1 //===----------- PPCVSXSwapRemoval.cpp - Remove VSX LE Swaps -------------===//
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 pass analyzes vector computations and removes unnecessary
11 // doubleword swaps (xxswapd instructions).  This pass is performed
12 // only for little-endian VSX code generation.
13 //
14 // For this specific case, loads and stores of v4i32, v4f32, v2i64,
15 // and v2f64 vectors are inefficient.  These are implemented using
16 // the lxvd2x and stxvd2x instructions, which invert the order of
17 // doublewords in a vector register.  Thus code generation inserts
18 // an xxswapd after each such load, and prior to each such store.
19 //
20 // The extra xxswapd instructions reduce performance.  The purpose
21 // of this pass is to reduce the number of xxswapd instructions
22 // required for correctness.
23 //
24 // The primary insight is that much code that operates on vectors
25 // does not care about the relative order of elements in a register,
26 // so long as the correct memory order is preserved.  If we have a
27 // computation where all input values are provided by lxvd2x/xxswapd,
28 // all outputs are stored using xxswapd/lxvd2x, and all intermediate
29 // computations are lane-insensitive (independent of element order),
30 // then all the xxswapd instructions associated with the loads and
31 // stores may be removed without changing observable semantics.
32 //
33 // This pass uses standard equivalence class infrastructure to create
34 // maximal webs of computations fitting the above description.  Each
35 // such web is then optimized by removing its unnecessary xxswapd
36 // instructions.
37 //
38 // There are some lane-sensitive operations for which we can still
39 // permit the optimization, provided we modify those operations
40 // accordingly.  Such operations are identified as using "special
41 // handling" within this module.
42 //
43 //===---------------------------------------------------------------------===//
44 
45 #include "PPCInstrInfo.h"
46 #include "PPC.h"
47 #include "PPCInstrBuilder.h"
48 #include "PPCTargetMachine.h"
49 #include "llvm/ADT/DenseMap.h"
50 #include "llvm/ADT/EquivalenceClasses.h"
51 #include "llvm/CodeGen/MachineFunctionPass.h"
52 #include "llvm/CodeGen/MachineInstrBuilder.h"
53 #include "llvm/CodeGen/MachineRegisterInfo.h"
54 #include "llvm/Support/Debug.h"
55 #include "llvm/Support/Format.h"
56 #include "llvm/Support/raw_ostream.h"
57 
58 using namespace llvm;
59 
60 #define DEBUG_TYPE "ppc-vsx-swaps"
61 
62 namespace llvm {
63   void initializePPCVSXSwapRemovalPass(PassRegistry&);
64 }
65 
66 namespace {
67 
68 // A PPCVSXSwapEntry is created for each machine instruction that
69 // is relevant to a vector computation.
70 struct PPCVSXSwapEntry {
71   // Pointer to the instruction.
72   MachineInstr *VSEMI;
73 
74   // Unique ID (position in the swap vector).
75   int VSEId;
76 
77   // Attributes of this node.
78   unsigned int IsLoad : 1;
79   unsigned int IsStore : 1;
80   unsigned int IsSwap : 1;
81   unsigned int MentionsPhysVR : 1;
82   unsigned int IsSwappable : 1;
83   unsigned int SpecialHandling : 3;
84   unsigned int WebRejected : 1;
85   unsigned int WillRemove : 1;
86 };
87 
88 enum SHValues {
89   SH_NONE = 0,
90   SH_EXTRACT,
91   SH_INSERT,
92   SH_NOSWAP_LD,
93   SH_NOSWAP_ST,
94   SH_SPLAT
95 };
96 
97 struct PPCVSXSwapRemoval : public MachineFunctionPass {
98 
99   static char ID;
100   const PPCInstrInfo *TII;
101   MachineFunction *MF;
102   MachineRegisterInfo *MRI;
103 
104   // Swap entries are allocated in a vector for better performance.
105   std::vector<PPCVSXSwapEntry> SwapVector;
106 
107   // A mapping is maintained between machine instructions and
108   // their swap entries.  The key is the address of the MI.
109   DenseMap<MachineInstr*, int> SwapMap;
110 
111   // Equivalence classes are used to gather webs of related computation.
112   // Swap entries are represented by their VSEId fields.
113   EquivalenceClasses<int> *EC;
114 
115   PPCVSXSwapRemoval() : MachineFunctionPass(ID) {
116     initializePPCVSXSwapRemovalPass(*PassRegistry::getPassRegistry());
117   }
118 
119 private:
120   // Initialize data structures.
121   void initialize(MachineFunction &MFParm);
122 
123   // Walk the machine instructions to gather vector usage information.
124   // Return true iff vector mentions are present.
125   bool gatherVectorInstructions();
126 
127   // Add an entry to the swap vector and swap map.
128   int addSwapEntry(MachineInstr *MI, PPCVSXSwapEntry &SwapEntry);
129 
130   // Hunt backwards through COPY and SUBREG_TO_REG chains for a
131   // source register.  VecIdx indicates the swap vector entry to
132   // mark as mentioning a physical register if the search leads
133   // to one.
134   unsigned lookThruCopyLike(unsigned SrcReg, unsigned VecIdx);
135 
136   // Generate equivalence classes for related computations (webs).
137   void formWebs();
138 
139   // Analyze webs and determine those that cannot be optimized.
140   void recordUnoptimizableWebs();
141 
142   // Record which swap instructions can be safely removed.
143   void markSwapsForRemoval();
144 
145   // Remove swaps and update other instructions requiring special
146   // handling.  Return true iff any changes are made.
147   bool removeSwaps();
148 
149   // Update instructions requiring special handling.
150   void handleSpecialSwappables(int EntryIdx);
151 
152   // Dump a description of the entries in the swap vector.
153   void dumpSwapVector();
154 
155   // Return true iff the given register is in the given class.
156   bool isRegInClass(unsigned Reg, const TargetRegisterClass *RC) {
157     if (TargetRegisterInfo::isVirtualRegister(Reg))
158       return RC->hasSubClassEq(MRI->getRegClass(Reg));
159     if (RC->contains(Reg))
160       return true;
161     return false;
162   }
163 
164   // Return true iff the given register is a full vector register.
165   bool isVecReg(unsigned Reg) {
166     return (isRegInClass(Reg, &PPC::VSRCRegClass) ||
167             isRegInClass(Reg, &PPC::VRRCRegClass));
168   }
169 
170 public:
171   // Main entry point for this pass.
172   bool runOnMachineFunction(MachineFunction &MF) override {
173     // If we don't have VSX on the subtarget, don't do anything.
174     const PPCSubtarget &STI = MF.getSubtarget<PPCSubtarget>();
175     if (!STI.hasVSX())
176       return false;
177 
178     bool Changed = false;
179     initialize(MF);
180 
181     if (gatherVectorInstructions()) {
182       formWebs();
183       recordUnoptimizableWebs();
184       markSwapsForRemoval();
185       Changed = removeSwaps();
186     }
187 
188     // FIXME: See the allocation of EC in initialize().
189     delete EC;
190     return Changed;
191   }
192 };
193 
194 // Initialize data structures for this pass.  In particular, clear the
195 // swap vector and allocate the equivalence class mapping before
196 // processing each function.
197 void PPCVSXSwapRemoval::initialize(MachineFunction &MFParm) {
198   MF = &MFParm;
199   MRI = &MF->getRegInfo();
200   TII = static_cast<const PPCInstrInfo*>(MF->getSubtarget().getInstrInfo());
201 
202   // An initial vector size of 256 appears to work well in practice.
203   // Small/medium functions with vector content tend not to incur a
204   // reallocation at this size.  Three of the vector tests in
205   // projects/test-suite reallocate, which seems like a reasonable rate.
206   const int InitialVectorSize(256);
207   SwapVector.clear();
208   SwapVector.reserve(InitialVectorSize);
209 
210   // FIXME: Currently we allocate EC each time because we don't have
211   // access to the set representation on which to call clear().  Should
212   // consider adding a clear() method to the EquivalenceClasses class.
213   EC = new EquivalenceClasses<int>;
214 }
215 
216 // Create an entry in the swap vector for each instruction that mentions
217 // a full vector register, recording various characteristics of the
218 // instructions there.
219 bool PPCVSXSwapRemoval::gatherVectorInstructions() {
220   bool RelevantFunction = false;
221 
222   for (MachineBasicBlock &MBB : *MF) {
223     for (MachineInstr &MI : MBB) {
224 
225       bool RelevantInstr = false;
226 
227       for (const MachineOperand &MO : MI.operands()) {
228         if (!MO.isReg())
229           continue;
230         unsigned Reg = MO.getReg();
231         if (isVecReg(Reg)) {
232           RelevantInstr = true;
233           break;
234         }
235       }
236 
237       if (!RelevantInstr)
238         continue;
239 
240       RelevantFunction = true;
241 
242       // Create a SwapEntry initialized to zeros, then fill in the
243       // instruction and ID fields before pushing it to the back
244       // of the swap vector.
245       PPCVSXSwapEntry SwapEntry{};
246       int VecIdx = addSwapEntry(&MI, SwapEntry);
247 
248       switch(MI.getOpcode()) {
249       default:
250         // Unless noted otherwise, an instruction is considered
251         // safe for the optimization.  There are a large number of
252         // such true-SIMD instructions (all vector math, logical,
253         // select, compare, etc.).
254         SwapVector[VecIdx].IsSwappable = 1;
255         break;
256       case PPC::XXPERMDI: {
257         // This is a swap if it is of the form XXPERMDI t, s, s, 2.
258         // Unfortunately, MachineCSE ignores COPY and SUBREG_TO_REG, so we
259         // can also see XXPERMDI t, SUBREG_TO_REG(s), SUBREG_TO_REG(s), 2,
260         // for example.  We have to look through chains of COPY and
261         // SUBREG_TO_REG to find the real source value for comparison.
262         // If the real source value is a physical register, then mark the
263         // XXPERMDI as mentioning a physical register.
264         int immed = MI.getOperand(3).getImm();
265         if (immed == 2) {
266           unsigned trueReg1 = lookThruCopyLike(MI.getOperand(1).getReg(),
267                                                VecIdx);
268           unsigned trueReg2 = lookThruCopyLike(MI.getOperand(2).getReg(),
269                                                VecIdx);
270           if (trueReg1 == trueReg2)
271             SwapVector[VecIdx].IsSwap = 1;
272         }
273         // This is a doubleword splat if it is of the form
274         // XXPERMDI t, s, s, 0 or XXPERMDI t, s, s, 3.  As above we
275         // must look through chains of copy-likes to find the source
276         // register.  We turn off the marking for mention of a physical
277         // register, because splatting it is safe; the optimization
278         // will not swap the value in the physical register.
279         else if (immed == 0 || immed == 3) {
280           unsigned trueReg1 = lookThruCopyLike(MI.getOperand(1).getReg(),
281                                                VecIdx);
282           unsigned trueReg2 = lookThruCopyLike(MI.getOperand(2).getReg(),
283                                                VecIdx);
284           if (trueReg1 == trueReg2) {
285             SwapVector[VecIdx].IsSwappable = 1;
286             SwapVector[VecIdx].MentionsPhysVR = 0;
287           }
288         }
289         // Any other form of XXPERMDI is lane-sensitive and unsafe
290         // for the optimization.
291         break;
292       }
293       case PPC::LVX:
294         // Non-permuting loads are currently unsafe.  We can use special
295         // handling for this in the future.  By not marking these as
296         // IsSwap, we ensure computations containing them will be rejected
297         // for now.
298         SwapVector[VecIdx].IsLoad = 1;
299         break;
300       case PPC::LXVD2X:
301       case PPC::LXVW4X:
302         // Permuting loads are marked as both load and swap, and are
303         // safe for optimization.
304         SwapVector[VecIdx].IsLoad = 1;
305         SwapVector[VecIdx].IsSwap = 1;
306         break;
307       case PPC::STVX:
308         // Non-permuting stores are currently unsafe.  We can use special
309         // handling for this in the future.  By not marking these as
310         // IsSwap, we ensure computations containing them will be rejected
311         // for now.
312         SwapVector[VecIdx].IsStore = 1;
313         break;
314       case PPC::STXVD2X:
315       case PPC::STXVW4X:
316         // Permuting stores are marked as both store and swap, and are
317         // safe for optimization.
318         SwapVector[VecIdx].IsStore = 1;
319         SwapVector[VecIdx].IsSwap = 1;
320         break;
321       case PPC::COPY:
322         // These are fine provided they are moving between full vector
323         // register classes.
324         if (isVecReg(MI.getOperand(0).getReg()) &&
325             isVecReg(MI.getOperand(1).getReg()))
326           SwapVector[VecIdx].IsSwappable = 1;
327         break;
328       case PPC::VSPLTB:
329       case PPC::VSPLTH:
330       case PPC::VSPLTW:
331         // Splats are lane-sensitive, but we can use special handling
332         // to adjust the source lane for the splat.  This is not yet
333         // implemented.  When it is, we need to uncomment the following:
334         SwapVector[VecIdx].IsSwappable = 1;
335         SwapVector[VecIdx].SpecialHandling = SHValues::SH_SPLAT;
336         break;
337       // The presence of the following lane-sensitive operations in a
338       // web will kill the optimization, at least for now.  For these
339       // we do nothing, causing the optimization to fail.
340       // FIXME: Some of these could be permitted with special handling,
341       // and will be phased in as time permits.
342       // FIXME: There is no simple and maintainable way to express a set
343       // of opcodes having a common attribute in TableGen.  Should this
344       // change, this is a prime candidate to use such a mechanism.
345       case PPC::INLINEASM:
346       case PPC::EXTRACT_SUBREG:
347       case PPC::INSERT_SUBREG:
348       case PPC::COPY_TO_REGCLASS:
349       case PPC::LVEBX:
350       case PPC::LVEHX:
351       case PPC::LVEWX:
352       case PPC::LVSL:
353       case PPC::LVSR:
354       case PPC::LVXL:
355       case PPC::STVEBX:
356       case PPC::STVEHX:
357       case PPC::STVEWX:
358       case PPC::STVXL:
359       case PPC::STXSDX:
360       case PPC::VCIPHER:
361       case PPC::VCIPHERLAST:
362       case PPC::VMRGHB:
363       case PPC::VMRGHH:
364       case PPC::VMRGHW:
365       case PPC::VMRGLB:
366       case PPC::VMRGLH:
367       case PPC::VMRGLW:
368       case PPC::VMULESB:
369       case PPC::VMULESH:
370       case PPC::VMULESW:
371       case PPC::VMULEUB:
372       case PPC::VMULEUH:
373       case PPC::VMULEUW:
374       case PPC::VMULOSB:
375       case PPC::VMULOSH:
376       case PPC::VMULOSW:
377       case PPC::VMULOUB:
378       case PPC::VMULOUH:
379       case PPC::VMULOUW:
380       case PPC::VNCIPHER:
381       case PPC::VNCIPHERLAST:
382       case PPC::VPERM:
383       case PPC::VPERMXOR:
384       case PPC::VPKPX:
385       case PPC::VPKSHSS:
386       case PPC::VPKSHUS:
387       case PPC::VPKSDSS:
388       case PPC::VPKSDUS:
389       case PPC::VPKSWSS:
390       case PPC::VPKSWUS:
391       case PPC::VPKUDUM:
392       case PPC::VPKUDUS:
393       case PPC::VPKUHUM:
394       case PPC::VPKUHUS:
395       case PPC::VPKUWUM:
396       case PPC::VPKUWUS:
397       case PPC::VPMSUMB:
398       case PPC::VPMSUMD:
399       case PPC::VPMSUMH:
400       case PPC::VPMSUMW:
401       case PPC::VRLB:
402       case PPC::VRLD:
403       case PPC::VRLH:
404       case PPC::VRLW:
405       case PPC::VSBOX:
406       case PPC::VSHASIGMAD:
407       case PPC::VSHASIGMAW:
408       case PPC::VSL:
409       case PPC::VSLDOI:
410       case PPC::VSLO:
411       case PPC::VSR:
412       case PPC::VSRO:
413       case PPC::VSUM2SWS:
414       case PPC::VSUM4SBS:
415       case PPC::VSUM4SHS:
416       case PPC::VSUM4UBS:
417       case PPC::VSUMSWS:
418       case PPC::VUPKHPX:
419       case PPC::VUPKHSB:
420       case PPC::VUPKHSH:
421       case PPC::VUPKHSW:
422       case PPC::VUPKLPX:
423       case PPC::VUPKLSB:
424       case PPC::VUPKLSH:
425       case PPC::VUPKLSW:
426       case PPC::XXMRGHW:
427       case PPC::XXMRGLW:
428       case PPC::XXSPLTW:
429         break;
430       }
431     }
432   }
433 
434   if (RelevantFunction) {
435     DEBUG(dbgs() << "Swap vector when first built\n\n");
436     dumpSwapVector();
437   }
438 
439   return RelevantFunction;
440 }
441 
442 // Add an entry to the swap vector and swap map, and make a
443 // singleton equivalence class for the entry.
444 int PPCVSXSwapRemoval::addSwapEntry(MachineInstr *MI,
445                                   PPCVSXSwapEntry& SwapEntry) {
446   SwapEntry.VSEMI = MI;
447   SwapEntry.VSEId = SwapVector.size();
448   SwapVector.push_back(SwapEntry);
449   EC->insert(SwapEntry.VSEId);
450   SwapMap[MI] = SwapEntry.VSEId;
451   return SwapEntry.VSEId;
452 }
453 
454 // This is used to find the "true" source register for an
455 // XXPERMDI instruction, since MachineCSE does not handle the
456 // "copy-like" operations (Copy and SubregToReg).  Returns
457 // the original SrcReg unless it is the target of a copy-like
458 // operation, in which case we chain backwards through all
459 // such operations to the ultimate source register.  If a
460 // physical register is encountered, we stop the search and
461 // flag the swap entry indicated by VecIdx (the original
462 // XXPERMDI) as mentioning a physical register.
463 unsigned PPCVSXSwapRemoval::lookThruCopyLike(unsigned SrcReg,
464                                              unsigned VecIdx) {
465   MachineInstr *MI = MRI->getVRegDef(SrcReg);
466   if (!MI->isCopyLike())
467     return SrcReg;
468 
469   unsigned CopySrcReg;
470   if (MI->isCopy())
471     CopySrcReg = MI->getOperand(1).getReg();
472   else {
473     assert(MI->isSubregToReg() && "bad opcode for lookThruCopyLike");
474     CopySrcReg = MI->getOperand(2).getReg();
475   }
476 
477   if (!TargetRegisterInfo::isVirtualRegister(CopySrcReg)) {
478     SwapVector[VecIdx].MentionsPhysVR = 1;
479     return CopySrcReg;
480   }
481 
482   return lookThruCopyLike(CopySrcReg, VecIdx);
483 }
484 
485 // Generate equivalence classes for related computations (webs) by
486 // def-use relationships of virtual registers.  Mention of a physical
487 // register terminates the generation of equivalence classes as this
488 // indicates a use of a parameter, definition of a return value, use
489 // of a value returned from a call, or definition of a parameter to a
490 // call.  Computations with physical register mentions are flagged
491 // as such so their containing webs will not be optimized.
492 void PPCVSXSwapRemoval::formWebs() {
493 
494   DEBUG(dbgs() << "\n*** Forming webs for swap removal ***\n\n");
495 
496   for (unsigned EntryIdx = 0; EntryIdx < SwapVector.size(); ++EntryIdx) {
497 
498     MachineInstr *MI = SwapVector[EntryIdx].VSEMI;
499 
500     DEBUG(dbgs() << "\n" << SwapVector[EntryIdx].VSEId << " ");
501     DEBUG(MI->dump());
502 
503     // It's sufficient to walk vector uses and join them to their unique
504     // definitions.  In addition, check *all* vector register operands
505     // for physical regs.
506     for (const MachineOperand &MO : MI->operands()) {
507       if (!MO.isReg())
508         continue;
509 
510       unsigned Reg = MO.getReg();
511       if (!isVecReg(Reg))
512         continue;
513 
514       if (!TargetRegisterInfo::isVirtualRegister(Reg)) {
515         SwapVector[EntryIdx].MentionsPhysVR = 1;
516         continue;
517       }
518 
519       if (!MO.isUse())
520         continue;
521 
522       MachineInstr* DefMI = MRI->getVRegDef(Reg);
523       assert(SwapMap.find(DefMI) != SwapMap.end() &&
524              "Inconsistency: def of vector reg not found in swap map!");
525       int DefIdx = SwapMap[DefMI];
526       (void)EC->unionSets(SwapVector[DefIdx].VSEId,
527                           SwapVector[EntryIdx].VSEId);
528 
529       DEBUG(dbgs() << format("Unioning %d with %d\n", SwapVector[DefIdx].VSEId,
530                              SwapVector[EntryIdx].VSEId));
531       DEBUG(dbgs() << "  Def: ");
532       DEBUG(DefMI->dump());
533     }
534   }
535 }
536 
537 // Walk the swap vector entries looking for conditions that prevent their
538 // containing computations from being optimized.  When such conditions are
539 // found, mark the representative of the computation's equivalence class
540 // as rejected.
541 void PPCVSXSwapRemoval::recordUnoptimizableWebs() {
542 
543   DEBUG(dbgs() << "\n*** Rejecting webs for swap removal ***\n\n");
544 
545   for (unsigned EntryIdx = 0; EntryIdx < SwapVector.size(); ++EntryIdx) {
546     int Repr = EC->getLeaderValue(SwapVector[EntryIdx].VSEId);
547 
548     // Reject webs containing mentions of physical registers, or containing
549     // operations that we don't know how to handle in a lane-permuted region.
550     if (SwapVector[EntryIdx].MentionsPhysVR ||
551         !(SwapVector[EntryIdx].IsSwappable || SwapVector[EntryIdx].IsSwap)) {
552 
553       SwapVector[Repr].WebRejected = 1;
554 
555       DEBUG(dbgs() <<
556             format("Web %d rejected for physreg, subreg, or not swap[pable]\n",
557                    Repr));
558       DEBUG(dbgs() << "  in " << EntryIdx << ": ");
559       DEBUG(SwapVector[EntryIdx].VSEMI->dump());
560       DEBUG(dbgs() << "\n");
561     }
562 
563     // Reject webs than contain swapping loads that feed something other
564     // than a swap instruction.
565     else if (SwapVector[EntryIdx].IsLoad && SwapVector[EntryIdx].IsSwap) {
566       MachineInstr *MI = SwapVector[EntryIdx].VSEMI;
567       unsigned DefReg = MI->getOperand(0).getReg();
568 
569       // We skip debug instructions in the analysis.  (Note that debug
570       // location information is still maintained by this optimization
571       // because it remains on the LXVD2X and STXVD2X instructions after
572       // the XXPERMDIs are removed.)
573       for (MachineInstr &UseMI : MRI->use_nodbg_instructions(DefReg)) {
574         int UseIdx = SwapMap[&UseMI];
575 
576         if (!SwapVector[UseIdx].IsSwap || SwapVector[UseIdx].IsLoad ||
577             SwapVector[UseIdx].IsStore) {
578 
579           SwapVector[Repr].WebRejected = 1;
580 
581           DEBUG(dbgs() <<
582                 format("Web %d rejected for load not feeding swap\n", Repr));
583           DEBUG(dbgs() << "  def " << EntryIdx << ": ");
584           DEBUG(MI->dump());
585           DEBUG(dbgs() << "  use " << UseIdx << ": ");
586           DEBUG(UseMI.dump());
587           DEBUG(dbgs() << "\n");
588         }
589       }
590 
591     // Reject webs than contain swapping stores that are fed by something
592     // other than a swap instruction.
593     } else if (SwapVector[EntryIdx].IsStore && SwapVector[EntryIdx].IsSwap) {
594       MachineInstr *MI = SwapVector[EntryIdx].VSEMI;
595       unsigned UseReg = MI->getOperand(0).getReg();
596       MachineInstr *DefMI = MRI->getVRegDef(UseReg);
597       int DefIdx = SwapMap[DefMI];
598 
599       if (!SwapVector[DefIdx].IsSwap || SwapVector[DefIdx].IsLoad ||
600           SwapVector[DefIdx].IsStore) {
601 
602         SwapVector[Repr].WebRejected = 1;
603 
604         DEBUG(dbgs() <<
605               format("Web %d rejected for store not fed by swap\n", Repr));
606         DEBUG(dbgs() << "  def " << DefIdx << ": ");
607         DEBUG(DefMI->dump());
608         DEBUG(dbgs() << "  use " << EntryIdx << ": ");
609         DEBUG(MI->dump());
610         DEBUG(dbgs() << "\n");
611       }
612     }
613   }
614 
615   DEBUG(dbgs() << "Swap vector after web analysis:\n\n");
616   dumpSwapVector();
617 }
618 
619 // Walk the swap vector entries looking for swaps fed by permuting loads
620 // and swaps that feed permuting stores.  If the containing computation
621 // has not been marked rejected, mark each such swap for removal.
622 // (Removal is delayed in case optimization has disturbed the pattern,
623 // such that multiple loads feed the same swap, etc.)
624 void PPCVSXSwapRemoval::markSwapsForRemoval() {
625 
626   DEBUG(dbgs() << "\n*** Marking swaps for removal ***\n\n");
627 
628   for (unsigned EntryIdx = 0; EntryIdx < SwapVector.size(); ++EntryIdx) {
629 
630     if (SwapVector[EntryIdx].IsLoad && SwapVector[EntryIdx].IsSwap) {
631       int Repr = EC->getLeaderValue(SwapVector[EntryIdx].VSEId);
632 
633       if (!SwapVector[Repr].WebRejected) {
634         MachineInstr *MI = SwapVector[EntryIdx].VSEMI;
635         unsigned DefReg = MI->getOperand(0).getReg();
636 
637         for (MachineInstr &UseMI : MRI->use_nodbg_instructions(DefReg)) {
638           int UseIdx = SwapMap[&UseMI];
639           SwapVector[UseIdx].WillRemove = 1;
640 
641           DEBUG(dbgs() << "Marking swap fed by load for removal: ");
642           DEBUG(UseMI.dump());
643         }
644       }
645 
646     } else if (SwapVector[EntryIdx].IsStore && SwapVector[EntryIdx].IsSwap) {
647       int Repr = EC->getLeaderValue(SwapVector[EntryIdx].VSEId);
648 
649       if (!SwapVector[Repr].WebRejected) {
650         MachineInstr *MI = SwapVector[EntryIdx].VSEMI;
651         unsigned UseReg = MI->getOperand(0).getReg();
652         MachineInstr *DefMI = MRI->getVRegDef(UseReg);
653         int DefIdx = SwapMap[DefMI];
654         SwapVector[DefIdx].WillRemove = 1;
655 
656         DEBUG(dbgs() << "Marking swap feeding store for removal: ");
657         DEBUG(DefMI->dump());
658       }
659 
660     } else if (SwapVector[EntryIdx].IsSwappable &&
661                SwapVector[EntryIdx].SpecialHandling != 0) {
662       int Repr = EC->getLeaderValue(SwapVector[EntryIdx].VSEId);
663 
664       if (!SwapVector[Repr].WebRejected)
665         handleSpecialSwappables(EntryIdx);
666     }
667   }
668 }
669 
670 // The identified swap entry requires special handling to allow its
671 // containing computation to be optimized.  Perform that handling
672 // here.
673 // FIXME: This code is to be phased in with subsequent patches.
674 void PPCVSXSwapRemoval::handleSpecialSwappables(int EntryIdx) {
675   switch (SwapVector[EntryIdx].SpecialHandling) {
676 
677   default:
678     assert(false && "Unexpected special handling type");
679     break;
680 
681   // For splats based on an index into a vector, add N/2 modulo N
682   // to the index, where N is the number of vector elements.
683   case SHValues::SH_SPLAT: {
684     MachineInstr *MI = SwapVector[EntryIdx].VSEMI;
685     unsigned NElts;
686 
687     DEBUG(dbgs() << "Changing splat: ");
688     DEBUG(MI->dump());
689 
690     switch (MI->getOpcode()) {
691     default:
692       assert(false && "Unexpected splat opcode");
693     case PPC::VSPLTB: NElts = 16; break;
694     case PPC::VSPLTH: NElts = 8;  break;
695     case PPC::VSPLTW: NElts = 4;  break;
696     }
697 
698     unsigned EltNo = MI->getOperand(1).getImm();
699     EltNo = (EltNo + NElts / 2) % NElts;
700     MI->getOperand(1).setImm(EltNo);
701 
702     DEBUG(dbgs() << "  Into: ");
703     DEBUG(MI->dump());
704     break;
705   }
706 
707   }
708 }
709 
710 // Walk the swap vector and replace each entry marked for removal with
711 // a copy operation.
712 bool PPCVSXSwapRemoval::removeSwaps() {
713 
714   DEBUG(dbgs() << "\n*** Removing swaps ***\n\n");
715 
716   bool Changed = false;
717 
718   for (unsigned EntryIdx = 0; EntryIdx < SwapVector.size(); ++EntryIdx) {
719     if (SwapVector[EntryIdx].WillRemove) {
720       Changed = true;
721       MachineInstr *MI = SwapVector[EntryIdx].VSEMI;
722       MachineBasicBlock *MBB = MI->getParent();
723       BuildMI(*MBB, MI, MI->getDebugLoc(),
724               TII->get(TargetOpcode::COPY), MI->getOperand(0).getReg())
725         .addOperand(MI->getOperand(1));
726 
727       DEBUG(dbgs() << format("Replaced %d with copy: ",
728                              SwapVector[EntryIdx].VSEId));
729       DEBUG(MI->dump());
730 
731       MI->eraseFromParent();
732     }
733   }
734 
735   return Changed;
736 }
737 
738 // For debug purposes, dump the contents of the swap vector.
739 void PPCVSXSwapRemoval::dumpSwapVector() {
740 
741   for (unsigned EntryIdx = 0; EntryIdx < SwapVector.size(); ++EntryIdx) {
742 
743     MachineInstr *MI = SwapVector[EntryIdx].VSEMI;
744     int ID = SwapVector[EntryIdx].VSEId;
745 
746     DEBUG(dbgs() << format("%6d", ID));
747     DEBUG(dbgs() << format("%6d", EC->getLeaderValue(ID)));
748     DEBUG(dbgs() << format(" BB#%3d", MI->getParent()->getNumber()));
749     DEBUG(dbgs() << format("  %14s  ", TII->getName(MI->getOpcode())));
750 
751     if (SwapVector[EntryIdx].IsLoad)
752       DEBUG(dbgs() << "load ");
753     if (SwapVector[EntryIdx].IsStore)
754       DEBUG(dbgs() << "store ");
755     if (SwapVector[EntryIdx].IsSwap)
756       DEBUG(dbgs() << "swap ");
757     if (SwapVector[EntryIdx].MentionsPhysVR)
758       DEBUG(dbgs() << "physreg ");
759 
760     if (SwapVector[EntryIdx].IsSwappable) {
761       DEBUG(dbgs() << "swappable ");
762       switch(SwapVector[EntryIdx].SpecialHandling) {
763       default:
764         DEBUG(dbgs() << "special:**unknown**");
765         break;
766       case SH_NONE:
767         break;
768       case SH_EXTRACT:
769         DEBUG(dbgs() << "special:extract ");
770         break;
771       case SH_INSERT:
772         DEBUG(dbgs() << "special:insert ");
773         break;
774       case SH_NOSWAP_LD:
775         DEBUG(dbgs() << "special:load ");
776         break;
777       case SH_NOSWAP_ST:
778         DEBUG(dbgs() << "special:store ");
779         break;
780       case SH_SPLAT:
781         DEBUG(dbgs() << "special:splat ");
782         break;
783       }
784     }
785 
786     if (SwapVector[EntryIdx].WebRejected)
787       DEBUG(dbgs() << "rejected ");
788     if (SwapVector[EntryIdx].WillRemove)
789       DEBUG(dbgs() << "remove ");
790 
791     DEBUG(dbgs() << "\n");
792 
793     // For no-asserts builds.
794     (void)MI;
795     (void)ID;
796   }
797 
798   DEBUG(dbgs() << "\n");
799 }
800 
801 } // end default namespace
802 
803 INITIALIZE_PASS_BEGIN(PPCVSXSwapRemoval, DEBUG_TYPE,
804                       "PowerPC VSX Swap Removal", false, false)
805 INITIALIZE_PASS_END(PPCVSXSwapRemoval, DEBUG_TYPE,
806                     "PowerPC VSX Swap Removal", false, false)
807 
808 char PPCVSXSwapRemoval::ID = 0;
809 FunctionPass*
810 llvm::createPPCVSXSwapRemovalPass() { return new PPCVSXSwapRemoval(); }
811