (S != &SuccBB)
406       for (const auto &LI : S->liveins())
407         Uses.set(LI.PhysReg);
408 }
409 
410 bool RegDefsUses::update(const MachineInstr &MI, unsigned Begin, unsigned End) {
411   BitVector NewDefs(TRI.getNumRegs()), NewUses(TRI.getNumRegs());
412   bool HasHazard = false;
413 
414   for (unsigned I = Begin; I != End; ++I) {
415     const MachineOperand &MO = MI.getOperand(I);
416 
417     if (MO.isReg() && MO.getReg()) {
418       if (checkRegDefsUses(NewDefs, NewUses, MO.getReg(), MO.isDef())) {
419         LLVM_DEBUG(dbgs() << DEBUG_TYPE ": found register hazard for operand "
420                           << I << ": ";
421                    MO.dump());
422         HasHazard = true;
423       }
424     }
425   }
426 
427   Defs |= NewDefs;
428   Uses |= NewUses;
429 
430   return HasHazard;
431 }
432 
433 bool RegDefsUses::checkRegDefsUses(BitVector &NewDefs, BitVector &NewUses,
434                                    unsigned Reg, bool IsDef) const {
435   if (IsDef) {
436     NewDefs.set(Reg);
437     // check whether Reg has already been defined or used.
438     return (isRegInSet(Defs, Reg) || isRegInSet(Uses, Reg));
439   }
440 
441   NewUses.set(Reg);
442   // check whether Reg has already been defined.
443   return isRegInSet(Defs, Reg);
444 }
445 
446 bool RegDefsUses::isRegInSet(const BitVector &RegSet, unsigned Reg) const {
447   // Check Reg and all aliased Registers.
448   for (MCRegAliasIterator AI(Reg, &TRI, true); AI.isValid(); ++AI)
449     if (RegSet.test(*AI))
450       return true;
451   return false;
452 }
453 
454 bool InspectMemInstr::hasHazard(const MachineInstr &MI) {
455   if (!MI.mayStore() && !MI.mayLoad())
456     return false;
457 
458   if (ForbidMemInstr)
459     return true;
460 
461   OrigSeenLoad = SeenLoad;
462   OrigSeenStore = SeenStore;
463   SeenLoad |= MI.mayLoad();
464   SeenStore |= MI.mayStore();
465 
466   // If MI is an ordered or volatile memory reference, disallow moving
467   // subsequent loads and stores to delay slot.
468   if (MI.hasOrderedMemoryRef() && (OrigSeenLoad || OrigSeenStore)) {
469     ForbidMemInstr = true;
470     return true;
471   }
472 
473   return hasHazard_(MI);
474 }
475 
476 bool LoadFromStackOrConst::hasHazard_(const MachineInstr &MI) {
477   if (MI.mayStore())
478     return true;
479 
480   if (!MI.hasOneMemOperand() || !(*MI.memoperands_begin())->getPseudoValue())
481     return true;
482 
483   if (const PseudoSourceValue *PSV =
484       (*MI.memoperands_begin())->getPseudoValue()) {
485     if (isa<FixedStackPseudoSourceValue>(PSV))
486       return false;
487     return !PSV->isConstant(nullptr) && !PSV->isStack();
488   }
489 
490   return true;
491 }
492 
493 MemDefsUses::MemDefsUses(const MachineFrameInfo *MFI_)
494     : InspectMemInstr(false), MFI(MFI_) {}
495 
496 bool MemDefsUses::hasHazard_(const MachineInstr &MI) {
497   bool HasHazard = false;
498 
499   // Check underlying object list.
500   SmallVector<ValueType, 4> Objs;
501   if (getUnderlyingObjects(MI, Objs)) {
502     for (ValueType VT : Objs)
503       HasHazard |= updateDefsUses(VT, MI.mayStore());
504     return HasHazard;
505   }
506 
507   // No underlying objects found.
508   HasHazard = MI.mayStore() && (OrigSeenLoad || OrigSeenStore);
509   HasHazard |= MI.mayLoad() || OrigSeenStore;
510 
511   SeenNoObjLoad |= MI.mayLoad();
512   SeenNoObjStore |= MI.mayStore();
513 
514   return HasHazard;
515 }
516 
517 bool MemDefsUses::updateDefsUses(ValueType V, bool MayStore) {
518   if (MayStore)
519     return !Defs.insert(V).second || Uses.count(V) || SeenNoObjStore ||
520            SeenNoObjLoad;
521 
522   Uses.insert(V);
523   return Defs.count(V) || SeenNoObjStore;
524 }
525 
526 bool MemDefsUses::
527 getUnderlyingObjects(const MachineInstr &MI,
528                      SmallVectorImpl<ValueType> &Objects) const {
529   if (!MI.hasOneMemOperand())
530     return false;
531 
532   auto & MMO = **MI.memoperands_begin();
533 
534   if (const PseudoSourceValue *PSV = MMO.getPseudoValue()) {
535     if (!PSV->isAliased(MFI))
536       return false;
537     Objects.push_back(PSV);
538     return true;
539   }
540 
541   if (const Value *V = MMO.getValue()) {
542     SmallVector<const Value *, 4> Objs;
543     ::getUnderlyingObjects(V, Objs);
544 
545     for (const Value *UValue : Objs) {
546       if (!isIdentifiedObject(V))
547         return false;
548 
549       Objects.push_back(UValue);
550     }
551     return true;
552   }
553 
554   return false;
555 }
556 
557 // Replace Branch with the compact branch instruction.
558 Iter MipsDelaySlotFiller::replaceWithCompactBranch(MachineBasicBlock &MBB,
559                                                    Iter Branch,
560                                                    const DebugLoc &DL) {
561   const MipsSubtarget &STI = MBB.getParent()->getSubtarget<MipsSubtarget>();
562   const MipsInstrInfo *TII = STI.getInstrInfo();
563 
564   unsigned NewOpcode = TII->getEquivalentCompactForm(Branch);
565   Branch = TII->genInstrWithNewOpc(NewOpcode, Branch);
566 
567   auto *ToErase = cast<MachineInstr>(&*std::next(Branch));
568   // Update call site info for the Branch.
569   if (ToErase->shouldUpdateCallSiteInfo())
570     ToErase->getMF()->moveCallSiteInfo(ToErase, cast<MachineInstr>(&*Branch));
571   ToErase->eraseFromParent();
572   return Branch;
573 }
574 
575 // For given opcode returns opcode of corresponding instruction with short
576 // delay slot.
577 // For the pseudo TAILCALL*_MM instructions return the short delay slot
578 // form. Unfortunately, TAILCALL<->b16 is denied as b16 has a limited range
579 // that is too short to make use of for tail calls.
580 static int getEquivalentCallShort(int Opcode) {
581   switch (Opcode) {
582   case Mips::BGEZAL:
583     return Mips::BGEZALS_MM;
584   case Mips::BLTZAL:
585     return Mips::BLTZALS_MM;
586   case Mips::JAL:
587   case Mips::JAL_MM:
588     return Mips::JALS_MM;
589   case Mips::JALR:
590     return Mips::JALRS_MM;
591   case Mips::JALR16_MM:
592     return Mips::JALRS16_MM;
593   case Mips::TAILCALL_MM:
594     llvm_unreachable("Attempting to shorten the TAILCALL_MM pseudo!");
595   case Mips::TAILCALLREG:
596     return Mips::JR16_MM;
597   default:
598     llvm_unreachable("Unexpected call instruction for microMIPS.");
599   }
600 }
601 
602 /// runOnMachineBasicBlock - Fill in delay slots for the given basic block.
603 /// We assume there is only one delay slot per delayed instruction.
604 bool MipsDelaySlotFiller::runOnMachineBasicBlock(MachineBasicBlock &MBB) {
605   bool Changed = false;
606   const MipsSubtarget &STI = MBB.getParent()->getSubtarget<MipsSubtarget>();
607   bool InMicroMipsMode = STI.inMicroMipsMode();
608   const MipsInstrInfo *TII = STI.getInstrInfo();
609 
610   for (Iter I = MBB.begin(); I != MBB.end(); ++I) {
611     if (!hasUnoccupiedSlot(&*I))
612       continue;
613 
614     // Delay slot filling is disabled at -O0, or in microMIPS32R6.
615     if (!DisableDelaySlotFiller && (TM->getOptLevel() != CodeGenOpt::None) &&
616         !(InMicroMipsMode && STI.hasMips32r6())) {
617 
618       bool Filled = false;
619 
620       if (MipsCompactBranchPolicy.getValue() != CB_Always ||
621            !TII->getEquivalentCompactForm(I)) {
622         if (searchBackward(MBB, *I)) {
623           LLVM_DEBUG(dbgs() << DEBUG_TYPE ": found instruction for delay slot"
624                                           " in backwards search.\n");
625           Filled = true;
626         } else if (I->isTerminator()) {
627           if (searchSuccBBs(MBB, I)) {
628             Filled = true;
629             LLVM_DEBUG(dbgs() << DEBUG_TYPE ": found instruction for delay slot"
630                                             " in successor BB search.\n");
631           }
632         } else if (searchForward(MBB, I)) {
633           LLVM_DEBUG(dbgs() << DEBUG_TYPE ": found instruction for delay slot"
634                                           " in forwards search.\n");
635           Filled = true;
636         }
637       }
638 
639       if (Filled) {
640         // Get instruction with delay slot.
641         MachineBasicBlock::instr_iterator DSI = I.getInstrIterator();
642 
643         if (InMicroMipsMode && TII->getInstSizeInBytes(*std::next(DSI)) == 2 &&
644             DSI->isCall()) {
645           // If instruction in delay slot is 16b change opcode to
646           // corresponding instruction with short delay slot.
647 
648           // TODO: Implement an instruction mapping table of 16bit opcodes to
649           // 32bit opcodes so that an instruction can be expanded. This would
650           // save 16 bits as a TAILCALL_MM pseudo requires a fullsized nop.
651           // TODO: Permit b16 when branching backwards to the same function
652           // if it is in range.
653           DSI->setDesc(TII->get(getEquivalentCallShort(DSI->getOpcode())));
654         }
655         ++FilledSlots;
656         Changed = true;
657         continue;
658       }
659     }
660 
661     // For microMIPS if instruction is BEQ or BNE with one ZERO register, then
662     // instead of adding NOP replace this instruction with the corresponding
663     // compact branch instruction, i.e. BEQZC or BNEZC. Additionally
664     // PseudoReturn and PseudoIndirectBranch are expanded to JR_MM, so they can
665     // be replaced with JRC16_MM.
666 
667     // For MIPSR6 attempt to produce the corresponding compact (no delay slot)
668     // form of the CTI. For indirect jumps this will not require inserting a
669     // NOP and for branches will hopefully avoid requiring a NOP.
670     if ((InMicroMipsMode ||
671          (STI.hasMips32r6() && MipsCompactBranchPolicy != CB_Never)) &&
672         TII->getEquivalentCompactForm(I)) {
673       I = replaceWithCompactBranch(MBB, I, I->getDebugLoc());
674       Changed = true;
675       continue;
676     }
677 
678     // Bundle the NOP to the instruction with the delay slot.
679     LLVM_DEBUG(dbgs() << DEBUG_TYPE << ": could not fill delay slot for ";
680                I->dump());
681     BuildMI(MBB, std::next(I), I->getDebugLoc(), TII->get(Mips::NOP));
682     MIBundleBuilder(MBB, I, std::next(I, 2));
683     ++FilledSlots;
684     Changed = true;
685   }
686 
687   return Changed;
688 }
689 
690 template <typename IterTy>
691 bool MipsDelaySlotFiller::searchRange(MachineBasicBlock &MBB, IterTy Begin,
692                                       IterTy End, RegDefsUses &RegDU,
693                                       InspectMemInstr &IM, Iter Slot,
694                                       IterTy &Filler) const {
695   for (IterTy I = Begin; I != End;) {
696     IterTy CurrI = I;
697     ++I;
698     LLVM_DEBUG(dbgs() << DEBUG_TYPE ": checking instruction: "; CurrI->dump());
699     // skip debug value
700     if (CurrI->isDebugInstr()) {
701       LLVM_DEBUG(dbgs() << DEBUG_TYPE ": ignoring debug instruction: ";
702                  CurrI->dump());
703       continue;
704     }
705 
706     if (CurrI->isBundle()) {
707       LLVM_DEBUG(dbgs() << DEBUG_TYPE ": ignoring BUNDLE instruction: ";
708                  CurrI->dump());
709       // However, we still need to update the register def-use information.
710       RegDU.update(*CurrI, 0, CurrI->getNumOperands());
711       continue;
712     }
713 
714     if (terminateSearch(*CurrI)) {
715       LLVM_DEBUG(dbgs() << DEBUG_TYPE ": should terminate search: ";
716                  CurrI->dump());
717       break;
718     }
719 
720     assert((!CurrI->isCall() && !CurrI->isReturn() && !CurrI->isBranch()) &&
721            "Cannot put calls, returns or branches in delay slot.");
722 
723     if (CurrI->isKill()) {
724       CurrI->eraseFromParent();
725       continue;
726     }
727 
728     if (delayHasHazard(*CurrI, RegDU, IM))
729       continue;
730 
731     const MipsSubtarget &STI = MBB.getParent()->getSubtarget<MipsSubtarget>();
732     if (STI.isTargetNaCl()) {
733       // In NaCl, instructions that must be masked are forbidden in delay slots.
734       // We only check for loads, stores and SP changes.  Calls, returns and
735       // branches are not checked because non-NaCl targets never put them in
736       // delay slots.
737       unsigned AddrIdx;
738       if ((isBasePlusOffsetMemoryAccess(CurrI->getOpcode(), &AddrIdx) &&
739            baseRegNeedsLoadStoreMask(CurrI->getOperand(AddrIdx).getReg())) ||
740           CurrI->modifiesRegister(Mips::SP, STI.getRegisterInfo()))
741         continue;
742     }
743 
744     bool InMicroMipsMode = STI.inMicroMipsMode();
745     const MipsInstrInfo *TII = STI.getInstrInfo();
746     unsigned Opcode = (*Slot).getOpcode();
747     // This is complicated by the tail call optimization. For non-PIC code
748     // there is only a 32bit sized unconditional branch which can be assumed
749     // to be able to reach the target. b16 only has a range of +/- 1 KB.
750     // It's entirely possible that the target function is reachable with b16
751     // but we don't have enough information to make that decision.
752      if (InMicroMipsMode && TII->getInstSizeInBytes(*CurrI) == 2 &&
753         (Opcode == Mips::JR || Opcode == Mips::PseudoIndirectBranch ||
754          Opcode == Mips::PseudoIndirectBranch_MM ||
755          Opcode == Mips::PseudoReturn || Opcode == Mips::TAILCALL))
756       continue;
757      // Instructions LWP/SWP and MOVEP should not be in a delay slot as that
758      // results in unpredictable behaviour
759      if (InMicroMipsMode && (Opcode == Mips::LWP_MM || Opcode == Mips::SWP_MM ||
760                              Opcode == Mips::MOVEP_MM))
761        continue;
762 
763     Filler = CurrI;
764     LLVM_DEBUG(dbgs() << DEBUG_TYPE ": found instruction for delay slot: ";
765                CurrI->dump());
766 
767     return true;
768   }
769 
770   return false;
771 }
772 
773 bool MipsDelaySlotFiller::searchBackward(MachineBasicBlock &MBB,
774                                          MachineInstr &Slot) const {
775   if (DisableBackwardSearch)
776     return false;
777 
778   auto *Fn = MBB.getParent();
779   RegDefsUses RegDU(*Fn->getSubtarget().getRegisterInfo());
780   MemDefsUses MemDU(&Fn->getFrameInfo());
781   ReverseIter Filler;
782 
783   RegDU.init(Slot);
784 
785   MachineBasicBlock::iterator SlotI = Slot;
786   if (!searchRange(MBB, ++SlotI.getReverse(), MBB.rend(), RegDU, MemDU, Slot,
787                    Filler)) {
788     LLVM_DEBUG(dbgs() << DEBUG_TYPE ": could not find instruction for delay "
789                                     "slot using backwards search.\n");
790     return false;
791   }
792 
793   MBB.splice(std::next(SlotI), &MBB, Filler.getReverse());
794   MIBundleBuilder(MBB, SlotI, std::next(SlotI, 2));
795   ++UsefulSlots;
796   return true;
797 }
798 
799 bool MipsDelaySlotFiller::searchForward(MachineBasicBlock &MBB,
800                                         Iter Slot) const {
801   // Can handle only calls.
802   if (DisableForwardSearch || !Slot->isCall())
803     return false;
804 
805   RegDefsUses RegDU(*MBB.getParent()->getSubtarget().getRegisterInfo());
806   NoMemInstr NM;
807   Iter Filler;
808 
809   RegDU.setCallerSaved(*Slot);
810 
811   if (!searchRange(MBB, std::next(Slot), MBB.end(), RegDU, NM, Slot, Filler)) {
812     LLVM_DEBUG(dbgs() << DEBUG_TYPE ": could not find instruction for delay "
813                                     "slot using forwards search.\n");
814     return false;
815   }
816 
817   MBB.splice(std::next(Slot), &MBB, Filler);
818   MIBundleBuilder(MBB, Slot, std::next(Slot, 2));
819   ++UsefulSlots;
820   return true;
821 }
822 
823 bool MipsDelaySlotFiller::searchSuccBBs(MachineBasicBlock &MBB,
824                                         Iter Slot) const {
825   if (DisableSuccBBSearch)
826     return false;
827 
828   MachineBasicBlock *SuccBB = selectSuccBB(MBB);
829 
830   if (!SuccBB)
831     return false;
832 
833   RegDefsUses RegDU(*MBB.getParent()->getSubtarget().getRegisterInfo());
834   bool HasMultipleSuccs = false;
835   BB2BrMap BrMap;
836   std::unique_ptr<InspectMemInstr> IM;
837   Iter Filler;
838   auto *Fn = MBB.getParent();
839 
840   // Iterate over SuccBB's predecessor list.
841   for (MachineBasicBlock *Pred : SuccBB->predecessors())
842     if (!examinePred(*Pred, *SuccBB, RegDU, HasMultipleSuccs, BrMap))
843       return false;
844 
845   // Do not allow moving instructions which have unallocatable register operands
846   // across basic block boundaries.
847   RegDU.setUnallocatableRegs(*Fn);
848 
849   // Only allow moving loads from stack or constants if any of the SuccBB's
850   // predecessors have multiple successors.
851   if (HasMultipleSuccs) {
852     IM.reset(new LoadFromStackOrConst());
853   } else {
854     const MachineFrameInfo &MFI = Fn->getFrameInfo();
855     IM.reset(new MemDefsUses(&MFI));
856   }
857 
858   if (!searchRange(MBB, SuccBB->begin(), SuccBB->end(), RegDU, *IM, Slot,
859                    Filler))
860     return false;
861 
862   insertDelayFiller(Filler, BrMap);
863   addLiveInRegs(Filler, *SuccBB);
864   Filler->eraseFromParent();
865 
866   return true;
867 }
868 
869 MachineBasicBlock *
870 MipsDelaySlotFiller::selectSuccBB(MachineBasicBlock &B) const {
871   if (B.succ_empty())
872     return nullptr;
873 
874   // Select the successor with the larget edge weight.
875   auto &Prob = getAnalysis<MachineBranchProbabilityInfo>();
876   MachineBasicBlock *S = *std::max_element(
877       B.succ_begin(), B.succ_end(),
878       [&](const MachineBasicBlock *Dst0, const MachineBasicBlock *Dst1) {
879         return Prob.getEdgeProbability(&B, Dst0) <
880                Prob.getEdgeProbability(&B, Dst1);
881       });
882   return S->isEHPad() ? nullptr : S;
883 }
884 
885 std::pair<MipsInstrInfo::BranchType, MachineInstr *>
886 MipsDelaySlotFiller::getBranch(MachineBasicBlock &MBB,
887                                const MachineBasicBlock &Dst) const {
888   const MipsInstrInfo *TII =
889       MBB.getParent()->getSubtarget<MipsSubtarget>().getInstrInfo();
890   MachineBasicBlock *TrueBB = nullptr, *FalseBB = nullptr;
891   SmallVector<MachineInstr*, 2> BranchInstrs;
892   SmallVector<MachineOperand, 2> Cond;
893 
894   MipsInstrInfo::BranchType R =
895       TII->analyzeBranch(MBB, TrueBB, FalseBB, Cond, false, BranchInstrs);
896 
897   if ((R == MipsInstrInfo::BT_None) || (R == MipsInstrInfo::BT_NoBranch))
898     return std::make_pair(R, nullptr);
899 
900   if (R != MipsInstrInfo::BT_CondUncond) {
901     if (!hasUnoccupiedSlot(BranchInstrs[0]))
902       return std::make_pair(MipsInstrInfo::BT_None, nullptr);
903 
904     assert(((R != MipsInstrInfo::BT_Uncond) || (TrueBB == &Dst)));
905 
906     return std::make_pair(R, BranchInstrs[0]);
907   }
908 
909   assert((TrueBB == &Dst) || (FalseBB == &Dst));
910 
911   // Examine the conditional branch. See if its slot is occupied.
912   if (hasUnoccupiedSlot(BranchInstrs[0]))
913     return std::make_pair(MipsInstrInfo::BT_Cond, BranchInstrs[0]);
914 
915   // If that fails, try the unconditional branch.
916   if (hasUnoccupiedSlot(BranchInstrs[1]) && (FalseBB == &Dst))
917     return std::make_pair(MipsInstrInfo::BT_Uncond, BranchInstrs[1]);
918 
919   return std::make_pair(MipsInstrInfo::BT_None, nullptr);
920 }
921 
922 bool MipsDelaySlotFiller::examinePred(MachineBasicBlock &Pred,
923                                       const MachineBasicBlock &Succ,
924                                       RegDefsUses &RegDU,
925                                       bool &HasMultipleSuccs,
926                                       BB2BrMap &BrMap) const {
927   std::pair<MipsInstrInfo::BranchType, MachineInstr *> P =
928       getBranch(Pred, Succ);
929 
930   // Return if either getBranch wasn't able to analyze the branches or there
931   // were no branches with unoccupied slots.
932   if (P.first == MipsInstrInfo::BT_None)
933     return false;
934 
935   if ((P.first != MipsInstrInfo::BT_Uncond) &&
936       (P.first != MipsInstrInfo::BT_NoBranch)) {
937     HasMultipleSuccs = true;
938     RegDU.addLiveOut(Pred, Succ);
939   }
940 
941   BrMap[&Pred] = P.second;
942   return true;
943 }
944 
945 bool MipsDelaySlotFiller::delayHasHazard(const MachineInstr &Candidate,
946                                          RegDefsUses &RegDU,
947                                          InspectMemInstr &IM) const {
948   assert(!Candidate.isKill() &&
949          "KILL instructions should have been eliminated at this point.");
950 
951   bool HasHazard = Candidate.isImplicitDef();
952 
953   HasHazard |= IM.hasHazard(Candidate);
954   HasHazard |= RegDU.update(Candidate, 0, Candidate.getNumOperands());
955 
956   return HasHazard;
957 }
958 
959 bool MipsDelaySlotFiller::terminateSearch(const MachineInstr &Candidate) const {
960   return (Candidate.isTerminator() || Candidate.isCall() ||
961           Candidate.isPosition() || Candidate.isInlineAsm() ||
962           Candidate.hasUnmodeledSideEffects());
963 }
964 
965 /// createMipsDelaySlotFillerPass - Returns a pass that fills in delay
966 /// slots in Mips MachineFunctions
967 FunctionPass *llvm::createMipsDelaySlotFillerPass() {
968   return new MipsDelaySlotFiller();
969 }
970