1 //===-- TargetLowering.cpp - Implement the TargetLowering class -----------===//
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 implements the TargetLowering class.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "llvm/Target/TargetLowering.h"
15 #include "llvm/ADT/BitVector.h"
16 #include "llvm/ADT/STLExtras.h"
17 #include "llvm/CodeGen/CallingConvLower.h"
18 #include "llvm/CodeGen/MachineFrameInfo.h"
19 #include "llvm/CodeGen/MachineFunction.h"
20 #include "llvm/CodeGen/MachineJumpTableInfo.h"
21 #include "llvm/CodeGen/MachineRegisterInfo.h"
22 #include "llvm/CodeGen/SelectionDAG.h"
23 #include "llvm/IR/DataLayout.h"
24 #include "llvm/IR/DerivedTypes.h"
25 #include "llvm/IR/GlobalVariable.h"
26 #include "llvm/IR/LLVMContext.h"
27 #include "llvm/MC/MCAsmInfo.h"
28 #include "llvm/MC/MCExpr.h"
29 #include "llvm/Support/ErrorHandling.h"
30 #include "llvm/Support/KnownBits.h"
31 #include "llvm/Support/MathExtras.h"
32 #include "llvm/Target/TargetLoweringObjectFile.h"
33 #include "llvm/Target/TargetMachine.h"
34 #include "llvm/Target/TargetRegisterInfo.h"
35 #include "llvm/Target/TargetSubtargetInfo.h"
36 #include <cctype>
37 using namespace llvm;
38 
39 /// NOTE: The TargetMachine owns TLOF.
40 TargetLowering::TargetLowering(const TargetMachine &tm)
41   : TargetLoweringBase(tm) {}
42 
43 const char *TargetLowering::getTargetNodeName(unsigned Opcode) const {
44   return nullptr;
45 }
46 
47 bool TargetLowering::isPositionIndependent() const {
48   return getTargetMachine().isPositionIndependent();
49 }
50 
51 /// Check whether a given call node is in tail position within its function. If
52 /// so, it sets Chain to the input chain of the tail call.
53 bool TargetLowering::isInTailCallPosition(SelectionDAG &DAG, SDNode *Node,
54                                           SDValue &Chain) const {
55   const Function *F = DAG.getMachineFunction().getFunction();
56 
57   // Conservatively require the attributes of the call to match those of
58   // the return. Ignore noalias because it doesn't affect the call sequence.
59   AttributeList CallerAttrs = F->getAttributes();
60   if (AttrBuilder(CallerAttrs, AttributeList::ReturnIndex)
61           .removeAttribute(Attribute::NoAlias)
62           .hasAttributes())
63     return false;
64 
65   // It's not safe to eliminate the sign / zero extension of the return value.
66   if (CallerAttrs.hasAttribute(AttributeList::ReturnIndex, Attribute::ZExt) ||
67       CallerAttrs.hasAttribute(AttributeList::ReturnIndex, Attribute::SExt))
68     return false;
69 
70   // Check if the only use is a function return node.
71   return isUsedByReturnOnly(Node, Chain);
72 }
73 
74 bool TargetLowering::parametersInCSRMatch(const MachineRegisterInfo &MRI,
75     const uint32_t *CallerPreservedMask,
76     const SmallVectorImpl<CCValAssign> &ArgLocs,
77     const SmallVectorImpl<SDValue> &OutVals) const {
78   for (unsigned I = 0, E = ArgLocs.size(); I != E; ++I) {
79     const CCValAssign &ArgLoc = ArgLocs[I];
80     if (!ArgLoc.isRegLoc())
81       continue;
82     unsigned Reg = ArgLoc.getLocReg();
83     // Only look at callee saved registers.
84     if (MachineOperand::clobbersPhysReg(CallerPreservedMask, Reg))
85       continue;
86     // Check that we pass the value used for the caller.
87     // (We look for a CopyFromReg reading a virtual register that is used
88     //  for the function live-in value of register Reg)
89     SDValue Value = OutVals[I];
90     if (Value->getOpcode() != ISD::CopyFromReg)
91       return false;
92     unsigned ArgReg = cast<RegisterSDNode>(Value->getOperand(1))->getReg();
93     if (MRI.getLiveInPhysReg(ArgReg) != Reg)
94       return false;
95   }
96   return true;
97 }
98 
99 /// \brief Set CallLoweringInfo attribute flags based on a call instruction
100 /// and called function attributes.
101 void TargetLoweringBase::ArgListEntry::setAttributes(ImmutableCallSite *CS,
102                                                      unsigned ArgIdx) {
103   IsSExt = CS->paramHasAttr(ArgIdx, Attribute::SExt);
104   IsZExt = CS->paramHasAttr(ArgIdx, Attribute::ZExt);
105   IsInReg = CS->paramHasAttr(ArgIdx, Attribute::InReg);
106   IsSRet = CS->paramHasAttr(ArgIdx, Attribute::StructRet);
107   IsNest = CS->paramHasAttr(ArgIdx, Attribute::Nest);
108   IsByVal = CS->paramHasAttr(ArgIdx, Attribute::ByVal);
109   IsInAlloca = CS->paramHasAttr(ArgIdx, Attribute::InAlloca);
110   IsReturned = CS->paramHasAttr(ArgIdx, Attribute::Returned);
111   IsSwiftSelf = CS->paramHasAttr(ArgIdx, Attribute::SwiftSelf);
112   IsSwiftError = CS->paramHasAttr(ArgIdx, Attribute::SwiftError);
113   Alignment  = CS->getParamAlignment(ArgIdx);
114 }
115 
116 /// Generate a libcall taking the given operands as arguments and returning a
117 /// result of type RetVT.
118 std::pair<SDValue, SDValue>
119 TargetLowering::makeLibCall(SelectionDAG &DAG, RTLIB::Libcall LC, EVT RetVT,
120                             ArrayRef<SDValue> Ops, bool isSigned,
121                             const SDLoc &dl, bool doesNotReturn,
122                             bool isReturnValueUsed) const {
123   TargetLowering::ArgListTy Args;
124   Args.reserve(Ops.size());
125 
126   TargetLowering::ArgListEntry Entry;
127   for (SDValue Op : Ops) {
128     Entry.Node = Op;
129     Entry.Ty = Entry.Node.getValueType().getTypeForEVT(*DAG.getContext());
130     Entry.IsSExt = shouldSignExtendTypeInLibCall(Op.getValueType(), isSigned);
131     Entry.IsZExt = !shouldSignExtendTypeInLibCall(Op.getValueType(), isSigned);
132     Args.push_back(Entry);
133   }
134 
135   if (LC == RTLIB::UNKNOWN_LIBCALL)
136     report_fatal_error("Unsupported library call operation!");
137   SDValue Callee = DAG.getExternalSymbol(getLibcallName(LC),
138                                          getPointerTy(DAG.getDataLayout()));
139 
140   Type *RetTy = RetVT.getTypeForEVT(*DAG.getContext());
141   TargetLowering::CallLoweringInfo CLI(DAG);
142   bool signExtend = shouldSignExtendTypeInLibCall(RetVT, isSigned);
143   CLI.setDebugLoc(dl)
144       .setChain(DAG.getEntryNode())
145       .setLibCallee(getLibcallCallingConv(LC), RetTy, Callee, std::move(Args))
146       .setNoReturn(doesNotReturn)
147       .setDiscardResult(!isReturnValueUsed)
148       .setSExtResult(signExtend)
149       .setZExtResult(!signExtend);
150   return LowerCallTo(CLI);
151 }
152 
153 /// Soften the operands of a comparison. This code is shared among BR_CC,
154 /// SELECT_CC, and SETCC handlers.
155 void TargetLowering::softenSetCCOperands(SelectionDAG &DAG, EVT VT,
156                                          SDValue &NewLHS, SDValue &NewRHS,
157                                          ISD::CondCode &CCCode,
158                                          const SDLoc &dl) const {
159   assert((VT == MVT::f32 || VT == MVT::f64 || VT == MVT::f128 || VT == MVT::ppcf128)
160          && "Unsupported setcc type!");
161 
162   // Expand into one or more soft-fp libcall(s).
163   RTLIB::Libcall LC1 = RTLIB::UNKNOWN_LIBCALL, LC2 = RTLIB::UNKNOWN_LIBCALL;
164   bool ShouldInvertCC = false;
165   switch (CCCode) {
166   case ISD::SETEQ:
167   case ISD::SETOEQ:
168     LC1 = (VT == MVT::f32) ? RTLIB::OEQ_F32 :
169           (VT == MVT::f64) ? RTLIB::OEQ_F64 :
170           (VT == MVT::f128) ? RTLIB::OEQ_F128 : RTLIB::OEQ_PPCF128;
171     break;
172   case ISD::SETNE:
173   case ISD::SETUNE:
174     LC1 = (VT == MVT::f32) ? RTLIB::UNE_F32 :
175           (VT == MVT::f64) ? RTLIB::UNE_F64 :
176           (VT == MVT::f128) ? RTLIB::UNE_F128 : RTLIB::UNE_PPCF128;
177     break;
178   case ISD::SETGE:
179   case ISD::SETOGE:
180     LC1 = (VT == MVT::f32) ? RTLIB::OGE_F32 :
181           (VT == MVT::f64) ? RTLIB::OGE_F64 :
182           (VT == MVT::f128) ? RTLIB::OGE_F128 : RTLIB::OGE_PPCF128;
183     break;
184   case ISD::SETLT:
185   case ISD::SETOLT:
186     LC1 = (VT == MVT::f32) ? RTLIB::OLT_F32 :
187           (VT == MVT::f64) ? RTLIB::OLT_F64 :
188           (VT == MVT::f128) ? RTLIB::OLT_F128 : RTLIB::OLT_PPCF128;
189     break;
190   case ISD::SETLE:
191   case ISD::SETOLE:
192     LC1 = (VT == MVT::f32) ? RTLIB::OLE_F32 :
193           (VT == MVT::f64) ? RTLIB::OLE_F64 :
194           (VT == MVT::f128) ? RTLIB::OLE_F128 : RTLIB::OLE_PPCF128;
195     break;
196   case ISD::SETGT:
197   case ISD::SETOGT:
198     LC1 = (VT == MVT::f32) ? RTLIB::OGT_F32 :
199           (VT == MVT::f64) ? RTLIB::OGT_F64 :
200           (VT == MVT::f128) ? RTLIB::OGT_F128 : RTLIB::OGT_PPCF128;
201     break;
202   case ISD::SETUO:
203     LC1 = (VT == MVT::f32) ? RTLIB::UO_F32 :
204           (VT == MVT::f64) ? RTLIB::UO_F64 :
205           (VT == MVT::f128) ? RTLIB::UO_F128 : RTLIB::UO_PPCF128;
206     break;
207   case ISD::SETO:
208     LC1 = (VT == MVT::f32) ? RTLIB::O_F32 :
209           (VT == MVT::f64) ? RTLIB::O_F64 :
210           (VT == MVT::f128) ? RTLIB::O_F128 : RTLIB::O_PPCF128;
211     break;
212   case ISD::SETONE:
213     // SETONE = SETOLT | SETOGT
214     LC1 = (VT == MVT::f32) ? RTLIB::OLT_F32 :
215           (VT == MVT::f64) ? RTLIB::OLT_F64 :
216           (VT == MVT::f128) ? RTLIB::OLT_F128 : RTLIB::OLT_PPCF128;
217     LC2 = (VT == MVT::f32) ? RTLIB::OGT_F32 :
218           (VT == MVT::f64) ? RTLIB::OGT_F64 :
219           (VT == MVT::f128) ? RTLIB::OGT_F128 : RTLIB::OGT_PPCF128;
220     break;
221   case ISD::SETUEQ:
222     LC1 = (VT == MVT::f32) ? RTLIB::UO_F32 :
223           (VT == MVT::f64) ? RTLIB::UO_F64 :
224           (VT == MVT::f128) ? RTLIB::UO_F128 : RTLIB::UO_PPCF128;
225     LC2 = (VT == MVT::f32) ? RTLIB::OEQ_F32 :
226           (VT == MVT::f64) ? RTLIB::OEQ_F64 :
227           (VT == MVT::f128) ? RTLIB::OEQ_F128 : RTLIB::OEQ_PPCF128;
228     break;
229   default:
230     // Invert CC for unordered comparisons
231     ShouldInvertCC = true;
232     switch (CCCode) {
233     case ISD::SETULT:
234       LC1 = (VT == MVT::f32) ? RTLIB::OGE_F32 :
235             (VT == MVT::f64) ? RTLIB::OGE_F64 :
236             (VT == MVT::f128) ? RTLIB::OGE_F128 : RTLIB::OGE_PPCF128;
237       break;
238     case ISD::SETULE:
239       LC1 = (VT == MVT::f32) ? RTLIB::OGT_F32 :
240             (VT == MVT::f64) ? RTLIB::OGT_F64 :
241             (VT == MVT::f128) ? RTLIB::OGT_F128 : RTLIB::OGT_PPCF128;
242       break;
243     case ISD::SETUGT:
244       LC1 = (VT == MVT::f32) ? RTLIB::OLE_F32 :
245             (VT == MVT::f64) ? RTLIB::OLE_F64 :
246             (VT == MVT::f128) ? RTLIB::OLE_F128 : RTLIB::OLE_PPCF128;
247       break;
248     case ISD::SETUGE:
249       LC1 = (VT == MVT::f32) ? RTLIB::OLT_F32 :
250             (VT == MVT::f64) ? RTLIB::OLT_F64 :
251             (VT == MVT::f128) ? RTLIB::OLT_F128 : RTLIB::OLT_PPCF128;
252       break;
253     default: llvm_unreachable("Do not know how to soften this setcc!");
254     }
255   }
256 
257   // Use the target specific return value for comparions lib calls.
258   EVT RetVT = getCmpLibcallReturnType();
259   SDValue Ops[2] = {NewLHS, NewRHS};
260   NewLHS = makeLibCall(DAG, LC1, RetVT, Ops, false /*sign irrelevant*/,
261                        dl).first;
262   NewRHS = DAG.getConstant(0, dl, RetVT);
263 
264   CCCode = getCmpLibcallCC(LC1);
265   if (ShouldInvertCC)
266     CCCode = getSetCCInverse(CCCode, /*isInteger=*/true);
267 
268   if (LC2 != RTLIB::UNKNOWN_LIBCALL) {
269     SDValue Tmp = DAG.getNode(
270         ISD::SETCC, dl,
271         getSetCCResultType(DAG.getDataLayout(), *DAG.getContext(), RetVT),
272         NewLHS, NewRHS, DAG.getCondCode(CCCode));
273     NewLHS = makeLibCall(DAG, LC2, RetVT, Ops, false/*sign irrelevant*/,
274                          dl).first;
275     NewLHS = DAG.getNode(
276         ISD::SETCC, dl,
277         getSetCCResultType(DAG.getDataLayout(), *DAG.getContext(), RetVT),
278         NewLHS, NewRHS, DAG.getCondCode(getCmpLibcallCC(LC2)));
279     NewLHS = DAG.getNode(ISD::OR, dl, Tmp.getValueType(), Tmp, NewLHS);
280     NewRHS = SDValue();
281   }
282 }
283 
284 /// Return the entry encoding for a jump table in the current function. The
285 /// returned value is a member of the MachineJumpTableInfo::JTEntryKind enum.
286 unsigned TargetLowering::getJumpTableEncoding() const {
287   // In non-pic modes, just use the address of a block.
288   if (!isPositionIndependent())
289     return MachineJumpTableInfo::EK_BlockAddress;
290 
291   // In PIC mode, if the target supports a GPRel32 directive, use it.
292   if (getTargetMachine().getMCAsmInfo()->getGPRel32Directive() != nullptr)
293     return MachineJumpTableInfo::EK_GPRel32BlockAddress;
294 
295   // Otherwise, use a label difference.
296   return MachineJumpTableInfo::EK_LabelDifference32;
297 }
298 
299 SDValue TargetLowering::getPICJumpTableRelocBase(SDValue Table,
300                                                  SelectionDAG &DAG) const {
301   // If our PIC model is GP relative, use the global offset table as the base.
302   unsigned JTEncoding = getJumpTableEncoding();
303 
304   if ((JTEncoding == MachineJumpTableInfo::EK_GPRel64BlockAddress) ||
305       (JTEncoding == MachineJumpTableInfo::EK_GPRel32BlockAddress))
306     return DAG.getGLOBAL_OFFSET_TABLE(getPointerTy(DAG.getDataLayout()));
307 
308   return Table;
309 }
310 
311 /// This returns the relocation base for the given PIC jumptable, the same as
312 /// getPICJumpTableRelocBase, but as an MCExpr.
313 const MCExpr *
314 TargetLowering::getPICJumpTableRelocBaseExpr(const MachineFunction *MF,
315                                              unsigned JTI,MCContext &Ctx) const{
316   // The normal PIC reloc base is the label at the start of the jump table.
317   return MCSymbolRefExpr::create(MF->getJTISymbol(JTI, Ctx), Ctx);
318 }
319 
320 bool
321 TargetLowering::isOffsetFoldingLegal(const GlobalAddressSDNode *GA) const {
322   const TargetMachine &TM = getTargetMachine();
323   const GlobalValue *GV = GA->getGlobal();
324 
325   // If the address is not even local to this DSO we will have to load it from
326   // a got and then add the offset.
327   if (!TM.shouldAssumeDSOLocal(*GV->getParent(), GV))
328     return false;
329 
330   // If the code is position independent we will have to add a base register.
331   if (isPositionIndependent())
332     return false;
333 
334   // Otherwise we can do it.
335   return true;
336 }
337 
338 //===----------------------------------------------------------------------===//
339 //  Optimization Methods
340 //===----------------------------------------------------------------------===//
341 
342 /// If the specified instruction has a constant integer operand and there are
343 /// bits set in that constant that are not demanded, then clear those bits and
344 /// return true.
345 bool TargetLowering::ShrinkDemandedConstant(SDValue Op, const APInt &Demanded,
346                                             TargetLoweringOpt &TLO) const {
347   SelectionDAG &DAG = TLO.DAG;
348   SDLoc DL(Op);
349   unsigned Opcode = Op.getOpcode();
350 
351   // Do target-specific constant optimization.
352   if (targetShrinkDemandedConstant(Op, Demanded, TLO))
353     return TLO.New.getNode();
354 
355   // FIXME: ISD::SELECT, ISD::SELECT_CC
356   switch (Opcode) {
357   default:
358     break;
359   case ISD::XOR:
360   case ISD::AND:
361   case ISD::OR: {
362     auto *Op1C = dyn_cast<ConstantSDNode>(Op.getOperand(1));
363     if (!Op1C)
364       return false;
365 
366     // If this is a 'not' op, don't touch it because that's a canonical form.
367     const APInt &C = Op1C->getAPIntValue();
368     if (Opcode == ISD::XOR && Demanded.isSubsetOf(C))
369       return false;
370 
371     if (!C.isSubsetOf(Demanded)) {
372       EVT VT = Op.getValueType();
373       SDValue NewC = DAG.getConstant(Demanded & C, DL, VT);
374       SDValue NewOp = DAG.getNode(Opcode, DL, VT, Op.getOperand(0), NewC);
375       return TLO.CombineTo(Op, NewOp);
376     }
377 
378     break;
379   }
380   }
381 
382   return false;
383 }
384 
385 /// Convert x+y to (VT)((SmallVT)x+(SmallVT)y) if the casts are free.
386 /// This uses isZExtFree and ZERO_EXTEND for the widening cast, but it could be
387 /// generalized for targets with other types of implicit widening casts.
388 bool TargetLowering::ShrinkDemandedOp(SDValue Op, unsigned BitWidth,
389                                       const APInt &Demanded,
390                                       TargetLoweringOpt &TLO) const {
391   assert(Op.getNumOperands() == 2 &&
392          "ShrinkDemandedOp only supports binary operators!");
393   assert(Op.getNode()->getNumValues() == 1 &&
394          "ShrinkDemandedOp only supports nodes with one result!");
395 
396   SelectionDAG &DAG = TLO.DAG;
397   SDLoc dl(Op);
398 
399   // Early return, as this function cannot handle vector types.
400   if (Op.getValueType().isVector())
401     return false;
402 
403   // Don't do this if the node has another user, which may require the
404   // full value.
405   if (!Op.getNode()->hasOneUse())
406     return false;
407 
408   // Search for the smallest integer type with free casts to and from
409   // Op's type. For expedience, just check power-of-2 integer types.
410   const TargetLowering &TLI = DAG.getTargetLoweringInfo();
411   unsigned DemandedSize = Demanded.getActiveBits();
412   unsigned SmallVTBits = DemandedSize;
413   if (!isPowerOf2_32(SmallVTBits))
414     SmallVTBits = NextPowerOf2(SmallVTBits);
415   for (; SmallVTBits < BitWidth; SmallVTBits = NextPowerOf2(SmallVTBits)) {
416     EVT SmallVT = EVT::getIntegerVT(*DAG.getContext(), SmallVTBits);
417     if (TLI.isTruncateFree(Op.getValueType(), SmallVT) &&
418         TLI.isZExtFree(SmallVT, Op.getValueType())) {
419       // We found a type with free casts.
420       SDValue X = DAG.getNode(
421           Op.getOpcode(), dl, SmallVT,
422           DAG.getNode(ISD::TRUNCATE, dl, SmallVT, Op.getOperand(0)),
423           DAG.getNode(ISD::TRUNCATE, dl, SmallVT, Op.getOperand(1)));
424       assert(DemandedSize <= SmallVTBits && "Narrowed below demanded bits?");
425       SDValue Z = DAG.getNode(ISD::ANY_EXTEND, dl, Op.getValueType(), X);
426       return TLO.CombineTo(Op, Z);
427     }
428   }
429   return false;
430 }
431 
432 bool
433 TargetLowering::SimplifyDemandedBits(SDNode *User, unsigned OpIdx,
434                                      const APInt &Demanded,
435                                      DAGCombinerInfo &DCI,
436                                      TargetLoweringOpt &TLO) const {
437   SDValue Op = User->getOperand(OpIdx);
438   KnownBits Known;
439 
440   if (!SimplifyDemandedBits(Op, Demanded, Known, TLO, 0, true))
441     return false;
442 
443 
444   // Old will not always be the same as Op.  For example:
445   //
446   // Demanded = 0xffffff
447   // Op = i64 truncate (i32 and x, 0xffffff)
448   // In this case simplify demand bits will want to replace the 'and' node
449   // with the value 'x', which will give us:
450   // Old = i32 and x, 0xffffff
451   // New = x
452   if (TLO.Old.hasOneUse()) {
453     // For the one use case, we just commit the change.
454     DCI.CommitTargetLoweringOpt(TLO);
455     return true;
456   }
457 
458   // If Old has more than one use then it must be Op, because the
459   // AssumeSingleUse flag is not propogated to recursive calls of
460   // SimplifyDemanded bits, so the only node with multiple use that
461   // it will attempt to combine will be opt.
462   assert(TLO.Old == Op);
463 
464   SmallVector <SDValue, 4> NewOps;
465   for (unsigned i = 0, e = User->getNumOperands(); i != e; ++i) {
466     if (i == OpIdx) {
467       NewOps.push_back(TLO.New);
468       continue;
469     }
470     NewOps.push_back(User->getOperand(i));
471   }
472   TLO.DAG.UpdateNodeOperands(User, NewOps);
473   // Op has less users now, so we may be able to perform additional combines
474   // with it.
475   DCI.AddToWorklist(Op.getNode());
476   // User's operands have been updated, so we may be able to do new combines
477   // with it.
478   DCI.AddToWorklist(User);
479   return true;
480 }
481 
482 bool TargetLowering::SimplifyDemandedBits(SDValue Op, const APInt &DemandedMask,
483                                           DAGCombinerInfo &DCI) const {
484 
485   SelectionDAG &DAG = DCI.DAG;
486   TargetLoweringOpt TLO(DAG, !DCI.isBeforeLegalize(),
487                         !DCI.isBeforeLegalizeOps());
488   KnownBits Known;
489 
490   bool Simplified = SimplifyDemandedBits(Op, DemandedMask, Known, TLO);
491   if (Simplified)
492     DCI.CommitTargetLoweringOpt(TLO);
493   return Simplified;
494 }
495 
496 /// Look at Op. At this point, we know that only the DemandedMask bits of the
497 /// result of Op are ever used downstream. If we can use this information to
498 /// simplify Op, create a new simplified DAG node and return true, returning the
499 /// original and new nodes in Old and New. Otherwise, analyze the expression and
500 /// return a mask of Known bits for the expression (used to simplify the
501 /// caller).  The Known bits may only be accurate for those bits in the
502 /// DemandedMask.
503 bool TargetLowering::SimplifyDemandedBits(SDValue Op,
504                                           const APInt &DemandedMask,
505                                           KnownBits &Known,
506                                           TargetLoweringOpt &TLO,
507                                           unsigned Depth,
508                                           bool AssumeSingleUse) const {
509   unsigned BitWidth = DemandedMask.getBitWidth();
510   assert(Op.getScalarValueSizeInBits() == BitWidth &&
511          "Mask size mismatches value type size!");
512   APInt NewMask = DemandedMask;
513   SDLoc dl(Op);
514   auto &DL = TLO.DAG.getDataLayout();
515 
516   // Don't know anything.
517   Known = KnownBits(BitWidth);
518 
519   // Other users may use these bits.
520   if (!Op.getNode()->hasOneUse() && !AssumeSingleUse) {
521     if (Depth != 0) {
522       // If not at the root, Just compute the Known bits to
523       // simplify things downstream.
524       TLO.DAG.computeKnownBits(Op, Known, Depth);
525       return false;
526     }
527     // If this is the root being simplified, allow it to have multiple uses,
528     // just set the NewMask to all bits.
529     NewMask = APInt::getAllOnesValue(BitWidth);
530   } else if (DemandedMask == 0) {
531     // Not demanding any bits from Op.
532     if (!Op.isUndef())
533       return TLO.CombineTo(Op, TLO.DAG.getUNDEF(Op.getValueType()));
534     return false;
535   } else if (Depth == 6) {        // Limit search depth.
536     return false;
537   }
538 
539   KnownBits Known2, KnownOut;
540   switch (Op.getOpcode()) {
541   case ISD::Constant:
542     // We know all of the bits for a constant!
543     Known.One = cast<ConstantSDNode>(Op)->getAPIntValue();
544     Known.Zero = ~Known.One;
545     return false;   // Don't fall through, will infinitely loop.
546   case ISD::BUILD_VECTOR:
547     // Collect the known bits that are shared by every constant vector element.
548     Known.Zero.setAllBits(); Known.One.setAllBits();
549     for (SDValue SrcOp : Op->ops()) {
550       if (!isa<ConstantSDNode>(SrcOp)) {
551         // We can only handle all constant values - bail out with no known bits.
552         Known = KnownBits(BitWidth);
553         return false;
554       }
555       Known2.One = cast<ConstantSDNode>(SrcOp)->getAPIntValue();
556       Known2.Zero = ~Known2.One;
557 
558       // BUILD_VECTOR can implicitly truncate sources, we must handle this.
559       if (Known2.One.getBitWidth() != BitWidth) {
560         assert(Known2.getBitWidth() > BitWidth &&
561                "Expected BUILD_VECTOR implicit truncation");
562         Known2 = Known2.trunc(BitWidth);
563       }
564 
565       // Known bits are the values that are shared by every element.
566       // TODO: support per-element known bits.
567       Known.One &= Known2.One;
568       Known.Zero &= Known2.Zero;
569     }
570     return false;   // Don't fall through, will infinitely loop.
571   case ISD::AND:
572     // If the RHS is a constant, check to see if the LHS would be zero without
573     // using the bits from the RHS.  Below, we use knowledge about the RHS to
574     // simplify the LHS, here we're using information from the LHS to simplify
575     // the RHS.
576     if (ConstantSDNode *RHSC = isConstOrConstSplat(Op.getOperand(1))) {
577       SDValue Op0 = Op.getOperand(0);
578       KnownBits LHSKnown;
579       // Do not increment Depth here; that can cause an infinite loop.
580       TLO.DAG.computeKnownBits(Op0, LHSKnown, Depth);
581       // If the LHS already has zeros where RHSC does, this and is dead.
582       if ((LHSKnown.Zero & NewMask) == (~RHSC->getAPIntValue() & NewMask))
583         return TLO.CombineTo(Op, Op0);
584 
585       // If any of the set bits in the RHS are known zero on the LHS, shrink
586       // the constant.
587       if (ShrinkDemandedConstant(Op, ~LHSKnown.Zero & NewMask, TLO))
588         return true;
589 
590       // Bitwise-not (xor X, -1) is a special case: we don't usually shrink its
591       // constant, but if this 'and' is only clearing bits that were just set by
592       // the xor, then this 'and' can be eliminated by shrinking the mask of
593       // the xor. For example, for a 32-bit X:
594       // and (xor (srl X, 31), -1), 1 --> xor (srl X, 31), 1
595       if (isBitwiseNot(Op0) && Op0.hasOneUse() &&
596           LHSKnown.One == ~RHSC->getAPIntValue()) {
597         SDValue Xor = TLO.DAG.getNode(ISD::XOR, dl, Op.getValueType(),
598                                       Op0.getOperand(0), Op.getOperand(1));
599         return TLO.CombineTo(Op, Xor);
600       }
601     }
602 
603     if (SimplifyDemandedBits(Op.getOperand(1), NewMask, Known, TLO, Depth+1))
604       return true;
605     assert(!Known.hasConflict() && "Bits known to be one AND zero?");
606     if (SimplifyDemandedBits(Op.getOperand(0), ~Known.Zero & NewMask,
607                              Known2, TLO, Depth+1))
608       return true;
609     assert(!Known2.hasConflict() && "Bits known to be one AND zero?");
610 
611     // If all of the demanded bits are known one on one side, return the other.
612     // These bits cannot contribute to the result of the 'and'.
613     if (NewMask.isSubsetOf(Known2.Zero | Known.One))
614       return TLO.CombineTo(Op, Op.getOperand(0));
615     if (NewMask.isSubsetOf(Known.Zero | Known2.One))
616       return TLO.CombineTo(Op, Op.getOperand(1));
617     // If all of the demanded bits in the inputs are known zeros, return zero.
618     if (NewMask.isSubsetOf(Known.Zero | Known2.Zero))
619       return TLO.CombineTo(Op, TLO.DAG.getConstant(0, dl, Op.getValueType()));
620     // If the RHS is a constant, see if we can simplify it.
621     if (ShrinkDemandedConstant(Op, ~Known2.Zero & NewMask, TLO))
622       return true;
623     // If the operation can be done in a smaller type, do so.
624     if (ShrinkDemandedOp(Op, BitWidth, NewMask, TLO))
625       return true;
626 
627     // Output known-1 bits are only known if set in both the LHS & RHS.
628     Known.One &= Known2.One;
629     // Output known-0 are known to be clear if zero in either the LHS | RHS.
630     Known.Zero |= Known2.Zero;
631     break;
632   case ISD::OR:
633     if (SimplifyDemandedBits(Op.getOperand(1), NewMask, Known, TLO, Depth+1))
634       return true;
635     assert(!Known.hasConflict() && "Bits known to be one AND zero?");
636     if (SimplifyDemandedBits(Op.getOperand(0), ~Known.One & NewMask,
637                              Known2, TLO, Depth+1))
638       return true;
639     assert(!Known2.hasConflict() && "Bits known to be one AND zero?");
640 
641     // If all of the demanded bits are known zero on one side, return the other.
642     // These bits cannot contribute to the result of the 'or'.
643     if (NewMask.isSubsetOf(Known2.One | Known.Zero))
644       return TLO.CombineTo(Op, Op.getOperand(0));
645     if (NewMask.isSubsetOf(Known.One | Known2.Zero))
646       return TLO.CombineTo(Op, Op.getOperand(1));
647     // If the RHS is a constant, see if we can simplify it.
648     if (ShrinkDemandedConstant(Op, NewMask, TLO))
649       return true;
650     // If the operation can be done in a smaller type, do so.
651     if (ShrinkDemandedOp(Op, BitWidth, NewMask, TLO))
652       return true;
653 
654     // Output known-0 bits are only known if clear in both the LHS & RHS.
655     Known.Zero &= Known2.Zero;
656     // Output known-1 are known to be set if set in either the LHS | RHS.
657     Known.One |= Known2.One;
658     break;
659   case ISD::XOR: {
660     if (SimplifyDemandedBits(Op.getOperand(1), NewMask, Known, TLO, Depth+1))
661       return true;
662     assert(!Known.hasConflict() && "Bits known to be one AND zero?");
663     if (SimplifyDemandedBits(Op.getOperand(0), NewMask, Known2, TLO, Depth+1))
664       return true;
665     assert(!Known2.hasConflict() && "Bits known to be one AND zero?");
666 
667     // If all of the demanded bits are known zero on one side, return the other.
668     // These bits cannot contribute to the result of the 'xor'.
669     if (NewMask.isSubsetOf(Known.Zero))
670       return TLO.CombineTo(Op, Op.getOperand(0));
671     if (NewMask.isSubsetOf(Known2.Zero))
672       return TLO.CombineTo(Op, Op.getOperand(1));
673     // If the operation can be done in a smaller type, do so.
674     if (ShrinkDemandedOp(Op, BitWidth, NewMask, TLO))
675       return true;
676 
677     // If all of the unknown bits are known to be zero on one side or the other
678     // (but not both) turn this into an *inclusive* or.
679     //    e.g. (A & C1)^(B & C2) -> (A & C1)|(B & C2) iff C1&C2 == 0
680     if ((NewMask & ~Known.Zero & ~Known2.Zero) == 0)
681       return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::OR, dl, Op.getValueType(),
682                                                Op.getOperand(0),
683                                                Op.getOperand(1)));
684 
685     // Output known-0 bits are known if clear or set in both the LHS & RHS.
686     KnownOut.Zero = (Known.Zero & Known2.Zero) | (Known.One & Known2.One);
687     // Output known-1 are known to be set if set in only one of the LHS, RHS.
688     KnownOut.One = (Known.Zero & Known2.One) | (Known.One & Known2.Zero);
689 
690     // If all of the demanded bits on one side are known, and all of the set
691     // bits on that side are also known to be set on the other side, turn this
692     // into an AND, as we know the bits will be cleared.
693     //    e.g. (X | C1) ^ C2 --> (X | C1) & ~C2 iff (C1&C2) == C2
694     // NB: it is okay if more bits are known than are requested
695     if (NewMask.isSubsetOf(Known.Zero|Known.One)) { // all known on one side
696       if (Known.One == Known2.One) { // set bits are the same on both sides
697         EVT VT = Op.getValueType();
698         SDValue ANDC = TLO.DAG.getConstant(~Known.One & NewMask, dl, VT);
699         return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::AND, dl, VT,
700                                                  Op.getOperand(0), ANDC));
701       }
702     }
703 
704     // If the RHS is a constant, see if we can change it. Don't alter a -1
705     // constant because that's a 'not' op, and that is better for combining and
706     // codegen.
707     ConstantSDNode *C = isConstOrConstSplat(Op.getOperand(1));
708     if (C && !C->isAllOnesValue()) {
709       if (NewMask.isSubsetOf(C->getAPIntValue())) {
710         // We're flipping all demanded bits. Flip the undemanded bits too.
711         SDValue New = TLO.DAG.getNOT(dl, Op.getOperand(0), Op.getValueType());
712         return TLO.CombineTo(Op, New);
713       }
714       // If we can't turn this into a 'not', try to shrink the constant.
715       if (ShrinkDemandedConstant(Op, NewMask, TLO))
716         return true;
717     }
718 
719     Known = std::move(KnownOut);
720     break;
721   }
722   case ISD::SELECT:
723     if (SimplifyDemandedBits(Op.getOperand(2), NewMask, Known, TLO, Depth+1))
724       return true;
725     if (SimplifyDemandedBits(Op.getOperand(1), NewMask, Known2, TLO, Depth+1))
726       return true;
727     assert(!Known.hasConflict() && "Bits known to be one AND zero?");
728     assert(!Known2.hasConflict() && "Bits known to be one AND zero?");
729 
730     // If the operands are constants, see if we can simplify them.
731     if (ShrinkDemandedConstant(Op, NewMask, TLO))
732       return true;
733 
734     // Only known if known in both the LHS and RHS.
735     Known.One &= Known2.One;
736     Known.Zero &= Known2.Zero;
737     break;
738   case ISD::SELECT_CC:
739     if (SimplifyDemandedBits(Op.getOperand(3), NewMask, Known, TLO, Depth+1))
740       return true;
741     if (SimplifyDemandedBits(Op.getOperand(2), NewMask, Known2, TLO, Depth+1))
742       return true;
743     assert(!Known.hasConflict() && "Bits known to be one AND zero?");
744     assert(!Known2.hasConflict() && "Bits known to be one AND zero?");
745 
746     // If the operands are constants, see if we can simplify them.
747     if (ShrinkDemandedConstant(Op, NewMask, TLO))
748       return true;
749 
750     // Only known if known in both the LHS and RHS.
751     Known.One &= Known2.One;
752     Known.Zero &= Known2.Zero;
753     break;
754   case ISD::SETCC: {
755     SDValue Op0 = Op.getOperand(0);
756     SDValue Op1 = Op.getOperand(1);
757     ISD::CondCode CC = cast<CondCodeSDNode>(Op.getOperand(2))->get();
758     // If (1) we only need the sign-bit, (2) the setcc operands are the same
759     // width as the setcc result, and (3) the result of a setcc conforms to 0 or
760     // -1, we may be able to bypass the setcc.
761     if (NewMask.isSignMask() && Op0.getScalarValueSizeInBits() == BitWidth &&
762         getBooleanContents(Op.getValueType()) ==
763             BooleanContent::ZeroOrNegativeOneBooleanContent) {
764       // If we're testing X < 0, then this compare isn't needed - just use X!
765       // FIXME: We're limiting to integer types here, but this should also work
766       // if we don't care about FP signed-zero. The use of SETLT with FP means
767       // that we don't care about NaNs.
768       if (CC == ISD::SETLT && Op1.getValueType().isInteger() &&
769           (isNullConstant(Op1) || ISD::isBuildVectorAllZeros(Op1.getNode())))
770         return TLO.CombineTo(Op, Op0);
771 
772       // TODO: Should we check for other forms of sign-bit comparisons?
773       // Examples: X <= -1, X >= 0
774     }
775     if (getBooleanContents(Op0.getValueType()) ==
776             TargetLowering::ZeroOrOneBooleanContent &&
777         BitWidth > 1)
778       Known.Zero.setBitsFrom(1);
779     break;
780   }
781   case ISD::SHL:
782     if (ConstantSDNode *SA = isConstOrConstSplat(Op.getOperand(1))) {
783       SDValue InOp = Op.getOperand(0);
784 
785       // If the shift count is an invalid immediate, don't do anything.
786       if (SA->getAPIntValue().uge(BitWidth))
787         break;
788 
789       unsigned ShAmt = SA->getZExtValue();
790 
791       // If this is ((X >>u C1) << ShAmt), see if we can simplify this into a
792       // single shift.  We can do this if the bottom bits (which are shifted
793       // out) are never demanded.
794       if (InOp.getOpcode() == ISD::SRL) {
795         if (ConstantSDNode *SA2 = isConstOrConstSplat(InOp.getOperand(1))) {
796           if (ShAmt && (NewMask & APInt::getLowBitsSet(BitWidth, ShAmt)) == 0) {
797             if (SA2->getAPIntValue().ult(BitWidth)) {
798               unsigned C1 = SA2->getZExtValue();
799               unsigned Opc = ISD::SHL;
800               int Diff = ShAmt-C1;
801               if (Diff < 0) {
802                 Diff = -Diff;
803                 Opc = ISD::SRL;
804               }
805 
806               SDValue NewSA =
807                 TLO.DAG.getConstant(Diff, dl, Op.getOperand(1).getValueType());
808               EVT VT = Op.getValueType();
809               return TLO.CombineTo(Op, TLO.DAG.getNode(Opc, dl, VT,
810                                                        InOp.getOperand(0),
811                                                        NewSA));
812             }
813           }
814         }
815       }
816 
817       if (SimplifyDemandedBits(InOp, NewMask.lshr(ShAmt), Known, TLO, Depth+1))
818         return true;
819 
820       // Convert (shl (anyext x, c)) to (anyext (shl x, c)) if the high bits
821       // are not demanded. This will likely allow the anyext to be folded away.
822       if (InOp.getNode()->getOpcode() == ISD::ANY_EXTEND) {
823         SDValue InnerOp = InOp.getOperand(0);
824         EVT InnerVT = InnerOp.getValueType();
825         unsigned InnerBits = InnerVT.getScalarSizeInBits();
826         if (ShAmt < InnerBits && NewMask.getActiveBits() <= InnerBits &&
827             isTypeDesirableForOp(ISD::SHL, InnerVT)) {
828           EVT ShTy = getShiftAmountTy(InnerVT, DL);
829           if (!APInt(BitWidth, ShAmt).isIntN(ShTy.getSizeInBits()))
830             ShTy = InnerVT;
831           SDValue NarrowShl =
832             TLO.DAG.getNode(ISD::SHL, dl, InnerVT, InnerOp,
833                             TLO.DAG.getConstant(ShAmt, dl, ShTy));
834           return
835             TLO.CombineTo(Op,
836                           TLO.DAG.getNode(ISD::ANY_EXTEND, dl, Op.getValueType(),
837                                           NarrowShl));
838         }
839         // Repeat the SHL optimization above in cases where an extension
840         // intervenes: (shl (anyext (shr x, c1)), c2) to
841         // (shl (anyext x), c2-c1).  This requires that the bottom c1 bits
842         // aren't demanded (as above) and that the shifted upper c1 bits of
843         // x aren't demanded.
844         if (InOp.hasOneUse() && InnerOp.getOpcode() == ISD::SRL &&
845             InnerOp.hasOneUse()) {
846           if (ConstantSDNode *SA2 = isConstOrConstSplat(InnerOp.getOperand(1))) {
847             unsigned InnerShAmt = SA2->getLimitedValue(InnerBits);
848             if (InnerShAmt < ShAmt &&
849                 InnerShAmt < InnerBits &&
850                 NewMask.getActiveBits() <= (InnerBits - InnerShAmt + ShAmt) &&
851                 NewMask.countTrailingZeros() >= ShAmt) {
852               SDValue NewSA =
853                 TLO.DAG.getConstant(ShAmt - InnerShAmt, dl,
854                                     Op.getOperand(1).getValueType());
855               EVT VT = Op.getValueType();
856               SDValue NewExt = TLO.DAG.getNode(ISD::ANY_EXTEND, dl, VT,
857                                                InnerOp.getOperand(0));
858               return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::SHL, dl, VT,
859                                                        NewExt, NewSA));
860             }
861           }
862         }
863       }
864 
865       Known.Zero <<= ShAmt;
866       Known.One  <<= ShAmt;
867       // low bits known zero.
868       Known.Zero.setLowBits(ShAmt);
869     }
870     break;
871   case ISD::SRL:
872     if (ConstantSDNode *SA = isConstOrConstSplat(Op.getOperand(1))) {
873       SDValue InOp = Op.getOperand(0);
874 
875       // If the shift count is an invalid immediate, don't do anything.
876       if (SA->getAPIntValue().uge(BitWidth))
877         break;
878 
879       unsigned ShAmt = SA->getZExtValue();
880       APInt InDemandedMask = (NewMask << ShAmt);
881 
882       // If the shift is exact, then it does demand the low bits (and knows that
883       // they are zero).
884       if (Op->getFlags().hasExact())
885         InDemandedMask.setLowBits(ShAmt);
886 
887       // If this is ((X << C1) >>u ShAmt), see if we can simplify this into a
888       // single shift.  We can do this if the top bits (which are shifted out)
889       // are never demanded.
890       if (InOp.getOpcode() == ISD::SHL) {
891         if (ConstantSDNode *SA2 = isConstOrConstSplat(InOp.getOperand(1))) {
892           if (ShAmt &&
893               (NewMask & APInt::getHighBitsSet(BitWidth, ShAmt)) == 0) {
894             if (SA2->getAPIntValue().ult(BitWidth)) {
895               unsigned C1 = SA2->getZExtValue();
896               unsigned Opc = ISD::SRL;
897               int Diff = ShAmt-C1;
898               if (Diff < 0) {
899                 Diff = -Diff;
900                 Opc = ISD::SHL;
901               }
902 
903               SDValue NewSA =
904                 TLO.DAG.getConstant(Diff, dl, Op.getOperand(1).getValueType());
905               EVT VT = Op.getValueType();
906               return TLO.CombineTo(Op, TLO.DAG.getNode(Opc, dl, VT,
907                                                        InOp.getOperand(0),
908                                                        NewSA));
909             }
910           }
911         }
912       }
913 
914       // Compute the new bits that are at the top now.
915       if (SimplifyDemandedBits(InOp, InDemandedMask, Known, TLO, Depth+1))
916         return true;
917       assert(!Known.hasConflict() && "Bits known to be one AND zero?");
918       Known.Zero.lshrInPlace(ShAmt);
919       Known.One.lshrInPlace(ShAmt);
920 
921       Known.Zero.setHighBits(ShAmt);  // High bits known zero.
922     }
923     break;
924   case ISD::SRA:
925     // If this is an arithmetic shift right and only the low-bit is set, we can
926     // always convert this into a logical shr, even if the shift amount is
927     // variable.  The low bit of the shift cannot be an input sign bit unless
928     // the shift amount is >= the size of the datatype, which is undefined.
929     if (NewMask.isOneValue())
930       return TLO.CombineTo(Op,
931                            TLO.DAG.getNode(ISD::SRL, dl, Op.getValueType(),
932                                            Op.getOperand(0), Op.getOperand(1)));
933 
934     if (ConstantSDNode *SA = isConstOrConstSplat(Op.getOperand(1))) {
935       EVT VT = Op.getValueType();
936 
937       // If the shift count is an invalid immediate, don't do anything.
938       if (SA->getAPIntValue().uge(BitWidth))
939         break;
940 
941       unsigned ShAmt = SA->getZExtValue();
942       APInt InDemandedMask = (NewMask << ShAmt);
943 
944       // If the shift is exact, then it does demand the low bits (and knows that
945       // they are zero).
946       if (Op->getFlags().hasExact())
947         InDemandedMask.setLowBits(ShAmt);
948 
949       // If any of the demanded bits are produced by the sign extension, we also
950       // demand the input sign bit.
951       if (NewMask.countLeadingZeros() < ShAmt)
952         InDemandedMask.setSignBit();
953 
954       if (SimplifyDemandedBits(Op.getOperand(0), InDemandedMask, Known, TLO,
955                                Depth+1))
956         return true;
957       assert(!Known.hasConflict() && "Bits known to be one AND zero?");
958       Known.Zero.lshrInPlace(ShAmt);
959       Known.One.lshrInPlace(ShAmt);
960 
961       // If the input sign bit is known to be zero, or if none of the top bits
962       // are demanded, turn this into an unsigned shift right.
963       if (Known.Zero[BitWidth - ShAmt - 1] ||
964           NewMask.countLeadingZeros() >= ShAmt) {
965         SDNodeFlags Flags;
966         Flags.setExact(Op->getFlags().hasExact());
967         return TLO.CombineTo(Op,
968                              TLO.DAG.getNode(ISD::SRL, dl, VT, Op.getOperand(0),
969                                              Op.getOperand(1), Flags));
970       }
971 
972       int Log2 = NewMask.exactLogBase2();
973       if (Log2 >= 0) {
974         // The bit must come from the sign.
975         SDValue NewSA =
976           TLO.DAG.getConstant(BitWidth - 1 - Log2, dl,
977                               Op.getOperand(1).getValueType());
978         return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::SRL, dl, VT,
979                                                  Op.getOperand(0), NewSA));
980       }
981 
982       if (Known.One[BitWidth - ShAmt - 1])
983         // New bits are known one.
984         Known.One.setHighBits(ShAmt);
985     }
986     break;
987   case ISD::SIGN_EXTEND_INREG: {
988     EVT ExVT = cast<VTSDNode>(Op.getOperand(1))->getVT();
989 
990     APInt MsbMask = APInt::getHighBitsSet(BitWidth, 1);
991     // If we only care about the highest bit, don't bother shifting right.
992     if (MsbMask == NewMask) {
993       unsigned ShAmt = ExVT.getScalarSizeInBits();
994       SDValue InOp = Op.getOperand(0);
995       unsigned VTBits = Op->getValueType(0).getScalarSizeInBits();
996       bool AlreadySignExtended =
997         TLO.DAG.ComputeNumSignBits(InOp) >= VTBits-ShAmt+1;
998       // However if the input is already sign extended we expect the sign
999       // extension to be dropped altogether later and do not simplify.
1000       if (!AlreadySignExtended) {
1001         // Compute the correct shift amount type, which must be getShiftAmountTy
1002         // for scalar types after legalization.
1003         EVT ShiftAmtTy = Op.getValueType();
1004         if (TLO.LegalTypes() && !ShiftAmtTy.isVector())
1005           ShiftAmtTy = getShiftAmountTy(ShiftAmtTy, DL);
1006 
1007         SDValue ShiftAmt = TLO.DAG.getConstant(BitWidth - ShAmt, dl,
1008                                                ShiftAmtTy);
1009         return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::SHL, dl,
1010                                                  Op.getValueType(), InOp,
1011                                                  ShiftAmt));
1012       }
1013     }
1014 
1015     // Sign extension.  Compute the demanded bits in the result that are not
1016     // present in the input.
1017     APInt NewBits =
1018       APInt::getHighBitsSet(BitWidth,
1019                             BitWidth - ExVT.getScalarSizeInBits());
1020 
1021     // If none of the extended bits are demanded, eliminate the sextinreg.
1022     if ((NewBits & NewMask) == 0)
1023       return TLO.CombineTo(Op, Op.getOperand(0));
1024 
1025     APInt InSignBit =
1026       APInt::getSignMask(ExVT.getScalarSizeInBits()).zext(BitWidth);
1027     APInt InputDemandedBits =
1028       APInt::getLowBitsSet(BitWidth,
1029                            ExVT.getScalarSizeInBits()) &
1030       NewMask;
1031 
1032     // Since the sign extended bits are demanded, we know that the sign
1033     // bit is demanded.
1034     InputDemandedBits |= InSignBit;
1035 
1036     if (SimplifyDemandedBits(Op.getOperand(0), InputDemandedBits,
1037                              Known, TLO, Depth+1))
1038       return true;
1039     assert(!Known.hasConflict() && "Bits known to be one AND zero?");
1040 
1041     // If the sign bit of the input is known set or clear, then we know the
1042     // top bits of the result.
1043 
1044     // If the input sign bit is known zero, convert this into a zero extension.
1045     if (Known.Zero.intersects(InSignBit))
1046       return TLO.CombineTo(Op, TLO.DAG.getZeroExtendInReg(
1047                                    Op.getOperand(0), dl, ExVT.getScalarType()));
1048 
1049     if (Known.One.intersects(InSignBit)) {    // Input sign bit known set
1050       Known.One |= NewBits;
1051       Known.Zero &= ~NewBits;
1052     } else {                       // Input sign bit unknown
1053       Known.Zero &= ~NewBits;
1054       Known.One &= ~NewBits;
1055     }
1056     break;
1057   }
1058   case ISD::BUILD_PAIR: {
1059     EVT HalfVT = Op.getOperand(0).getValueType();
1060     unsigned HalfBitWidth = HalfVT.getScalarSizeInBits();
1061 
1062     APInt MaskLo = NewMask.getLoBits(HalfBitWidth).trunc(HalfBitWidth);
1063     APInt MaskHi = NewMask.getHiBits(HalfBitWidth).trunc(HalfBitWidth);
1064 
1065     KnownBits KnownLo, KnownHi;
1066 
1067     if (SimplifyDemandedBits(Op.getOperand(0), MaskLo, KnownLo, TLO, Depth + 1))
1068       return true;
1069 
1070     if (SimplifyDemandedBits(Op.getOperand(1), MaskHi, KnownHi, TLO, Depth + 1))
1071       return true;
1072 
1073     Known.Zero = KnownLo.Zero.zext(BitWidth) |
1074                 KnownHi.Zero.zext(BitWidth).shl(HalfBitWidth);
1075 
1076     Known.One = KnownLo.One.zext(BitWidth) |
1077                KnownHi.One.zext(BitWidth).shl(HalfBitWidth);
1078     break;
1079   }
1080   case ISD::ZERO_EXTEND: {
1081     unsigned OperandBitWidth = Op.getOperand(0).getScalarValueSizeInBits();
1082 
1083     // If none of the top bits are demanded, convert this into an any_extend.
1084     if (NewMask.getActiveBits() <= OperandBitWidth)
1085       return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::ANY_EXTEND, dl,
1086                                                Op.getValueType(),
1087                                                Op.getOperand(0)));
1088 
1089     APInt InMask = NewMask.trunc(OperandBitWidth);
1090     if (SimplifyDemandedBits(Op.getOperand(0), InMask, Known, TLO, Depth+1))
1091       return true;
1092     assert(!Known.hasConflict() && "Bits known to be one AND zero?");
1093     Known = Known.zext(BitWidth);
1094     Known.Zero.setBitsFrom(OperandBitWidth);
1095     break;
1096   }
1097   case ISD::SIGN_EXTEND: {
1098     unsigned InBits = Op.getOperand(0).getValueType().getScalarSizeInBits();
1099 
1100     // If none of the top bits are demanded, convert this into an any_extend.
1101     if (NewMask.getActiveBits() <= InBits)
1102       return TLO.CombineTo(Op,TLO.DAG.getNode(ISD::ANY_EXTEND, dl,
1103                                               Op.getValueType(),
1104                                               Op.getOperand(0)));
1105 
1106     // Since some of the sign extended bits are demanded, we know that the sign
1107     // bit is demanded.
1108     APInt InDemandedBits = NewMask.trunc(InBits);
1109     InDemandedBits.setBit(InBits - 1);
1110 
1111     if (SimplifyDemandedBits(Op.getOperand(0), InDemandedBits, Known, TLO,
1112                              Depth+1))
1113       return true;
1114     assert(!Known.hasConflict() && "Bits known to be one AND zero?");
1115     // If the sign bit is known one, the top bits match.
1116     Known = Known.sext(BitWidth);
1117 
1118     // If the sign bit is known zero, convert this to a zero extend.
1119     if (Known.isNonNegative())
1120       return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::ZERO_EXTEND, dl,
1121                                                Op.getValueType(),
1122                                                Op.getOperand(0)));
1123     break;
1124   }
1125   case ISD::ANY_EXTEND: {
1126     unsigned OperandBitWidth = Op.getOperand(0).getScalarValueSizeInBits();
1127     APInt InMask = NewMask.trunc(OperandBitWidth);
1128     if (SimplifyDemandedBits(Op.getOperand(0), InMask, Known, TLO, Depth+1))
1129       return true;
1130     assert(!Known.hasConflict() && "Bits known to be one AND zero?");
1131     Known = Known.zext(BitWidth);
1132     break;
1133   }
1134   case ISD::TRUNCATE: {
1135     // Simplify the input, using demanded bit information, and compute the known
1136     // zero/one bits live out.
1137     unsigned OperandBitWidth = Op.getOperand(0).getScalarValueSizeInBits();
1138     APInt TruncMask = NewMask.zext(OperandBitWidth);
1139     if (SimplifyDemandedBits(Op.getOperand(0), TruncMask, Known, TLO, Depth+1))
1140       return true;
1141     Known = Known.trunc(BitWidth);
1142 
1143     // If the input is only used by this truncate, see if we can shrink it based
1144     // on the known demanded bits.
1145     if (Op.getOperand(0).getNode()->hasOneUse()) {
1146       SDValue In = Op.getOperand(0);
1147       switch (In.getOpcode()) {
1148       default: break;
1149       case ISD::SRL:
1150         // Shrink SRL by a constant if none of the high bits shifted in are
1151         // demanded.
1152         if (TLO.LegalTypes() &&
1153             !isTypeDesirableForOp(ISD::SRL, Op.getValueType()))
1154           // Do not turn (vt1 truncate (vt2 srl)) into (vt1 srl) if vt1 is
1155           // undesirable.
1156           break;
1157         ConstantSDNode *ShAmt = dyn_cast<ConstantSDNode>(In.getOperand(1));
1158         if (!ShAmt)
1159           break;
1160         SDValue Shift = In.getOperand(1);
1161         if (TLO.LegalTypes()) {
1162           uint64_t ShVal = ShAmt->getZExtValue();
1163           Shift = TLO.DAG.getConstant(ShVal, dl,
1164                                       getShiftAmountTy(Op.getValueType(), DL));
1165         }
1166 
1167         if (ShAmt->getZExtValue() < BitWidth) {
1168           APInt HighBits = APInt::getHighBitsSet(OperandBitWidth,
1169                                                  OperandBitWidth - BitWidth);
1170           HighBits.lshrInPlace(ShAmt->getZExtValue());
1171           HighBits = HighBits.trunc(BitWidth);
1172 
1173           if (!(HighBits & NewMask)) {
1174             // None of the shifted in bits are needed.  Add a truncate of the
1175             // shift input, then shift it.
1176             SDValue NewTrunc = TLO.DAG.getNode(ISD::TRUNCATE, dl,
1177                                                Op.getValueType(),
1178                                                In.getOperand(0));
1179             return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::SRL, dl,
1180                                                      Op.getValueType(),
1181                                                      NewTrunc,
1182                                                      Shift));
1183           }
1184         }
1185         break;
1186       }
1187     }
1188 
1189     assert(!Known.hasConflict() && "Bits known to be one AND zero?");
1190     break;
1191   }
1192   case ISD::AssertZext: {
1193     // AssertZext demands all of the high bits, plus any of the low bits
1194     // demanded by its users.
1195     EVT VT = cast<VTSDNode>(Op.getOperand(1))->getVT();
1196     APInt InMask = APInt::getLowBitsSet(BitWidth,
1197                                         VT.getSizeInBits());
1198     if (SimplifyDemandedBits(Op.getOperand(0), ~InMask | NewMask,
1199                              Known, TLO, Depth+1))
1200       return true;
1201     assert(!Known.hasConflict() && "Bits known to be one AND zero?");
1202 
1203     Known.Zero |= ~InMask;
1204     break;
1205   }
1206   case ISD::BITCAST:
1207     // If this is an FP->Int bitcast and if the sign bit is the only
1208     // thing demanded, turn this into a FGETSIGN.
1209     if (!TLO.LegalOperations() &&
1210         !Op.getValueType().isVector() &&
1211         !Op.getOperand(0).getValueType().isVector() &&
1212         NewMask == APInt::getSignMask(Op.getValueSizeInBits()) &&
1213         Op.getOperand(0).getValueType().isFloatingPoint()) {
1214       bool OpVTLegal = isOperationLegalOrCustom(ISD::FGETSIGN, Op.getValueType());
1215       bool i32Legal  = isOperationLegalOrCustom(ISD::FGETSIGN, MVT::i32);
1216       if ((OpVTLegal || i32Legal) && Op.getValueType().isSimple() &&
1217            Op.getOperand(0).getValueType() != MVT::f128) {
1218         // Cannot eliminate/lower SHL for f128 yet.
1219         EVT Ty = OpVTLegal ? Op.getValueType() : MVT::i32;
1220         // Make a FGETSIGN + SHL to move the sign bit into the appropriate
1221         // place.  We expect the SHL to be eliminated by other optimizations.
1222         SDValue Sign = TLO.DAG.getNode(ISD::FGETSIGN, dl, Ty, Op.getOperand(0));
1223         unsigned OpVTSizeInBits = Op.getValueSizeInBits();
1224         if (!OpVTLegal && OpVTSizeInBits > 32)
1225           Sign = TLO.DAG.getNode(ISD::ZERO_EXTEND, dl, Op.getValueType(), Sign);
1226         unsigned ShVal = Op.getValueSizeInBits() - 1;
1227         SDValue ShAmt = TLO.DAG.getConstant(ShVal, dl, Op.getValueType());
1228         return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::SHL, dl,
1229                                                  Op.getValueType(),
1230                                                  Sign, ShAmt));
1231       }
1232     }
1233     break;
1234   case ISD::ADD:
1235   case ISD::MUL:
1236   case ISD::SUB: {
1237     // Add, Sub, and Mul don't demand any bits in positions beyond that
1238     // of the highest bit demanded of them.
1239     APInt LoMask = APInt::getLowBitsSet(BitWidth,
1240                                         BitWidth - NewMask.countLeadingZeros());
1241     if (SimplifyDemandedBits(Op.getOperand(0), LoMask, Known2, TLO, Depth+1) ||
1242         SimplifyDemandedBits(Op.getOperand(1), LoMask, Known2, TLO, Depth+1) ||
1243         // See if the operation should be performed at a smaller bit width.
1244         ShrinkDemandedOp(Op, BitWidth, NewMask, TLO)) {
1245       SDNodeFlags Flags = Op.getNode()->getFlags();
1246       if (Flags.hasNoSignedWrap() || Flags.hasNoUnsignedWrap()) {
1247         // Disable the nsw and nuw flags. We can no longer guarantee that we
1248         // won't wrap after simplification.
1249         Flags.setNoSignedWrap(false);
1250         Flags.setNoUnsignedWrap(false);
1251         SDValue NewOp = TLO.DAG.getNode(Op.getOpcode(), dl, Op.getValueType(),
1252                                         Op.getOperand(0), Op.getOperand(1),
1253                                         Flags);
1254         return TLO.CombineTo(Op, NewOp);
1255       }
1256       return true;
1257     }
1258     LLVM_FALLTHROUGH;
1259   }
1260   default:
1261     // Just use computeKnownBits to compute output bits.
1262     TLO.DAG.computeKnownBits(Op, Known, Depth);
1263     break;
1264   }
1265 
1266   // If we know the value of all of the demanded bits, return this as a
1267   // constant.
1268   if (NewMask.isSubsetOf(Known.Zero|Known.One)) {
1269     // Avoid folding to a constant if any OpaqueConstant is involved.
1270     const SDNode *N = Op.getNode();
1271     for (SDNodeIterator I = SDNodeIterator::begin(N),
1272          E = SDNodeIterator::end(N); I != E; ++I) {
1273       SDNode *Op = *I;
1274       if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op))
1275         if (C->isOpaque())
1276           return false;
1277     }
1278     return TLO.CombineTo(Op,
1279                          TLO.DAG.getConstant(Known.One, dl, Op.getValueType()));
1280   }
1281 
1282   return false;
1283 }
1284 
1285 /// Determine which of the bits specified in Mask are known to be either zero or
1286 /// one and return them in the Known.
1287 void TargetLowering::computeKnownBitsForTargetNode(const SDValue Op,
1288                                                    KnownBits &Known,
1289                                                    const APInt &DemandedElts,
1290                                                    const SelectionDAG &DAG,
1291                                                    unsigned Depth) const {
1292   assert((Op.getOpcode() >= ISD::BUILTIN_OP_END ||
1293           Op.getOpcode() == ISD::INTRINSIC_WO_CHAIN ||
1294           Op.getOpcode() == ISD::INTRINSIC_W_CHAIN ||
1295           Op.getOpcode() == ISD::INTRINSIC_VOID) &&
1296          "Should use MaskedValueIsZero if you don't know whether Op"
1297          " is a target node!");
1298   Known.resetAll();
1299 }
1300 
1301 /// This method can be implemented by targets that want to expose additional
1302 /// information about sign bits to the DAG Combiner.
1303 unsigned TargetLowering::ComputeNumSignBitsForTargetNode(SDValue Op,
1304                                                          const APInt &,
1305                                                          const SelectionDAG &,
1306                                                          unsigned Depth) const {
1307   assert((Op.getOpcode() >= ISD::BUILTIN_OP_END ||
1308           Op.getOpcode() == ISD::INTRINSIC_WO_CHAIN ||
1309           Op.getOpcode() == ISD::INTRINSIC_W_CHAIN ||
1310           Op.getOpcode() == ISD::INTRINSIC_VOID) &&
1311          "Should use ComputeNumSignBits if you don't know whether Op"
1312          " is a target node!");
1313   return 1;
1314 }
1315 
1316 // FIXME: Ideally, this would use ISD::isConstantSplatVector(), but that must
1317 // work with truncating build vectors and vectors with elements of less than
1318 // 8 bits.
1319 bool TargetLowering::isConstTrueVal(const SDNode *N) const {
1320   if (!N)
1321     return false;
1322 
1323   APInt CVal;
1324   if (auto *CN = dyn_cast<ConstantSDNode>(N)) {
1325     CVal = CN->getAPIntValue();
1326   } else if (auto *BV = dyn_cast<BuildVectorSDNode>(N)) {
1327     auto *CN = BV->getConstantSplatNode();
1328     if (!CN)
1329       return false;
1330 
1331     // If this is a truncating build vector, truncate the splat value.
1332     // Otherwise, we may fail to match the expected values below.
1333     unsigned BVEltWidth = BV->getValueType(0).getScalarSizeInBits();
1334     CVal = CN->getAPIntValue();
1335     if (BVEltWidth < CVal.getBitWidth())
1336       CVal = CVal.trunc(BVEltWidth);
1337   } else {
1338     return false;
1339   }
1340 
1341   switch (getBooleanContents(N->getValueType(0))) {
1342   case UndefinedBooleanContent:
1343     return CVal[0];
1344   case ZeroOrOneBooleanContent:
1345     return CVal.isOneValue();
1346   case ZeroOrNegativeOneBooleanContent:
1347     return CVal.isAllOnesValue();
1348   }
1349 
1350   llvm_unreachable("Invalid boolean contents");
1351 }
1352 
1353 SDValue TargetLowering::getConstTrueVal(SelectionDAG &DAG, EVT VT,
1354                                         const SDLoc &DL) const {
1355   unsigned ElementWidth = VT.getScalarSizeInBits();
1356   APInt TrueInt =
1357       getBooleanContents(VT) == TargetLowering::ZeroOrOneBooleanContent
1358           ? APInt(ElementWidth, 1)
1359           : APInt::getAllOnesValue(ElementWidth);
1360   return DAG.getConstant(TrueInt, DL, VT);
1361 }
1362 
1363 bool TargetLowering::isConstFalseVal(const SDNode *N) const {
1364   if (!N)
1365     return false;
1366 
1367   const ConstantSDNode *CN = dyn_cast<ConstantSDNode>(N);
1368   if (!CN) {
1369     const BuildVectorSDNode *BV = dyn_cast<BuildVectorSDNode>(N);
1370     if (!BV)
1371       return false;
1372 
1373     // Only interested in constant splats, we don't care about undef
1374     // elements in identifying boolean constants and getConstantSplatNode
1375     // returns NULL if all ops are undef;
1376     CN = BV->getConstantSplatNode();
1377     if (!CN)
1378       return false;
1379   }
1380 
1381   if (getBooleanContents(N->getValueType(0)) == UndefinedBooleanContent)
1382     return !CN->getAPIntValue()[0];
1383 
1384   return CN->isNullValue();
1385 }
1386 
1387 bool TargetLowering::isExtendedTrueVal(const ConstantSDNode *N, EVT VT,
1388                                        bool SExt) const {
1389   if (VT == MVT::i1)
1390     return N->isOne();
1391 
1392   TargetLowering::BooleanContent Cnt = getBooleanContents(VT);
1393   switch (Cnt) {
1394   case TargetLowering::ZeroOrOneBooleanContent:
1395     // An extended value of 1 is always true, unless its original type is i1,
1396     // in which case it will be sign extended to -1.
1397     return (N->isOne() && !SExt) || (SExt && (N->getValueType(0) != MVT::i1));
1398   case TargetLowering::UndefinedBooleanContent:
1399   case TargetLowering::ZeroOrNegativeOneBooleanContent:
1400     return N->isAllOnesValue() && SExt;
1401   }
1402   llvm_unreachable("Unexpected enumeration.");
1403 }
1404 
1405 /// This helper function of SimplifySetCC tries to optimize the comparison when
1406 /// either operand of the SetCC node is a bitwise-and instruction.
1407 SDValue TargetLowering::simplifySetCCWithAnd(EVT VT, SDValue N0, SDValue N1,
1408                                              ISD::CondCode Cond,
1409                                              DAGCombinerInfo &DCI,
1410                                              const SDLoc &DL) const {
1411   // Match these patterns in any of their permutations:
1412   // (X & Y) == Y
1413   // (X & Y) != Y
1414   if (N1.getOpcode() == ISD::AND && N0.getOpcode() != ISD::AND)
1415     std::swap(N0, N1);
1416 
1417   EVT OpVT = N0.getValueType();
1418   if (N0.getOpcode() != ISD::AND || !OpVT.isInteger() ||
1419       (Cond != ISD::SETEQ && Cond != ISD::SETNE))
1420     return SDValue();
1421 
1422   SDValue X, Y;
1423   if (N0.getOperand(0) == N1) {
1424     X = N0.getOperand(1);
1425     Y = N0.getOperand(0);
1426   } else if (N0.getOperand(1) == N1) {
1427     X = N0.getOperand(0);
1428     Y = N0.getOperand(1);
1429   } else {
1430     return SDValue();
1431   }
1432 
1433   SelectionDAG &DAG = DCI.DAG;
1434   SDValue Zero = DAG.getConstant(0, DL, OpVT);
1435   if (DAG.isKnownToBeAPowerOfTwo(Y)) {
1436     // Simplify X & Y == Y to X & Y != 0 if Y has exactly one bit set.
1437     // Note that where Y is variable and is known to have at most one bit set
1438     // (for example, if it is Z & 1) we cannot do this; the expressions are not
1439     // equivalent when Y == 0.
1440     Cond = ISD::getSetCCInverse(Cond, /*isInteger=*/true);
1441     if (DCI.isBeforeLegalizeOps() ||
1442         isCondCodeLegal(Cond, N0.getSimpleValueType()))
1443       return DAG.getSetCC(DL, VT, N0, Zero, Cond);
1444   } else if (N0.hasOneUse() && hasAndNotCompare(Y)) {
1445     // If the target supports an 'and-not' or 'and-complement' logic operation,
1446     // try to use that to make a comparison operation more efficient.
1447     // But don't do this transform if the mask is a single bit because there are
1448     // more efficient ways to deal with that case (for example, 'bt' on x86 or
1449     // 'rlwinm' on PPC).
1450 
1451     // Bail out if the compare operand that we want to turn into a zero is
1452     // already a zero (otherwise, infinite loop).
1453     auto *YConst = dyn_cast<ConstantSDNode>(Y);
1454     if (YConst && YConst->isNullValue())
1455       return SDValue();
1456 
1457     // Transform this into: ~X & Y == 0.
1458     SDValue NotX = DAG.getNOT(SDLoc(X), X, OpVT);
1459     SDValue NewAnd = DAG.getNode(ISD::AND, SDLoc(N0), OpVT, NotX, Y);
1460     return DAG.getSetCC(DL, VT, NewAnd, Zero, Cond);
1461   }
1462 
1463   return SDValue();
1464 }
1465 
1466 /// Try to simplify a setcc built with the specified operands and cc. If it is
1467 /// unable to simplify it, return a null SDValue.
1468 SDValue TargetLowering::SimplifySetCC(EVT VT, SDValue N0, SDValue N1,
1469                                       ISD::CondCode Cond, bool foldBooleans,
1470                                       DAGCombinerInfo &DCI,
1471                                       const SDLoc &dl) const {
1472   SelectionDAG &DAG = DCI.DAG;
1473 
1474   // These setcc operations always fold.
1475   switch (Cond) {
1476   default: break;
1477   case ISD::SETFALSE:
1478   case ISD::SETFALSE2: return DAG.getConstant(0, dl, VT);
1479   case ISD::SETTRUE:
1480   case ISD::SETTRUE2: {
1481     TargetLowering::BooleanContent Cnt =
1482         getBooleanContents(N0->getValueType(0));
1483     return DAG.getConstant(
1484         Cnt == TargetLowering::ZeroOrNegativeOneBooleanContent ? -1ULL : 1, dl,
1485         VT);
1486   }
1487   }
1488 
1489   // Ensure that the constant occurs on the RHS and fold constant comparisons.
1490   ISD::CondCode SwappedCC = ISD::getSetCCSwappedOperands(Cond);
1491   if (isa<ConstantSDNode>(N0.getNode()) &&
1492       (DCI.isBeforeLegalizeOps() ||
1493        isCondCodeLegal(SwappedCC, N0.getSimpleValueType())))
1494     return DAG.getSetCC(dl, VT, N1, N0, SwappedCC);
1495 
1496   if (auto *N1C = dyn_cast<ConstantSDNode>(N1.getNode())) {
1497     const APInt &C1 = N1C->getAPIntValue();
1498 
1499     // If the LHS is '(srl (ctlz x), 5)', the RHS is 0/1, and this is an
1500     // equality comparison, then we're just comparing whether X itself is
1501     // zero.
1502     if (N0.getOpcode() == ISD::SRL && (C1.isNullValue() || C1.isOneValue()) &&
1503         N0.getOperand(0).getOpcode() == ISD::CTLZ &&
1504         N0.getOperand(1).getOpcode() == ISD::Constant) {
1505       const APInt &ShAmt
1506         = cast<ConstantSDNode>(N0.getOperand(1))->getAPIntValue();
1507       if ((Cond == ISD::SETEQ || Cond == ISD::SETNE) &&
1508           ShAmt == Log2_32(N0.getValueSizeInBits())) {
1509         if ((C1 == 0) == (Cond == ISD::SETEQ)) {
1510           // (srl (ctlz x), 5) == 0  -> X != 0
1511           // (srl (ctlz x), 5) != 1  -> X != 0
1512           Cond = ISD::SETNE;
1513         } else {
1514           // (srl (ctlz x), 5) != 0  -> X == 0
1515           // (srl (ctlz x), 5) == 1  -> X == 0
1516           Cond = ISD::SETEQ;
1517         }
1518         SDValue Zero = DAG.getConstant(0, dl, N0.getValueType());
1519         return DAG.getSetCC(dl, VT, N0.getOperand(0).getOperand(0),
1520                             Zero, Cond);
1521       }
1522     }
1523 
1524     SDValue CTPOP = N0;
1525     // Look through truncs that don't change the value of a ctpop.
1526     if (N0.hasOneUse() && N0.getOpcode() == ISD::TRUNCATE)
1527       CTPOP = N0.getOperand(0);
1528 
1529     if (CTPOP.hasOneUse() && CTPOP.getOpcode() == ISD::CTPOP &&
1530         (N0 == CTPOP ||
1531          N0.getValueSizeInBits() > Log2_32_Ceil(CTPOP.getValueSizeInBits()))) {
1532       EVT CTVT = CTPOP.getValueType();
1533       SDValue CTOp = CTPOP.getOperand(0);
1534 
1535       // (ctpop x) u< 2 -> (x & x-1) == 0
1536       // (ctpop x) u> 1 -> (x & x-1) != 0
1537       if ((Cond == ISD::SETULT && C1 == 2) || (Cond == ISD::SETUGT && C1 == 1)){
1538         SDValue Sub = DAG.getNode(ISD::SUB, dl, CTVT, CTOp,
1539                                   DAG.getConstant(1, dl, CTVT));
1540         SDValue And = DAG.getNode(ISD::AND, dl, CTVT, CTOp, Sub);
1541         ISD::CondCode CC = Cond == ISD::SETULT ? ISD::SETEQ : ISD::SETNE;
1542         return DAG.getSetCC(dl, VT, And, DAG.getConstant(0, dl, CTVT), CC);
1543       }
1544 
1545       // TODO: (ctpop x) == 1 -> x && (x & x-1) == 0 iff ctpop is illegal.
1546     }
1547 
1548     // (zext x) == C --> x == (trunc C)
1549     // (sext x) == C --> x == (trunc C)
1550     if ((Cond == ISD::SETEQ || Cond == ISD::SETNE) &&
1551         DCI.isBeforeLegalize() && N0->hasOneUse()) {
1552       unsigned MinBits = N0.getValueSizeInBits();
1553       SDValue PreExt;
1554       bool Signed = false;
1555       if (N0->getOpcode() == ISD::ZERO_EXTEND) {
1556         // ZExt
1557         MinBits = N0->getOperand(0).getValueSizeInBits();
1558         PreExt = N0->getOperand(0);
1559       } else if (N0->getOpcode() == ISD::AND) {
1560         // DAGCombine turns costly ZExts into ANDs
1561         if (auto *C = dyn_cast<ConstantSDNode>(N0->getOperand(1)))
1562           if ((C->getAPIntValue()+1).isPowerOf2()) {
1563             MinBits = C->getAPIntValue().countTrailingOnes();
1564             PreExt = N0->getOperand(0);
1565           }
1566       } else if (N0->getOpcode() == ISD::SIGN_EXTEND) {
1567         // SExt
1568         MinBits = N0->getOperand(0).getValueSizeInBits();
1569         PreExt = N0->getOperand(0);
1570         Signed = true;
1571       } else if (auto *LN0 = dyn_cast<LoadSDNode>(N0)) {
1572         // ZEXTLOAD / SEXTLOAD
1573         if (LN0->getExtensionType() == ISD::ZEXTLOAD) {
1574           MinBits = LN0->getMemoryVT().getSizeInBits();
1575           PreExt = N0;
1576         } else if (LN0->getExtensionType() == ISD::SEXTLOAD) {
1577           Signed = true;
1578           MinBits = LN0->getMemoryVT().getSizeInBits();
1579           PreExt = N0;
1580         }
1581       }
1582 
1583       // Figure out how many bits we need to preserve this constant.
1584       unsigned ReqdBits = Signed ?
1585         C1.getBitWidth() - C1.getNumSignBits() + 1 :
1586         C1.getActiveBits();
1587 
1588       // Make sure we're not losing bits from the constant.
1589       if (MinBits > 0 &&
1590           MinBits < C1.getBitWidth() &&
1591           MinBits >= ReqdBits) {
1592         EVT MinVT = EVT::getIntegerVT(*DAG.getContext(), MinBits);
1593         if (isTypeDesirableForOp(ISD::SETCC, MinVT)) {
1594           // Will get folded away.
1595           SDValue Trunc = DAG.getNode(ISD::TRUNCATE, dl, MinVT, PreExt);
1596           if (MinBits == 1 && C1 == 1)
1597             // Invert the condition.
1598             return DAG.getSetCC(dl, VT, Trunc, DAG.getConstant(0, dl, MVT::i1),
1599                                 Cond == ISD::SETEQ ? ISD::SETNE : ISD::SETEQ);
1600           SDValue C = DAG.getConstant(C1.trunc(MinBits), dl, MinVT);
1601           return DAG.getSetCC(dl, VT, Trunc, C, Cond);
1602         }
1603 
1604         // If truncating the setcc operands is not desirable, we can still
1605         // simplify the expression in some cases:
1606         // setcc ([sz]ext (setcc x, y, cc)), 0, setne) -> setcc (x, y, cc)
1607         // setcc ([sz]ext (setcc x, y, cc)), 0, seteq) -> setcc (x, y, inv(cc))
1608         // setcc (zext (setcc x, y, cc)), 1, setne) -> setcc (x, y, inv(cc))
1609         // setcc (zext (setcc x, y, cc)), 1, seteq) -> setcc (x, y, cc)
1610         // setcc (sext (setcc x, y, cc)), -1, setne) -> setcc (x, y, inv(cc))
1611         // setcc (sext (setcc x, y, cc)), -1, seteq) -> setcc (x, y, cc)
1612         SDValue TopSetCC = N0->getOperand(0);
1613         unsigned N0Opc = N0->getOpcode();
1614         bool SExt = (N0Opc == ISD::SIGN_EXTEND);
1615         if (TopSetCC.getValueType() == MVT::i1 && VT == MVT::i1 &&
1616             TopSetCC.getOpcode() == ISD::SETCC &&
1617             (N0Opc == ISD::ZERO_EXTEND || N0Opc == ISD::SIGN_EXTEND) &&
1618             (isConstFalseVal(N1C) ||
1619              isExtendedTrueVal(N1C, N0->getValueType(0), SExt))) {
1620 
1621           bool Inverse = (N1C->isNullValue() && Cond == ISD::SETEQ) ||
1622                          (!N1C->isNullValue() && Cond == ISD::SETNE);
1623 
1624           if (!Inverse)
1625             return TopSetCC;
1626 
1627           ISD::CondCode InvCond = ISD::getSetCCInverse(
1628               cast<CondCodeSDNode>(TopSetCC.getOperand(2))->get(),
1629               TopSetCC.getOperand(0).getValueType().isInteger());
1630           return DAG.getSetCC(dl, VT, TopSetCC.getOperand(0),
1631                                       TopSetCC.getOperand(1),
1632                                       InvCond);
1633         }
1634       }
1635     }
1636 
1637     // If the LHS is '(and load, const)', the RHS is 0, the test is for
1638     // equality or unsigned, and all 1 bits of the const are in the same
1639     // partial word, see if we can shorten the load.
1640     if (DCI.isBeforeLegalize() &&
1641         !ISD::isSignedIntSetCC(Cond) &&
1642         N0.getOpcode() == ISD::AND && C1 == 0 &&
1643         N0.getNode()->hasOneUse() &&
1644         isa<LoadSDNode>(N0.getOperand(0)) &&
1645         N0.getOperand(0).getNode()->hasOneUse() &&
1646         isa<ConstantSDNode>(N0.getOperand(1))) {
1647       LoadSDNode *Lod = cast<LoadSDNode>(N0.getOperand(0));
1648       APInt bestMask;
1649       unsigned bestWidth = 0, bestOffset = 0;
1650       if (!Lod->isVolatile() && Lod->isUnindexed()) {
1651         unsigned origWidth = N0.getValueSizeInBits();
1652         unsigned maskWidth = origWidth;
1653         // We can narrow (e.g.) 16-bit extending loads on 32-bit target to
1654         // 8 bits, but have to be careful...
1655         if (Lod->getExtensionType() != ISD::NON_EXTLOAD)
1656           origWidth = Lod->getMemoryVT().getSizeInBits();
1657         const APInt &Mask =
1658           cast<ConstantSDNode>(N0.getOperand(1))->getAPIntValue();
1659         for (unsigned width = origWidth / 2; width>=8; width /= 2) {
1660           APInt newMask = APInt::getLowBitsSet(maskWidth, width);
1661           for (unsigned offset=0; offset<origWidth/width; offset++) {
1662             if (Mask.isSubsetOf(newMask)) {
1663               if (DAG.getDataLayout().isLittleEndian())
1664                 bestOffset = (uint64_t)offset * (width/8);
1665               else
1666                 bestOffset = (origWidth/width - offset - 1) * (width/8);
1667               bestMask = Mask.lshr(offset * (width/8) * 8);
1668               bestWidth = width;
1669               break;
1670             }
1671             newMask <<= width;
1672           }
1673         }
1674       }
1675       if (bestWidth) {
1676         EVT newVT = EVT::getIntegerVT(*DAG.getContext(), bestWidth);
1677         if (newVT.isRound()) {
1678           EVT PtrType = Lod->getOperand(1).getValueType();
1679           SDValue Ptr = Lod->getBasePtr();
1680           if (bestOffset != 0)
1681             Ptr = DAG.getNode(ISD::ADD, dl, PtrType, Lod->getBasePtr(),
1682                               DAG.getConstant(bestOffset, dl, PtrType));
1683           unsigned NewAlign = MinAlign(Lod->getAlignment(), bestOffset);
1684           SDValue NewLoad = DAG.getLoad(
1685               newVT, dl, Lod->getChain(), Ptr,
1686               Lod->getPointerInfo().getWithOffset(bestOffset), NewAlign);
1687           return DAG.getSetCC(dl, VT,
1688                               DAG.getNode(ISD::AND, dl, newVT, NewLoad,
1689                                       DAG.getConstant(bestMask.trunc(bestWidth),
1690                                                       dl, newVT)),
1691                               DAG.getConstant(0LL, dl, newVT), Cond);
1692         }
1693       }
1694     }
1695 
1696     // If the LHS is a ZERO_EXTEND, perform the comparison on the input.
1697     if (N0.getOpcode() == ISD::ZERO_EXTEND) {
1698       unsigned InSize = N0.getOperand(0).getValueSizeInBits();
1699 
1700       // If the comparison constant has bits in the upper part, the
1701       // zero-extended value could never match.
1702       if (C1.intersects(APInt::getHighBitsSet(C1.getBitWidth(),
1703                                               C1.getBitWidth() - InSize))) {
1704         switch (Cond) {
1705         case ISD::SETUGT:
1706         case ISD::SETUGE:
1707         case ISD::SETEQ:
1708           return DAG.getConstant(0, dl, VT);
1709         case ISD::SETULT:
1710         case ISD::SETULE:
1711         case ISD::SETNE:
1712           return DAG.getConstant(1, dl, VT);
1713         case ISD::SETGT:
1714         case ISD::SETGE:
1715           // True if the sign bit of C1 is set.
1716           return DAG.getConstant(C1.isNegative(), dl, VT);
1717         case ISD::SETLT:
1718         case ISD::SETLE:
1719           // True if the sign bit of C1 isn't set.
1720           return DAG.getConstant(C1.isNonNegative(), dl, VT);
1721         default:
1722           break;
1723         }
1724       }
1725 
1726       // Otherwise, we can perform the comparison with the low bits.
1727       switch (Cond) {
1728       case ISD::SETEQ:
1729       case ISD::SETNE:
1730       case ISD::SETUGT:
1731       case ISD::SETUGE:
1732       case ISD::SETULT:
1733       case ISD::SETULE: {
1734         EVT newVT = N0.getOperand(0).getValueType();
1735         if (DCI.isBeforeLegalizeOps() ||
1736             (isOperationLegal(ISD::SETCC, newVT) &&
1737              getCondCodeAction(Cond, newVT.getSimpleVT()) == Legal)) {
1738           EVT NewSetCCVT =
1739               getSetCCResultType(DAG.getDataLayout(), *DAG.getContext(), newVT);
1740           SDValue NewConst = DAG.getConstant(C1.trunc(InSize), dl, newVT);
1741 
1742           SDValue NewSetCC = DAG.getSetCC(dl, NewSetCCVT, N0.getOperand(0),
1743                                           NewConst, Cond);
1744           return DAG.getBoolExtOrTrunc(NewSetCC, dl, VT, N0.getValueType());
1745         }
1746         break;
1747       }
1748       default:
1749         break;   // todo, be more careful with signed comparisons
1750       }
1751     } else if (N0.getOpcode() == ISD::SIGN_EXTEND_INREG &&
1752                (Cond == ISD::SETEQ || Cond == ISD::SETNE)) {
1753       EVT ExtSrcTy = cast<VTSDNode>(N0.getOperand(1))->getVT();
1754       unsigned ExtSrcTyBits = ExtSrcTy.getSizeInBits();
1755       EVT ExtDstTy = N0.getValueType();
1756       unsigned ExtDstTyBits = ExtDstTy.getSizeInBits();
1757 
1758       // If the constant doesn't fit into the number of bits for the source of
1759       // the sign extension, it is impossible for both sides to be equal.
1760       if (C1.getMinSignedBits() > ExtSrcTyBits)
1761         return DAG.getConstant(Cond == ISD::SETNE, dl, VT);
1762 
1763       SDValue ZextOp;
1764       EVT Op0Ty = N0.getOperand(0).getValueType();
1765       if (Op0Ty == ExtSrcTy) {
1766         ZextOp = N0.getOperand(0);
1767       } else {
1768         APInt Imm = APInt::getLowBitsSet(ExtDstTyBits, ExtSrcTyBits);
1769         ZextOp = DAG.getNode(ISD::AND, dl, Op0Ty, N0.getOperand(0),
1770                               DAG.getConstant(Imm, dl, Op0Ty));
1771       }
1772       if (!DCI.isCalledByLegalizer())
1773         DCI.AddToWorklist(ZextOp.getNode());
1774       // Otherwise, make this a use of a zext.
1775       return DAG.getSetCC(dl, VT, ZextOp,
1776                           DAG.getConstant(C1 & APInt::getLowBitsSet(
1777                                                               ExtDstTyBits,
1778                                                               ExtSrcTyBits),
1779                                           dl, ExtDstTy),
1780                           Cond);
1781     } else if ((N1C->isNullValue() || N1C->isOne()) &&
1782                 (Cond == ISD::SETEQ || Cond == ISD::SETNE)) {
1783       // SETCC (SETCC), [0|1], [EQ|NE]  -> SETCC
1784       if (N0.getOpcode() == ISD::SETCC &&
1785           isTypeLegal(VT) && VT.bitsLE(N0.getValueType())) {
1786         bool TrueWhenTrue = (Cond == ISD::SETEQ) ^ (!N1C->isOne());
1787         if (TrueWhenTrue)
1788           return DAG.getNode(ISD::TRUNCATE, dl, VT, N0);
1789         // Invert the condition.
1790         ISD::CondCode CC = cast<CondCodeSDNode>(N0.getOperand(2))->get();
1791         CC = ISD::getSetCCInverse(CC,
1792                                   N0.getOperand(0).getValueType().isInteger());
1793         if (DCI.isBeforeLegalizeOps() ||
1794             isCondCodeLegal(CC, N0.getOperand(0).getSimpleValueType()))
1795           return DAG.getSetCC(dl, VT, N0.getOperand(0), N0.getOperand(1), CC);
1796       }
1797 
1798       if ((N0.getOpcode() == ISD::XOR ||
1799            (N0.getOpcode() == ISD::AND &&
1800             N0.getOperand(0).getOpcode() == ISD::XOR &&
1801             N0.getOperand(1) == N0.getOperand(0).getOperand(1))) &&
1802           isa<ConstantSDNode>(N0.getOperand(1)) &&
1803           cast<ConstantSDNode>(N0.getOperand(1))->isOne()) {
1804         // If this is (X^1) == 0/1, swap the RHS and eliminate the xor.  We
1805         // can only do this if the top bits are known zero.
1806         unsigned BitWidth = N0.getValueSizeInBits();
1807         if (DAG.MaskedValueIsZero(N0,
1808                                   APInt::getHighBitsSet(BitWidth,
1809                                                         BitWidth-1))) {
1810           // Okay, get the un-inverted input value.
1811           SDValue Val;
1812           if (N0.getOpcode() == ISD::XOR) {
1813             Val = N0.getOperand(0);
1814           } else {
1815             assert(N0.getOpcode() == ISD::AND &&
1816                     N0.getOperand(0).getOpcode() == ISD::XOR);
1817             // ((X^1)&1)^1 -> X & 1
1818             Val = DAG.getNode(ISD::AND, dl, N0.getValueType(),
1819                               N0.getOperand(0).getOperand(0),
1820                               N0.getOperand(1));
1821           }
1822 
1823           return DAG.getSetCC(dl, VT, Val, N1,
1824                               Cond == ISD::SETEQ ? ISD::SETNE : ISD::SETEQ);
1825         }
1826       } else if (N1C->isOne() &&
1827                  (VT == MVT::i1 ||
1828                   getBooleanContents(N0->getValueType(0)) ==
1829                       ZeroOrOneBooleanContent)) {
1830         SDValue Op0 = N0;
1831         if (Op0.getOpcode() == ISD::TRUNCATE)
1832           Op0 = Op0.getOperand(0);
1833 
1834         if ((Op0.getOpcode() == ISD::XOR) &&
1835             Op0.getOperand(0).getOpcode() == ISD::SETCC &&
1836             Op0.getOperand(1).getOpcode() == ISD::SETCC) {
1837           // (xor (setcc), (setcc)) == / != 1 -> (setcc) != / == (setcc)
1838           Cond = (Cond == ISD::SETEQ) ? ISD::SETNE : ISD::SETEQ;
1839           return DAG.getSetCC(dl, VT, Op0.getOperand(0), Op0.getOperand(1),
1840                               Cond);
1841         }
1842         if (Op0.getOpcode() == ISD::AND &&
1843             isa<ConstantSDNode>(Op0.getOperand(1)) &&
1844             cast<ConstantSDNode>(Op0.getOperand(1))->isOne()) {
1845           // If this is (X&1) == / != 1, normalize it to (X&1) != / == 0.
1846           if (Op0.getValueType().bitsGT(VT))
1847             Op0 = DAG.getNode(ISD::AND, dl, VT,
1848                           DAG.getNode(ISD::TRUNCATE, dl, VT, Op0.getOperand(0)),
1849                           DAG.getConstant(1, dl, VT));
1850           else if (Op0.getValueType().bitsLT(VT))
1851             Op0 = DAG.getNode(ISD::AND, dl, VT,
1852                         DAG.getNode(ISD::ANY_EXTEND, dl, VT, Op0.getOperand(0)),
1853                         DAG.getConstant(1, dl, VT));
1854 
1855           return DAG.getSetCC(dl, VT, Op0,
1856                               DAG.getConstant(0, dl, Op0.getValueType()),
1857                               Cond == ISD::SETEQ ? ISD::SETNE : ISD::SETEQ);
1858         }
1859         if (Op0.getOpcode() == ISD::AssertZext &&
1860             cast<VTSDNode>(Op0.getOperand(1))->getVT() == MVT::i1)
1861           return DAG.getSetCC(dl, VT, Op0,
1862                               DAG.getConstant(0, dl, Op0.getValueType()),
1863                               Cond == ISD::SETEQ ? ISD::SETNE : ISD::SETEQ);
1864       }
1865     }
1866 
1867     APInt MinVal, MaxVal;
1868     unsigned OperandBitSize = N1C->getValueType(0).getSizeInBits();
1869     if (ISD::isSignedIntSetCC(Cond)) {
1870       MinVal = APInt::getSignedMinValue(OperandBitSize);
1871       MaxVal = APInt::getSignedMaxValue(OperandBitSize);
1872     } else {
1873       MinVal = APInt::getMinValue(OperandBitSize);
1874       MaxVal = APInt::getMaxValue(OperandBitSize);
1875     }
1876 
1877     // Canonicalize GE/LE comparisons to use GT/LT comparisons.
1878     if (Cond == ISD::SETGE || Cond == ISD::SETUGE) {
1879       // X >= MIN --> true
1880       if (C1 == MinVal)
1881         return DAG.getConstant(1, dl, VT);
1882 
1883       // X >= C0 --> X > (C0 - 1)
1884       APInt C = C1 - 1;
1885       ISD::CondCode NewCC = (Cond == ISD::SETGE) ? ISD::SETGT : ISD::SETUGT;
1886       if ((DCI.isBeforeLegalizeOps() ||
1887            isCondCodeLegal(NewCC, VT.getSimpleVT())) &&
1888           (!N1C->isOpaque() || (N1C->isOpaque() && C.getBitWidth() <= 64 &&
1889                                 isLegalICmpImmediate(C.getSExtValue())))) {
1890         return DAG.getSetCC(dl, VT, N0,
1891                             DAG.getConstant(C, dl, N1.getValueType()),
1892                             NewCC);
1893       }
1894     }
1895 
1896     if (Cond == ISD::SETLE || Cond == ISD::SETULE) {
1897       // X <= MAX --> true
1898       if (C1 == MaxVal)
1899           return DAG.getConstant(1, dl, VT);
1900 
1901       // X <= C0 --> X < (C0 + 1)
1902       APInt C = C1 + 1;
1903       ISD::CondCode NewCC = (Cond == ISD::SETLE) ? ISD::SETLT : ISD::SETULT;
1904       if ((DCI.isBeforeLegalizeOps() ||
1905            isCondCodeLegal(NewCC, VT.getSimpleVT())) &&
1906           (!N1C->isOpaque() || (N1C->isOpaque() && C.getBitWidth() <= 64 &&
1907                                 isLegalICmpImmediate(C.getSExtValue())))) {
1908         return DAG.getSetCC(dl, VT, N0,
1909                             DAG.getConstant(C, dl, N1.getValueType()),
1910                             NewCC);
1911       }
1912     }
1913 
1914     if ((Cond == ISD::SETLT || Cond == ISD::SETULT) && C1 == MinVal)
1915       return DAG.getConstant(0, dl, VT);      // X < MIN --> false
1916     if ((Cond == ISD::SETGE || Cond == ISD::SETUGE) && C1 == MinVal)
1917       return DAG.getConstant(1, dl, VT);      // X >= MIN --> true
1918     if ((Cond == ISD::SETGT || Cond == ISD::SETUGT) && C1 == MaxVal)
1919       return DAG.getConstant(0, dl, VT);      // X > MAX --> false
1920     if ((Cond == ISD::SETLE || Cond == ISD::SETULE) && C1 == MaxVal)
1921       return DAG.getConstant(1, dl, VT);      // X <= MAX --> true
1922 
1923     // Canonicalize setgt X, Min --> setne X, Min
1924     if ((Cond == ISD::SETGT || Cond == ISD::SETUGT) && C1 == MinVal)
1925       return DAG.getSetCC(dl, VT, N0, N1, ISD::SETNE);
1926     // Canonicalize setlt X, Max --> setne X, Max
1927     if ((Cond == ISD::SETLT || Cond == ISD::SETULT) && C1 == MaxVal)
1928       return DAG.getSetCC(dl, VT, N0, N1, ISD::SETNE);
1929 
1930     // If we have setult X, 1, turn it into seteq X, 0
1931     if ((Cond == ISD::SETLT || Cond == ISD::SETULT) && C1 == MinVal+1)
1932       return DAG.getSetCC(dl, VT, N0,
1933                           DAG.getConstant(MinVal, dl, N0.getValueType()),
1934                           ISD::SETEQ);
1935     // If we have setugt X, Max-1, turn it into seteq X, Max
1936     if ((Cond == ISD::SETGT || Cond == ISD::SETUGT) && C1 == MaxVal-1)
1937       return DAG.getSetCC(dl, VT, N0,
1938                           DAG.getConstant(MaxVal, dl, N0.getValueType()),
1939                           ISD::SETEQ);
1940 
1941     // If we have "setcc X, C0", check to see if we can shrink the immediate
1942     // by changing cc.
1943 
1944     // SETUGT X, SINTMAX  -> SETLT X, 0
1945     if (Cond == ISD::SETUGT &&
1946         C1 == APInt::getSignedMaxValue(OperandBitSize))
1947       return DAG.getSetCC(dl, VT, N0,
1948                           DAG.getConstant(0, dl, N1.getValueType()),
1949                           ISD::SETLT);
1950 
1951     // SETULT X, SINTMIN  -> SETGT X, -1
1952     if (Cond == ISD::SETULT &&
1953         C1 == APInt::getSignedMinValue(OperandBitSize)) {
1954       SDValue ConstMinusOne =
1955           DAG.getConstant(APInt::getAllOnesValue(OperandBitSize), dl,
1956                           N1.getValueType());
1957       return DAG.getSetCC(dl, VT, N0, ConstMinusOne, ISD::SETGT);
1958     }
1959 
1960     // Fold bit comparisons when we can.
1961     if ((Cond == ISD::SETEQ || Cond == ISD::SETNE) &&
1962         (VT == N0.getValueType() ||
1963          (isTypeLegal(VT) && VT.bitsLE(N0.getValueType()))) &&
1964         N0.getOpcode() == ISD::AND) {
1965       auto &DL = DAG.getDataLayout();
1966       if (auto *AndRHS = dyn_cast<ConstantSDNode>(N0.getOperand(1))) {
1967         EVT ShiftTy = DCI.isBeforeLegalize()
1968                           ? getPointerTy(DL)
1969                           : getShiftAmountTy(N0.getValueType(), DL);
1970         if (Cond == ISD::SETNE && C1 == 0) {// (X & 8) != 0  -->  (X & 8) >> 3
1971           // Perform the xform if the AND RHS is a single bit.
1972           if (AndRHS->getAPIntValue().isPowerOf2()) {
1973             return DAG.getNode(ISD::TRUNCATE, dl, VT,
1974                               DAG.getNode(ISD::SRL, dl, N0.getValueType(), N0,
1975                    DAG.getConstant(AndRHS->getAPIntValue().logBase2(), dl,
1976                                    ShiftTy)));
1977           }
1978         } else if (Cond == ISD::SETEQ && C1 == AndRHS->getAPIntValue()) {
1979           // (X & 8) == 8  -->  (X & 8) >> 3
1980           // Perform the xform if C1 is a single bit.
1981           if (C1.isPowerOf2()) {
1982             return DAG.getNode(ISD::TRUNCATE, dl, VT,
1983                                DAG.getNode(ISD::SRL, dl, N0.getValueType(), N0,
1984                                       DAG.getConstant(C1.logBase2(), dl,
1985                                                       ShiftTy)));
1986           }
1987         }
1988       }
1989     }
1990 
1991     if (C1.getMinSignedBits() <= 64 &&
1992         !isLegalICmpImmediate(C1.getSExtValue())) {
1993       // (X & -256) == 256 -> (X >> 8) == 1
1994       if ((Cond == ISD::SETEQ || Cond == ISD::SETNE) &&
1995           N0.getOpcode() == ISD::AND && N0.hasOneUse()) {
1996         if (auto *AndRHS = dyn_cast<ConstantSDNode>(N0.getOperand(1))) {
1997           const APInt &AndRHSC = AndRHS->getAPIntValue();
1998           if ((-AndRHSC).isPowerOf2() && (AndRHSC & C1) == C1) {
1999             unsigned ShiftBits = AndRHSC.countTrailingZeros();
2000             auto &DL = DAG.getDataLayout();
2001             EVT ShiftTy = DCI.isBeforeLegalize()
2002                               ? getPointerTy(DL)
2003                               : getShiftAmountTy(N0.getValueType(), DL);
2004             EVT CmpTy = N0.getValueType();
2005             SDValue Shift = DAG.getNode(ISD::SRL, dl, CmpTy, N0.getOperand(0),
2006                                         DAG.getConstant(ShiftBits, dl,
2007                                                         ShiftTy));
2008             SDValue CmpRHS = DAG.getConstant(C1.lshr(ShiftBits), dl, CmpTy);
2009             return DAG.getSetCC(dl, VT, Shift, CmpRHS, Cond);
2010           }
2011         }
2012       } else if (Cond == ISD::SETULT || Cond == ISD::SETUGE ||
2013                  Cond == ISD::SETULE || Cond == ISD::SETUGT) {
2014         bool AdjOne = (Cond == ISD::SETULE || Cond == ISD::SETUGT);
2015         // X <  0x100000000 -> (X >> 32) <  1
2016         // X >= 0x100000000 -> (X >> 32) >= 1
2017         // X <= 0x0ffffffff -> (X >> 32) <  1
2018         // X >  0x0ffffffff -> (X >> 32) >= 1
2019         unsigned ShiftBits;
2020         APInt NewC = C1;
2021         ISD::CondCode NewCond = Cond;
2022         if (AdjOne) {
2023           ShiftBits = C1.countTrailingOnes();
2024           NewC = NewC + 1;
2025           NewCond = (Cond == ISD::SETULE) ? ISD::SETULT : ISD::SETUGE;
2026         } else {
2027           ShiftBits = C1.countTrailingZeros();
2028         }
2029         NewC.lshrInPlace(ShiftBits);
2030         if (ShiftBits && NewC.getMinSignedBits() <= 64 &&
2031           isLegalICmpImmediate(NewC.getSExtValue())) {
2032           auto &DL = DAG.getDataLayout();
2033           EVT ShiftTy = DCI.isBeforeLegalize()
2034                             ? getPointerTy(DL)
2035                             : getShiftAmountTy(N0.getValueType(), DL);
2036           EVT CmpTy = N0.getValueType();
2037           SDValue Shift = DAG.getNode(ISD::SRL, dl, CmpTy, N0,
2038                                       DAG.getConstant(ShiftBits, dl, ShiftTy));
2039           SDValue CmpRHS = DAG.getConstant(NewC, dl, CmpTy);
2040           return DAG.getSetCC(dl, VT, Shift, CmpRHS, NewCond);
2041         }
2042       }
2043     }
2044   }
2045 
2046   if (isa<ConstantFPSDNode>(N0.getNode())) {
2047     // Constant fold or commute setcc.
2048     SDValue O = DAG.FoldSetCC(VT, N0, N1, Cond, dl);
2049     if (O.getNode()) return O;
2050   } else if (auto *CFP = dyn_cast<ConstantFPSDNode>(N1.getNode())) {
2051     // If the RHS of an FP comparison is a constant, simplify it away in
2052     // some cases.
2053     if (CFP->getValueAPF().isNaN()) {
2054       // If an operand is known to be a nan, we can fold it.
2055       switch (ISD::getUnorderedFlavor(Cond)) {
2056       default: llvm_unreachable("Unknown flavor!");
2057       case 0:  // Known false.
2058         return DAG.getConstant(0, dl, VT);
2059       case 1:  // Known true.
2060         return DAG.getConstant(1, dl, VT);
2061       case 2:  // Undefined.
2062         return DAG.getUNDEF(VT);
2063       }
2064     }
2065 
2066     // Otherwise, we know the RHS is not a NaN.  Simplify the node to drop the
2067     // constant if knowing that the operand is non-nan is enough.  We prefer to
2068     // have SETO(x,x) instead of SETO(x, 0.0) because this avoids having to
2069     // materialize 0.0.
2070     if (Cond == ISD::SETO || Cond == ISD::SETUO)
2071       return DAG.getSetCC(dl, VT, N0, N0, Cond);
2072 
2073     // setcc (fneg x), C -> setcc swap(pred) x, -C
2074     if (N0.getOpcode() == ISD::FNEG) {
2075       ISD::CondCode SwapCond = ISD::getSetCCSwappedOperands(Cond);
2076       if (DCI.isBeforeLegalizeOps() ||
2077           isCondCodeLegal(SwapCond, N0.getSimpleValueType())) {
2078         SDValue NegN1 = DAG.getNode(ISD::FNEG, dl, N0.getValueType(), N1);
2079         return DAG.getSetCC(dl, VT, N0.getOperand(0), NegN1, SwapCond);
2080       }
2081     }
2082 
2083     // If the condition is not legal, see if we can find an equivalent one
2084     // which is legal.
2085     if (!isCondCodeLegal(Cond, N0.getSimpleValueType())) {
2086       // If the comparison was an awkward floating-point == or != and one of
2087       // the comparison operands is infinity or negative infinity, convert the
2088       // condition to a less-awkward <= or >=.
2089       if (CFP->getValueAPF().isInfinity()) {
2090         if (CFP->getValueAPF().isNegative()) {
2091           if (Cond == ISD::SETOEQ &&
2092               isCondCodeLegal(ISD::SETOLE, N0.getSimpleValueType()))
2093             return DAG.getSetCC(dl, VT, N0, N1, ISD::SETOLE);
2094           if (Cond == ISD::SETUEQ &&
2095               isCondCodeLegal(ISD::SETOLE, N0.getSimpleValueType()))
2096             return DAG.getSetCC(dl, VT, N0, N1, ISD::SETULE);
2097           if (Cond == ISD::SETUNE &&
2098               isCondCodeLegal(ISD::SETUGT, N0.getSimpleValueType()))
2099             return DAG.getSetCC(dl, VT, N0, N1, ISD::SETUGT);
2100           if (Cond == ISD::SETONE &&
2101               isCondCodeLegal(ISD::SETUGT, N0.getSimpleValueType()))
2102             return DAG.getSetCC(dl, VT, N0, N1, ISD::SETOGT);
2103         } else {
2104           if (Cond == ISD::SETOEQ &&
2105               isCondCodeLegal(ISD::SETOGE, N0.getSimpleValueType()))
2106             return DAG.getSetCC(dl, VT, N0, N1, ISD::SETOGE);
2107           if (Cond == ISD::SETUEQ &&
2108               isCondCodeLegal(ISD::SETOGE, N0.getSimpleValueType()))
2109             return DAG.getSetCC(dl, VT, N0, N1, ISD::SETUGE);
2110           if (Cond == ISD::SETUNE &&
2111               isCondCodeLegal(ISD::SETULT, N0.getSimpleValueType()))
2112             return DAG.getSetCC(dl, VT, N0, N1, ISD::SETULT);
2113           if (Cond == ISD::SETONE &&
2114               isCondCodeLegal(ISD::SETULT, N0.getSimpleValueType()))
2115             return DAG.getSetCC(dl, VT, N0, N1, ISD::SETOLT);
2116         }
2117       }
2118     }
2119   }
2120 
2121   if (N0 == N1) {
2122     // The sext(setcc()) => setcc() optimization relies on the appropriate
2123     // constant being emitted.
2124     uint64_t EqVal = 0;
2125     switch (getBooleanContents(N0.getValueType())) {
2126     case UndefinedBooleanContent:
2127     case ZeroOrOneBooleanContent:
2128       EqVal = ISD::isTrueWhenEqual(Cond);
2129       break;
2130     case ZeroOrNegativeOneBooleanContent:
2131       EqVal = ISD::isTrueWhenEqual(Cond) ? -1 : 0;
2132       break;
2133     }
2134 
2135     // We can always fold X == X for integer setcc's.
2136     if (N0.getValueType().isInteger()) {
2137       return DAG.getConstant(EqVal, dl, VT);
2138     }
2139     unsigned UOF = ISD::getUnorderedFlavor(Cond);
2140     if (UOF == 2)   // FP operators that are undefined on NaNs.
2141       return DAG.getConstant(EqVal, dl, VT);
2142     if (UOF == unsigned(ISD::isTrueWhenEqual(Cond)))
2143       return DAG.getConstant(EqVal, dl, VT);
2144     // Otherwise, we can't fold it.  However, we can simplify it to SETUO/SETO
2145     // if it is not already.
2146     ISD::CondCode NewCond = UOF == 0 ? ISD::SETO : ISD::SETUO;
2147     if (NewCond != Cond && (DCI.isBeforeLegalizeOps() ||
2148           getCondCodeAction(NewCond, N0.getSimpleValueType()) == Legal))
2149       return DAG.getSetCC(dl, VT, N0, N1, NewCond);
2150   }
2151 
2152   if ((Cond == ISD::SETEQ || Cond == ISD::SETNE) &&
2153       N0.getValueType().isInteger()) {
2154     if (N0.getOpcode() == ISD::ADD || N0.getOpcode() == ISD::SUB ||
2155         N0.getOpcode() == ISD::XOR) {
2156       // Simplify (X+Y) == (X+Z) -->  Y == Z
2157       if (N0.getOpcode() == N1.getOpcode()) {
2158         if (N0.getOperand(0) == N1.getOperand(0))
2159           return DAG.getSetCC(dl, VT, N0.getOperand(1), N1.getOperand(1), Cond);
2160         if (N0.getOperand(1) == N1.getOperand(1))
2161           return DAG.getSetCC(dl, VT, N0.getOperand(0), N1.getOperand(0), Cond);
2162         if (isCommutativeBinOp(N0.getOpcode())) {
2163           // If X op Y == Y op X, try other combinations.
2164           if (N0.getOperand(0) == N1.getOperand(1))
2165             return DAG.getSetCC(dl, VT, N0.getOperand(1), N1.getOperand(0),
2166                                 Cond);
2167           if (N0.getOperand(1) == N1.getOperand(0))
2168             return DAG.getSetCC(dl, VT, N0.getOperand(0), N1.getOperand(1),
2169                                 Cond);
2170         }
2171       }
2172 
2173       // If RHS is a legal immediate value for a compare instruction, we need
2174       // to be careful about increasing register pressure needlessly.
2175       bool LegalRHSImm = false;
2176 
2177       if (auto *RHSC = dyn_cast<ConstantSDNode>(N1)) {
2178         if (auto *LHSR = dyn_cast<ConstantSDNode>(N0.getOperand(1))) {
2179           // Turn (X+C1) == C2 --> X == C2-C1
2180           if (N0.getOpcode() == ISD::ADD && N0.getNode()->hasOneUse()) {
2181             return DAG.getSetCC(dl, VT, N0.getOperand(0),
2182                                 DAG.getConstant(RHSC->getAPIntValue()-
2183                                                 LHSR->getAPIntValue(),
2184                                 dl, N0.getValueType()), Cond);
2185           }
2186 
2187           // Turn (X^C1) == C2 into X == C1^C2 iff X&~C1 = 0.
2188           if (N0.getOpcode() == ISD::XOR)
2189             // If we know that all of the inverted bits are zero, don't bother
2190             // performing the inversion.
2191             if (DAG.MaskedValueIsZero(N0.getOperand(0), ~LHSR->getAPIntValue()))
2192               return
2193                 DAG.getSetCC(dl, VT, N0.getOperand(0),
2194                              DAG.getConstant(LHSR->getAPIntValue() ^
2195                                                RHSC->getAPIntValue(),
2196                                              dl, N0.getValueType()),
2197                              Cond);
2198         }
2199 
2200         // Turn (C1-X) == C2 --> X == C1-C2
2201         if (auto *SUBC = dyn_cast<ConstantSDNode>(N0.getOperand(0))) {
2202           if (N0.getOpcode() == ISD::SUB && N0.getNode()->hasOneUse()) {
2203             return
2204               DAG.getSetCC(dl, VT, N0.getOperand(1),
2205                            DAG.getConstant(SUBC->getAPIntValue() -
2206                                              RHSC->getAPIntValue(),
2207                                            dl, N0.getValueType()),
2208                            Cond);
2209           }
2210         }
2211 
2212         // Could RHSC fold directly into a compare?
2213         if (RHSC->getValueType(0).getSizeInBits() <= 64)
2214           LegalRHSImm = isLegalICmpImmediate(RHSC->getSExtValue());
2215       }
2216 
2217       // Simplify (X+Z) == X -->  Z == 0
2218       // Don't do this if X is an immediate that can fold into a cmp
2219       // instruction and X+Z has other uses. It could be an induction variable
2220       // chain, and the transform would increase register pressure.
2221       if (!LegalRHSImm || N0.getNode()->hasOneUse()) {
2222         if (N0.getOperand(0) == N1)
2223           return DAG.getSetCC(dl, VT, N0.getOperand(1),
2224                               DAG.getConstant(0, dl, N0.getValueType()), Cond);
2225         if (N0.getOperand(1) == N1) {
2226           if (isCommutativeBinOp(N0.getOpcode()))
2227             return DAG.getSetCC(dl, VT, N0.getOperand(0),
2228                                 DAG.getConstant(0, dl, N0.getValueType()),
2229                                 Cond);
2230           if (N0.getNode()->hasOneUse()) {
2231             assert(N0.getOpcode() == ISD::SUB && "Unexpected operation!");
2232             auto &DL = DAG.getDataLayout();
2233             // (Z-X) == X  --> Z == X<<1
2234             SDValue SH = DAG.getNode(
2235                 ISD::SHL, dl, N1.getValueType(), N1,
2236                 DAG.getConstant(1, dl,
2237                                 getShiftAmountTy(N1.getValueType(), DL)));
2238             if (!DCI.isCalledByLegalizer())
2239               DCI.AddToWorklist(SH.getNode());
2240             return DAG.getSetCC(dl, VT, N0.getOperand(0), SH, Cond);
2241           }
2242         }
2243       }
2244     }
2245 
2246     if (N1.getOpcode() == ISD::ADD || N1.getOpcode() == ISD::SUB ||
2247         N1.getOpcode() == ISD::XOR) {
2248       // Simplify  X == (X+Z) -->  Z == 0
2249       if (N1.getOperand(0) == N0)
2250         return DAG.getSetCC(dl, VT, N1.getOperand(1),
2251                         DAG.getConstant(0, dl, N1.getValueType()), Cond);
2252       if (N1.getOperand(1) == N0) {
2253         if (isCommutativeBinOp(N1.getOpcode()))
2254           return DAG.getSetCC(dl, VT, N1.getOperand(0),
2255                           DAG.getConstant(0, dl, N1.getValueType()), Cond);
2256         if (N1.getNode()->hasOneUse()) {
2257           assert(N1.getOpcode() == ISD::SUB && "Unexpected operation!");
2258           auto &DL = DAG.getDataLayout();
2259           // X == (Z-X)  --> X<<1 == Z
2260           SDValue SH = DAG.getNode(
2261               ISD::SHL, dl, N1.getValueType(), N0,
2262               DAG.getConstant(1, dl, getShiftAmountTy(N0.getValueType(), DL)));
2263           if (!DCI.isCalledByLegalizer())
2264             DCI.AddToWorklist(SH.getNode());
2265           return DAG.getSetCC(dl, VT, SH, N1.getOperand(0), Cond);
2266         }
2267       }
2268     }
2269 
2270     if (SDValue V = simplifySetCCWithAnd(VT, N0, N1, Cond, DCI, dl))
2271       return V;
2272   }
2273 
2274   // Fold away ALL boolean setcc's.
2275   SDValue Temp;
2276   if (N0.getValueType() == MVT::i1 && foldBooleans) {
2277     switch (Cond) {
2278     default: llvm_unreachable("Unknown integer setcc!");
2279     case ISD::SETEQ:  // X == Y  -> ~(X^Y)
2280       Temp = DAG.getNode(ISD::XOR, dl, MVT::i1, N0, N1);
2281       N0 = DAG.getNOT(dl, Temp, MVT::i1);
2282       if (!DCI.isCalledByLegalizer())
2283         DCI.AddToWorklist(Temp.getNode());
2284       break;
2285     case ISD::SETNE:  // X != Y   -->  (X^Y)
2286       N0 = DAG.getNode(ISD::XOR, dl, MVT::i1, N0, N1);
2287       break;
2288     case ISD::SETGT:  // X >s Y   -->  X == 0 & Y == 1  -->  ~X & Y
2289     case ISD::SETULT: // X <u Y   -->  X == 0 & Y == 1  -->  ~X & Y
2290       Temp = DAG.getNOT(dl, N0, MVT::i1);
2291       N0 = DAG.getNode(ISD::AND, dl, MVT::i1, N1, Temp);
2292       if (!DCI.isCalledByLegalizer())
2293         DCI.AddToWorklist(Temp.getNode());
2294       break;
2295     case ISD::SETLT:  // X <s Y   --> X == 1 & Y == 0  -->  ~Y & X
2296     case ISD::SETUGT: // X >u Y   --> X == 1 & Y == 0  -->  ~Y & X
2297       Temp = DAG.getNOT(dl, N1, MVT::i1);
2298       N0 = DAG.getNode(ISD::AND, dl, MVT::i1, N0, Temp);
2299       if (!DCI.isCalledByLegalizer())
2300         DCI.AddToWorklist(Temp.getNode());
2301       break;
2302     case ISD::SETULE: // X <=u Y  --> X == 0 | Y == 1  -->  ~X | Y
2303     case ISD::SETGE:  // X >=s Y  --> X == 0 | Y == 1  -->  ~X | Y
2304       Temp = DAG.getNOT(dl, N0, MVT::i1);
2305       N0 = DAG.getNode(ISD::OR, dl, MVT::i1, N1, Temp);
2306       if (!DCI.isCalledByLegalizer())
2307         DCI.AddToWorklist(Temp.getNode());
2308       break;
2309     case ISD::SETUGE: // X >=u Y  --> X == 1 | Y == 0  -->  ~Y | X
2310     case ISD::SETLE:  // X <=s Y  --> X == 1 | Y == 0  -->  ~Y | X
2311       Temp = DAG.getNOT(dl, N1, MVT::i1);
2312       N0 = DAG.getNode(ISD::OR, dl, MVT::i1, N0, Temp);
2313       break;
2314     }
2315     if (VT != MVT::i1) {
2316       if (!DCI.isCalledByLegalizer())
2317         DCI.AddToWorklist(N0.getNode());
2318       // FIXME: If running after legalize, we probably can't do this.
2319       N0 = DAG.getNode(ISD::ZERO_EXTEND, dl, VT, N0);
2320     }
2321     return N0;
2322   }
2323 
2324   // Could not fold it.
2325   return SDValue();
2326 }
2327 
2328 /// Returns true (and the GlobalValue and the offset) if the node is a
2329 /// GlobalAddress + offset.
2330 bool TargetLowering::isGAPlusOffset(SDNode *N, const GlobalValue *&GA,
2331                                     int64_t &Offset) const {
2332   if (auto *GASD = dyn_cast<GlobalAddressSDNode>(N)) {
2333     GA = GASD->getGlobal();
2334     Offset += GASD->getOffset();
2335     return true;
2336   }
2337 
2338   if (N->getOpcode() == ISD::ADD) {
2339     SDValue N1 = N->getOperand(0);
2340     SDValue N2 = N->getOperand(1);
2341     if (isGAPlusOffset(N1.getNode(), GA, Offset)) {
2342       if (auto *V = dyn_cast<ConstantSDNode>(N2)) {
2343         Offset += V->getSExtValue();
2344         return true;
2345       }
2346     } else if (isGAPlusOffset(N2.getNode(), GA, Offset)) {
2347       if (auto *V = dyn_cast<ConstantSDNode>(N1)) {
2348         Offset += V->getSExtValue();
2349         return true;
2350       }
2351     }
2352   }
2353 
2354   return false;
2355 }
2356 
2357 SDValue TargetLowering::PerformDAGCombine(SDNode *N,
2358                                           DAGCombinerInfo &DCI) const {
2359   // Default implementation: no optimization.
2360   return SDValue();
2361 }
2362 
2363 //===----------------------------------------------------------------------===//
2364 //  Inline Assembler Implementation Methods
2365 //===----------------------------------------------------------------------===//
2366 
2367 TargetLowering::ConstraintType
2368 TargetLowering::getConstraintType(StringRef Constraint) const {
2369   unsigned S = Constraint.size();
2370 
2371   if (S == 1) {
2372     switch (Constraint[0]) {
2373     default: break;
2374     case 'r': return C_RegisterClass;
2375     case 'm':    // memory
2376     case 'o':    // offsetable
2377     case 'V':    // not offsetable
2378       return C_Memory;
2379     case 'i':    // Simple Integer or Relocatable Constant
2380     case 'n':    // Simple Integer
2381     case 'E':    // Floating Point Constant
2382     case 'F':    // Floating Point Constant
2383     case 's':    // Relocatable Constant
2384     case 'p':    // Address.
2385     case 'X':    // Allow ANY value.
2386     case 'I':    // Target registers.
2387     case 'J':
2388     case 'K':
2389     case 'L':
2390     case 'M':
2391     case 'N':
2392     case 'O':
2393     case 'P':
2394     case '<':
2395     case '>':
2396       return C_Other;
2397     }
2398   }
2399 
2400   if (S > 1 && Constraint[0] == '{' && Constraint[S-1] == '}') {
2401     if (S == 8 && Constraint.substr(1, 6) == "memory") // "{memory}"
2402       return C_Memory;
2403     return C_Register;
2404   }
2405   return C_Unknown;
2406 }
2407 
2408 /// Try to replace an X constraint, which matches anything, with another that
2409 /// has more specific requirements based on the type of the corresponding
2410 /// operand.
2411 const char *TargetLowering::LowerXConstraint(EVT ConstraintVT) const{
2412   if (ConstraintVT.isInteger())
2413     return "r";
2414   if (ConstraintVT.isFloatingPoint())
2415     return "f";      // works for many targets
2416   return nullptr;
2417 }
2418 
2419 /// Lower the specified operand into the Ops vector.
2420 /// If it is invalid, don't add anything to Ops.
2421 void TargetLowering::LowerAsmOperandForConstraint(SDValue Op,
2422                                                   std::string &Constraint,
2423                                                   std::vector<SDValue> &Ops,
2424                                                   SelectionDAG &DAG) const {
2425 
2426   if (Constraint.length() > 1) return;
2427 
2428   char ConstraintLetter = Constraint[0];
2429   switch (ConstraintLetter) {
2430   default: break;
2431   case 'X':     // Allows any operand; labels (basic block) use this.
2432     if (Op.getOpcode() == ISD::BasicBlock) {
2433       Ops.push_back(Op);
2434       return;
2435     }
2436     LLVM_FALLTHROUGH;
2437   case 'i':    // Simple Integer or Relocatable Constant
2438   case 'n':    // Simple Integer
2439   case 's': {  // Relocatable Constant
2440     // These operands are interested in values of the form (GV+C), where C may
2441     // be folded in as an offset of GV, or it may be explicitly added.  Also, it
2442     // is possible and fine if either GV or C are missing.
2443     ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op);
2444     GlobalAddressSDNode *GA = dyn_cast<GlobalAddressSDNode>(Op);
2445 
2446     // If we have "(add GV, C)", pull out GV/C
2447     if (Op.getOpcode() == ISD::ADD) {
2448       C = dyn_cast<ConstantSDNode>(Op.getOperand(1));
2449       GA = dyn_cast<GlobalAddressSDNode>(Op.getOperand(0));
2450       if (!C || !GA) {
2451         C = dyn_cast<ConstantSDNode>(Op.getOperand(0));
2452         GA = dyn_cast<GlobalAddressSDNode>(Op.getOperand(1));
2453       }
2454       if (!C || !GA) {
2455         C = nullptr;
2456         GA = nullptr;
2457       }
2458     }
2459 
2460     // If we find a valid operand, map to the TargetXXX version so that the
2461     // value itself doesn't get selected.
2462     if (GA) {   // Either &GV   or   &GV+C
2463       if (ConstraintLetter != 'n') {
2464         int64_t Offs = GA->getOffset();
2465         if (C) Offs += C->getZExtValue();
2466         Ops.push_back(DAG.getTargetGlobalAddress(GA->getGlobal(),
2467                                                  C ? SDLoc(C) : SDLoc(),
2468                                                  Op.getValueType(), Offs));
2469       }
2470       return;
2471     }
2472     if (C) {   // just C, no GV.
2473       // Simple constants are not allowed for 's'.
2474       if (ConstraintLetter != 's') {
2475         // gcc prints these as sign extended.  Sign extend value to 64 bits
2476         // now; without this it would get ZExt'd later in
2477         // ScheduleDAGSDNodes::EmitNode, which is very generic.
2478         Ops.push_back(DAG.getTargetConstant(C->getSExtValue(),
2479                                             SDLoc(C), MVT::i64));
2480       }
2481       return;
2482     }
2483     break;
2484   }
2485   }
2486 }
2487 
2488 std::pair<unsigned, const TargetRegisterClass *>
2489 TargetLowering::getRegForInlineAsmConstraint(const TargetRegisterInfo *RI,
2490                                              StringRef Constraint,
2491                                              MVT VT) const {
2492   if (Constraint.empty() || Constraint[0] != '{')
2493     return std::make_pair(0u, static_cast<TargetRegisterClass*>(nullptr));
2494   assert(*(Constraint.end()-1) == '}' && "Not a brace enclosed constraint?");
2495 
2496   // Remove the braces from around the name.
2497   StringRef RegName(Constraint.data()+1, Constraint.size()-2);
2498 
2499   std::pair<unsigned, const TargetRegisterClass*> R =
2500     std::make_pair(0u, static_cast<const TargetRegisterClass*>(nullptr));
2501 
2502   // Figure out which register class contains this reg.
2503   for (const TargetRegisterClass *RC : RI->regclasses()) {
2504     // If none of the value types for this register class are valid, we
2505     // can't use it.  For example, 64-bit reg classes on 32-bit targets.
2506     if (!isLegalRC(*RI, *RC))
2507       continue;
2508 
2509     for (TargetRegisterClass::iterator I = RC->begin(), E = RC->end();
2510          I != E; ++I) {
2511       if (RegName.equals_lower(RI->getRegAsmName(*I))) {
2512         std::pair<unsigned, const TargetRegisterClass*> S =
2513           std::make_pair(*I, RC);
2514 
2515         // If this register class has the requested value type, return it,
2516         // otherwise keep searching and return the first class found
2517         // if no other is found which explicitly has the requested type.
2518         if (RI->isTypeLegalForClass(*RC, VT))
2519           return S;
2520         if (!R.second)
2521           R = S;
2522       }
2523     }
2524   }
2525 
2526   return R;
2527 }
2528 
2529 //===----------------------------------------------------------------------===//
2530 // Constraint Selection.
2531 
2532 /// Return true of this is an input operand that is a matching constraint like
2533 /// "4".
2534 bool TargetLowering::AsmOperandInfo::isMatchingInputConstraint() const {
2535   assert(!ConstraintCode.empty() && "No known constraint!");
2536   return isdigit(static_cast<unsigned char>(ConstraintCode[0]));
2537 }
2538 
2539 /// If this is an input matching constraint, this method returns the output
2540 /// operand it matches.
2541 unsigned TargetLowering::AsmOperandInfo::getMatchedOperand() const {
2542   assert(!ConstraintCode.empty() && "No known constraint!");
2543   return atoi(ConstraintCode.c_str());
2544 }
2545 
2546 /// Split up the constraint string from the inline assembly value into the
2547 /// specific constraints and their prefixes, and also tie in the associated
2548 /// operand values.
2549 /// If this returns an empty vector, and if the constraint string itself
2550 /// isn't empty, there was an error parsing.
2551 TargetLowering::AsmOperandInfoVector
2552 TargetLowering::ParseConstraints(const DataLayout &DL,
2553                                  const TargetRegisterInfo *TRI,
2554                                  ImmutableCallSite CS) const {
2555   /// Information about all of the constraints.
2556   AsmOperandInfoVector ConstraintOperands;
2557   const InlineAsm *IA = cast<InlineAsm>(CS.getCalledValue());
2558   unsigned maCount = 0; // Largest number of multiple alternative constraints.
2559 
2560   // Do a prepass over the constraints, canonicalizing them, and building up the
2561   // ConstraintOperands list.
2562   unsigned ArgNo = 0;   // ArgNo - The argument of the CallInst.
2563   unsigned ResNo = 0;   // ResNo - The result number of the next output.
2564 
2565   for (InlineAsm::ConstraintInfo &CI : IA->ParseConstraints()) {
2566     ConstraintOperands.emplace_back(std::move(CI));
2567     AsmOperandInfo &OpInfo = ConstraintOperands.back();
2568 
2569     // Update multiple alternative constraint count.
2570     if (OpInfo.multipleAlternatives.size() > maCount)
2571       maCount = OpInfo.multipleAlternatives.size();
2572 
2573     OpInfo.ConstraintVT = MVT::Other;
2574 
2575     // Compute the value type for each operand.
2576     switch (OpInfo.Type) {
2577     case InlineAsm::isOutput:
2578       // Indirect outputs just consume an argument.
2579       if (OpInfo.isIndirect) {
2580         OpInfo.CallOperandVal = const_cast<Value *>(CS.getArgument(ArgNo++));
2581         break;
2582       }
2583 
2584       // The return value of the call is this value.  As such, there is no
2585       // corresponding argument.
2586       assert(!CS.getType()->isVoidTy() &&
2587              "Bad inline asm!");
2588       if (StructType *STy = dyn_cast<StructType>(CS.getType())) {
2589         OpInfo.ConstraintVT =
2590             getSimpleValueType(DL, STy->getElementType(ResNo));
2591       } else {
2592         assert(ResNo == 0 && "Asm only has one result!");
2593         OpInfo.ConstraintVT = getSimpleValueType(DL, CS.getType());
2594       }
2595       ++ResNo;
2596       break;
2597     case InlineAsm::isInput:
2598       OpInfo.CallOperandVal = const_cast<Value *>(CS.getArgument(ArgNo++));
2599       break;
2600     case InlineAsm::isClobber:
2601       // Nothing to do.
2602       break;
2603     }
2604 
2605     if (OpInfo.CallOperandVal) {
2606       llvm::Type *OpTy = OpInfo.CallOperandVal->getType();
2607       if (OpInfo.isIndirect) {
2608         llvm::PointerType *PtrTy = dyn_cast<PointerType>(OpTy);
2609         if (!PtrTy)
2610           report_fatal_error("Indirect operand for inline asm not a pointer!");
2611         OpTy = PtrTy->getElementType();
2612       }
2613 
2614       // Look for vector wrapped in a struct. e.g. { <16 x i8> }.
2615       if (StructType *STy = dyn_cast<StructType>(OpTy))
2616         if (STy->getNumElements() == 1)
2617           OpTy = STy->getElementType(0);
2618 
2619       // If OpTy is not a single value, it may be a struct/union that we
2620       // can tile with integers.
2621       if (!OpTy->isSingleValueType() && OpTy->isSized()) {
2622         unsigned BitSize = DL.getTypeSizeInBits(OpTy);
2623         switch (BitSize) {
2624         default: break;
2625         case 1:
2626         case 8:
2627         case 16:
2628         case 32:
2629         case 64:
2630         case 128:
2631           OpInfo.ConstraintVT =
2632             MVT::getVT(IntegerType::get(OpTy->getContext(), BitSize), true);
2633           break;
2634         }
2635       } else if (PointerType *PT = dyn_cast<PointerType>(OpTy)) {
2636         unsigned PtrSize = DL.getPointerSizeInBits(PT->getAddressSpace());
2637         OpInfo.ConstraintVT = MVT::getIntegerVT(PtrSize);
2638       } else {
2639         OpInfo.ConstraintVT = MVT::getVT(OpTy, true);
2640       }
2641     }
2642   }
2643 
2644   // If we have multiple alternative constraints, select the best alternative.
2645   if (!ConstraintOperands.empty()) {
2646     if (maCount) {
2647       unsigned bestMAIndex = 0;
2648       int bestWeight = -1;
2649       // weight:  -1 = invalid match, and 0 = so-so match to 5 = good match.
2650       int weight = -1;
2651       unsigned maIndex;
2652       // Compute the sums of the weights for each alternative, keeping track
2653       // of the best (highest weight) one so far.
2654       for (maIndex = 0; maIndex < maCount; ++maIndex) {
2655         int weightSum = 0;
2656         for (unsigned cIndex = 0, eIndex = ConstraintOperands.size();
2657             cIndex != eIndex; ++cIndex) {
2658           AsmOperandInfo& OpInfo = ConstraintOperands[cIndex];
2659           if (OpInfo.Type == InlineAsm::isClobber)
2660             continue;
2661 
2662           // If this is an output operand with a matching input operand,
2663           // look up the matching input. If their types mismatch, e.g. one
2664           // is an integer, the other is floating point, or their sizes are
2665           // different, flag it as an maCantMatch.
2666           if (OpInfo.hasMatchingInput()) {
2667             AsmOperandInfo &Input = ConstraintOperands[OpInfo.MatchingInput];
2668             if (OpInfo.ConstraintVT != Input.ConstraintVT) {
2669               if ((OpInfo.ConstraintVT.isInteger() !=
2670                    Input.ConstraintVT.isInteger()) ||
2671                   (OpInfo.ConstraintVT.getSizeInBits() !=
2672                    Input.ConstraintVT.getSizeInBits())) {
2673                 weightSum = -1;  // Can't match.
2674                 break;
2675               }
2676             }
2677           }
2678           weight = getMultipleConstraintMatchWeight(OpInfo, maIndex);
2679           if (weight == -1) {
2680             weightSum = -1;
2681             break;
2682           }
2683           weightSum += weight;
2684         }
2685         // Update best.
2686         if (weightSum > bestWeight) {
2687           bestWeight = weightSum;
2688           bestMAIndex = maIndex;
2689         }
2690       }
2691 
2692       // Now select chosen alternative in each constraint.
2693       for (unsigned cIndex = 0, eIndex = ConstraintOperands.size();
2694           cIndex != eIndex; ++cIndex) {
2695         AsmOperandInfo& cInfo = ConstraintOperands[cIndex];
2696         if (cInfo.Type == InlineAsm::isClobber)
2697           continue;
2698         cInfo.selectAlternative(bestMAIndex);
2699       }
2700     }
2701   }
2702 
2703   // Check and hook up tied operands, choose constraint code to use.
2704   for (unsigned cIndex = 0, eIndex = ConstraintOperands.size();
2705       cIndex != eIndex; ++cIndex) {
2706     AsmOperandInfo& OpInfo = ConstraintOperands[cIndex];
2707 
2708     // If this is an output operand with a matching input operand, look up the
2709     // matching input. If their types mismatch, e.g. one is an integer, the
2710     // other is floating point, or their sizes are different, flag it as an
2711     // error.
2712     if (OpInfo.hasMatchingInput()) {
2713       AsmOperandInfo &Input = ConstraintOperands[OpInfo.MatchingInput];
2714 
2715       if (OpInfo.ConstraintVT != Input.ConstraintVT) {
2716         std::pair<unsigned, const TargetRegisterClass *> MatchRC =
2717             getRegForInlineAsmConstraint(TRI, OpInfo.ConstraintCode,
2718                                          OpInfo.ConstraintVT);
2719         std::pair<unsigned, const TargetRegisterClass *> InputRC =
2720             getRegForInlineAsmConstraint(TRI, Input.ConstraintCode,
2721                                          Input.ConstraintVT);
2722         if ((OpInfo.ConstraintVT.isInteger() !=
2723              Input.ConstraintVT.isInteger()) ||
2724             (MatchRC.second != InputRC.second)) {
2725           report_fatal_error("Unsupported asm: input constraint"
2726                              " with a matching output constraint of"
2727                              " incompatible type!");
2728         }
2729       }
2730     }
2731   }
2732 
2733   return ConstraintOperands;
2734 }
2735 
2736 /// Return an integer indicating how general CT is.
2737 static unsigned getConstraintGenerality(TargetLowering::ConstraintType CT) {
2738   switch (CT) {
2739   case TargetLowering::C_Other:
2740   case TargetLowering::C_Unknown:
2741     return 0;
2742   case TargetLowering::C_Register:
2743     return 1;
2744   case TargetLowering::C_RegisterClass:
2745     return 2;
2746   case TargetLowering::C_Memory:
2747     return 3;
2748   }
2749   llvm_unreachable("Invalid constraint type");
2750 }
2751 
2752 /// Examine constraint type and operand type and determine a weight value.
2753 /// This object must already have been set up with the operand type
2754 /// and the current alternative constraint selected.
2755 TargetLowering::ConstraintWeight
2756   TargetLowering::getMultipleConstraintMatchWeight(
2757     AsmOperandInfo &info, int maIndex) const {
2758   InlineAsm::ConstraintCodeVector *rCodes;
2759   if (maIndex >= (int)info.multipleAlternatives.size())
2760     rCodes = &info.Codes;
2761   else
2762     rCodes = &info.multipleAlternatives[maIndex].Codes;
2763   ConstraintWeight BestWeight = CW_Invalid;
2764 
2765   // Loop over the options, keeping track of the most general one.
2766   for (unsigned i = 0, e = rCodes->size(); i != e; ++i) {
2767     ConstraintWeight weight =
2768       getSingleConstraintMatchWeight(info, (*rCodes)[i].c_str());
2769     if (weight > BestWeight)
2770       BestWeight = weight;
2771   }
2772 
2773   return BestWeight;
2774 }
2775 
2776 /// Examine constraint type and operand type and determine a weight value.
2777 /// This object must already have been set up with the operand type
2778 /// and the current alternative constraint selected.
2779 TargetLowering::ConstraintWeight
2780   TargetLowering::getSingleConstraintMatchWeight(
2781     AsmOperandInfo &info, const char *constraint) const {
2782   ConstraintWeight weight = CW_Invalid;
2783   Value *CallOperandVal = info.CallOperandVal;
2784     // If we don't have a value, we can't do a match,
2785     // but allow it at the lowest weight.
2786   if (!CallOperandVal)
2787     return CW_Default;
2788   // Look at the constraint type.
2789   switch (*constraint) {
2790     case 'i': // immediate integer.
2791     case 'n': // immediate integer with a known value.
2792       if (isa<ConstantInt>(CallOperandVal))
2793         weight = CW_Constant;
2794       break;
2795     case 's': // non-explicit intregal immediate.
2796       if (isa<GlobalValue>(CallOperandVal))
2797         weight = CW_Constant;
2798       break;
2799     case 'E': // immediate float if host format.
2800     case 'F': // immediate float.
2801       if (isa<ConstantFP>(CallOperandVal))
2802         weight = CW_Constant;
2803       break;
2804     case '<': // memory operand with autodecrement.
2805     case '>': // memory operand with autoincrement.
2806     case 'm': // memory operand.
2807     case 'o': // offsettable memory operand
2808     case 'V': // non-offsettable memory operand
2809       weight = CW_Memory;
2810       break;
2811     case 'r': // general register.
2812     case 'g': // general register, memory operand or immediate integer.
2813               // note: Clang converts "g" to "imr".
2814       if (CallOperandVal->getType()->isIntegerTy())
2815         weight = CW_Register;
2816       break;
2817     case 'X': // any operand.
2818     default:
2819       weight = CW_Default;
2820       break;
2821   }
2822   return weight;
2823 }
2824 
2825 /// If there are multiple different constraints that we could pick for this
2826 /// operand (e.g. "imr") try to pick the 'best' one.
2827 /// This is somewhat tricky: constraints fall into four classes:
2828 ///    Other         -> immediates and magic values
2829 ///    Register      -> one specific register
2830 ///    RegisterClass -> a group of regs
2831 ///    Memory        -> memory
2832 /// Ideally, we would pick the most specific constraint possible: if we have
2833 /// something that fits into a register, we would pick it.  The problem here
2834 /// is that if we have something that could either be in a register or in
2835 /// memory that use of the register could cause selection of *other*
2836 /// operands to fail: they might only succeed if we pick memory.  Because of
2837 /// this the heuristic we use is:
2838 ///
2839 ///  1) If there is an 'other' constraint, and if the operand is valid for
2840 ///     that constraint, use it.  This makes us take advantage of 'i'
2841 ///     constraints when available.
2842 ///  2) Otherwise, pick the most general constraint present.  This prefers
2843 ///     'm' over 'r', for example.
2844 ///
2845 static void ChooseConstraint(TargetLowering::AsmOperandInfo &OpInfo,
2846                              const TargetLowering &TLI,
2847                              SDValue Op, SelectionDAG *DAG) {
2848   assert(OpInfo.Codes.size() > 1 && "Doesn't have multiple constraint options");
2849   unsigned BestIdx = 0;
2850   TargetLowering::ConstraintType BestType = TargetLowering::C_Unknown;
2851   int BestGenerality = -1;
2852 
2853   // Loop over the options, keeping track of the most general one.
2854   for (unsigned i = 0, e = OpInfo.Codes.size(); i != e; ++i) {
2855     TargetLowering::ConstraintType CType =
2856       TLI.getConstraintType(OpInfo.Codes[i]);
2857 
2858     // If this is an 'other' constraint, see if the operand is valid for it.
2859     // For example, on X86 we might have an 'rI' constraint.  If the operand
2860     // is an integer in the range [0..31] we want to use I (saving a load
2861     // of a register), otherwise we must use 'r'.
2862     if (CType == TargetLowering::C_Other && Op.getNode()) {
2863       assert(OpInfo.Codes[i].size() == 1 &&
2864              "Unhandled multi-letter 'other' constraint");
2865       std::vector<SDValue> ResultOps;
2866       TLI.LowerAsmOperandForConstraint(Op, OpInfo.Codes[i],
2867                                        ResultOps, *DAG);
2868       if (!ResultOps.empty()) {
2869         BestType = CType;
2870         BestIdx = i;
2871         break;
2872       }
2873     }
2874 
2875     // Things with matching constraints can only be registers, per gcc
2876     // documentation.  This mainly affects "g" constraints.
2877     if (CType == TargetLowering::C_Memory && OpInfo.hasMatchingInput())
2878       continue;
2879 
2880     // This constraint letter is more general than the previous one, use it.
2881     int Generality = getConstraintGenerality(CType);
2882     if (Generality > BestGenerality) {
2883       BestType = CType;
2884       BestIdx = i;
2885       BestGenerality = Generality;
2886     }
2887   }
2888 
2889   OpInfo.ConstraintCode = OpInfo.Codes[BestIdx];
2890   OpInfo.ConstraintType = BestType;
2891 }
2892 
2893 /// Determines the constraint code and constraint type to use for the specific
2894 /// AsmOperandInfo, setting OpInfo.ConstraintCode and OpInfo.ConstraintType.
2895 void TargetLowering::ComputeConstraintToUse(AsmOperandInfo &OpInfo,
2896                                             SDValue Op,
2897                                             SelectionDAG *DAG) const {
2898   assert(!OpInfo.Codes.empty() && "Must have at least one constraint");
2899 
2900   // Single-letter constraints ('r') are very common.
2901   if (OpInfo.Codes.size() == 1) {
2902     OpInfo.ConstraintCode = OpInfo.Codes[0];
2903     OpInfo.ConstraintType = getConstraintType(OpInfo.ConstraintCode);
2904   } else {
2905     ChooseConstraint(OpInfo, *this, Op, DAG);
2906   }
2907 
2908   // 'X' matches anything.
2909   if (OpInfo.ConstraintCode == "X" && OpInfo.CallOperandVal) {
2910     // Labels and constants are handled elsewhere ('X' is the only thing
2911     // that matches labels).  For Functions, the type here is the type of
2912     // the result, which is not what we want to look at; leave them alone.
2913     Value *v = OpInfo.CallOperandVal;
2914     if (isa<BasicBlock>(v) || isa<ConstantInt>(v) || isa<Function>(v)) {
2915       OpInfo.CallOperandVal = v;
2916       return;
2917     }
2918 
2919     // Otherwise, try to resolve it to something we know about by looking at
2920     // the actual operand type.
2921     if (const char *Repl = LowerXConstraint(OpInfo.ConstraintVT)) {
2922       OpInfo.ConstraintCode = Repl;
2923       OpInfo.ConstraintType = getConstraintType(OpInfo.ConstraintCode);
2924     }
2925   }
2926 }
2927 
2928 /// \brief Given an exact SDIV by a constant, create a multiplication
2929 /// with the multiplicative inverse of the constant.
2930 static SDValue BuildExactSDIV(const TargetLowering &TLI, SDValue Op1, APInt d,
2931                               const SDLoc &dl, SelectionDAG &DAG,
2932                               std::vector<SDNode *> &Created) {
2933   assert(d != 0 && "Division by zero!");
2934 
2935   // Shift the value upfront if it is even, so the LSB is one.
2936   unsigned ShAmt = d.countTrailingZeros();
2937   if (ShAmt) {
2938     // TODO: For UDIV use SRL instead of SRA.
2939     SDValue Amt =
2940         DAG.getConstant(ShAmt, dl, TLI.getShiftAmountTy(Op1.getValueType(),
2941                                                         DAG.getDataLayout()));
2942     SDNodeFlags Flags;
2943     Flags.setExact(true);
2944     Op1 = DAG.getNode(ISD::SRA, dl, Op1.getValueType(), Op1, Amt, Flags);
2945     Created.push_back(Op1.getNode());
2946     d.ashrInPlace(ShAmt);
2947   }
2948 
2949   // Calculate the multiplicative inverse, using Newton's method.
2950   APInt t, xn = d;
2951   while ((t = d*xn) != 1)
2952     xn *= APInt(d.getBitWidth(), 2) - t;
2953 
2954   SDValue Op2 = DAG.getConstant(xn, dl, Op1.getValueType());
2955   SDValue Mul = DAG.getNode(ISD::MUL, dl, Op1.getValueType(), Op1, Op2);
2956   Created.push_back(Mul.getNode());
2957   return Mul;
2958 }
2959 
2960 SDValue TargetLowering::BuildSDIVPow2(SDNode *N, const APInt &Divisor,
2961                                       SelectionDAG &DAG,
2962                                       std::vector<SDNode *> *Created) const {
2963   AttributeList Attr = DAG.getMachineFunction().getFunction()->getAttributes();
2964   const TargetLowering &TLI = DAG.getTargetLoweringInfo();
2965   if (TLI.isIntDivCheap(N->getValueType(0), Attr))
2966     return SDValue(N,0); // Lower SDIV as SDIV
2967   return SDValue();
2968 }
2969 
2970 /// \brief Given an ISD::SDIV node expressing a divide by constant,
2971 /// return a DAG expression to select that will generate the same value by
2972 /// multiplying by a magic number.
2973 /// Ref: "Hacker's Delight" or "The PowerPC Compiler Writer's Guide".
2974 SDValue TargetLowering::BuildSDIV(SDNode *N, const APInt &Divisor,
2975                                   SelectionDAG &DAG, bool IsAfterLegalization,
2976                                   std::vector<SDNode *> *Created) const {
2977   assert(Created && "No vector to hold sdiv ops.");
2978 
2979   EVT VT = N->getValueType(0);
2980   SDLoc dl(N);
2981 
2982   // Check to see if we can do this.
2983   // FIXME: We should be more aggressive here.
2984   if (!isTypeLegal(VT))
2985     return SDValue();
2986 
2987   // If the sdiv has an 'exact' bit we can use a simpler lowering.
2988   if (N->getFlags().hasExact())
2989     return BuildExactSDIV(*this, N->getOperand(0), Divisor, dl, DAG, *Created);
2990 
2991   APInt::ms magics = Divisor.magic();
2992 
2993   // Multiply the numerator (operand 0) by the magic value
2994   // FIXME: We should support doing a MUL in a wider type
2995   SDValue Q;
2996   if (IsAfterLegalization ? isOperationLegal(ISD::MULHS, VT) :
2997                             isOperationLegalOrCustom(ISD::MULHS, VT))
2998     Q = DAG.getNode(ISD::MULHS, dl, VT, N->getOperand(0),
2999                     DAG.getConstant(magics.m, dl, VT));
3000   else if (IsAfterLegalization ? isOperationLegal(ISD::SMUL_LOHI, VT) :
3001                                  isOperationLegalOrCustom(ISD::SMUL_LOHI, VT))
3002     Q = SDValue(DAG.getNode(ISD::SMUL_LOHI, dl, DAG.getVTList(VT, VT),
3003                               N->getOperand(0),
3004                               DAG.getConstant(magics.m, dl, VT)).getNode(), 1);
3005   else
3006     return SDValue();       // No mulhs or equvialent
3007   // If d > 0 and m < 0, add the numerator
3008   if (Divisor.isStrictlyPositive() && magics.m.isNegative()) {
3009     Q = DAG.getNode(ISD::ADD, dl, VT, Q, N->getOperand(0));
3010     Created->push_back(Q.getNode());
3011   }
3012   // If d < 0 and m > 0, subtract the numerator.
3013   if (Divisor.isNegative() && magics.m.isStrictlyPositive()) {
3014     Q = DAG.getNode(ISD::SUB, dl, VT, Q, N->getOperand(0));
3015     Created->push_back(Q.getNode());
3016   }
3017   auto &DL = DAG.getDataLayout();
3018   // Shift right algebraic if shift value is nonzero
3019   if (magics.s > 0) {
3020     Q = DAG.getNode(
3021         ISD::SRA, dl, VT, Q,
3022         DAG.getConstant(magics.s, dl, getShiftAmountTy(Q.getValueType(), DL)));
3023     Created->push_back(Q.getNode());
3024   }
3025   // Extract the sign bit and add it to the quotient
3026   SDValue T =
3027       DAG.getNode(ISD::SRL, dl, VT, Q,
3028                   DAG.getConstant(VT.getScalarSizeInBits() - 1, dl,
3029                                   getShiftAmountTy(Q.getValueType(), DL)));
3030   Created->push_back(T.getNode());
3031   return DAG.getNode(ISD::ADD, dl, VT, Q, T);
3032 }
3033 
3034 /// \brief Given an ISD::UDIV node expressing a divide by constant,
3035 /// return a DAG expression to select that will generate the same value by
3036 /// multiplying by a magic number.
3037 /// Ref: "Hacker's Delight" or "The PowerPC Compiler Writer's Guide".
3038 SDValue TargetLowering::BuildUDIV(SDNode *N, const APInt &Divisor,
3039                                   SelectionDAG &DAG, bool IsAfterLegalization,
3040                                   std::vector<SDNode *> *Created) const {
3041   assert(Created && "No vector to hold udiv ops.");
3042 
3043   EVT VT = N->getValueType(0);
3044   SDLoc dl(N);
3045   auto &DL = DAG.getDataLayout();
3046 
3047   // Check to see if we can do this.
3048   // FIXME: We should be more aggressive here.
3049   if (!isTypeLegal(VT))
3050     return SDValue();
3051 
3052   // FIXME: We should use a narrower constant when the upper
3053   // bits are known to be zero.
3054   APInt::mu magics = Divisor.magicu();
3055 
3056   SDValue Q = N->getOperand(0);
3057 
3058   // If the divisor is even, we can avoid using the expensive fixup by shifting
3059   // the divided value upfront.
3060   if (magics.a != 0 && !Divisor[0]) {
3061     unsigned Shift = Divisor.countTrailingZeros();
3062     Q = DAG.getNode(
3063         ISD::SRL, dl, VT, Q,
3064         DAG.getConstant(Shift, dl, getShiftAmountTy(Q.getValueType(), DL)));
3065     Created->push_back(Q.getNode());
3066 
3067     // Get magic number for the shifted divisor.
3068     magics = Divisor.lshr(Shift).magicu(Shift);
3069     assert(magics.a == 0 && "Should use cheap fixup now");
3070   }
3071 
3072   // Multiply the numerator (operand 0) by the magic value
3073   // FIXME: We should support doing a MUL in a wider type
3074   if (IsAfterLegalization ? isOperationLegal(ISD::MULHU, VT) :
3075                             isOperationLegalOrCustom(ISD::MULHU, VT))
3076     Q = DAG.getNode(ISD::MULHU, dl, VT, Q, DAG.getConstant(magics.m, dl, VT));
3077   else if (IsAfterLegalization ? isOperationLegal(ISD::UMUL_LOHI, VT) :
3078                                  isOperationLegalOrCustom(ISD::UMUL_LOHI, VT))
3079     Q = SDValue(DAG.getNode(ISD::UMUL_LOHI, dl, DAG.getVTList(VT, VT), Q,
3080                             DAG.getConstant(magics.m, dl, VT)).getNode(), 1);
3081   else
3082     return SDValue();       // No mulhu or equivalent
3083 
3084   Created->push_back(Q.getNode());
3085 
3086   if (magics.a == 0) {
3087     assert(magics.s < Divisor.getBitWidth() &&
3088            "We shouldn't generate an undefined shift!");
3089     return DAG.getNode(
3090         ISD::SRL, dl, VT, Q,
3091         DAG.getConstant(magics.s, dl, getShiftAmountTy(Q.getValueType(), DL)));
3092   } else {
3093     SDValue NPQ = DAG.getNode(ISD::SUB, dl, VT, N->getOperand(0), Q);
3094     Created->push_back(NPQ.getNode());
3095     NPQ = DAG.getNode(
3096         ISD::SRL, dl, VT, NPQ,
3097         DAG.getConstant(1, dl, getShiftAmountTy(NPQ.getValueType(), DL)));
3098     Created->push_back(NPQ.getNode());
3099     NPQ = DAG.getNode(ISD::ADD, dl, VT, NPQ, Q);
3100     Created->push_back(NPQ.getNode());
3101     return DAG.getNode(
3102         ISD::SRL, dl, VT, NPQ,
3103         DAG.getConstant(magics.s - 1, dl,
3104                         getShiftAmountTy(NPQ.getValueType(), DL)));
3105   }
3106 }
3107 
3108 bool TargetLowering::
3109 verifyReturnAddressArgumentIsConstant(SDValue Op, SelectionDAG &DAG) const {
3110   if (!isa<ConstantSDNode>(Op.getOperand(0))) {
3111     DAG.getContext()->emitError("argument to '__builtin_return_address' must "
3112                                 "be a constant integer");
3113     return true;
3114   }
3115 
3116   return false;
3117 }
3118 
3119 //===----------------------------------------------------------------------===//
3120 // Legalization Utilities
3121 //===----------------------------------------------------------------------===//
3122 
3123 bool TargetLowering::expandMUL_LOHI(unsigned Opcode, EVT VT, SDLoc dl,
3124                                     SDValue LHS, SDValue RHS,
3125                                     SmallVectorImpl<SDValue> &Result,
3126                                     EVT HiLoVT, SelectionDAG &DAG,
3127                                     MulExpansionKind Kind, SDValue LL,
3128                                     SDValue LH, SDValue RL, SDValue RH) const {
3129   assert(Opcode == ISD::MUL || Opcode == ISD::UMUL_LOHI ||
3130          Opcode == ISD::SMUL_LOHI);
3131 
3132   bool HasMULHS = (Kind == MulExpansionKind::Always) ||
3133                   isOperationLegalOrCustom(ISD::MULHS, HiLoVT);
3134   bool HasMULHU = (Kind == MulExpansionKind::Always) ||
3135                   isOperationLegalOrCustom(ISD::MULHU, HiLoVT);
3136   bool HasSMUL_LOHI = (Kind == MulExpansionKind::Always) ||
3137                       isOperationLegalOrCustom(ISD::SMUL_LOHI, HiLoVT);
3138   bool HasUMUL_LOHI = (Kind == MulExpansionKind::Always) ||
3139                       isOperationLegalOrCustom(ISD::UMUL_LOHI, HiLoVT);
3140 
3141   if (!HasMULHU && !HasMULHS && !HasUMUL_LOHI && !HasSMUL_LOHI)
3142     return false;
3143 
3144   unsigned OuterBitSize = VT.getScalarSizeInBits();
3145   unsigned InnerBitSize = HiLoVT.getScalarSizeInBits();
3146   unsigned LHSSB = DAG.ComputeNumSignBits(LHS);
3147   unsigned RHSSB = DAG.ComputeNumSignBits(RHS);
3148 
3149   // LL, LH, RL, and RH must be either all NULL or all set to a value.
3150   assert((LL.getNode() && LH.getNode() && RL.getNode() && RH.getNode()) ||
3151          (!LL.getNode() && !LH.getNode() && !RL.getNode() && !RH.getNode()));
3152 
3153   SDVTList VTs = DAG.getVTList(HiLoVT, HiLoVT);
3154   auto MakeMUL_LOHI = [&](SDValue L, SDValue R, SDValue &Lo, SDValue &Hi,
3155                           bool Signed) -> bool {
3156     if ((Signed && HasSMUL_LOHI) || (!Signed && HasUMUL_LOHI)) {
3157       Lo = DAG.getNode(Signed ? ISD::SMUL_LOHI : ISD::UMUL_LOHI, dl, VTs, L, R);
3158       Hi = SDValue(Lo.getNode(), 1);
3159       return true;
3160     }
3161     if ((Signed && HasMULHS) || (!Signed && HasMULHU)) {
3162       Lo = DAG.getNode(ISD::MUL, dl, HiLoVT, L, R);
3163       Hi = DAG.getNode(Signed ? ISD::MULHS : ISD::MULHU, dl, HiLoVT, L, R);
3164       return true;
3165     }
3166     return false;
3167   };
3168 
3169   SDValue Lo, Hi;
3170 
3171   if (!LL.getNode() && !RL.getNode() &&
3172       isOperationLegalOrCustom(ISD::TRUNCATE, HiLoVT)) {
3173     LL = DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, LHS);
3174     RL = DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, RHS);
3175   }
3176 
3177   if (!LL.getNode())
3178     return false;
3179 
3180   APInt HighMask = APInt::getHighBitsSet(OuterBitSize, InnerBitSize);
3181   if (DAG.MaskedValueIsZero(LHS, HighMask) &&
3182       DAG.MaskedValueIsZero(RHS, HighMask)) {
3183     // The inputs are both zero-extended.
3184     if (MakeMUL_LOHI(LL, RL, Lo, Hi, false)) {
3185       Result.push_back(Lo);
3186       Result.push_back(Hi);
3187       if (Opcode != ISD::MUL) {
3188         SDValue Zero = DAG.getConstant(0, dl, HiLoVT);
3189         Result.push_back(Zero);
3190         Result.push_back(Zero);
3191       }
3192       return true;
3193     }
3194   }
3195 
3196   if (!VT.isVector() && Opcode == ISD::MUL && LHSSB > InnerBitSize &&
3197       RHSSB > InnerBitSize) {
3198     // The input values are both sign-extended.
3199     // TODO non-MUL case?
3200     if (MakeMUL_LOHI(LL, RL, Lo, Hi, true)) {
3201       Result.push_back(Lo);
3202       Result.push_back(Hi);
3203       return true;
3204     }
3205   }
3206 
3207   unsigned ShiftAmount = OuterBitSize - InnerBitSize;
3208   EVT ShiftAmountTy = getShiftAmountTy(VT, DAG.getDataLayout());
3209   if (APInt::getMaxValue(ShiftAmountTy.getSizeInBits()).ult(ShiftAmount)) {
3210     // FIXME getShiftAmountTy does not always return a sensible result when VT
3211     // is an illegal type, and so the type may be too small to fit the shift
3212     // amount. Override it with i32. The shift will have to be legalized.
3213     ShiftAmountTy = MVT::i32;
3214   }
3215   SDValue Shift = DAG.getConstant(ShiftAmount, dl, ShiftAmountTy);
3216 
3217   if (!LH.getNode() && !RH.getNode() &&
3218       isOperationLegalOrCustom(ISD::SRL, VT) &&
3219       isOperationLegalOrCustom(ISD::TRUNCATE, HiLoVT)) {
3220     LH = DAG.getNode(ISD::SRL, dl, VT, LHS, Shift);
3221     LH = DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, LH);
3222     RH = DAG.getNode(ISD::SRL, dl, VT, RHS, Shift);
3223     RH = DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, RH);
3224   }
3225 
3226   if (!LH.getNode())
3227     return false;
3228 
3229   if (!MakeMUL_LOHI(LL, RL, Lo, Hi, false))
3230     return false;
3231 
3232   Result.push_back(Lo);
3233 
3234   if (Opcode == ISD::MUL) {
3235     RH = DAG.getNode(ISD::MUL, dl, HiLoVT, LL, RH);
3236     LH = DAG.getNode(ISD::MUL, dl, HiLoVT, LH, RL);
3237     Hi = DAG.getNode(ISD::ADD, dl, HiLoVT, Hi, RH);
3238     Hi = DAG.getNode(ISD::ADD, dl, HiLoVT, Hi, LH);
3239     Result.push_back(Hi);
3240     return true;
3241   }
3242 
3243   // Compute the full width result.
3244   auto Merge = [&](SDValue Lo, SDValue Hi) -> SDValue {
3245     Lo = DAG.getNode(ISD::ZERO_EXTEND, dl, VT, Lo);
3246     Hi = DAG.getNode(ISD::ZERO_EXTEND, dl, VT, Hi);
3247     Hi = DAG.getNode(ISD::SHL, dl, VT, Hi, Shift);
3248     return DAG.getNode(ISD::OR, dl, VT, Lo, Hi);
3249   };
3250 
3251   SDValue Next = DAG.getNode(ISD::ZERO_EXTEND, dl, VT, Hi);
3252   if (!MakeMUL_LOHI(LL, RH, Lo, Hi, false))
3253     return false;
3254 
3255   // This is effectively the add part of a multiply-add of half-sized operands,
3256   // so it cannot overflow.
3257   Next = DAG.getNode(ISD::ADD, dl, VT, Next, Merge(Lo, Hi));
3258 
3259   if (!MakeMUL_LOHI(LH, RL, Lo, Hi, false))
3260     return false;
3261 
3262   Next = DAG.getNode(ISD::ADDC, dl, DAG.getVTList(VT, MVT::Glue), Next,
3263                      Merge(Lo, Hi));
3264 
3265   SDValue Carry = Next.getValue(1);
3266   Result.push_back(DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, Next));
3267   Next = DAG.getNode(ISD::SRL, dl, VT, Next, Shift);
3268 
3269   if (!MakeMUL_LOHI(LH, RH, Lo, Hi, Opcode == ISD::SMUL_LOHI))
3270     return false;
3271 
3272   SDValue Zero = DAG.getConstant(0, dl, HiLoVT);
3273   Hi = DAG.getNode(ISD::ADDE, dl, DAG.getVTList(HiLoVT, MVT::Glue), Hi, Zero,
3274                    Carry);
3275   Next = DAG.getNode(ISD::ADD, dl, VT, Next, Merge(Lo, Hi));
3276 
3277   if (Opcode == ISD::SMUL_LOHI) {
3278     SDValue NextSub = DAG.getNode(ISD::SUB, dl, VT, Next,
3279                                   DAG.getNode(ISD::ZERO_EXTEND, dl, VT, RL));
3280     Next = DAG.getSelectCC(dl, LH, Zero, NextSub, Next, ISD::SETLT);
3281 
3282     NextSub = DAG.getNode(ISD::SUB, dl, VT, Next,
3283                           DAG.getNode(ISD::ZERO_EXTEND, dl, VT, LL));
3284     Next = DAG.getSelectCC(dl, RH, Zero, NextSub, Next, ISD::SETLT);
3285   }
3286 
3287   Result.push_back(DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, Next));
3288   Next = DAG.getNode(ISD::SRL, dl, VT, Next, Shift);
3289   Result.push_back(DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, Next));
3290   return true;
3291 }
3292 
3293 bool TargetLowering::expandMUL(SDNode *N, SDValue &Lo, SDValue &Hi, EVT HiLoVT,
3294                                SelectionDAG &DAG, MulExpansionKind Kind,
3295                                SDValue LL, SDValue LH, SDValue RL,
3296                                SDValue RH) const {
3297   SmallVector<SDValue, 2> Result;
3298   bool Ok = expandMUL_LOHI(N->getOpcode(), N->getValueType(0), N,
3299                            N->getOperand(0), N->getOperand(1), Result, HiLoVT,
3300                            DAG, Kind, LL, LH, RL, RH);
3301   if (Ok) {
3302     assert(Result.size() == 2);
3303     Lo = Result[0];
3304     Hi = Result[1];
3305   }
3306   return Ok;
3307 }
3308 
3309 bool TargetLowering::expandFP_TO_SINT(SDNode *Node, SDValue &Result,
3310                                SelectionDAG &DAG) const {
3311   EVT VT = Node->getOperand(0).getValueType();
3312   EVT NVT = Node->getValueType(0);
3313   SDLoc dl(SDValue(Node, 0));
3314 
3315   // FIXME: Only f32 to i64 conversions are supported.
3316   if (VT != MVT::f32 || NVT != MVT::i64)
3317     return false;
3318 
3319   // Expand f32 -> i64 conversion
3320   // This algorithm comes from compiler-rt's implementation of fixsfdi:
3321   // https://github.com/llvm-mirror/compiler-rt/blob/master/lib/builtins/fixsfdi.c
3322   EVT IntVT = EVT::getIntegerVT(*DAG.getContext(),
3323                                 VT.getSizeInBits());
3324   SDValue ExponentMask = DAG.getConstant(0x7F800000, dl, IntVT);
3325   SDValue ExponentLoBit = DAG.getConstant(23, dl, IntVT);
3326   SDValue Bias = DAG.getConstant(127, dl, IntVT);
3327   SDValue SignMask = DAG.getConstant(APInt::getSignMask(VT.getSizeInBits()), dl,
3328                                      IntVT);
3329   SDValue SignLowBit = DAG.getConstant(VT.getSizeInBits() - 1, dl, IntVT);
3330   SDValue MantissaMask = DAG.getConstant(0x007FFFFF, dl, IntVT);
3331 
3332   SDValue Bits = DAG.getNode(ISD::BITCAST, dl, IntVT, Node->getOperand(0));
3333 
3334   auto &DL = DAG.getDataLayout();
3335   SDValue ExponentBits = DAG.getNode(
3336       ISD::SRL, dl, IntVT, DAG.getNode(ISD::AND, dl, IntVT, Bits, ExponentMask),
3337       DAG.getZExtOrTrunc(ExponentLoBit, dl, getShiftAmountTy(IntVT, DL)));
3338   SDValue Exponent = DAG.getNode(ISD::SUB, dl, IntVT, ExponentBits, Bias);
3339 
3340   SDValue Sign = DAG.getNode(
3341       ISD::SRA, dl, IntVT, DAG.getNode(ISD::AND, dl, IntVT, Bits, SignMask),
3342       DAG.getZExtOrTrunc(SignLowBit, dl, getShiftAmountTy(IntVT, DL)));
3343   Sign = DAG.getSExtOrTrunc(Sign, dl, NVT);
3344 
3345   SDValue R = DAG.getNode(ISD::OR, dl, IntVT,
3346       DAG.getNode(ISD::AND, dl, IntVT, Bits, MantissaMask),
3347       DAG.getConstant(0x00800000, dl, IntVT));
3348 
3349   R = DAG.getZExtOrTrunc(R, dl, NVT);
3350 
3351   R = DAG.getSelectCC(
3352       dl, Exponent, ExponentLoBit,
3353       DAG.getNode(ISD::SHL, dl, NVT, R,
3354                   DAG.getZExtOrTrunc(
3355                       DAG.getNode(ISD::SUB, dl, IntVT, Exponent, ExponentLoBit),
3356                       dl, getShiftAmountTy(IntVT, DL))),
3357       DAG.getNode(ISD::SRL, dl, NVT, R,
3358                   DAG.getZExtOrTrunc(
3359                       DAG.getNode(ISD::SUB, dl, IntVT, ExponentLoBit, Exponent),
3360                       dl, getShiftAmountTy(IntVT, DL))),
3361       ISD::SETGT);
3362 
3363   SDValue Ret = DAG.getNode(ISD::SUB, dl, NVT,
3364       DAG.getNode(ISD::XOR, dl, NVT, R, Sign),
3365       Sign);
3366 
3367   Result = DAG.getSelectCC(dl, Exponent, DAG.getConstant(0, dl, IntVT),
3368       DAG.getConstant(0, dl, NVT), Ret, ISD::SETLT);
3369   return true;
3370 }
3371 
3372 SDValue TargetLowering::scalarizeVectorLoad(LoadSDNode *LD,
3373                                             SelectionDAG &DAG) const {
3374   SDLoc SL(LD);
3375   SDValue Chain = LD->getChain();
3376   SDValue BasePTR = LD->getBasePtr();
3377   EVT SrcVT = LD->getMemoryVT();
3378   ISD::LoadExtType ExtType = LD->getExtensionType();
3379 
3380   unsigned NumElem = SrcVT.getVectorNumElements();
3381 
3382   EVT SrcEltVT = SrcVT.getScalarType();
3383   EVT DstEltVT = LD->getValueType(0).getScalarType();
3384 
3385   unsigned Stride = SrcEltVT.getSizeInBits() / 8;
3386   assert(SrcEltVT.isByteSized());
3387 
3388   EVT PtrVT = BasePTR.getValueType();
3389 
3390   SmallVector<SDValue, 8> Vals;
3391   SmallVector<SDValue, 8> LoadChains;
3392 
3393   for (unsigned Idx = 0; Idx < NumElem; ++Idx) {
3394     SDValue ScalarLoad =
3395         DAG.getExtLoad(ExtType, SL, DstEltVT, Chain, BasePTR,
3396                        LD->getPointerInfo().getWithOffset(Idx * Stride),
3397                        SrcEltVT, MinAlign(LD->getAlignment(), Idx * Stride),
3398                        LD->getMemOperand()->getFlags(), LD->getAAInfo());
3399 
3400     BasePTR = DAG.getNode(ISD::ADD, SL, PtrVT, BasePTR,
3401                           DAG.getConstant(Stride, SL, PtrVT));
3402 
3403     Vals.push_back(ScalarLoad.getValue(0));
3404     LoadChains.push_back(ScalarLoad.getValue(1));
3405   }
3406 
3407   SDValue NewChain = DAG.getNode(ISD::TokenFactor, SL, MVT::Other, LoadChains);
3408   SDValue Value = DAG.getBuildVector(LD->getValueType(0), SL, Vals);
3409 
3410   return DAG.getMergeValues({ Value, NewChain }, SL);
3411 }
3412 
3413 // FIXME: This relies on each element having a byte size, otherwise the stride
3414 // is 0 and just overwrites the same location. ExpandStore currently expects
3415 // this broken behavior.
3416 SDValue TargetLowering::scalarizeVectorStore(StoreSDNode *ST,
3417                                              SelectionDAG &DAG) const {
3418   SDLoc SL(ST);
3419 
3420   SDValue Chain = ST->getChain();
3421   SDValue BasePtr = ST->getBasePtr();
3422   SDValue Value = ST->getValue();
3423   EVT StVT = ST->getMemoryVT();
3424 
3425   // The type of the data we want to save
3426   EVT RegVT = Value.getValueType();
3427   EVT RegSclVT = RegVT.getScalarType();
3428 
3429   // The type of data as saved in memory.
3430   EVT MemSclVT = StVT.getScalarType();
3431 
3432   EVT PtrVT = BasePtr.getValueType();
3433 
3434   // Store Stride in bytes
3435   unsigned Stride = MemSclVT.getSizeInBits() / 8;
3436   EVT IdxVT = getVectorIdxTy(DAG.getDataLayout());
3437   unsigned NumElem = StVT.getVectorNumElements();
3438 
3439   // Extract each of the elements from the original vector and save them into
3440   // memory individually.
3441   SmallVector<SDValue, 8> Stores;
3442   for (unsigned Idx = 0; Idx < NumElem; ++Idx) {
3443     SDValue Elt = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, SL, RegSclVT, Value,
3444                               DAG.getConstant(Idx, SL, IdxVT));
3445 
3446     SDValue Ptr = DAG.getNode(ISD::ADD, SL, PtrVT, BasePtr,
3447                               DAG.getConstant(Idx * Stride, SL, PtrVT));
3448 
3449     // This scalar TruncStore may be illegal, but we legalize it later.
3450     SDValue Store = DAG.getTruncStore(
3451         Chain, SL, Elt, Ptr, ST->getPointerInfo().getWithOffset(Idx * Stride),
3452         MemSclVT, MinAlign(ST->getAlignment(), Idx * Stride),
3453         ST->getMemOperand()->getFlags(), ST->getAAInfo());
3454 
3455     Stores.push_back(Store);
3456   }
3457 
3458   return DAG.getNode(ISD::TokenFactor, SL, MVT::Other, Stores);
3459 }
3460 
3461 std::pair<SDValue, SDValue>
3462 TargetLowering::expandUnalignedLoad(LoadSDNode *LD, SelectionDAG &DAG) const {
3463   assert(LD->getAddressingMode() == ISD::UNINDEXED &&
3464          "unaligned indexed loads not implemented!");
3465   SDValue Chain = LD->getChain();
3466   SDValue Ptr = LD->getBasePtr();
3467   EVT VT = LD->getValueType(0);
3468   EVT LoadedVT = LD->getMemoryVT();
3469   SDLoc dl(LD);
3470   auto &MF = DAG.getMachineFunction();
3471   if (VT.isFloatingPoint() || VT.isVector()) {
3472     EVT intVT = EVT::getIntegerVT(*DAG.getContext(), LoadedVT.getSizeInBits());
3473     if (isTypeLegal(intVT) && isTypeLegal(LoadedVT)) {
3474       if (!isOperationLegalOrCustom(ISD::LOAD, intVT)) {
3475         // Scalarize the load and let the individual components be handled.
3476         SDValue Scalarized = scalarizeVectorLoad(LD, DAG);
3477         return std::make_pair(Scalarized.getValue(0), Scalarized.getValue(1));
3478       }
3479 
3480       // Expand to a (misaligned) integer load of the same size,
3481       // then bitconvert to floating point or vector.
3482       SDValue newLoad = DAG.getLoad(intVT, dl, Chain, Ptr,
3483                                     LD->getMemOperand());
3484       SDValue Result = DAG.getNode(ISD::BITCAST, dl, LoadedVT, newLoad);
3485       if (LoadedVT != VT)
3486         Result = DAG.getNode(VT.isFloatingPoint() ? ISD::FP_EXTEND :
3487                              ISD::ANY_EXTEND, dl, VT, Result);
3488 
3489       return std::make_pair(Result, newLoad.getValue(1));
3490     }
3491 
3492     // Copy the value to a (aligned) stack slot using (unaligned) integer
3493     // loads and stores, then do a (aligned) load from the stack slot.
3494     MVT RegVT = getRegisterType(*DAG.getContext(), intVT);
3495     unsigned LoadedBytes = LoadedVT.getSizeInBits() / 8;
3496     unsigned RegBytes = RegVT.getSizeInBits() / 8;
3497     unsigned NumRegs = (LoadedBytes + RegBytes - 1) / RegBytes;
3498 
3499     // Make sure the stack slot is also aligned for the register type.
3500     SDValue StackBase = DAG.CreateStackTemporary(LoadedVT, RegVT);
3501     auto FrameIndex = cast<FrameIndexSDNode>(StackBase.getNode())->getIndex();
3502     SmallVector<SDValue, 8> Stores;
3503     SDValue StackPtr = StackBase;
3504     unsigned Offset = 0;
3505 
3506     EVT PtrVT = Ptr.getValueType();
3507     EVT StackPtrVT = StackPtr.getValueType();
3508 
3509     SDValue PtrIncrement = DAG.getConstant(RegBytes, dl, PtrVT);
3510     SDValue StackPtrIncrement = DAG.getConstant(RegBytes, dl, StackPtrVT);
3511 
3512     // Do all but one copies using the full register width.
3513     for (unsigned i = 1; i < NumRegs; i++) {
3514       // Load one integer register's worth from the original location.
3515       SDValue Load = DAG.getLoad(
3516           RegVT, dl, Chain, Ptr, LD->getPointerInfo().getWithOffset(Offset),
3517           MinAlign(LD->getAlignment(), Offset), LD->getMemOperand()->getFlags(),
3518           LD->getAAInfo());
3519       // Follow the load with a store to the stack slot.  Remember the store.
3520       Stores.push_back(DAG.getStore(
3521           Load.getValue(1), dl, Load, StackPtr,
3522           MachinePointerInfo::getFixedStack(MF, FrameIndex, Offset)));
3523       // Increment the pointers.
3524       Offset += RegBytes;
3525       Ptr = DAG.getNode(ISD::ADD, dl, PtrVT, Ptr, PtrIncrement);
3526       StackPtr = DAG.getNode(ISD::ADD, dl, StackPtrVT, StackPtr,
3527                              StackPtrIncrement);
3528     }
3529 
3530     // The last copy may be partial.  Do an extending load.
3531     EVT MemVT = EVT::getIntegerVT(*DAG.getContext(),
3532                                   8 * (LoadedBytes - Offset));
3533     SDValue Load =
3534         DAG.getExtLoad(ISD::EXTLOAD, dl, RegVT, Chain, Ptr,
3535                        LD->getPointerInfo().getWithOffset(Offset), MemVT,
3536                        MinAlign(LD->getAlignment(), Offset),
3537                        LD->getMemOperand()->getFlags(), LD->getAAInfo());
3538     // Follow the load with a store to the stack slot.  Remember the store.
3539     // On big-endian machines this requires a truncating store to ensure
3540     // that the bits end up in the right place.
3541     Stores.push_back(DAG.getTruncStore(
3542         Load.getValue(1), dl, Load, StackPtr,
3543         MachinePointerInfo::getFixedStack(MF, FrameIndex, Offset), MemVT));
3544 
3545     // The order of the stores doesn't matter - say it with a TokenFactor.
3546     SDValue TF = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, Stores);
3547 
3548     // Finally, perform the original load only redirected to the stack slot.
3549     Load = DAG.getExtLoad(LD->getExtensionType(), dl, VT, TF, StackBase,
3550                           MachinePointerInfo::getFixedStack(MF, FrameIndex, 0),
3551                           LoadedVT);
3552 
3553     // Callers expect a MERGE_VALUES node.
3554     return std::make_pair(Load, TF);
3555   }
3556 
3557   assert(LoadedVT.isInteger() && !LoadedVT.isVector() &&
3558          "Unaligned load of unsupported type.");
3559 
3560   // Compute the new VT that is half the size of the old one.  This is an
3561   // integer MVT.
3562   unsigned NumBits = LoadedVT.getSizeInBits();
3563   EVT NewLoadedVT;
3564   NewLoadedVT = EVT::getIntegerVT(*DAG.getContext(), NumBits/2);
3565   NumBits >>= 1;
3566 
3567   unsigned Alignment = LD->getAlignment();
3568   unsigned IncrementSize = NumBits / 8;
3569   ISD::LoadExtType HiExtType = LD->getExtensionType();
3570 
3571   // If the original load is NON_EXTLOAD, the hi part load must be ZEXTLOAD.
3572   if (HiExtType == ISD::NON_EXTLOAD)
3573     HiExtType = ISD::ZEXTLOAD;
3574 
3575   // Load the value in two parts
3576   SDValue Lo, Hi;
3577   if (DAG.getDataLayout().isLittleEndian()) {
3578     Lo = DAG.getExtLoad(ISD::ZEXTLOAD, dl, VT, Chain, Ptr, LD->getPointerInfo(),
3579                         NewLoadedVT, Alignment, LD->getMemOperand()->getFlags(),
3580                         LD->getAAInfo());
3581     Ptr = DAG.getNode(ISD::ADD, dl, Ptr.getValueType(), Ptr,
3582                       DAG.getConstant(IncrementSize, dl, Ptr.getValueType()));
3583     Hi = DAG.getExtLoad(HiExtType, dl, VT, Chain, Ptr,
3584                         LD->getPointerInfo().getWithOffset(IncrementSize),
3585                         NewLoadedVT, MinAlign(Alignment, IncrementSize),
3586                         LD->getMemOperand()->getFlags(), LD->getAAInfo());
3587   } else {
3588     Hi = DAG.getExtLoad(HiExtType, dl, VT, Chain, Ptr, LD->getPointerInfo(),
3589                         NewLoadedVT, Alignment, LD->getMemOperand()->getFlags(),
3590                         LD->getAAInfo());
3591     Ptr = DAG.getNode(ISD::ADD, dl, Ptr.getValueType(), Ptr,
3592                       DAG.getConstant(IncrementSize, dl, Ptr.getValueType()));
3593     Lo = DAG.getExtLoad(ISD::ZEXTLOAD, dl, VT, Chain, Ptr,
3594                         LD->getPointerInfo().getWithOffset(IncrementSize),
3595                         NewLoadedVT, MinAlign(Alignment, IncrementSize),
3596                         LD->getMemOperand()->getFlags(), LD->getAAInfo());
3597   }
3598 
3599   // aggregate the two parts
3600   SDValue ShiftAmount =
3601       DAG.getConstant(NumBits, dl, getShiftAmountTy(Hi.getValueType(),
3602                                                     DAG.getDataLayout()));
3603   SDValue Result = DAG.getNode(ISD::SHL, dl, VT, Hi, ShiftAmount);
3604   Result = DAG.getNode(ISD::OR, dl, VT, Result, Lo);
3605 
3606   SDValue TF = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, Lo.getValue(1),
3607                              Hi.getValue(1));
3608 
3609   return std::make_pair(Result, TF);
3610 }
3611 
3612 SDValue TargetLowering::expandUnalignedStore(StoreSDNode *ST,
3613                                              SelectionDAG &DAG) const {
3614   assert(ST->getAddressingMode() == ISD::UNINDEXED &&
3615          "unaligned indexed stores not implemented!");
3616   SDValue Chain = ST->getChain();
3617   SDValue Ptr = ST->getBasePtr();
3618   SDValue Val = ST->getValue();
3619   EVT VT = Val.getValueType();
3620   int Alignment = ST->getAlignment();
3621   auto &MF = DAG.getMachineFunction();
3622 
3623   SDLoc dl(ST);
3624   if (ST->getMemoryVT().isFloatingPoint() ||
3625       ST->getMemoryVT().isVector()) {
3626     EVT intVT = EVT::getIntegerVT(*DAG.getContext(), VT.getSizeInBits());
3627     if (isTypeLegal(intVT)) {
3628       if (!isOperationLegalOrCustom(ISD::STORE, intVT)) {
3629         // Scalarize the store and let the individual components be handled.
3630         SDValue Result = scalarizeVectorStore(ST, DAG);
3631 
3632         return Result;
3633       }
3634       // Expand to a bitconvert of the value to the integer type of the
3635       // same size, then a (misaligned) int store.
3636       // FIXME: Does not handle truncating floating point stores!
3637       SDValue Result = DAG.getNode(ISD::BITCAST, dl, intVT, Val);
3638       Result = DAG.getStore(Chain, dl, Result, Ptr, ST->getPointerInfo(),
3639                             Alignment, ST->getMemOperand()->getFlags());
3640       return Result;
3641     }
3642     // Do a (aligned) store to a stack slot, then copy from the stack slot
3643     // to the final destination using (unaligned) integer loads and stores.
3644     EVT StoredVT = ST->getMemoryVT();
3645     MVT RegVT =
3646       getRegisterType(*DAG.getContext(),
3647                       EVT::getIntegerVT(*DAG.getContext(),
3648                                         StoredVT.getSizeInBits()));
3649     EVT PtrVT = Ptr.getValueType();
3650     unsigned StoredBytes = StoredVT.getSizeInBits() / 8;
3651     unsigned RegBytes = RegVT.getSizeInBits() / 8;
3652     unsigned NumRegs = (StoredBytes + RegBytes - 1) / RegBytes;
3653 
3654     // Make sure the stack slot is also aligned for the register type.
3655     SDValue StackPtr = DAG.CreateStackTemporary(StoredVT, RegVT);
3656     auto FrameIndex = cast<FrameIndexSDNode>(StackPtr.getNode())->getIndex();
3657 
3658     // Perform the original store, only redirected to the stack slot.
3659     SDValue Store = DAG.getTruncStore(
3660         Chain, dl, Val, StackPtr,
3661         MachinePointerInfo::getFixedStack(MF, FrameIndex, 0), StoredVT);
3662 
3663     EVT StackPtrVT = StackPtr.getValueType();
3664 
3665     SDValue PtrIncrement = DAG.getConstant(RegBytes, dl, PtrVT);
3666     SDValue StackPtrIncrement = DAG.getConstant(RegBytes, dl, StackPtrVT);
3667     SmallVector<SDValue, 8> Stores;
3668     unsigned Offset = 0;
3669 
3670     // Do all but one copies using the full register width.
3671     for (unsigned i = 1; i < NumRegs; i++) {
3672       // Load one integer register's worth from the stack slot.
3673       SDValue Load = DAG.getLoad(
3674           RegVT, dl, Store, StackPtr,
3675           MachinePointerInfo::getFixedStack(MF, FrameIndex, Offset));
3676       // Store it to the final location.  Remember the store.
3677       Stores.push_back(DAG.getStore(Load.getValue(1), dl, Load, Ptr,
3678                                     ST->getPointerInfo().getWithOffset(Offset),
3679                                     MinAlign(ST->getAlignment(), Offset),
3680                                     ST->getMemOperand()->getFlags()));
3681       // Increment the pointers.
3682       Offset += RegBytes;
3683       StackPtr = DAG.getNode(ISD::ADD, dl, StackPtrVT,
3684                              StackPtr, StackPtrIncrement);
3685       Ptr = DAG.getNode(ISD::ADD, dl, PtrVT, Ptr, PtrIncrement);
3686     }
3687 
3688     // The last store may be partial.  Do a truncating store.  On big-endian
3689     // machines this requires an extending load from the stack slot to ensure
3690     // that the bits are in the right place.
3691     EVT MemVT = EVT::getIntegerVT(*DAG.getContext(),
3692                                   8 * (StoredBytes - Offset));
3693 
3694     // Load from the stack slot.
3695     SDValue Load = DAG.getExtLoad(
3696         ISD::EXTLOAD, dl, RegVT, Store, StackPtr,
3697         MachinePointerInfo::getFixedStack(MF, FrameIndex, Offset), MemVT);
3698 
3699     Stores.push_back(
3700         DAG.getTruncStore(Load.getValue(1), dl, Load, Ptr,
3701                           ST->getPointerInfo().getWithOffset(Offset), MemVT,
3702                           MinAlign(ST->getAlignment(), Offset),
3703                           ST->getMemOperand()->getFlags(), ST->getAAInfo()));
3704     // The order of the stores doesn't matter - say it with a TokenFactor.
3705     SDValue Result = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, Stores);
3706     return Result;
3707   }
3708 
3709   assert(ST->getMemoryVT().isInteger() &&
3710          !ST->getMemoryVT().isVector() &&
3711          "Unaligned store of unknown type.");
3712   // Get the half-size VT
3713   EVT NewStoredVT = ST->getMemoryVT().getHalfSizedIntegerVT(*DAG.getContext());
3714   int NumBits = NewStoredVT.getSizeInBits();
3715   int IncrementSize = NumBits / 8;
3716 
3717   // Divide the stored value in two parts.
3718   SDValue ShiftAmount =
3719       DAG.getConstant(NumBits, dl, getShiftAmountTy(Val.getValueType(),
3720                                                     DAG.getDataLayout()));
3721   SDValue Lo = Val;
3722   SDValue Hi = DAG.getNode(ISD::SRL, dl, VT, Val, ShiftAmount);
3723 
3724   // Store the two parts
3725   SDValue Store1, Store2;
3726   Store1 = DAG.getTruncStore(Chain, dl,
3727                              DAG.getDataLayout().isLittleEndian() ? Lo : Hi,
3728                              Ptr, ST->getPointerInfo(), NewStoredVT, Alignment,
3729                              ST->getMemOperand()->getFlags());
3730 
3731   EVT PtrVT = Ptr.getValueType();
3732   Ptr = DAG.getNode(ISD::ADD, dl, PtrVT, Ptr,
3733                     DAG.getConstant(IncrementSize, dl, PtrVT));
3734   Alignment = MinAlign(Alignment, IncrementSize);
3735   Store2 = DAG.getTruncStore(
3736       Chain, dl, DAG.getDataLayout().isLittleEndian() ? Hi : Lo, Ptr,
3737       ST->getPointerInfo().getWithOffset(IncrementSize), NewStoredVT, Alignment,
3738       ST->getMemOperand()->getFlags(), ST->getAAInfo());
3739 
3740   SDValue Result =
3741     DAG.getNode(ISD::TokenFactor, dl, MVT::Other, Store1, Store2);
3742   return Result;
3743 }
3744 
3745 SDValue
3746 TargetLowering::IncrementMemoryAddress(SDValue Addr, SDValue Mask,
3747                                        const SDLoc &DL, EVT DataVT,
3748                                        SelectionDAG &DAG,
3749                                        bool IsCompressedMemory) const {
3750   SDValue Increment;
3751   EVT AddrVT = Addr.getValueType();
3752   EVT MaskVT = Mask.getValueType();
3753   assert(DataVT.getVectorNumElements() == MaskVT.getVectorNumElements() &&
3754          "Incompatible types of Data and Mask");
3755   if (IsCompressedMemory) {
3756     // Incrementing the pointer according to number of '1's in the mask.
3757     EVT MaskIntVT = EVT::getIntegerVT(*DAG.getContext(), MaskVT.getSizeInBits());
3758     SDValue MaskInIntReg = DAG.getBitcast(MaskIntVT, Mask);
3759     if (MaskIntVT.getSizeInBits() < 32) {
3760       MaskInIntReg = DAG.getNode(ISD::ZERO_EXTEND, DL, MVT::i32, MaskInIntReg);
3761       MaskIntVT = MVT::i32;
3762     }
3763 
3764     // Count '1's with POPCNT.
3765     Increment = DAG.getNode(ISD::CTPOP, DL, MaskIntVT, MaskInIntReg);
3766     Increment = DAG.getZExtOrTrunc(Increment, DL, AddrVT);
3767     // Scale is an element size in bytes.
3768     SDValue Scale = DAG.getConstant(DataVT.getScalarSizeInBits() / 8, DL,
3769                                     AddrVT);
3770     Increment = DAG.getNode(ISD::MUL, DL, AddrVT, Increment, Scale);
3771   } else
3772     Increment = DAG.getConstant(DataVT.getSizeInBits() / 8, DL, AddrVT);
3773 
3774   return DAG.getNode(ISD::ADD, DL, AddrVT, Addr, Increment);
3775 }
3776 
3777 static SDValue clampDynamicVectorIndex(SelectionDAG &DAG,
3778                                        SDValue Idx,
3779                                        EVT VecVT,
3780                                        const SDLoc &dl) {
3781   if (isa<ConstantSDNode>(Idx))
3782     return Idx;
3783 
3784   EVT IdxVT = Idx.getValueType();
3785   unsigned NElts = VecVT.getVectorNumElements();
3786   if (isPowerOf2_32(NElts)) {
3787     APInt Imm = APInt::getLowBitsSet(IdxVT.getSizeInBits(),
3788                                      Log2_32(NElts));
3789     return DAG.getNode(ISD::AND, dl, IdxVT, Idx,
3790                        DAG.getConstant(Imm, dl, IdxVT));
3791   }
3792 
3793   return DAG.getNode(ISD::UMIN, dl, IdxVT, Idx,
3794                      DAG.getConstant(NElts - 1, dl, IdxVT));
3795 }
3796 
3797 SDValue TargetLowering::getVectorElementPointer(SelectionDAG &DAG,
3798                                                 SDValue VecPtr, EVT VecVT,
3799                                                 SDValue Index) const {
3800   SDLoc dl(Index);
3801   // Make sure the index type is big enough to compute in.
3802   Index = DAG.getZExtOrTrunc(Index, dl, getPointerTy(DAG.getDataLayout()));
3803 
3804   EVT EltVT = VecVT.getVectorElementType();
3805 
3806   // Calculate the element offset and add it to the pointer.
3807   unsigned EltSize = EltVT.getSizeInBits() / 8; // FIXME: should be ABI size.
3808   assert(EltSize * 8 == EltVT.getSizeInBits() &&
3809          "Converting bits to bytes lost precision");
3810 
3811   Index = clampDynamicVectorIndex(DAG, Index, VecVT, dl);
3812 
3813   EVT IdxVT = Index.getValueType();
3814 
3815   Index = DAG.getNode(ISD::MUL, dl, IdxVT, Index,
3816                       DAG.getConstant(EltSize, dl, IdxVT));
3817   return DAG.getNode(ISD::ADD, dl, IdxVT, Index, VecPtr);
3818 }
3819 
3820 //===----------------------------------------------------------------------===//
3821 // Implementation of Emulated TLS Model
3822 //===----------------------------------------------------------------------===//
3823 
3824 SDValue TargetLowering::LowerToTLSEmulatedModel(const GlobalAddressSDNode *GA,
3825                                                 SelectionDAG &DAG) const {
3826   // Access to address of TLS varialbe xyz is lowered to a function call:
3827   //   __emutls_get_address( address of global variable named "__emutls_v.xyz" )
3828   EVT PtrVT = getPointerTy(DAG.getDataLayout());
3829   PointerType *VoidPtrType = Type::getInt8PtrTy(*DAG.getContext());
3830   SDLoc dl(GA);
3831 
3832   ArgListTy Args;
3833   ArgListEntry Entry;
3834   std::string NameString = ("__emutls_v." + GA->getGlobal()->getName()).str();
3835   Module *VariableModule = const_cast<Module*>(GA->getGlobal()->getParent());
3836   StringRef EmuTlsVarName(NameString);
3837   GlobalVariable *EmuTlsVar = VariableModule->getNamedGlobal(EmuTlsVarName);
3838   assert(EmuTlsVar && "Cannot find EmuTlsVar ");
3839   Entry.Node = DAG.getGlobalAddress(EmuTlsVar, dl, PtrVT);
3840   Entry.Ty = VoidPtrType;
3841   Args.push_back(Entry);
3842 
3843   SDValue EmuTlsGetAddr = DAG.getExternalSymbol("__emutls_get_address", PtrVT);
3844 
3845   TargetLowering::CallLoweringInfo CLI(DAG);
3846   CLI.setDebugLoc(dl).setChain(DAG.getEntryNode());
3847   CLI.setLibCallee(CallingConv::C, VoidPtrType, EmuTlsGetAddr, std::move(Args));
3848   std::pair<SDValue, SDValue> CallResult = LowerCallTo(CLI);
3849 
3850   // TLSADDR will be codegen'ed as call. Inform MFI that function has calls.
3851   // At last for X86 targets, maybe good for other targets too?
3852   MachineFrameInfo &MFI = DAG.getMachineFunction().getFrameInfo();
3853   MFI.setAdjustsStack(true);  // Is this only for X86 target?
3854   MFI.setHasCalls(true);
3855 
3856   assert((GA->getOffset() == 0) &&
3857          "Emulated TLS must have zero offset in GlobalAddressSDNode");
3858   return CallResult.first;
3859 }
3860 
3861 SDValue TargetLowering::lowerCmpEqZeroToCtlzSrl(SDValue Op,
3862                                                 SelectionDAG &DAG) const {
3863   assert((Op->getOpcode() == ISD::SETCC) && "Input has to be a SETCC node.");
3864   if (!isCtlzFast())
3865     return SDValue();
3866   ISD::CondCode CC = cast<CondCodeSDNode>(Op.getOperand(2))->get();
3867   SDLoc dl(Op);
3868   if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op.getOperand(1))) {
3869     if (C->isNullValue() && CC == ISD::SETEQ) {
3870       EVT VT = Op.getOperand(0).getValueType();
3871       SDValue Zext = Op.getOperand(0);
3872       if (VT.bitsLT(MVT::i32)) {
3873         VT = MVT::i32;
3874         Zext = DAG.getNode(ISD::ZERO_EXTEND, dl, VT, Op.getOperand(0));
3875       }
3876       unsigned Log2b = Log2_32(VT.getSizeInBits());
3877       SDValue Clz = DAG.getNode(ISD::CTLZ, dl, VT, Zext);
3878       SDValue Scc = DAG.getNode(ISD::SRL, dl, VT, Clz,
3879                                 DAG.getConstant(Log2b, dl, MVT::i32));
3880       return DAG.getNode(ISD::TRUNCATE, dl, MVT::i32, Scc);
3881     }
3882   }
3883   return SDValue();
3884 }
3885