1 //===-- SelectionDAG.cpp - Implement the SelectionDAG data structures -----===//
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 SelectionDAG class.
11 //
12 //===----------------------------------------------------------------------===//
13 #include "llvm/CodeGen/SelectionDAG.h"
14 #include "llvm/Constants.h"
15 #include "llvm/Analysis/ValueTracking.h"
16 #include "llvm/GlobalAlias.h"
17 #include "llvm/GlobalVariable.h"
18 #include "llvm/Intrinsics.h"
19 #include "llvm/DerivedTypes.h"
20 #include "llvm/Assembly/Writer.h"
21 #include "llvm/CallingConv.h"
22 #include "llvm/CodeGen/MachineBasicBlock.h"
23 #include "llvm/CodeGen/MachineConstantPool.h"
24 #include "llvm/CodeGen/MachineFrameInfo.h"
25 #include "llvm/CodeGen/MachineModuleInfo.h"
26 #include "llvm/CodeGen/PseudoSourceValue.h"
27 #include "llvm/Target/TargetRegisterInfo.h"
28 #include "llvm/Target/TargetData.h"
29 #include "llvm/Target/TargetLowering.h"
30 #include "llvm/Target/TargetOptions.h"
31 #include "llvm/Target/TargetInstrInfo.h"
32 #include "llvm/Target/TargetMachine.h"
33 #include "llvm/Support/CommandLine.h"
34 #include "llvm/Support/ErrorHandling.h"
35 #include "llvm/Support/ManagedStatic.h"
36 #include "llvm/Support/MathExtras.h"
37 #include "llvm/Support/raw_ostream.h"
38 #include "llvm/System/Mutex.h"
39 #include "llvm/ADT/SetVector.h"
40 #include "llvm/ADT/SmallPtrSet.h"
41 #include "llvm/ADT/SmallSet.h"
42 #include "llvm/ADT/SmallVector.h"
43 #include "llvm/ADT/StringExtras.h"
44 #include <algorithm>
45 #include <cmath>
46 using namespace llvm;
47 
48 /// makeVTList - Return an instance of the SDVTList struct initialized with the
49 /// specified members.
50 static SDVTList makeVTList(const MVT *VTs, unsigned NumVTs) {
51   SDVTList Res = {VTs, NumVTs};
52   return Res;
53 }
54 
55 static const fltSemantics *MVTToAPFloatSemantics(MVT VT) {
56   switch (VT.getSimpleVT()) {
57   default: llvm_unreachable("Unknown FP format");
58   case MVT::f32:     return &APFloat::IEEEsingle;
59   case MVT::f64:     return &APFloat::IEEEdouble;
60   case MVT::f80:     return &APFloat::x87DoubleExtended;
61   case MVT::f128:    return &APFloat::IEEEquad;
62   case MVT::ppcf128: return &APFloat::PPCDoubleDouble;
63   }
64 }
65 
66 SelectionDAG::DAGUpdateListener::~DAGUpdateListener() {}
67 
68 //===----------------------------------------------------------------------===//
69 //                              ConstantFPSDNode Class
70 //===----------------------------------------------------------------------===//
71 
72 /// isExactlyValue - We don't rely on operator== working on double values, as
73 /// it returns true for things that are clearly not equal, like -0.0 and 0.0.
74 /// As such, this method can be used to do an exact bit-for-bit comparison of
75 /// two floating point values.
76 bool ConstantFPSDNode::isExactlyValue(const APFloat& V) const {
77   return getValueAPF().bitwiseIsEqual(V);
78 }
79 
80 bool ConstantFPSDNode::isValueValidForType(MVT VT,
81                                            const APFloat& Val) {
82   assert(VT.isFloatingPoint() && "Can only convert between FP types");
83 
84   // PPC long double cannot be converted to any other type.
85   if (VT == MVT::ppcf128 ||
86       &Val.getSemantics() == &APFloat::PPCDoubleDouble)
87     return false;
88 
89   // convert modifies in place, so make a copy.
90   APFloat Val2 = APFloat(Val);
91   bool losesInfo;
92   (void) Val2.convert(*MVTToAPFloatSemantics(VT), APFloat::rmNearestTiesToEven,
93                       &losesInfo);
94   return !losesInfo;
95 }
96 
97 //===----------------------------------------------------------------------===//
98 //                              ISD Namespace
99 //===----------------------------------------------------------------------===//
100 
101 /// isBuildVectorAllOnes - Return true if the specified node is a
102 /// BUILD_VECTOR where all of the elements are ~0 or undef.
103 bool ISD::isBuildVectorAllOnes(const SDNode *N) {
104   // Look through a bit convert.
105   if (N->getOpcode() == ISD::BIT_CONVERT)
106     N = N->getOperand(0).getNode();
107 
108   if (N->getOpcode() != ISD::BUILD_VECTOR) return false;
109 
110   unsigned i = 0, e = N->getNumOperands();
111 
112   // Skip over all of the undef values.
113   while (i != e && N->getOperand(i).getOpcode() == ISD::UNDEF)
114     ++i;
115 
116   // Do not accept an all-undef vector.
117   if (i == e) return false;
118 
119   // Do not accept build_vectors that aren't all constants or which have non-~0
120   // elements.
121   SDValue NotZero = N->getOperand(i);
122   if (isa<ConstantSDNode>(NotZero)) {
123     if (!cast<ConstantSDNode>(NotZero)->isAllOnesValue())
124       return false;
125   } else if (isa<ConstantFPSDNode>(NotZero)) {
126     if (!cast<ConstantFPSDNode>(NotZero)->getValueAPF().
127                 bitcastToAPInt().isAllOnesValue())
128       return false;
129   } else
130     return false;
131 
132   // Okay, we have at least one ~0 value, check to see if the rest match or are
133   // undefs.
134   for (++i; i != e; ++i)
135     if (N->getOperand(i) != NotZero &&
136         N->getOperand(i).getOpcode() != ISD::UNDEF)
137       return false;
138   return true;
139 }
140 
141 
142 /// isBuildVectorAllZeros - Return true if the specified node is a
143 /// BUILD_VECTOR where all of the elements are 0 or undef.
144 bool ISD::isBuildVectorAllZeros(const SDNode *N) {
145   // Look through a bit convert.
146   if (N->getOpcode() == ISD::BIT_CONVERT)
147     N = N->getOperand(0).getNode();
148 
149   if (N->getOpcode() != ISD::BUILD_VECTOR) return false;
150 
151   unsigned i = 0, e = N->getNumOperands();
152 
153   // Skip over all of the undef values.
154   while (i != e && N->getOperand(i).getOpcode() == ISD::UNDEF)
155     ++i;
156 
157   // Do not accept an all-undef vector.
158   if (i == e) return false;
159 
160   // Do not accept build_vectors that aren't all constants or which have non-0
161   // elements.
162   SDValue Zero = N->getOperand(i);
163   if (isa<ConstantSDNode>(Zero)) {
164     if (!cast<ConstantSDNode>(Zero)->isNullValue())
165       return false;
166   } else if (isa<ConstantFPSDNode>(Zero)) {
167     if (!cast<ConstantFPSDNode>(Zero)->getValueAPF().isPosZero())
168       return false;
169   } else
170     return false;
171 
172   // Okay, we have at least one 0 value, check to see if the rest match or are
173   // undefs.
174   for (++i; i != e; ++i)
175     if (N->getOperand(i) != Zero &&
176         N->getOperand(i).getOpcode() != ISD::UNDEF)
177       return false;
178   return true;
179 }
180 
181 /// isScalarToVector - Return true if the specified node is a
182 /// ISD::SCALAR_TO_VECTOR node or a BUILD_VECTOR node where only the low
183 /// element is not an undef.
184 bool ISD::isScalarToVector(const SDNode *N) {
185   if (N->getOpcode() == ISD::SCALAR_TO_VECTOR)
186     return true;
187 
188   if (N->getOpcode() != ISD::BUILD_VECTOR)
189     return false;
190   if (N->getOperand(0).getOpcode() == ISD::UNDEF)
191     return false;
192   unsigned NumElems = N->getNumOperands();
193   for (unsigned i = 1; i < NumElems; ++i) {
194     SDValue V = N->getOperand(i);
195     if (V.getOpcode() != ISD::UNDEF)
196       return false;
197   }
198   return true;
199 }
200 
201 
202 /// isDebugLabel - Return true if the specified node represents a debug
203 /// label (i.e. ISD::DBG_LABEL or TargetInstrInfo::DBG_LABEL node).
204 bool ISD::isDebugLabel(const SDNode *N) {
205   SDValue Zero;
206   if (N->getOpcode() == ISD::DBG_LABEL)
207     return true;
208   if (N->isMachineOpcode() &&
209       N->getMachineOpcode() == TargetInstrInfo::DBG_LABEL)
210     return true;
211   return false;
212 }
213 
214 /// getSetCCSwappedOperands - Return the operation corresponding to (Y op X)
215 /// when given the operation for (X op Y).
216 ISD::CondCode ISD::getSetCCSwappedOperands(ISD::CondCode Operation) {
217   // To perform this operation, we just need to swap the L and G bits of the
218   // operation.
219   unsigned OldL = (Operation >> 2) & 1;
220   unsigned OldG = (Operation >> 1) & 1;
221   return ISD::CondCode((Operation & ~6) |  // Keep the N, U, E bits
222                        (OldL << 1) |       // New G bit
223                        (OldG << 2));       // New L bit.
224 }
225 
226 /// getSetCCInverse - Return the operation corresponding to !(X op Y), where
227 /// 'op' is a valid SetCC operation.
228 ISD::CondCode ISD::getSetCCInverse(ISD::CondCode Op, bool isInteger) {
229   unsigned Operation = Op;
230   if (isInteger)
231     Operation ^= 7;   // Flip L, G, E bits, but not U.
232   else
233     Operation ^= 15;  // Flip all of the condition bits.
234 
235   if (Operation > ISD::SETTRUE2)
236     Operation &= ~8;  // Don't let N and U bits get set.
237 
238   return ISD::CondCode(Operation);
239 }
240 
241 
242 /// isSignedOp - For an integer comparison, return 1 if the comparison is a
243 /// signed operation and 2 if the result is an unsigned comparison.  Return zero
244 /// if the operation does not depend on the sign of the input (setne and seteq).
245 static int isSignedOp(ISD::CondCode Opcode) {
246   switch (Opcode) {
247   default: llvm_unreachable("Illegal integer setcc operation!");
248   case ISD::SETEQ:
249   case ISD::SETNE: return 0;
250   case ISD::SETLT:
251   case ISD::SETLE:
252   case ISD::SETGT:
253   case ISD::SETGE: return 1;
254   case ISD::SETULT:
255   case ISD::SETULE:
256   case ISD::SETUGT:
257   case ISD::SETUGE: return 2;
258   }
259 }
260 
261 /// getSetCCOrOperation - Return the result of a logical OR between different
262 /// comparisons of identical values: ((X op1 Y) | (X op2 Y)).  This function
263 /// returns SETCC_INVALID if it is not possible to represent the resultant
264 /// comparison.
265 ISD::CondCode ISD::getSetCCOrOperation(ISD::CondCode Op1, ISD::CondCode Op2,
266                                        bool isInteger) {
267   if (isInteger && (isSignedOp(Op1) | isSignedOp(Op2)) == 3)
268     // Cannot fold a signed integer setcc with an unsigned integer setcc.
269     return ISD::SETCC_INVALID;
270 
271   unsigned Op = Op1 | Op2;  // Combine all of the condition bits.
272 
273   // If the N and U bits get set then the resultant comparison DOES suddenly
274   // care about orderedness, and is true when ordered.
275   if (Op > ISD::SETTRUE2)
276     Op &= ~16;     // Clear the U bit if the N bit is set.
277 
278   // Canonicalize illegal integer setcc's.
279   if (isInteger && Op == ISD::SETUNE)  // e.g. SETUGT | SETULT
280     Op = ISD::SETNE;
281 
282   return ISD::CondCode(Op);
283 }
284 
285 /// getSetCCAndOperation - Return the result of a logical AND between different
286 /// comparisons of identical values: ((X op1 Y) & (X op2 Y)).  This
287 /// function returns zero if it is not possible to represent the resultant
288 /// comparison.
289 ISD::CondCode ISD::getSetCCAndOperation(ISD::CondCode Op1, ISD::CondCode Op2,
290                                         bool isInteger) {
291   if (isInteger && (isSignedOp(Op1) | isSignedOp(Op2)) == 3)
292     // Cannot fold a signed setcc with an unsigned setcc.
293     return ISD::SETCC_INVALID;
294 
295   // Combine all of the condition bits.
296   ISD::CondCode Result = ISD::CondCode(Op1 & Op2);
297 
298   // Canonicalize illegal integer setcc's.
299   if (isInteger) {
300     switch (Result) {
301     default: break;
302     case ISD::SETUO : Result = ISD::SETFALSE; break;  // SETUGT & SETULT
303     case ISD::SETOEQ:                                 // SETEQ  & SETU[LG]E
304     case ISD::SETUEQ: Result = ISD::SETEQ   ; break;  // SETUGE & SETULE
305     case ISD::SETOLT: Result = ISD::SETULT  ; break;  // SETULT & SETNE
306     case ISD::SETOGT: Result = ISD::SETUGT  ; break;  // SETUGT & SETNE
307     }
308   }
309 
310   return Result;
311 }
312 
313 const TargetMachine &SelectionDAG::getTarget() const {
314   return MF->getTarget();
315 }
316 
317 //===----------------------------------------------------------------------===//
318 //                           SDNode Profile Support
319 //===----------------------------------------------------------------------===//
320 
321 /// AddNodeIDOpcode - Add the node opcode to the NodeID data.
322 ///
323 static void AddNodeIDOpcode(FoldingSetNodeID &ID, unsigned OpC)  {
324   ID.AddInteger(OpC);
325 }
326 
327 /// AddNodeIDValueTypes - Value type lists are intern'd so we can represent them
328 /// solely with their pointer.
329 static void AddNodeIDValueTypes(FoldingSetNodeID &ID, SDVTList VTList) {
330   ID.AddPointer(VTList.VTs);
331 }
332 
333 /// AddNodeIDOperands - Various routines for adding operands to the NodeID data.
334 ///
335 static void AddNodeIDOperands(FoldingSetNodeID &ID,
336                               const SDValue *Ops, unsigned NumOps) {
337   for (; NumOps; --NumOps, ++Ops) {
338     ID.AddPointer(Ops->getNode());
339     ID.AddInteger(Ops->getResNo());
340   }
341 }
342 
343 /// AddNodeIDOperands - Various routines for adding operands to the NodeID data.
344 ///
345 static void AddNodeIDOperands(FoldingSetNodeID &ID,
346                               const SDUse *Ops, unsigned NumOps) {
347   for (; NumOps; --NumOps, ++Ops) {
348     ID.AddPointer(Ops->getNode());
349     ID.AddInteger(Ops->getResNo());
350   }
351 }
352 
353 static void AddNodeIDNode(FoldingSetNodeID &ID,
354                           unsigned short OpC, SDVTList VTList,
355                           const SDValue *OpList, unsigned N) {
356   AddNodeIDOpcode(ID, OpC);
357   AddNodeIDValueTypes(ID, VTList);
358   AddNodeIDOperands(ID, OpList, N);
359 }
360 
361 /// AddNodeIDCustom - If this is an SDNode with special info, add this info to
362 /// the NodeID data.
363 static void AddNodeIDCustom(FoldingSetNodeID &ID, const SDNode *N) {
364   switch (N->getOpcode()) {
365   case ISD::TargetExternalSymbol:
366   case ISD::ExternalSymbol:
367     llvm_unreachable("Should only be used on nodes with operands");
368   default: break;  // Normal nodes don't need extra info.
369   case ISD::ARG_FLAGS:
370     ID.AddInteger(cast<ARG_FLAGSSDNode>(N)->getArgFlags().getRawBits());
371     break;
372   case ISD::TargetConstant:
373   case ISD::Constant:
374     ID.AddPointer(cast<ConstantSDNode>(N)->getConstantIntValue());
375     break;
376   case ISD::TargetConstantFP:
377   case ISD::ConstantFP: {
378     ID.AddPointer(cast<ConstantFPSDNode>(N)->getConstantFPValue());
379     break;
380   }
381   case ISD::TargetGlobalAddress:
382   case ISD::GlobalAddress:
383   case ISD::TargetGlobalTLSAddress:
384   case ISD::GlobalTLSAddress: {
385     const GlobalAddressSDNode *GA = cast<GlobalAddressSDNode>(N);
386     ID.AddPointer(GA->getGlobal());
387     ID.AddInteger(GA->getOffset());
388     ID.AddInteger(GA->getTargetFlags());
389     break;
390   }
391   case ISD::BasicBlock:
392     ID.AddPointer(cast<BasicBlockSDNode>(N)->getBasicBlock());
393     break;
394   case ISD::Register:
395     ID.AddInteger(cast<RegisterSDNode>(N)->getReg());
396     break;
397   case ISD::DBG_STOPPOINT: {
398     const DbgStopPointSDNode *DSP = cast<DbgStopPointSDNode>(N);
399     ID.AddInteger(DSP->getLine());
400     ID.AddInteger(DSP->getColumn());
401     ID.AddPointer(DSP->getCompileUnit());
402     break;
403   }
404   case ISD::SRCVALUE:
405     ID.AddPointer(cast<SrcValueSDNode>(N)->getValue());
406     break;
407   case ISD::MEMOPERAND: {
408     const MachineMemOperand &MO = cast<MemOperandSDNode>(N)->MO;
409     MO.Profile(ID);
410     break;
411   }
412   case ISD::FrameIndex:
413   case ISD::TargetFrameIndex:
414     ID.AddInteger(cast<FrameIndexSDNode>(N)->getIndex());
415     break;
416   case ISD::JumpTable:
417   case ISD::TargetJumpTable:
418     ID.AddInteger(cast<JumpTableSDNode>(N)->getIndex());
419     ID.AddInteger(cast<JumpTableSDNode>(N)->getTargetFlags());
420     break;
421   case ISD::ConstantPool:
422   case ISD::TargetConstantPool: {
423     const ConstantPoolSDNode *CP = cast<ConstantPoolSDNode>(N);
424     ID.AddInteger(CP->getAlignment());
425     ID.AddInteger(CP->getOffset());
426     if (CP->isMachineConstantPoolEntry())
427       CP->getMachineCPVal()->AddSelectionDAGCSEId(ID);
428     else
429       ID.AddPointer(CP->getConstVal());
430     ID.AddInteger(CP->getTargetFlags());
431     break;
432   }
433   case ISD::CALL: {
434     const CallSDNode *Call = cast<CallSDNode>(N);
435     ID.AddInteger(Call->getCallingConv());
436     ID.AddInteger(Call->isVarArg());
437     break;
438   }
439   case ISD::LOAD: {
440     const LoadSDNode *LD = cast<LoadSDNode>(N);
441     ID.AddInteger(LD->getMemoryVT().getRawBits());
442     ID.AddInteger(LD->getRawSubclassData());
443     break;
444   }
445   case ISD::STORE: {
446     const StoreSDNode *ST = cast<StoreSDNode>(N);
447     ID.AddInteger(ST->getMemoryVT().getRawBits());
448     ID.AddInteger(ST->getRawSubclassData());
449     break;
450   }
451   case ISD::ATOMIC_CMP_SWAP:
452   case ISD::ATOMIC_SWAP:
453   case ISD::ATOMIC_LOAD_ADD:
454   case ISD::ATOMIC_LOAD_SUB:
455   case ISD::ATOMIC_LOAD_AND:
456   case ISD::ATOMIC_LOAD_OR:
457   case ISD::ATOMIC_LOAD_XOR:
458   case ISD::ATOMIC_LOAD_NAND:
459   case ISD::ATOMIC_LOAD_MIN:
460   case ISD::ATOMIC_LOAD_MAX:
461   case ISD::ATOMIC_LOAD_UMIN:
462   case ISD::ATOMIC_LOAD_UMAX: {
463     const AtomicSDNode *AT = cast<AtomicSDNode>(N);
464     ID.AddInteger(AT->getMemoryVT().getRawBits());
465     ID.AddInteger(AT->getRawSubclassData());
466     break;
467   }
468   case ISD::VECTOR_SHUFFLE: {
469     const ShuffleVectorSDNode *SVN = cast<ShuffleVectorSDNode>(N);
470     for (unsigned i = 0, e = N->getValueType(0).getVectorNumElements();
471          i != e; ++i)
472       ID.AddInteger(SVN->getMaskElt(i));
473     break;
474   }
475   } // end switch (N->getOpcode())
476 }
477 
478 /// AddNodeIDNode - Generic routine for adding a nodes info to the NodeID
479 /// data.
480 static void AddNodeIDNode(FoldingSetNodeID &ID, const SDNode *N) {
481   AddNodeIDOpcode(ID, N->getOpcode());
482   // Add the return value info.
483   AddNodeIDValueTypes(ID, N->getVTList());
484   // Add the operand info.
485   AddNodeIDOperands(ID, N->op_begin(), N->getNumOperands());
486 
487   // Handle SDNode leafs with special info.
488   AddNodeIDCustom(ID, N);
489 }
490 
491 /// encodeMemSDNodeFlags - Generic routine for computing a value for use in
492 /// the CSE map that carries alignment, volatility, indexing mode, and
493 /// extension/truncation information.
494 ///
495 static inline unsigned
496 encodeMemSDNodeFlags(int ConvType, ISD::MemIndexedMode AM,
497                      bool isVolatile, unsigned Alignment) {
498   assert((ConvType & 3) == ConvType &&
499          "ConvType may not require more than 2 bits!");
500   assert((AM & 7) == AM &&
501          "AM may not require more than 3 bits!");
502   return ConvType |
503          (AM << 2) |
504          (isVolatile << 5) |
505          ((Log2_32(Alignment) + 1) << 6);
506 }
507 
508 //===----------------------------------------------------------------------===//
509 //                              SelectionDAG Class
510 //===----------------------------------------------------------------------===//
511 
512 /// doNotCSE - Return true if CSE should not be performed for this node.
513 static bool doNotCSE(SDNode *N) {
514   if (N->getValueType(0) == MVT::Flag)
515     return true; // Never CSE anything that produces a flag.
516 
517   switch (N->getOpcode()) {
518   default: break;
519   case ISD::HANDLENODE:
520   case ISD::DBG_LABEL:
521   case ISD::DBG_STOPPOINT:
522   case ISD::EH_LABEL:
523   case ISD::DECLARE:
524     return true;   // Never CSE these nodes.
525   }
526 
527   // Check that remaining values produced are not flags.
528   for (unsigned i = 1, e = N->getNumValues(); i != e; ++i)
529     if (N->getValueType(i) == MVT::Flag)
530       return true; // Never CSE anything that produces a flag.
531 
532   return false;
533 }
534 
535 /// RemoveDeadNodes - This method deletes all unreachable nodes in the
536 /// SelectionDAG.
537 void SelectionDAG::RemoveDeadNodes() {
538   // Create a dummy node (which is not added to allnodes), that adds a reference
539   // to the root node, preventing it from being deleted.
540   HandleSDNode Dummy(getRoot());
541 
542   SmallVector<SDNode*, 128> DeadNodes;
543 
544   // Add all obviously-dead nodes to the DeadNodes worklist.
545   for (allnodes_iterator I = allnodes_begin(), E = allnodes_end(); I != E; ++I)
546     if (I->use_empty())
547       DeadNodes.push_back(I);
548 
549   RemoveDeadNodes(DeadNodes);
550 
551   // If the root changed (e.g. it was a dead load, update the root).
552   setRoot(Dummy.getValue());
553 }
554 
555 /// RemoveDeadNodes - This method deletes the unreachable nodes in the
556 /// given list, and any nodes that become unreachable as a result.
557 void SelectionDAG::RemoveDeadNodes(SmallVectorImpl<SDNode *> &DeadNodes,
558                                    DAGUpdateListener *UpdateListener) {
559 
560   // Process the worklist, deleting the nodes and adding their uses to the
561   // worklist.
562   while (!DeadNodes.empty()) {
563     SDNode *N = DeadNodes.pop_back_val();
564 
565     if (UpdateListener)
566       UpdateListener->NodeDeleted(N, 0);
567 
568     // Take the node out of the appropriate CSE map.
569     RemoveNodeFromCSEMaps(N);
570 
571     // Next, brutally remove the operand list.  This is safe to do, as there are
572     // no cycles in the graph.
573     for (SDNode::op_iterator I = N->op_begin(), E = N->op_end(); I != E; ) {
574       SDUse &Use = *I++;
575       SDNode *Operand = Use.getNode();
576       Use.set(SDValue());
577 
578       // Now that we removed this operand, see if there are no uses of it left.
579       if (Operand->use_empty())
580         DeadNodes.push_back(Operand);
581     }
582 
583     DeallocateNode(N);
584   }
585 }
586 
587 void SelectionDAG::RemoveDeadNode(SDNode *N, DAGUpdateListener *UpdateListener){
588   SmallVector<SDNode*, 16> DeadNodes(1, N);
589   RemoveDeadNodes(DeadNodes, UpdateListener);
590 }
591 
592 void SelectionDAG::DeleteNode(SDNode *N) {
593   // First take this out of the appropriate CSE map.
594   RemoveNodeFromCSEMaps(N);
595 
596   // Finally, remove uses due to operands of this node, remove from the
597   // AllNodes list, and delete the node.
598   DeleteNodeNotInCSEMaps(N);
599 }
600 
601 void SelectionDAG::DeleteNodeNotInCSEMaps(SDNode *N) {
602   assert(N != AllNodes.begin() && "Cannot delete the entry node!");
603   assert(N->use_empty() && "Cannot delete a node that is not dead!");
604 
605   // Drop all of the operands and decrement used node's use counts.
606   N->DropOperands();
607 
608   DeallocateNode(N);
609 }
610 
611 void SelectionDAG::DeallocateNode(SDNode *N) {
612   if (N->OperandsNeedDelete)
613     delete[] N->OperandList;
614 
615   // Set the opcode to DELETED_NODE to help catch bugs when node
616   // memory is reallocated.
617   N->NodeType = ISD::DELETED_NODE;
618 
619   NodeAllocator.Deallocate(AllNodes.remove(N));
620 }
621 
622 /// RemoveNodeFromCSEMaps - Take the specified node out of the CSE map that
623 /// correspond to it.  This is useful when we're about to delete or repurpose
624 /// the node.  We don't want future request for structurally identical nodes
625 /// to return N anymore.
626 bool SelectionDAG::RemoveNodeFromCSEMaps(SDNode *N) {
627   bool Erased = false;
628   switch (N->getOpcode()) {
629   case ISD::EntryToken:
630     llvm_unreachable("EntryToken should not be in CSEMaps!");
631     return false;
632   case ISD::HANDLENODE: return false;  // noop.
633   case ISD::CONDCODE:
634     assert(CondCodeNodes[cast<CondCodeSDNode>(N)->get()] &&
635            "Cond code doesn't exist!");
636     Erased = CondCodeNodes[cast<CondCodeSDNode>(N)->get()] != 0;
637     CondCodeNodes[cast<CondCodeSDNode>(N)->get()] = 0;
638     break;
639   case ISD::ExternalSymbol:
640     Erased = ExternalSymbols.erase(cast<ExternalSymbolSDNode>(N)->getSymbol());
641     break;
642   case ISD::TargetExternalSymbol: {
643     ExternalSymbolSDNode *ESN = cast<ExternalSymbolSDNode>(N);
644     Erased = TargetExternalSymbols.erase(
645                std::pair<std::string,unsigned char>(ESN->getSymbol(),
646                                                     ESN->getTargetFlags()));
647     break;
648   }
649   case ISD::VALUETYPE: {
650     MVT VT = cast<VTSDNode>(N)->getVT();
651     if (VT.isExtended()) {
652       Erased = ExtendedValueTypeNodes.erase(VT);
653     } else {
654       Erased = ValueTypeNodes[VT.getSimpleVT()] != 0;
655       ValueTypeNodes[VT.getSimpleVT()] = 0;
656     }
657     break;
658   }
659   default:
660     // Remove it from the CSE Map.
661     Erased = CSEMap.RemoveNode(N);
662     break;
663   }
664 #ifndef NDEBUG
665   // Verify that the node was actually in one of the CSE maps, unless it has a
666   // flag result (which cannot be CSE'd) or is one of the special cases that are
667   // not subject to CSE.
668   if (!Erased && N->getValueType(N->getNumValues()-1) != MVT::Flag &&
669       !N->isMachineOpcode() && !doNotCSE(N)) {
670     N->dump(this);
671     cerr << "\n";
672     llvm_unreachable("Node is not in map!");
673   }
674 #endif
675   return Erased;
676 }
677 
678 /// AddModifiedNodeToCSEMaps - The specified node has been removed from the CSE
679 /// maps and modified in place. Add it back to the CSE maps, unless an identical
680 /// node already exists, in which case transfer all its users to the existing
681 /// node. This transfer can potentially trigger recursive merging.
682 ///
683 void
684 SelectionDAG::AddModifiedNodeToCSEMaps(SDNode *N,
685                                        DAGUpdateListener *UpdateListener) {
686   // For node types that aren't CSE'd, just act as if no identical node
687   // already exists.
688   if (!doNotCSE(N)) {
689     SDNode *Existing = CSEMap.GetOrInsertNode(N);
690     if (Existing != N) {
691       // If there was already an existing matching node, use ReplaceAllUsesWith
692       // to replace the dead one with the existing one.  This can cause
693       // recursive merging of other unrelated nodes down the line.
694       ReplaceAllUsesWith(N, Existing, UpdateListener);
695 
696       // N is now dead.  Inform the listener if it exists and delete it.
697       if (UpdateListener)
698         UpdateListener->NodeDeleted(N, Existing);
699       DeleteNodeNotInCSEMaps(N);
700       return;
701     }
702   }
703 
704   // If the node doesn't already exist, we updated it.  Inform a listener if
705   // it exists.
706   if (UpdateListener)
707     UpdateListener->NodeUpdated(N);
708 }
709 
710 /// FindModifiedNodeSlot - Find a slot for the specified node if its operands
711 /// were replaced with those specified.  If this node is never memoized,
712 /// return null, otherwise return a pointer to the slot it would take.  If a
713 /// node already exists with these operands, the slot will be non-null.
714 SDNode *SelectionDAG::FindModifiedNodeSlot(SDNode *N, SDValue Op,
715                                            void *&InsertPos) {
716   if (doNotCSE(N))
717     return 0;
718 
719   SDValue Ops[] = { Op };
720   FoldingSetNodeID ID;
721   AddNodeIDNode(ID, N->getOpcode(), N->getVTList(), Ops, 1);
722   AddNodeIDCustom(ID, N);
723   return CSEMap.FindNodeOrInsertPos(ID, InsertPos);
724 }
725 
726 /// FindModifiedNodeSlot - Find a slot for the specified node if its operands
727 /// were replaced with those specified.  If this node is never memoized,
728 /// return null, otherwise return a pointer to the slot it would take.  If a
729 /// node already exists with these operands, the slot will be non-null.
730 SDNode *SelectionDAG::FindModifiedNodeSlot(SDNode *N,
731                                            SDValue Op1, SDValue Op2,
732                                            void *&InsertPos) {
733   if (doNotCSE(N))
734     return 0;
735 
736   SDValue Ops[] = { Op1, Op2 };
737   FoldingSetNodeID ID;
738   AddNodeIDNode(ID, N->getOpcode(), N->getVTList(), Ops, 2);
739   AddNodeIDCustom(ID, N);
740   return CSEMap.FindNodeOrInsertPos(ID, InsertPos);
741 }
742 
743 
744 /// FindModifiedNodeSlot - Find a slot for the specified node if its operands
745 /// were replaced with those specified.  If this node is never memoized,
746 /// return null, otherwise return a pointer to the slot it would take.  If a
747 /// node already exists with these operands, the slot will be non-null.
748 SDNode *SelectionDAG::FindModifiedNodeSlot(SDNode *N,
749                                            const SDValue *Ops,unsigned NumOps,
750                                            void *&InsertPos) {
751   if (doNotCSE(N))
752     return 0;
753 
754   FoldingSetNodeID ID;
755   AddNodeIDNode(ID, N->getOpcode(), N->getVTList(), Ops, NumOps);
756   AddNodeIDCustom(ID, N);
757   return CSEMap.FindNodeOrInsertPos(ID, InsertPos);
758 }
759 
760 /// VerifyNode - Sanity check the given node.  Aborts if it is invalid.
761 void SelectionDAG::VerifyNode(SDNode *N) {
762   switch (N->getOpcode()) {
763   default:
764     break;
765   case ISD::BUILD_PAIR: {
766     MVT VT = N->getValueType(0);
767     assert(N->getNumValues() == 1 && "Too many results!");
768     assert(!VT.isVector() && (VT.isInteger() || VT.isFloatingPoint()) &&
769            "Wrong return type!");
770     assert(N->getNumOperands() == 2 && "Wrong number of operands!");
771     assert(N->getOperand(0).getValueType() == N->getOperand(1).getValueType() &&
772            "Mismatched operand types!");
773     assert(N->getOperand(0).getValueType().isInteger() == VT.isInteger() &&
774            "Wrong operand type!");
775     assert(VT.getSizeInBits() == 2 * N->getOperand(0).getValueSizeInBits() &&
776            "Wrong return type size");
777     break;
778   }
779   case ISD::BUILD_VECTOR: {
780     assert(N->getNumValues() == 1 && "Too many results!");
781     assert(N->getValueType(0).isVector() && "Wrong return type!");
782     assert(N->getNumOperands() == N->getValueType(0).getVectorNumElements() &&
783            "Wrong number of operands!");
784     MVT EltVT = N->getValueType(0).getVectorElementType();
785     for (SDNode::op_iterator I = N->op_begin(), E = N->op_end(); I != E; ++I)
786       assert((I->getValueType() == EltVT ||
787              (EltVT.isInteger() && I->getValueType().isInteger() &&
788               EltVT.bitsLE(I->getValueType()))) &&
789             "Wrong operand type!");
790     break;
791   }
792   }
793 }
794 
795 /// getMVTAlignment - Compute the default alignment value for the
796 /// given type.
797 ///
798 unsigned SelectionDAG::getMVTAlignment(MVT VT) const {
799   const Type *Ty = VT == MVT::iPTR ?
800                    PointerType::get(Type::Int8Ty, 0) :
801                    VT.getTypeForMVT();
802 
803   return TLI.getTargetData()->getABITypeAlignment(Ty);
804 }
805 
806 // EntryNode could meaningfully have debug info if we can find it...
807 SelectionDAG::SelectionDAG(TargetLowering &tli, FunctionLoweringInfo &fli)
808   : TLI(tli), FLI(fli), DW(0),
809     EntryNode(ISD::EntryToken, DebugLoc::getUnknownLoc(),
810     getVTList(MVT::Other)), Root(getEntryNode()) {
811   AllNodes.push_back(&EntryNode);
812 }
813 
814 void SelectionDAG::init(MachineFunction &mf, MachineModuleInfo *mmi,
815                         DwarfWriter *dw) {
816   MF = &mf;
817   MMI = mmi;
818   DW = dw;
819   Context = &mf.getFunction()->getContext();
820 }
821 
822 SelectionDAG::~SelectionDAG() {
823   allnodes_clear();
824 }
825 
826 void SelectionDAG::allnodes_clear() {
827   assert(&*AllNodes.begin() == &EntryNode);
828   AllNodes.remove(AllNodes.begin());
829   while (!AllNodes.empty())
830     DeallocateNode(AllNodes.begin());
831 }
832 
833 void SelectionDAG::clear() {
834   allnodes_clear();
835   OperandAllocator.Reset();
836   CSEMap.clear();
837 
838   ExtendedValueTypeNodes.clear();
839   ExternalSymbols.clear();
840   TargetExternalSymbols.clear();
841   std::fill(CondCodeNodes.begin(), CondCodeNodes.end(),
842             static_cast<CondCodeSDNode*>(0));
843   std::fill(ValueTypeNodes.begin(), ValueTypeNodes.end(),
844             static_cast<SDNode*>(0));
845 
846   EntryNode.UseList = 0;
847   AllNodes.push_back(&EntryNode);
848   Root = getEntryNode();
849 }
850 
851 SDValue SelectionDAG::getZeroExtendInReg(SDValue Op, DebugLoc DL, MVT VT) {
852   if (Op.getValueType() == VT) return Op;
853   APInt Imm = APInt::getLowBitsSet(Op.getValueSizeInBits(),
854                                    VT.getSizeInBits());
855   return getNode(ISD::AND, DL, Op.getValueType(), Op,
856                  getConstant(Imm, Op.getValueType()));
857 }
858 
859 /// getNOT - Create a bitwise NOT operation as (XOR Val, -1).
860 ///
861 SDValue SelectionDAG::getNOT(DebugLoc DL, SDValue Val, MVT VT) {
862   MVT EltVT = VT.isVector() ? VT.getVectorElementType() : VT;
863   SDValue NegOne =
864     getConstant(APInt::getAllOnesValue(EltVT.getSizeInBits()), VT);
865   return getNode(ISD::XOR, DL, VT, Val, NegOne);
866 }
867 
868 SDValue SelectionDAG::getConstant(uint64_t Val, MVT VT, bool isT) {
869   MVT EltVT = VT.isVector() ? VT.getVectorElementType() : VT;
870   assert((EltVT.getSizeInBits() >= 64 ||
871          (uint64_t)((int64_t)Val >> EltVT.getSizeInBits()) + 1 < 2) &&
872          "getConstant with a uint64_t value that doesn't fit in the type!");
873   return getConstant(APInt(EltVT.getSizeInBits(), Val), VT, isT);
874 }
875 
876 SDValue SelectionDAG::getConstant(const APInt &Val, MVT VT, bool isT) {
877   return getConstant(*ConstantInt::get(*Context, Val), VT, isT);
878 }
879 
880 SDValue SelectionDAG::getConstant(const ConstantInt &Val, MVT VT, bool isT) {
881   assert(VT.isInteger() && "Cannot create FP integer constant!");
882 
883   MVT EltVT = VT.isVector() ? VT.getVectorElementType() : VT;
884   assert(Val.getBitWidth() == EltVT.getSizeInBits() &&
885          "APInt size does not match type size!");
886 
887   unsigned Opc = isT ? ISD::TargetConstant : ISD::Constant;
888   FoldingSetNodeID ID;
889   AddNodeIDNode(ID, Opc, getVTList(EltVT), 0, 0);
890   ID.AddPointer(&Val);
891   void *IP = 0;
892   SDNode *N = NULL;
893   if ((N = CSEMap.FindNodeOrInsertPos(ID, IP)))
894     if (!VT.isVector())
895       return SDValue(N, 0);
896   if (!N) {
897     N = NodeAllocator.Allocate<ConstantSDNode>();
898     new (N) ConstantSDNode(isT, &Val, EltVT);
899     CSEMap.InsertNode(N, IP);
900     AllNodes.push_back(N);
901   }
902 
903   SDValue Result(N, 0);
904   if (VT.isVector()) {
905     SmallVector<SDValue, 8> Ops;
906     Ops.assign(VT.getVectorNumElements(), Result);
907     Result = getNode(ISD::BUILD_VECTOR, DebugLoc::getUnknownLoc(),
908                      VT, &Ops[0], Ops.size());
909   }
910   return Result;
911 }
912 
913 SDValue SelectionDAG::getIntPtrConstant(uint64_t Val, bool isTarget) {
914   return getConstant(Val, TLI.getPointerTy(), isTarget);
915 }
916 
917 
918 SDValue SelectionDAG::getConstantFP(const APFloat& V, MVT VT, bool isTarget) {
919   return getConstantFP(*ConstantFP::get(*getContext(), V), VT, isTarget);
920 }
921 
922 SDValue SelectionDAG::getConstantFP(const ConstantFP& V, MVT VT, bool isTarget){
923   assert(VT.isFloatingPoint() && "Cannot create integer FP constant!");
924 
925   MVT EltVT =
926     VT.isVector() ? VT.getVectorElementType() : VT;
927 
928   // Do the map lookup using the actual bit pattern for the floating point
929   // value, so that we don't have problems with 0.0 comparing equal to -0.0, and
930   // we don't have issues with SNANs.
931   unsigned Opc = isTarget ? ISD::TargetConstantFP : ISD::ConstantFP;
932   FoldingSetNodeID ID;
933   AddNodeIDNode(ID, Opc, getVTList(EltVT), 0, 0);
934   ID.AddPointer(&V);
935   void *IP = 0;
936   SDNode *N = NULL;
937   if ((N = CSEMap.FindNodeOrInsertPos(ID, IP)))
938     if (!VT.isVector())
939       return SDValue(N, 0);
940   if (!N) {
941     N = NodeAllocator.Allocate<ConstantFPSDNode>();
942     new (N) ConstantFPSDNode(isTarget, &V, EltVT);
943     CSEMap.InsertNode(N, IP);
944     AllNodes.push_back(N);
945   }
946 
947   SDValue Result(N, 0);
948   if (VT.isVector()) {
949     SmallVector<SDValue, 8> Ops;
950     Ops.assign(VT.getVectorNumElements(), Result);
951     // FIXME DebugLoc info might be appropriate here
952     Result = getNode(ISD::BUILD_VECTOR, DebugLoc::getUnknownLoc(),
953                      VT, &Ops[0], Ops.size());
954   }
955   return Result;
956 }
957 
958 SDValue SelectionDAG::getConstantFP(double Val, MVT VT, bool isTarget) {
959   MVT EltVT =
960     VT.isVector() ? VT.getVectorElementType() : VT;
961   if (EltVT==MVT::f32)
962     return getConstantFP(APFloat((float)Val), VT, isTarget);
963   else
964     return getConstantFP(APFloat(Val), VT, isTarget);
965 }
966 
967 SDValue SelectionDAG::getGlobalAddress(const GlobalValue *GV,
968                                        MVT VT, int64_t Offset,
969                                        bool isTargetGA,
970                                        unsigned char TargetFlags) {
971   assert((TargetFlags == 0 || isTargetGA) &&
972          "Cannot set target flags on target-independent globals");
973 
974   // Truncate (with sign-extension) the offset value to the pointer size.
975   unsigned BitWidth = TLI.getPointerTy().getSizeInBits();
976   if (BitWidth < 64)
977     Offset = (Offset << (64 - BitWidth) >> (64 - BitWidth));
978 
979   const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GV);
980   if (!GVar) {
981     // If GV is an alias then use the aliasee for determining thread-localness.
982     if (const GlobalAlias *GA = dyn_cast<GlobalAlias>(GV))
983       GVar = dyn_cast_or_null<GlobalVariable>(GA->resolveAliasedGlobal(false));
984   }
985 
986   unsigned Opc;
987   if (GVar && GVar->isThreadLocal())
988     Opc = isTargetGA ? ISD::TargetGlobalTLSAddress : ISD::GlobalTLSAddress;
989   else
990     Opc = isTargetGA ? ISD::TargetGlobalAddress : ISD::GlobalAddress;
991 
992   FoldingSetNodeID ID;
993   AddNodeIDNode(ID, Opc, getVTList(VT), 0, 0);
994   ID.AddPointer(GV);
995   ID.AddInteger(Offset);
996   ID.AddInteger(TargetFlags);
997   void *IP = 0;
998   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
999     return SDValue(E, 0);
1000   SDNode *N = NodeAllocator.Allocate<GlobalAddressSDNode>();
1001   new (N) GlobalAddressSDNode(Opc, GV, VT, Offset, TargetFlags);
1002   CSEMap.InsertNode(N, IP);
1003   AllNodes.push_back(N);
1004   return SDValue(N, 0);
1005 }
1006 
1007 SDValue SelectionDAG::getFrameIndex(int FI, MVT VT, bool isTarget) {
1008   unsigned Opc = isTarget ? ISD::TargetFrameIndex : ISD::FrameIndex;
1009   FoldingSetNodeID ID;
1010   AddNodeIDNode(ID, Opc, getVTList(VT), 0, 0);
1011   ID.AddInteger(FI);
1012   void *IP = 0;
1013   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
1014     return SDValue(E, 0);
1015   SDNode *N = NodeAllocator.Allocate<FrameIndexSDNode>();
1016   new (N) FrameIndexSDNode(FI, VT, isTarget);
1017   CSEMap.InsertNode(N, IP);
1018   AllNodes.push_back(N);
1019   return SDValue(N, 0);
1020 }
1021 
1022 SDValue SelectionDAG::getJumpTable(int JTI, MVT VT, bool isTarget,
1023                                    unsigned char TargetFlags) {
1024   assert((TargetFlags == 0 || isTarget) &&
1025          "Cannot set target flags on target-independent jump tables");
1026   unsigned Opc = isTarget ? ISD::TargetJumpTable : ISD::JumpTable;
1027   FoldingSetNodeID ID;
1028   AddNodeIDNode(ID, Opc, getVTList(VT), 0, 0);
1029   ID.AddInteger(JTI);
1030   ID.AddInteger(TargetFlags);
1031   void *IP = 0;
1032   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
1033     return SDValue(E, 0);
1034   SDNode *N = NodeAllocator.Allocate<JumpTableSDNode>();
1035   new (N) JumpTableSDNode(JTI, VT, isTarget, TargetFlags);
1036   CSEMap.InsertNode(N, IP);
1037   AllNodes.push_back(N);
1038   return SDValue(N, 0);
1039 }
1040 
1041 SDValue SelectionDAG::getConstantPool(Constant *C, MVT VT,
1042                                       unsigned Alignment, int Offset,
1043                                       bool isTarget,
1044                                       unsigned char TargetFlags) {
1045   assert((TargetFlags == 0 || isTarget) &&
1046          "Cannot set target flags on target-independent globals");
1047   if (Alignment == 0)
1048     Alignment = TLI.getTargetData()->getPrefTypeAlignment(C->getType());
1049   unsigned Opc = isTarget ? ISD::TargetConstantPool : ISD::ConstantPool;
1050   FoldingSetNodeID ID;
1051   AddNodeIDNode(ID, Opc, getVTList(VT), 0, 0);
1052   ID.AddInteger(Alignment);
1053   ID.AddInteger(Offset);
1054   ID.AddPointer(C);
1055   ID.AddInteger(TargetFlags);
1056   void *IP = 0;
1057   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
1058     return SDValue(E, 0);
1059   SDNode *N = NodeAllocator.Allocate<ConstantPoolSDNode>();
1060   new (N) ConstantPoolSDNode(isTarget, C, VT, Offset, Alignment, TargetFlags);
1061   CSEMap.InsertNode(N, IP);
1062   AllNodes.push_back(N);
1063   return SDValue(N, 0);
1064 }
1065 
1066 
1067 SDValue SelectionDAG::getConstantPool(MachineConstantPoolValue *C, MVT VT,
1068                                       unsigned Alignment, int Offset,
1069                                       bool isTarget,
1070                                       unsigned char TargetFlags) {
1071   assert((TargetFlags == 0 || isTarget) &&
1072          "Cannot set target flags on target-independent globals");
1073   if (Alignment == 0)
1074     Alignment = TLI.getTargetData()->getPrefTypeAlignment(C->getType());
1075   unsigned Opc = isTarget ? ISD::TargetConstantPool : ISD::ConstantPool;
1076   FoldingSetNodeID ID;
1077   AddNodeIDNode(ID, Opc, getVTList(VT), 0, 0);
1078   ID.AddInteger(Alignment);
1079   ID.AddInteger(Offset);
1080   C->AddSelectionDAGCSEId(ID);
1081   ID.AddInteger(TargetFlags);
1082   void *IP = 0;
1083   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
1084     return SDValue(E, 0);
1085   SDNode *N = NodeAllocator.Allocate<ConstantPoolSDNode>();
1086   new (N) ConstantPoolSDNode(isTarget, C, VT, Offset, Alignment, TargetFlags);
1087   CSEMap.InsertNode(N, IP);
1088   AllNodes.push_back(N);
1089   return SDValue(N, 0);
1090 }
1091 
1092 SDValue SelectionDAG::getBasicBlock(MachineBasicBlock *MBB) {
1093   FoldingSetNodeID ID;
1094   AddNodeIDNode(ID, ISD::BasicBlock, getVTList(MVT::Other), 0, 0);
1095   ID.AddPointer(MBB);
1096   void *IP = 0;
1097   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
1098     return SDValue(E, 0);
1099   SDNode *N = NodeAllocator.Allocate<BasicBlockSDNode>();
1100   new (N) BasicBlockSDNode(MBB);
1101   CSEMap.InsertNode(N, IP);
1102   AllNodes.push_back(N);
1103   return SDValue(N, 0);
1104 }
1105 
1106 SDValue SelectionDAG::getArgFlags(ISD::ArgFlagsTy Flags) {
1107   FoldingSetNodeID ID;
1108   AddNodeIDNode(ID, ISD::ARG_FLAGS, getVTList(MVT::Other), 0, 0);
1109   ID.AddInteger(Flags.getRawBits());
1110   void *IP = 0;
1111   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
1112     return SDValue(E, 0);
1113   SDNode *N = NodeAllocator.Allocate<ARG_FLAGSSDNode>();
1114   new (N) ARG_FLAGSSDNode(Flags);
1115   CSEMap.InsertNode(N, IP);
1116   AllNodes.push_back(N);
1117   return SDValue(N, 0);
1118 }
1119 
1120 SDValue SelectionDAG::getValueType(MVT VT) {
1121   if (VT.isSimple() && (unsigned)VT.getSimpleVT() >= ValueTypeNodes.size())
1122     ValueTypeNodes.resize(VT.getSimpleVT()+1);
1123 
1124   SDNode *&N = VT.isExtended() ?
1125     ExtendedValueTypeNodes[VT] : ValueTypeNodes[VT.getSimpleVT()];
1126 
1127   if (N) return SDValue(N, 0);
1128   N = NodeAllocator.Allocate<VTSDNode>();
1129   new (N) VTSDNode(VT);
1130   AllNodes.push_back(N);
1131   return SDValue(N, 0);
1132 }
1133 
1134 SDValue SelectionDAG::getExternalSymbol(const char *Sym, MVT VT) {
1135   SDNode *&N = ExternalSymbols[Sym];
1136   if (N) return SDValue(N, 0);
1137   N = NodeAllocator.Allocate<ExternalSymbolSDNode>();
1138   new (N) ExternalSymbolSDNode(false, Sym, 0, VT);
1139   AllNodes.push_back(N);
1140   return SDValue(N, 0);
1141 }
1142 
1143 SDValue SelectionDAG::getTargetExternalSymbol(const char *Sym, MVT VT,
1144                                               unsigned char TargetFlags) {
1145   SDNode *&N =
1146     TargetExternalSymbols[std::pair<std::string,unsigned char>(Sym,
1147                                                                TargetFlags)];
1148   if (N) return SDValue(N, 0);
1149   N = NodeAllocator.Allocate<ExternalSymbolSDNode>();
1150   new (N) ExternalSymbolSDNode(true, Sym, TargetFlags, VT);
1151   AllNodes.push_back(N);
1152   return SDValue(N, 0);
1153 }
1154 
1155 SDValue SelectionDAG::getCondCode(ISD::CondCode Cond) {
1156   if ((unsigned)Cond >= CondCodeNodes.size())
1157     CondCodeNodes.resize(Cond+1);
1158 
1159   if (CondCodeNodes[Cond] == 0) {
1160     CondCodeSDNode *N = NodeAllocator.Allocate<CondCodeSDNode>();
1161     new (N) CondCodeSDNode(Cond);
1162     CondCodeNodes[Cond] = N;
1163     AllNodes.push_back(N);
1164   }
1165   return SDValue(CondCodeNodes[Cond], 0);
1166 }
1167 
1168 // commuteShuffle - swaps the values of N1 and N2, and swaps all indices in
1169 // the shuffle mask M that point at N1 to point at N2, and indices that point
1170 // N2 to point at N1.
1171 static void commuteShuffle(SDValue &N1, SDValue &N2, SmallVectorImpl<int> &M) {
1172   std::swap(N1, N2);
1173   int NElts = M.size();
1174   for (int i = 0; i != NElts; ++i) {
1175     if (M[i] >= NElts)
1176       M[i] -= NElts;
1177     else if (M[i] >= 0)
1178       M[i] += NElts;
1179   }
1180 }
1181 
1182 SDValue SelectionDAG::getVectorShuffle(MVT VT, DebugLoc dl, SDValue N1,
1183                                        SDValue N2, const int *Mask) {
1184   assert(N1.getValueType() == N2.getValueType() && "Invalid VECTOR_SHUFFLE");
1185   assert(VT.isVector() && N1.getValueType().isVector() &&
1186          "Vector Shuffle VTs must be a vectors");
1187   assert(VT.getVectorElementType() == N1.getValueType().getVectorElementType()
1188          && "Vector Shuffle VTs must have same element type");
1189 
1190   // Canonicalize shuffle undef, undef -> undef
1191   if (N1.getOpcode() == ISD::UNDEF && N2.getOpcode() == ISD::UNDEF)
1192     return getUNDEF(VT);
1193 
1194   // Validate that all indices in Mask are within the range of the elements
1195   // input to the shuffle.
1196   unsigned NElts = VT.getVectorNumElements();
1197   SmallVector<int, 8> MaskVec;
1198   for (unsigned i = 0; i != NElts; ++i) {
1199     assert(Mask[i] < (int)(NElts * 2) && "Index out of range");
1200     MaskVec.push_back(Mask[i]);
1201   }
1202 
1203   // Canonicalize shuffle v, v -> v, undef
1204   if (N1 == N2) {
1205     N2 = getUNDEF(VT);
1206     for (unsigned i = 0; i != NElts; ++i)
1207       if (MaskVec[i] >= (int)NElts) MaskVec[i] -= NElts;
1208   }
1209 
1210   // Canonicalize shuffle undef, v -> v, undef.  Commute the shuffle mask.
1211   if (N1.getOpcode() == ISD::UNDEF)
1212     commuteShuffle(N1, N2, MaskVec);
1213 
1214   // Canonicalize all index into lhs, -> shuffle lhs, undef
1215   // Canonicalize all index into rhs, -> shuffle rhs, undef
1216   bool AllLHS = true, AllRHS = true;
1217   bool N2Undef = N2.getOpcode() == ISD::UNDEF;
1218   for (unsigned i = 0; i != NElts; ++i) {
1219     if (MaskVec[i] >= (int)NElts) {
1220       if (N2Undef)
1221         MaskVec[i] = -1;
1222       else
1223         AllLHS = false;
1224     } else if (MaskVec[i] >= 0) {
1225       AllRHS = false;
1226     }
1227   }
1228   if (AllLHS && AllRHS)
1229     return getUNDEF(VT);
1230   if (AllLHS && !N2Undef)
1231     N2 = getUNDEF(VT);
1232   if (AllRHS) {
1233     N1 = getUNDEF(VT);
1234     commuteShuffle(N1, N2, MaskVec);
1235   }
1236 
1237   // If Identity shuffle, or all shuffle in to undef, return that node.
1238   bool AllUndef = true;
1239   bool Identity = true;
1240   for (unsigned i = 0; i != NElts; ++i) {
1241     if (MaskVec[i] >= 0 && MaskVec[i] != (int)i) Identity = false;
1242     if (MaskVec[i] >= 0) AllUndef = false;
1243   }
1244   if (Identity && NElts == N1.getValueType().getVectorNumElements())
1245     return N1;
1246   if (AllUndef)
1247     return getUNDEF(VT);
1248 
1249   FoldingSetNodeID ID;
1250   SDValue Ops[2] = { N1, N2 };
1251   AddNodeIDNode(ID, ISD::VECTOR_SHUFFLE, getVTList(VT), Ops, 2);
1252   for (unsigned i = 0; i != NElts; ++i)
1253     ID.AddInteger(MaskVec[i]);
1254 
1255   void* IP = 0;
1256   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
1257     return SDValue(E, 0);
1258 
1259   // Allocate the mask array for the node out of the BumpPtrAllocator, since
1260   // SDNode doesn't have access to it.  This memory will be "leaked" when
1261   // the node is deallocated, but recovered when the NodeAllocator is released.
1262   int *MaskAlloc = OperandAllocator.Allocate<int>(NElts);
1263   memcpy(MaskAlloc, &MaskVec[0], NElts * sizeof(int));
1264 
1265   ShuffleVectorSDNode *N = NodeAllocator.Allocate<ShuffleVectorSDNode>();
1266   new (N) ShuffleVectorSDNode(VT, dl, N1, N2, MaskAlloc);
1267   CSEMap.InsertNode(N, IP);
1268   AllNodes.push_back(N);
1269   return SDValue(N, 0);
1270 }
1271 
1272 SDValue SelectionDAG::getConvertRndSat(MVT VT, DebugLoc dl,
1273                                        SDValue Val, SDValue DTy,
1274                                        SDValue STy, SDValue Rnd, SDValue Sat,
1275                                        ISD::CvtCode Code) {
1276   // If the src and dest types are the same and the conversion is between
1277   // integer types of the same sign or two floats, no conversion is necessary.
1278   if (DTy == STy &&
1279       (Code == ISD::CVT_UU || Code == ISD::CVT_SS || Code == ISD::CVT_FF))
1280     return Val;
1281 
1282   FoldingSetNodeID ID;
1283   void* IP = 0;
1284   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
1285     return SDValue(E, 0);
1286   CvtRndSatSDNode *N = NodeAllocator.Allocate<CvtRndSatSDNode>();
1287   SDValue Ops[] = { Val, DTy, STy, Rnd, Sat };
1288   new (N) CvtRndSatSDNode(VT, dl, Ops, 5, Code);
1289   CSEMap.InsertNode(N, IP);
1290   AllNodes.push_back(N);
1291   return SDValue(N, 0);
1292 }
1293 
1294 SDValue SelectionDAG::getRegister(unsigned RegNo, MVT VT) {
1295   FoldingSetNodeID ID;
1296   AddNodeIDNode(ID, ISD::Register, getVTList(VT), 0, 0);
1297   ID.AddInteger(RegNo);
1298   void *IP = 0;
1299   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
1300     return SDValue(E, 0);
1301   SDNode *N = NodeAllocator.Allocate<RegisterSDNode>();
1302   new (N) RegisterSDNode(RegNo, VT);
1303   CSEMap.InsertNode(N, IP);
1304   AllNodes.push_back(N);
1305   return SDValue(N, 0);
1306 }
1307 
1308 SDValue SelectionDAG::getDbgStopPoint(DebugLoc DL, SDValue Root,
1309                                       unsigned Line, unsigned Col,
1310                                       Value *CU) {
1311   SDNode *N = NodeAllocator.Allocate<DbgStopPointSDNode>();
1312   new (N) DbgStopPointSDNode(Root, Line, Col, CU);
1313   N->setDebugLoc(DL);
1314   AllNodes.push_back(N);
1315   return SDValue(N, 0);
1316 }
1317 
1318 SDValue SelectionDAG::getLabel(unsigned Opcode, DebugLoc dl,
1319                                SDValue Root,
1320                                unsigned LabelID) {
1321   FoldingSetNodeID ID;
1322   SDValue Ops[] = { Root };
1323   AddNodeIDNode(ID, Opcode, getVTList(MVT::Other), &Ops[0], 1);
1324   ID.AddInteger(LabelID);
1325   void *IP = 0;
1326   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
1327     return SDValue(E, 0);
1328   SDNode *N = NodeAllocator.Allocate<LabelSDNode>();
1329   new (N) LabelSDNode(Opcode, dl, Root, LabelID);
1330   CSEMap.InsertNode(N, IP);
1331   AllNodes.push_back(N);
1332   return SDValue(N, 0);
1333 }
1334 
1335 SDValue SelectionDAG::getSrcValue(const Value *V) {
1336   assert((!V || isa<PointerType>(V->getType())) &&
1337          "SrcValue is not a pointer?");
1338 
1339   FoldingSetNodeID ID;
1340   AddNodeIDNode(ID, ISD::SRCVALUE, getVTList(MVT::Other), 0, 0);
1341   ID.AddPointer(V);
1342 
1343   void *IP = 0;
1344   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
1345     return SDValue(E, 0);
1346 
1347   SDNode *N = NodeAllocator.Allocate<SrcValueSDNode>();
1348   new (N) SrcValueSDNode(V);
1349   CSEMap.InsertNode(N, IP);
1350   AllNodes.push_back(N);
1351   return SDValue(N, 0);
1352 }
1353 
1354 SDValue SelectionDAG::getMemOperand(const MachineMemOperand &MO) {
1355 #ifndef NDEBUG
1356   const Value *v = MO.getValue();
1357   assert((!v || isa<PointerType>(v->getType())) &&
1358          "SrcValue is not a pointer?");
1359 #endif
1360 
1361   FoldingSetNodeID ID;
1362   AddNodeIDNode(ID, ISD::MEMOPERAND, getVTList(MVT::Other), 0, 0);
1363   MO.Profile(ID);
1364 
1365   void *IP = 0;
1366   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
1367     return SDValue(E, 0);
1368 
1369   SDNode *N = NodeAllocator.Allocate<MemOperandSDNode>();
1370   new (N) MemOperandSDNode(MO);
1371   CSEMap.InsertNode(N, IP);
1372   AllNodes.push_back(N);
1373   return SDValue(N, 0);
1374 }
1375 
1376 /// getShiftAmountOperand - Return the specified value casted to
1377 /// the target's desired shift amount type.
1378 SDValue SelectionDAG::getShiftAmountOperand(SDValue Op) {
1379   MVT OpTy = Op.getValueType();
1380   MVT ShTy = TLI.getShiftAmountTy();
1381   if (OpTy == ShTy || OpTy.isVector()) return Op;
1382 
1383   ISD::NodeType Opcode = OpTy.bitsGT(ShTy) ?  ISD::TRUNCATE : ISD::ZERO_EXTEND;
1384   return getNode(Opcode, Op.getDebugLoc(), ShTy, Op);
1385 }
1386 
1387 /// CreateStackTemporary - Create a stack temporary, suitable for holding the
1388 /// specified value type.
1389 SDValue SelectionDAG::CreateStackTemporary(MVT VT, unsigned minAlign) {
1390   MachineFrameInfo *FrameInfo = getMachineFunction().getFrameInfo();
1391   unsigned ByteSize = VT.getStoreSizeInBits()/8;
1392   const Type *Ty = VT.getTypeForMVT();
1393   unsigned StackAlign =
1394   std::max((unsigned)TLI.getTargetData()->getPrefTypeAlignment(Ty), minAlign);
1395 
1396   int FrameIdx = FrameInfo->CreateStackObject(ByteSize, StackAlign);
1397   return getFrameIndex(FrameIdx, TLI.getPointerTy());
1398 }
1399 
1400 /// CreateStackTemporary - Create a stack temporary suitable for holding
1401 /// either of the specified value types.
1402 SDValue SelectionDAG::CreateStackTemporary(MVT VT1, MVT VT2) {
1403   unsigned Bytes = std::max(VT1.getStoreSizeInBits(),
1404                             VT2.getStoreSizeInBits())/8;
1405   const Type *Ty1 = VT1.getTypeForMVT();
1406   const Type *Ty2 = VT2.getTypeForMVT();
1407   const TargetData *TD = TLI.getTargetData();
1408   unsigned Align = std::max(TD->getPrefTypeAlignment(Ty1),
1409                             TD->getPrefTypeAlignment(Ty2));
1410 
1411   MachineFrameInfo *FrameInfo = getMachineFunction().getFrameInfo();
1412   int FrameIdx = FrameInfo->CreateStackObject(Bytes, Align);
1413   return getFrameIndex(FrameIdx, TLI.getPointerTy());
1414 }
1415 
1416 SDValue SelectionDAG::FoldSetCC(MVT VT, SDValue N1,
1417                                 SDValue N2, ISD::CondCode Cond, DebugLoc dl) {
1418   // These setcc operations always fold.
1419   switch (Cond) {
1420   default: break;
1421   case ISD::SETFALSE:
1422   case ISD::SETFALSE2: return getConstant(0, VT);
1423   case ISD::SETTRUE:
1424   case ISD::SETTRUE2:  return getConstant(1, VT);
1425 
1426   case ISD::SETOEQ:
1427   case ISD::SETOGT:
1428   case ISD::SETOGE:
1429   case ISD::SETOLT:
1430   case ISD::SETOLE:
1431   case ISD::SETONE:
1432   case ISD::SETO:
1433   case ISD::SETUO:
1434   case ISD::SETUEQ:
1435   case ISD::SETUNE:
1436     assert(!N1.getValueType().isInteger() && "Illegal setcc for integer!");
1437     break;
1438   }
1439 
1440   if (ConstantSDNode *N2C = dyn_cast<ConstantSDNode>(N2.getNode())) {
1441     const APInt &C2 = N2C->getAPIntValue();
1442     if (ConstantSDNode *N1C = dyn_cast<ConstantSDNode>(N1.getNode())) {
1443       const APInt &C1 = N1C->getAPIntValue();
1444 
1445       switch (Cond) {
1446       default: llvm_unreachable("Unknown integer setcc!");
1447       case ISD::SETEQ:  return getConstant(C1 == C2, VT);
1448       case ISD::SETNE:  return getConstant(C1 != C2, VT);
1449       case ISD::SETULT: return getConstant(C1.ult(C2), VT);
1450       case ISD::SETUGT: return getConstant(C1.ugt(C2), VT);
1451       case ISD::SETULE: return getConstant(C1.ule(C2), VT);
1452       case ISD::SETUGE: return getConstant(C1.uge(C2), VT);
1453       case ISD::SETLT:  return getConstant(C1.slt(C2), VT);
1454       case ISD::SETGT:  return getConstant(C1.sgt(C2), VT);
1455       case ISD::SETLE:  return getConstant(C1.sle(C2), VT);
1456       case ISD::SETGE:  return getConstant(C1.sge(C2), VT);
1457       }
1458     }
1459   }
1460   if (ConstantFPSDNode *N1C = dyn_cast<ConstantFPSDNode>(N1.getNode())) {
1461     if (ConstantFPSDNode *N2C = dyn_cast<ConstantFPSDNode>(N2.getNode())) {
1462       // No compile time operations on this type yet.
1463       if (N1C->getValueType(0) == MVT::ppcf128)
1464         return SDValue();
1465 
1466       APFloat::cmpResult R = N1C->getValueAPF().compare(N2C->getValueAPF());
1467       switch (Cond) {
1468       default: break;
1469       case ISD::SETEQ:  if (R==APFloat::cmpUnordered)
1470                           return getUNDEF(VT);
1471                         // fall through
1472       case ISD::SETOEQ: return getConstant(R==APFloat::cmpEqual, VT);
1473       case ISD::SETNE:  if (R==APFloat::cmpUnordered)
1474                           return getUNDEF(VT);
1475                         // fall through
1476       case ISD::SETONE: return getConstant(R==APFloat::cmpGreaterThan ||
1477                                            R==APFloat::cmpLessThan, VT);
1478       case ISD::SETLT:  if (R==APFloat::cmpUnordered)
1479                           return getUNDEF(VT);
1480                         // fall through
1481       case ISD::SETOLT: return getConstant(R==APFloat::cmpLessThan, VT);
1482       case ISD::SETGT:  if (R==APFloat::cmpUnordered)
1483                           return getUNDEF(VT);
1484                         // fall through
1485       case ISD::SETOGT: return getConstant(R==APFloat::cmpGreaterThan, VT);
1486       case ISD::SETLE:  if (R==APFloat::cmpUnordered)
1487                           return getUNDEF(VT);
1488                         // fall through
1489       case ISD::SETOLE: return getConstant(R==APFloat::cmpLessThan ||
1490                                            R==APFloat::cmpEqual, VT);
1491       case ISD::SETGE:  if (R==APFloat::cmpUnordered)
1492                           return getUNDEF(VT);
1493                         // fall through
1494       case ISD::SETOGE: return getConstant(R==APFloat::cmpGreaterThan ||
1495                                            R==APFloat::cmpEqual, VT);
1496       case ISD::SETO:   return getConstant(R!=APFloat::cmpUnordered, VT);
1497       case ISD::SETUO:  return getConstant(R==APFloat::cmpUnordered, VT);
1498       case ISD::SETUEQ: return getConstant(R==APFloat::cmpUnordered ||
1499                                            R==APFloat::cmpEqual, VT);
1500       case ISD::SETUNE: return getConstant(R!=APFloat::cmpEqual, VT);
1501       case ISD::SETULT: return getConstant(R==APFloat::cmpUnordered ||
1502                                            R==APFloat::cmpLessThan, VT);
1503       case ISD::SETUGT: return getConstant(R==APFloat::cmpGreaterThan ||
1504                                            R==APFloat::cmpUnordered, VT);
1505       case ISD::SETULE: return getConstant(R!=APFloat::cmpGreaterThan, VT);
1506       case ISD::SETUGE: return getConstant(R!=APFloat::cmpLessThan, VT);
1507       }
1508     } else {
1509       // Ensure that the constant occurs on the RHS.
1510       return getSetCC(dl, VT, N2, N1, ISD::getSetCCSwappedOperands(Cond));
1511     }
1512   }
1513 
1514   // Could not fold it.
1515   return SDValue();
1516 }
1517 
1518 /// SignBitIsZero - Return true if the sign bit of Op is known to be zero.  We
1519 /// use this predicate to simplify operations downstream.
1520 bool SelectionDAG::SignBitIsZero(SDValue Op, unsigned Depth) const {
1521   // This predicate is not safe for vector operations.
1522   if (Op.getValueType().isVector())
1523     return false;
1524 
1525   unsigned BitWidth = Op.getValueSizeInBits();
1526   return MaskedValueIsZero(Op, APInt::getSignBit(BitWidth), Depth);
1527 }
1528 
1529 /// MaskedValueIsZero - Return true if 'V & Mask' is known to be zero.  We use
1530 /// this predicate to simplify operations downstream.  Mask is known to be zero
1531 /// for bits that V cannot have.
1532 bool SelectionDAG::MaskedValueIsZero(SDValue Op, const APInt &Mask,
1533                                      unsigned Depth) const {
1534   APInt KnownZero, KnownOne;
1535   ComputeMaskedBits(Op, Mask, KnownZero, KnownOne, Depth);
1536   assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?");
1537   return (KnownZero & Mask) == Mask;
1538 }
1539 
1540 /// ComputeMaskedBits - Determine which of the bits specified in Mask are
1541 /// known to be either zero or one and return them in the KnownZero/KnownOne
1542 /// bitsets.  This code only analyzes bits in Mask, in order to short-circuit
1543 /// processing.
1544 void SelectionDAG::ComputeMaskedBits(SDValue Op, const APInt &Mask,
1545                                      APInt &KnownZero, APInt &KnownOne,
1546                                      unsigned Depth) const {
1547   unsigned BitWidth = Mask.getBitWidth();
1548   assert(BitWidth == Op.getValueType().getSizeInBits() &&
1549          "Mask size mismatches value type size!");
1550 
1551   KnownZero = KnownOne = APInt(BitWidth, 0);   // Don't know anything.
1552   if (Depth == 6 || Mask == 0)
1553     return;  // Limit search depth.
1554 
1555   APInt KnownZero2, KnownOne2;
1556 
1557   switch (Op.getOpcode()) {
1558   case ISD::Constant:
1559     // We know all of the bits for a constant!
1560     KnownOne = cast<ConstantSDNode>(Op)->getAPIntValue() & Mask;
1561     KnownZero = ~KnownOne & Mask;
1562     return;
1563   case ISD::AND:
1564     // If either the LHS or the RHS are Zero, the result is zero.
1565     ComputeMaskedBits(Op.getOperand(1), Mask, KnownZero, KnownOne, Depth+1);
1566     ComputeMaskedBits(Op.getOperand(0), Mask & ~KnownZero,
1567                       KnownZero2, KnownOne2, Depth+1);
1568     assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?");
1569     assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?");
1570 
1571     // Output known-1 bits are only known if set in both the LHS & RHS.
1572     KnownOne &= KnownOne2;
1573     // Output known-0 are known to be clear if zero in either the LHS | RHS.
1574     KnownZero |= KnownZero2;
1575     return;
1576   case ISD::OR:
1577     ComputeMaskedBits(Op.getOperand(1), Mask, KnownZero, KnownOne, Depth+1);
1578     ComputeMaskedBits(Op.getOperand(0), Mask & ~KnownOne,
1579                       KnownZero2, KnownOne2, Depth+1);
1580     assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?");
1581     assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?");
1582 
1583     // Output known-0 bits are only known if clear in both the LHS & RHS.
1584     KnownZero &= KnownZero2;
1585     // Output known-1 are known to be set if set in either the LHS | RHS.
1586     KnownOne |= KnownOne2;
1587     return;
1588   case ISD::XOR: {
1589     ComputeMaskedBits(Op.getOperand(1), Mask, KnownZero, KnownOne, Depth+1);
1590     ComputeMaskedBits(Op.getOperand(0), Mask, KnownZero2, KnownOne2, Depth+1);
1591     assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?");
1592     assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?");
1593 
1594     // Output known-0 bits are known if clear or set in both the LHS & RHS.
1595     APInt KnownZeroOut = (KnownZero & KnownZero2) | (KnownOne & KnownOne2);
1596     // Output known-1 are known to be set if set in only one of the LHS, RHS.
1597     KnownOne = (KnownZero & KnownOne2) | (KnownOne & KnownZero2);
1598     KnownZero = KnownZeroOut;
1599     return;
1600   }
1601   case ISD::MUL: {
1602     APInt Mask2 = APInt::getAllOnesValue(BitWidth);
1603     ComputeMaskedBits(Op.getOperand(1), Mask2, KnownZero, KnownOne, Depth+1);
1604     ComputeMaskedBits(Op.getOperand(0), Mask2, KnownZero2, KnownOne2, Depth+1);
1605     assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?");
1606     assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?");
1607 
1608     // If low bits are zero in either operand, output low known-0 bits.
1609     // Also compute a conserative estimate for high known-0 bits.
1610     // More trickiness is possible, but this is sufficient for the
1611     // interesting case of alignment computation.
1612     KnownOne.clear();
1613     unsigned TrailZ = KnownZero.countTrailingOnes() +
1614                       KnownZero2.countTrailingOnes();
1615     unsigned LeadZ =  std::max(KnownZero.countLeadingOnes() +
1616                                KnownZero2.countLeadingOnes(),
1617                                BitWidth) - BitWidth;
1618 
1619     TrailZ = std::min(TrailZ, BitWidth);
1620     LeadZ = std::min(LeadZ, BitWidth);
1621     KnownZero = APInt::getLowBitsSet(BitWidth, TrailZ) |
1622                 APInt::getHighBitsSet(BitWidth, LeadZ);
1623     KnownZero &= Mask;
1624     return;
1625   }
1626   case ISD::UDIV: {
1627     // For the purposes of computing leading zeros we can conservatively
1628     // treat a udiv as a logical right shift by the power of 2 known to
1629     // be less than the denominator.
1630     APInt AllOnes = APInt::getAllOnesValue(BitWidth);
1631     ComputeMaskedBits(Op.getOperand(0),
1632                       AllOnes, KnownZero2, KnownOne2, Depth+1);
1633     unsigned LeadZ = KnownZero2.countLeadingOnes();
1634 
1635     KnownOne2.clear();
1636     KnownZero2.clear();
1637     ComputeMaskedBits(Op.getOperand(1),
1638                       AllOnes, KnownZero2, KnownOne2, Depth+1);
1639     unsigned RHSUnknownLeadingOnes = KnownOne2.countLeadingZeros();
1640     if (RHSUnknownLeadingOnes != BitWidth)
1641       LeadZ = std::min(BitWidth,
1642                        LeadZ + BitWidth - RHSUnknownLeadingOnes - 1);
1643 
1644     KnownZero = APInt::getHighBitsSet(BitWidth, LeadZ) & Mask;
1645     return;
1646   }
1647   case ISD::SELECT:
1648     ComputeMaskedBits(Op.getOperand(2), Mask, KnownZero, KnownOne, Depth+1);
1649     ComputeMaskedBits(Op.getOperand(1), Mask, KnownZero2, KnownOne2, Depth+1);
1650     assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?");
1651     assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?");
1652 
1653     // Only known if known in both the LHS and RHS.
1654     KnownOne &= KnownOne2;
1655     KnownZero &= KnownZero2;
1656     return;
1657   case ISD::SELECT_CC:
1658     ComputeMaskedBits(Op.getOperand(3), Mask, KnownZero, KnownOne, Depth+1);
1659     ComputeMaskedBits(Op.getOperand(2), Mask, KnownZero2, KnownOne2, Depth+1);
1660     assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?");
1661     assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?");
1662 
1663     // Only known if known in both the LHS and RHS.
1664     KnownOne &= KnownOne2;
1665     KnownZero &= KnownZero2;
1666     return;
1667   case ISD::SADDO:
1668   case ISD::UADDO:
1669   case ISD::SSUBO:
1670   case ISD::USUBO:
1671   case ISD::SMULO:
1672   case ISD::UMULO:
1673     if (Op.getResNo() != 1)
1674       return;
1675     // The boolean result conforms to getBooleanContents.  Fall through.
1676   case ISD::SETCC:
1677     // If we know the result of a setcc has the top bits zero, use this info.
1678     if (TLI.getBooleanContents() == TargetLowering::ZeroOrOneBooleanContent &&
1679         BitWidth > 1)
1680       KnownZero |= APInt::getHighBitsSet(BitWidth, BitWidth - 1);
1681     return;
1682   case ISD::SHL:
1683     // (shl X, C1) & C2 == 0   iff   (X & C2 >>u C1) == 0
1684     if (ConstantSDNode *SA = dyn_cast<ConstantSDNode>(Op.getOperand(1))) {
1685       unsigned ShAmt = SA->getZExtValue();
1686 
1687       // If the shift count is an invalid immediate, don't do anything.
1688       if (ShAmt >= BitWidth)
1689         return;
1690 
1691       ComputeMaskedBits(Op.getOperand(0), Mask.lshr(ShAmt),
1692                         KnownZero, KnownOne, Depth+1);
1693       assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?");
1694       KnownZero <<= ShAmt;
1695       KnownOne  <<= ShAmt;
1696       // low bits known zero.
1697       KnownZero |= APInt::getLowBitsSet(BitWidth, ShAmt);
1698     }
1699     return;
1700   case ISD::SRL:
1701     // (ushr X, C1) & C2 == 0   iff  (-1 >> C1) & C2 == 0
1702     if (ConstantSDNode *SA = dyn_cast<ConstantSDNode>(Op.getOperand(1))) {
1703       unsigned ShAmt = SA->getZExtValue();
1704 
1705       // If the shift count is an invalid immediate, don't do anything.
1706       if (ShAmt >= BitWidth)
1707         return;
1708 
1709       ComputeMaskedBits(Op.getOperand(0), (Mask << ShAmt),
1710                         KnownZero, KnownOne, Depth+1);
1711       assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?");
1712       KnownZero = KnownZero.lshr(ShAmt);
1713       KnownOne  = KnownOne.lshr(ShAmt);
1714 
1715       APInt HighBits = APInt::getHighBitsSet(BitWidth, ShAmt) & Mask;
1716       KnownZero |= HighBits;  // High bits known zero.
1717     }
1718     return;
1719   case ISD::SRA:
1720     if (ConstantSDNode *SA = dyn_cast<ConstantSDNode>(Op.getOperand(1))) {
1721       unsigned ShAmt = SA->getZExtValue();
1722 
1723       // If the shift count is an invalid immediate, don't do anything.
1724       if (ShAmt >= BitWidth)
1725         return;
1726 
1727       APInt InDemandedMask = (Mask << ShAmt);
1728       // If any of the demanded bits are produced by the sign extension, we also
1729       // demand the input sign bit.
1730       APInt HighBits = APInt::getHighBitsSet(BitWidth, ShAmt) & Mask;
1731       if (HighBits.getBoolValue())
1732         InDemandedMask |= APInt::getSignBit(BitWidth);
1733 
1734       ComputeMaskedBits(Op.getOperand(0), InDemandedMask, KnownZero, KnownOne,
1735                         Depth+1);
1736       assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?");
1737       KnownZero = KnownZero.lshr(ShAmt);
1738       KnownOne  = KnownOne.lshr(ShAmt);
1739 
1740       // Handle the sign bits.
1741       APInt SignBit = APInt::getSignBit(BitWidth);
1742       SignBit = SignBit.lshr(ShAmt);  // Adjust to where it is now in the mask.
1743 
1744       if (KnownZero.intersects(SignBit)) {
1745         KnownZero |= HighBits;  // New bits are known zero.
1746       } else if (KnownOne.intersects(SignBit)) {
1747         KnownOne  |= HighBits;  // New bits are known one.
1748       }
1749     }
1750     return;
1751   case ISD::SIGN_EXTEND_INREG: {
1752     MVT EVT = cast<VTSDNode>(Op.getOperand(1))->getVT();
1753     unsigned EBits = EVT.getSizeInBits();
1754 
1755     // Sign extension.  Compute the demanded bits in the result that are not
1756     // present in the input.
1757     APInt NewBits = APInt::getHighBitsSet(BitWidth, BitWidth - EBits) & Mask;
1758 
1759     APInt InSignBit = APInt::getSignBit(EBits);
1760     APInt InputDemandedBits = Mask & APInt::getLowBitsSet(BitWidth, EBits);
1761 
1762     // If the sign extended bits are demanded, we know that the sign
1763     // bit is demanded.
1764     InSignBit.zext(BitWidth);
1765     if (NewBits.getBoolValue())
1766       InputDemandedBits |= InSignBit;
1767 
1768     ComputeMaskedBits(Op.getOperand(0), InputDemandedBits,
1769                       KnownZero, KnownOne, Depth+1);
1770     assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?");
1771 
1772     // If the sign bit of the input is known set or clear, then we know the
1773     // top bits of the result.
1774     if (KnownZero.intersects(InSignBit)) {         // Input sign bit known clear
1775       KnownZero |= NewBits;
1776       KnownOne  &= ~NewBits;
1777     } else if (KnownOne.intersects(InSignBit)) {   // Input sign bit known set
1778       KnownOne  |= NewBits;
1779       KnownZero &= ~NewBits;
1780     } else {                              // Input sign bit unknown
1781       KnownZero &= ~NewBits;
1782       KnownOne  &= ~NewBits;
1783     }
1784     return;
1785   }
1786   case ISD::CTTZ:
1787   case ISD::CTLZ:
1788   case ISD::CTPOP: {
1789     unsigned LowBits = Log2_32(BitWidth)+1;
1790     KnownZero = APInt::getHighBitsSet(BitWidth, BitWidth - LowBits);
1791     KnownOne.clear();
1792     return;
1793   }
1794   case ISD::LOAD: {
1795     if (ISD::isZEXTLoad(Op.getNode())) {
1796       LoadSDNode *LD = cast<LoadSDNode>(Op);
1797       MVT VT = LD->getMemoryVT();
1798       unsigned MemBits = VT.getSizeInBits();
1799       KnownZero |= APInt::getHighBitsSet(BitWidth, BitWidth - MemBits) & Mask;
1800     }
1801     return;
1802   }
1803   case ISD::ZERO_EXTEND: {
1804     MVT InVT = Op.getOperand(0).getValueType();
1805     unsigned InBits = InVT.getSizeInBits();
1806     APInt NewBits   = APInt::getHighBitsSet(BitWidth, BitWidth - InBits) & Mask;
1807     APInt InMask    = Mask;
1808     InMask.trunc(InBits);
1809     KnownZero.trunc(InBits);
1810     KnownOne.trunc(InBits);
1811     ComputeMaskedBits(Op.getOperand(0), InMask, KnownZero, KnownOne, Depth+1);
1812     KnownZero.zext(BitWidth);
1813     KnownOne.zext(BitWidth);
1814     KnownZero |= NewBits;
1815     return;
1816   }
1817   case ISD::SIGN_EXTEND: {
1818     MVT InVT = Op.getOperand(0).getValueType();
1819     unsigned InBits = InVT.getSizeInBits();
1820     APInt InSignBit = APInt::getSignBit(InBits);
1821     APInt NewBits   = APInt::getHighBitsSet(BitWidth, BitWidth - InBits) & Mask;
1822     APInt InMask = Mask;
1823     InMask.trunc(InBits);
1824 
1825     // If any of the sign extended bits are demanded, we know that the sign
1826     // bit is demanded. Temporarily set this bit in the mask for our callee.
1827     if (NewBits.getBoolValue())
1828       InMask |= InSignBit;
1829 
1830     KnownZero.trunc(InBits);
1831     KnownOne.trunc(InBits);
1832     ComputeMaskedBits(Op.getOperand(0), InMask, KnownZero, KnownOne, Depth+1);
1833 
1834     // Note if the sign bit is known to be zero or one.
1835     bool SignBitKnownZero = KnownZero.isNegative();
1836     bool SignBitKnownOne  = KnownOne.isNegative();
1837     assert(!(SignBitKnownZero && SignBitKnownOne) &&
1838            "Sign bit can't be known to be both zero and one!");
1839 
1840     // If the sign bit wasn't actually demanded by our caller, we don't
1841     // want it set in the KnownZero and KnownOne result values. Reset the
1842     // mask and reapply it to the result values.
1843     InMask = Mask;
1844     InMask.trunc(InBits);
1845     KnownZero &= InMask;
1846     KnownOne  &= InMask;
1847 
1848     KnownZero.zext(BitWidth);
1849     KnownOne.zext(BitWidth);
1850 
1851     // If the sign bit is known zero or one, the top bits match.
1852     if (SignBitKnownZero)
1853       KnownZero |= NewBits;
1854     else if (SignBitKnownOne)
1855       KnownOne  |= NewBits;
1856     return;
1857   }
1858   case ISD::ANY_EXTEND: {
1859     MVT InVT = Op.getOperand(0).getValueType();
1860     unsigned InBits = InVT.getSizeInBits();
1861     APInt InMask = Mask;
1862     InMask.trunc(InBits);
1863     KnownZero.trunc(InBits);
1864     KnownOne.trunc(InBits);
1865     ComputeMaskedBits(Op.getOperand(0), InMask, KnownZero, KnownOne, Depth+1);
1866     KnownZero.zext(BitWidth);
1867     KnownOne.zext(BitWidth);
1868     return;
1869   }
1870   case ISD::TRUNCATE: {
1871     MVT InVT = Op.getOperand(0).getValueType();
1872     unsigned InBits = InVT.getSizeInBits();
1873     APInt InMask = Mask;
1874     InMask.zext(InBits);
1875     KnownZero.zext(InBits);
1876     KnownOne.zext(InBits);
1877     ComputeMaskedBits(Op.getOperand(0), InMask, KnownZero, KnownOne, Depth+1);
1878     assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?");
1879     KnownZero.trunc(BitWidth);
1880     KnownOne.trunc(BitWidth);
1881     break;
1882   }
1883   case ISD::AssertZext: {
1884     MVT VT = cast<VTSDNode>(Op.getOperand(1))->getVT();
1885     APInt InMask = APInt::getLowBitsSet(BitWidth, VT.getSizeInBits());
1886     ComputeMaskedBits(Op.getOperand(0), Mask & InMask, KnownZero,
1887                       KnownOne, Depth+1);
1888     KnownZero |= (~InMask) & Mask;
1889     return;
1890   }
1891   case ISD::FGETSIGN:
1892     // All bits are zero except the low bit.
1893     KnownZero = APInt::getHighBitsSet(BitWidth, BitWidth - 1);
1894     return;
1895 
1896   case ISD::SUB: {
1897     if (ConstantSDNode *CLHS = dyn_cast<ConstantSDNode>(Op.getOperand(0))) {
1898       // We know that the top bits of C-X are clear if X contains less bits
1899       // than C (i.e. no wrap-around can happen).  For example, 20-X is
1900       // positive if we can prove that X is >= 0 and < 16.
1901       if (CLHS->getAPIntValue().isNonNegative()) {
1902         unsigned NLZ = (CLHS->getAPIntValue()+1).countLeadingZeros();
1903         // NLZ can't be BitWidth with no sign bit
1904         APInt MaskV = APInt::getHighBitsSet(BitWidth, NLZ+1);
1905         ComputeMaskedBits(Op.getOperand(1), MaskV, KnownZero2, KnownOne2,
1906                           Depth+1);
1907 
1908         // If all of the MaskV bits are known to be zero, then we know the
1909         // output top bits are zero, because we now know that the output is
1910         // from [0-C].
1911         if ((KnownZero2 & MaskV) == MaskV) {
1912           unsigned NLZ2 = CLHS->getAPIntValue().countLeadingZeros();
1913           // Top bits known zero.
1914           KnownZero = APInt::getHighBitsSet(BitWidth, NLZ2) & Mask;
1915         }
1916       }
1917     }
1918   }
1919   // fall through
1920   case ISD::ADD: {
1921     // Output known-0 bits are known if clear or set in both the low clear bits
1922     // common to both LHS & RHS.  For example, 8+(X<<3) is known to have the
1923     // low 3 bits clear.
1924     APInt Mask2 = APInt::getLowBitsSet(BitWidth, Mask.countTrailingOnes());
1925     ComputeMaskedBits(Op.getOperand(0), Mask2, KnownZero2, KnownOne2, Depth+1);
1926     assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?");
1927     unsigned KnownZeroOut = KnownZero2.countTrailingOnes();
1928 
1929     ComputeMaskedBits(Op.getOperand(1), Mask2, KnownZero2, KnownOne2, Depth+1);
1930     assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?");
1931     KnownZeroOut = std::min(KnownZeroOut,
1932                             KnownZero2.countTrailingOnes());
1933 
1934     KnownZero |= APInt::getLowBitsSet(BitWidth, KnownZeroOut);
1935     return;
1936   }
1937   case ISD::SREM:
1938     if (ConstantSDNode *Rem = dyn_cast<ConstantSDNode>(Op.getOperand(1))) {
1939       const APInt &RA = Rem->getAPIntValue();
1940       if (RA.isPowerOf2() || (-RA).isPowerOf2()) {
1941         APInt LowBits = RA.isStrictlyPositive() ? (RA - 1) : ~RA;
1942         APInt Mask2 = LowBits | APInt::getSignBit(BitWidth);
1943         ComputeMaskedBits(Op.getOperand(0), Mask2,KnownZero2,KnownOne2,Depth+1);
1944 
1945         // If the sign bit of the first operand is zero, the sign bit of
1946         // the result is zero. If the first operand has no one bits below
1947         // the second operand's single 1 bit, its sign will be zero.
1948         if (KnownZero2[BitWidth-1] || ((KnownZero2 & LowBits) == LowBits))
1949           KnownZero2 |= ~LowBits;
1950 
1951         KnownZero |= KnownZero2 & Mask;
1952 
1953         assert((KnownZero & KnownOne) == 0&&"Bits known to be one AND zero?");
1954       }
1955     }
1956     return;
1957   case ISD::UREM: {
1958     if (ConstantSDNode *Rem = dyn_cast<ConstantSDNode>(Op.getOperand(1))) {
1959       const APInt &RA = Rem->getAPIntValue();
1960       if (RA.isPowerOf2()) {
1961         APInt LowBits = (RA - 1);
1962         APInt Mask2 = LowBits & Mask;
1963         KnownZero |= ~LowBits & Mask;
1964         ComputeMaskedBits(Op.getOperand(0), Mask2, KnownZero, KnownOne,Depth+1);
1965         assert((KnownZero & KnownOne) == 0&&"Bits known to be one AND zero?");
1966         break;
1967       }
1968     }
1969 
1970     // Since the result is less than or equal to either operand, any leading
1971     // zero bits in either operand must also exist in the result.
1972     APInt AllOnes = APInt::getAllOnesValue(BitWidth);
1973     ComputeMaskedBits(Op.getOperand(0), AllOnes, KnownZero, KnownOne,
1974                       Depth+1);
1975     ComputeMaskedBits(Op.getOperand(1), AllOnes, KnownZero2, KnownOne2,
1976                       Depth+1);
1977 
1978     uint32_t Leaders = std::max(KnownZero.countLeadingOnes(),
1979                                 KnownZero2.countLeadingOnes());
1980     KnownOne.clear();
1981     KnownZero = APInt::getHighBitsSet(BitWidth, Leaders) & Mask;
1982     return;
1983   }
1984   default:
1985     // Allow the target to implement this method for its nodes.
1986     if (Op.getOpcode() >= ISD::BUILTIN_OP_END) {
1987   case ISD::INTRINSIC_WO_CHAIN:
1988   case ISD::INTRINSIC_W_CHAIN:
1989   case ISD::INTRINSIC_VOID:
1990       TLI.computeMaskedBitsForTargetNode(Op, Mask, KnownZero, KnownOne, *this,
1991                                          Depth);
1992     }
1993     return;
1994   }
1995 }
1996 
1997 /// ComputeNumSignBits - Return the number of times the sign bit of the
1998 /// register is replicated into the other bits.  We know that at least 1 bit
1999 /// is always equal to the sign bit (itself), but other cases can give us
2000 /// information.  For example, immediately after an "SRA X, 2", we know that
2001 /// the top 3 bits are all equal to each other, so we return 3.
2002 unsigned SelectionDAG::ComputeNumSignBits(SDValue Op, unsigned Depth) const{
2003   MVT VT = Op.getValueType();
2004   assert(VT.isInteger() && "Invalid VT!");
2005   unsigned VTBits = VT.getSizeInBits();
2006   unsigned Tmp, Tmp2;
2007   unsigned FirstAnswer = 1;
2008 
2009   if (Depth == 6)
2010     return 1;  // Limit search depth.
2011 
2012   switch (Op.getOpcode()) {
2013   default: break;
2014   case ISD::AssertSext:
2015     Tmp = cast<VTSDNode>(Op.getOperand(1))->getVT().getSizeInBits();
2016     return VTBits-Tmp+1;
2017   case ISD::AssertZext:
2018     Tmp = cast<VTSDNode>(Op.getOperand(1))->getVT().getSizeInBits();
2019     return VTBits-Tmp;
2020 
2021   case ISD::Constant: {
2022     const APInt &Val = cast<ConstantSDNode>(Op)->getAPIntValue();
2023     // If negative, return # leading ones.
2024     if (Val.isNegative())
2025       return Val.countLeadingOnes();
2026 
2027     // Return # leading zeros.
2028     return Val.countLeadingZeros();
2029   }
2030 
2031   case ISD::SIGN_EXTEND:
2032     Tmp = VTBits-Op.getOperand(0).getValueType().getSizeInBits();
2033     return ComputeNumSignBits(Op.getOperand(0), Depth+1) + Tmp;
2034 
2035   case ISD::SIGN_EXTEND_INREG:
2036     // Max of the input and what this extends.
2037     Tmp = cast<VTSDNode>(Op.getOperand(1))->getVT().getSizeInBits();
2038     Tmp = VTBits-Tmp+1;
2039 
2040     Tmp2 = ComputeNumSignBits(Op.getOperand(0), Depth+1);
2041     return std::max(Tmp, Tmp2);
2042 
2043   case ISD::SRA:
2044     Tmp = ComputeNumSignBits(Op.getOperand(0), Depth+1);
2045     // SRA X, C   -> adds C sign bits.
2046     if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op.getOperand(1))) {
2047       Tmp += C->getZExtValue();
2048       if (Tmp > VTBits) Tmp = VTBits;
2049     }
2050     return Tmp;
2051   case ISD::SHL:
2052     if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op.getOperand(1))) {
2053       // shl destroys sign bits.
2054       Tmp = ComputeNumSignBits(Op.getOperand(0), Depth+1);
2055       if (C->getZExtValue() >= VTBits ||      // Bad shift.
2056           C->getZExtValue() >= Tmp) break;    // Shifted all sign bits out.
2057       return Tmp - C->getZExtValue();
2058     }
2059     break;
2060   case ISD::AND:
2061   case ISD::OR:
2062   case ISD::XOR:    // NOT is handled here.
2063     // Logical binary ops preserve the number of sign bits at the worst.
2064     Tmp = ComputeNumSignBits(Op.getOperand(0), Depth+1);
2065     if (Tmp != 1) {
2066       Tmp2 = ComputeNumSignBits(Op.getOperand(1), Depth+1);
2067       FirstAnswer = std::min(Tmp, Tmp2);
2068       // We computed what we know about the sign bits as our first
2069       // answer. Now proceed to the generic code that uses
2070       // ComputeMaskedBits, and pick whichever answer is better.
2071     }
2072     break;
2073 
2074   case ISD::SELECT:
2075     Tmp = ComputeNumSignBits(Op.getOperand(1), Depth+1);
2076     if (Tmp == 1) return 1;  // Early out.
2077     Tmp2 = ComputeNumSignBits(Op.getOperand(2), Depth+1);
2078     return std::min(Tmp, Tmp2);
2079 
2080   case ISD::SADDO:
2081   case ISD::UADDO:
2082   case ISD::SSUBO:
2083   case ISD::USUBO:
2084   case ISD::SMULO:
2085   case ISD::UMULO:
2086     if (Op.getResNo() != 1)
2087       break;
2088     // The boolean result conforms to getBooleanContents.  Fall through.
2089   case ISD::SETCC:
2090     // If setcc returns 0/-1, all bits are sign bits.
2091     if (TLI.getBooleanContents() ==
2092         TargetLowering::ZeroOrNegativeOneBooleanContent)
2093       return VTBits;
2094     break;
2095   case ISD::ROTL:
2096   case ISD::ROTR:
2097     if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op.getOperand(1))) {
2098       unsigned RotAmt = C->getZExtValue() & (VTBits-1);
2099 
2100       // Handle rotate right by N like a rotate left by 32-N.
2101       if (Op.getOpcode() == ISD::ROTR)
2102         RotAmt = (VTBits-RotAmt) & (VTBits-1);
2103 
2104       // If we aren't rotating out all of the known-in sign bits, return the
2105       // number that are left.  This handles rotl(sext(x), 1) for example.
2106       Tmp = ComputeNumSignBits(Op.getOperand(0), Depth+1);
2107       if (Tmp > RotAmt+1) return Tmp-RotAmt;
2108     }
2109     break;
2110   case ISD::ADD:
2111     // Add can have at most one carry bit.  Thus we know that the output
2112     // is, at worst, one more bit than the inputs.
2113     Tmp = ComputeNumSignBits(Op.getOperand(0), Depth+1);
2114     if (Tmp == 1) return 1;  // Early out.
2115 
2116     // Special case decrementing a value (ADD X, -1):
2117     if (ConstantSDNode *CRHS = dyn_cast<ConstantSDNode>(Op.getOperand(1)))
2118       if (CRHS->isAllOnesValue()) {
2119         APInt KnownZero, KnownOne;
2120         APInt Mask = APInt::getAllOnesValue(VTBits);
2121         ComputeMaskedBits(Op.getOperand(0), Mask, KnownZero, KnownOne, Depth+1);
2122 
2123         // If the input is known to be 0 or 1, the output is 0/-1, which is all
2124         // sign bits set.
2125         if ((KnownZero | APInt(VTBits, 1)) == Mask)
2126           return VTBits;
2127 
2128         // If we are subtracting one from a positive number, there is no carry
2129         // out of the result.
2130         if (KnownZero.isNegative())
2131           return Tmp;
2132       }
2133 
2134     Tmp2 = ComputeNumSignBits(Op.getOperand(1), Depth+1);
2135     if (Tmp2 == 1) return 1;
2136       return std::min(Tmp, Tmp2)-1;
2137     break;
2138 
2139   case ISD::SUB:
2140     Tmp2 = ComputeNumSignBits(Op.getOperand(1), Depth+1);
2141     if (Tmp2 == 1) return 1;
2142 
2143     // Handle NEG.
2144     if (ConstantSDNode *CLHS = dyn_cast<ConstantSDNode>(Op.getOperand(0)))
2145       if (CLHS->isNullValue()) {
2146         APInt KnownZero, KnownOne;
2147         APInt Mask = APInt::getAllOnesValue(VTBits);
2148         ComputeMaskedBits(Op.getOperand(1), Mask, KnownZero, KnownOne, Depth+1);
2149         // If the input is known to be 0 or 1, the output is 0/-1, which is all
2150         // sign bits set.
2151         if ((KnownZero | APInt(VTBits, 1)) == Mask)
2152           return VTBits;
2153 
2154         // If the input is known to be positive (the sign bit is known clear),
2155         // the output of the NEG has the same number of sign bits as the input.
2156         if (KnownZero.isNegative())
2157           return Tmp2;
2158 
2159         // Otherwise, we treat this like a SUB.
2160       }
2161 
2162     // Sub can have at most one carry bit.  Thus we know that the output
2163     // is, at worst, one more bit than the inputs.
2164     Tmp = ComputeNumSignBits(Op.getOperand(0), Depth+1);
2165     if (Tmp == 1) return 1;  // Early out.
2166       return std::min(Tmp, Tmp2)-1;
2167     break;
2168   case ISD::TRUNCATE:
2169     // FIXME: it's tricky to do anything useful for this, but it is an important
2170     // case for targets like X86.
2171     break;
2172   }
2173 
2174   // Handle LOADX separately here. EXTLOAD case will fallthrough.
2175   if (Op.getOpcode() == ISD::LOAD) {
2176     LoadSDNode *LD = cast<LoadSDNode>(Op);
2177     unsigned ExtType = LD->getExtensionType();
2178     switch (ExtType) {
2179     default: break;
2180     case ISD::SEXTLOAD:    // '17' bits known
2181       Tmp = LD->getMemoryVT().getSizeInBits();
2182       return VTBits-Tmp+1;
2183     case ISD::ZEXTLOAD:    // '16' bits known
2184       Tmp = LD->getMemoryVT().getSizeInBits();
2185       return VTBits-Tmp;
2186     }
2187   }
2188 
2189   // Allow the target to implement this method for its nodes.
2190   if (Op.getOpcode() >= ISD::BUILTIN_OP_END ||
2191       Op.getOpcode() == ISD::INTRINSIC_WO_CHAIN ||
2192       Op.getOpcode() == ISD::INTRINSIC_W_CHAIN ||
2193       Op.getOpcode() == ISD::INTRINSIC_VOID) {
2194     unsigned NumBits = TLI.ComputeNumSignBitsForTargetNode(Op, Depth);
2195     if (NumBits > 1) FirstAnswer = std::max(FirstAnswer, NumBits);
2196   }
2197 
2198   // Finally, if we can prove that the top bits of the result are 0's or 1's,
2199   // use this information.
2200   APInt KnownZero, KnownOne;
2201   APInt Mask = APInt::getAllOnesValue(VTBits);
2202   ComputeMaskedBits(Op, Mask, KnownZero, KnownOne, Depth);
2203 
2204   if (KnownZero.isNegative()) {        // sign bit is 0
2205     Mask = KnownZero;
2206   } else if (KnownOne.isNegative()) {  // sign bit is 1;
2207     Mask = KnownOne;
2208   } else {
2209     // Nothing known.
2210     return FirstAnswer;
2211   }
2212 
2213   // Okay, we know that the sign bit in Mask is set.  Use CLZ to determine
2214   // the number of identical bits in the top of the input value.
2215   Mask = ~Mask;
2216   Mask <<= Mask.getBitWidth()-VTBits;
2217   // Return # leading zeros.  We use 'min' here in case Val was zero before
2218   // shifting.  We don't want to return '64' as for an i32 "0".
2219   return std::max(FirstAnswer, std::min(VTBits, Mask.countLeadingZeros()));
2220 }
2221 
2222 
2223 bool SelectionDAG::isVerifiedDebugInfoDesc(SDValue Op) const {
2224   GlobalAddressSDNode *GA = dyn_cast<GlobalAddressSDNode>(Op);
2225   if (!GA) return false;
2226   if (GA->getOffset() != 0) return false;
2227   GlobalVariable *GV = dyn_cast<GlobalVariable>(GA->getGlobal());
2228   if (!GV) return false;
2229   MachineModuleInfo *MMI = getMachineModuleInfo();
2230   return MMI && MMI->hasDebugInfo();
2231 }
2232 
2233 
2234 /// getShuffleScalarElt - Returns the scalar element that will make up the ith
2235 /// element of the result of the vector shuffle.
2236 SDValue SelectionDAG::getShuffleScalarElt(const ShuffleVectorSDNode *N,
2237                                           unsigned i) {
2238   MVT VT = N->getValueType(0);
2239   DebugLoc dl = N->getDebugLoc();
2240   if (N->getMaskElt(i) < 0)
2241     return getUNDEF(VT.getVectorElementType());
2242   unsigned Index = N->getMaskElt(i);
2243   unsigned NumElems = VT.getVectorNumElements();
2244   SDValue V = (Index < NumElems) ? N->getOperand(0) : N->getOperand(1);
2245   Index %= NumElems;
2246 
2247   if (V.getOpcode() == ISD::BIT_CONVERT) {
2248     V = V.getOperand(0);
2249     MVT VVT = V.getValueType();
2250     if (!VVT.isVector() || VVT.getVectorNumElements() != (unsigned)NumElems)
2251       return SDValue();
2252   }
2253   if (V.getOpcode() == ISD::SCALAR_TO_VECTOR)
2254     return (Index == 0) ? V.getOperand(0)
2255                       : getUNDEF(VT.getVectorElementType());
2256   if (V.getOpcode() == ISD::BUILD_VECTOR)
2257     return V.getOperand(Index);
2258   if (const ShuffleVectorSDNode *SVN = dyn_cast<ShuffleVectorSDNode>(V))
2259     return getShuffleScalarElt(SVN, Index);
2260   return SDValue();
2261 }
2262 
2263 
2264 /// getNode - Gets or creates the specified node.
2265 ///
2266 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, MVT VT) {
2267   FoldingSetNodeID ID;
2268   AddNodeIDNode(ID, Opcode, getVTList(VT), 0, 0);
2269   void *IP = 0;
2270   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
2271     return SDValue(E, 0);
2272   SDNode *N = NodeAllocator.Allocate<SDNode>();
2273   new (N) SDNode(Opcode, DL, getVTList(VT));
2274   CSEMap.InsertNode(N, IP);
2275 
2276   AllNodes.push_back(N);
2277 #ifndef NDEBUG
2278   VerifyNode(N);
2279 #endif
2280   return SDValue(N, 0);
2281 }
2282 
2283 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL,
2284                               MVT VT, SDValue Operand) {
2285   // Constant fold unary operations with an integer constant operand.
2286   if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Operand.getNode())) {
2287     const APInt &Val = C->getAPIntValue();
2288     unsigned BitWidth = VT.getSizeInBits();
2289     switch (Opcode) {
2290     default: break;
2291     case ISD::SIGN_EXTEND:
2292       return getConstant(APInt(Val).sextOrTrunc(BitWidth), VT);
2293     case ISD::ANY_EXTEND:
2294     case ISD::ZERO_EXTEND:
2295     case ISD::TRUNCATE:
2296       return getConstant(APInt(Val).zextOrTrunc(BitWidth), VT);
2297     case ISD::UINT_TO_FP:
2298     case ISD::SINT_TO_FP: {
2299       const uint64_t zero[] = {0, 0};
2300       // No compile time operations on this type.
2301       if (VT==MVT::ppcf128)
2302         break;
2303       APFloat apf = APFloat(APInt(BitWidth, 2, zero));
2304       (void)apf.convertFromAPInt(Val,
2305                                  Opcode==ISD::SINT_TO_FP,
2306                                  APFloat::rmNearestTiesToEven);
2307       return getConstantFP(apf, VT);
2308     }
2309     case ISD::BIT_CONVERT:
2310       if (VT == MVT::f32 && C->getValueType(0) == MVT::i32)
2311         return getConstantFP(Val.bitsToFloat(), VT);
2312       else if (VT == MVT::f64 && C->getValueType(0) == MVT::i64)
2313         return getConstantFP(Val.bitsToDouble(), VT);
2314       break;
2315     case ISD::BSWAP:
2316       return getConstant(Val.byteSwap(), VT);
2317     case ISD::CTPOP:
2318       return getConstant(Val.countPopulation(), VT);
2319     case ISD::CTLZ:
2320       return getConstant(Val.countLeadingZeros(), VT);
2321     case ISD::CTTZ:
2322       return getConstant(Val.countTrailingZeros(), VT);
2323     }
2324   }
2325 
2326   // Constant fold unary operations with a floating point constant operand.
2327   if (ConstantFPSDNode *C = dyn_cast<ConstantFPSDNode>(Operand.getNode())) {
2328     APFloat V = C->getValueAPF();    // make copy
2329     if (VT != MVT::ppcf128 && Operand.getValueType() != MVT::ppcf128) {
2330       switch (Opcode) {
2331       case ISD::FNEG:
2332         V.changeSign();
2333         return getConstantFP(V, VT);
2334       case ISD::FABS:
2335         V.clearSign();
2336         return getConstantFP(V, VT);
2337       case ISD::FP_ROUND:
2338       case ISD::FP_EXTEND: {
2339         bool ignored;
2340         // This can return overflow, underflow, or inexact; we don't care.
2341         // FIXME need to be more flexible about rounding mode.
2342         (void)V.convert(*MVTToAPFloatSemantics(VT),
2343                         APFloat::rmNearestTiesToEven, &ignored);
2344         return getConstantFP(V, VT);
2345       }
2346       case ISD::FP_TO_SINT:
2347       case ISD::FP_TO_UINT: {
2348         integerPart x[2];
2349         bool ignored;
2350         assert(integerPartWidth >= 64);
2351         // FIXME need to be more flexible about rounding mode.
2352         APFloat::opStatus s = V.convertToInteger(x, VT.getSizeInBits(),
2353                               Opcode==ISD::FP_TO_SINT,
2354                               APFloat::rmTowardZero, &ignored);
2355         if (s==APFloat::opInvalidOp)     // inexact is OK, in fact usual
2356           break;
2357         APInt api(VT.getSizeInBits(), 2, x);
2358         return getConstant(api, VT);
2359       }
2360       case ISD::BIT_CONVERT:
2361         if (VT == MVT::i32 && C->getValueType(0) == MVT::f32)
2362           return getConstant((uint32_t)V.bitcastToAPInt().getZExtValue(), VT);
2363         else if (VT == MVT::i64 && C->getValueType(0) == MVT::f64)
2364           return getConstant(V.bitcastToAPInt().getZExtValue(), VT);
2365         break;
2366       }
2367     }
2368   }
2369 
2370   unsigned OpOpcode = Operand.getNode()->getOpcode();
2371   switch (Opcode) {
2372   case ISD::TokenFactor:
2373   case ISD::MERGE_VALUES:
2374   case ISD::CONCAT_VECTORS:
2375     return Operand;         // Factor, merge or concat of one node?  No need.
2376   case ISD::FP_ROUND: llvm_unreachable("Invalid method to make FP_ROUND node");
2377   case ISD::FP_EXTEND:
2378     assert(VT.isFloatingPoint() &&
2379            Operand.getValueType().isFloatingPoint() && "Invalid FP cast!");
2380     if (Operand.getValueType() == VT) return Operand;  // noop conversion.
2381     if (Operand.getOpcode() == ISD::UNDEF)
2382       return getUNDEF(VT);
2383     break;
2384   case ISD::SIGN_EXTEND:
2385     assert(VT.isInteger() && Operand.getValueType().isInteger() &&
2386            "Invalid SIGN_EXTEND!");
2387     if (Operand.getValueType() == VT) return Operand;   // noop extension
2388     assert(Operand.getValueType().bitsLT(VT)
2389            && "Invalid sext node, dst < src!");
2390     if (OpOpcode == ISD::SIGN_EXTEND || OpOpcode == ISD::ZERO_EXTEND)
2391       return getNode(OpOpcode, DL, VT, Operand.getNode()->getOperand(0));
2392     break;
2393   case ISD::ZERO_EXTEND:
2394     assert(VT.isInteger() && Operand.getValueType().isInteger() &&
2395            "Invalid ZERO_EXTEND!");
2396     if (Operand.getValueType() == VT) return Operand;   // noop extension
2397     assert(Operand.getValueType().bitsLT(VT)
2398            && "Invalid zext node, dst < src!");
2399     if (OpOpcode == ISD::ZERO_EXTEND)   // (zext (zext x)) -> (zext x)
2400       return getNode(ISD::ZERO_EXTEND, DL, VT,
2401                      Operand.getNode()->getOperand(0));
2402     break;
2403   case ISD::ANY_EXTEND:
2404     assert(VT.isInteger() && Operand.getValueType().isInteger() &&
2405            "Invalid ANY_EXTEND!");
2406     if (Operand.getValueType() == VT) return Operand;   // noop extension
2407     assert(Operand.getValueType().bitsLT(VT)
2408            && "Invalid anyext node, dst < src!");
2409     if (OpOpcode == ISD::ZERO_EXTEND || OpOpcode == ISD::SIGN_EXTEND)
2410       // (ext (zext x)) -> (zext x)  and  (ext (sext x)) -> (sext x)
2411       return getNode(OpOpcode, DL, VT, Operand.getNode()->getOperand(0));
2412     break;
2413   case ISD::TRUNCATE:
2414     assert(VT.isInteger() && Operand.getValueType().isInteger() &&
2415            "Invalid TRUNCATE!");
2416     if (Operand.getValueType() == VT) return Operand;   // noop truncate
2417     assert(Operand.getValueType().bitsGT(VT)
2418            && "Invalid truncate node, src < dst!");
2419     if (OpOpcode == ISD::TRUNCATE)
2420       return getNode(ISD::TRUNCATE, DL, VT, Operand.getNode()->getOperand(0));
2421     else if (OpOpcode == ISD::ZERO_EXTEND || OpOpcode == ISD::SIGN_EXTEND ||
2422              OpOpcode == ISD::ANY_EXTEND) {
2423       // If the source is smaller than the dest, we still need an extend.
2424       if (Operand.getNode()->getOperand(0).getValueType().bitsLT(VT))
2425         return getNode(OpOpcode, DL, VT, Operand.getNode()->getOperand(0));
2426       else if (Operand.getNode()->getOperand(0).getValueType().bitsGT(VT))
2427         return getNode(ISD::TRUNCATE, DL, VT, Operand.getNode()->getOperand(0));
2428       else
2429         return Operand.getNode()->getOperand(0);
2430     }
2431     break;
2432   case ISD::BIT_CONVERT:
2433     // Basic sanity checking.
2434     assert(VT.getSizeInBits() == Operand.getValueType().getSizeInBits()
2435            && "Cannot BIT_CONVERT between types of different sizes!");
2436     if (VT == Operand.getValueType()) return Operand;  // noop conversion.
2437     if (OpOpcode == ISD::BIT_CONVERT)  // bitconv(bitconv(x)) -> bitconv(x)
2438       return getNode(ISD::BIT_CONVERT, DL, VT, Operand.getOperand(0));
2439     if (OpOpcode == ISD::UNDEF)
2440       return getUNDEF(VT);
2441     break;
2442   case ISD::SCALAR_TO_VECTOR:
2443     assert(VT.isVector() && !Operand.getValueType().isVector() &&
2444            (VT.getVectorElementType() == Operand.getValueType() ||
2445             (VT.getVectorElementType().isInteger() &&
2446              Operand.getValueType().isInteger() &&
2447              VT.getVectorElementType().bitsLE(Operand.getValueType()))) &&
2448            "Illegal SCALAR_TO_VECTOR node!");
2449     if (OpOpcode == ISD::UNDEF)
2450       return getUNDEF(VT);
2451     // scalar_to_vector(extract_vector_elt V, 0) -> V, top bits are undefined.
2452     if (OpOpcode == ISD::EXTRACT_VECTOR_ELT &&
2453         isa<ConstantSDNode>(Operand.getOperand(1)) &&
2454         Operand.getConstantOperandVal(1) == 0 &&
2455         Operand.getOperand(0).getValueType() == VT)
2456       return Operand.getOperand(0);
2457     break;
2458   case ISD::FNEG:
2459     // -(X-Y) -> (Y-X) is unsafe because when X==Y, -0.0 != +0.0
2460     if (UnsafeFPMath && OpOpcode == ISD::FSUB)
2461       return getNode(ISD::FSUB, DL, VT, Operand.getNode()->getOperand(1),
2462                      Operand.getNode()->getOperand(0));
2463     if (OpOpcode == ISD::FNEG)  // --X -> X
2464       return Operand.getNode()->getOperand(0);
2465     break;
2466   case ISD::FABS:
2467     if (OpOpcode == ISD::FNEG)  // abs(-X) -> abs(X)
2468       return getNode(ISD::FABS, DL, VT, Operand.getNode()->getOperand(0));
2469     break;
2470   }
2471 
2472   SDNode *N;
2473   SDVTList VTs = getVTList(VT);
2474   if (VT != MVT::Flag) { // Don't CSE flag producing nodes
2475     FoldingSetNodeID ID;
2476     SDValue Ops[1] = { Operand };
2477     AddNodeIDNode(ID, Opcode, VTs, Ops, 1);
2478     void *IP = 0;
2479     if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
2480       return SDValue(E, 0);
2481     N = NodeAllocator.Allocate<UnarySDNode>();
2482     new (N) UnarySDNode(Opcode, DL, VTs, Operand);
2483     CSEMap.InsertNode(N, IP);
2484   } else {
2485     N = NodeAllocator.Allocate<UnarySDNode>();
2486     new (N) UnarySDNode(Opcode, DL, VTs, Operand);
2487   }
2488 
2489   AllNodes.push_back(N);
2490 #ifndef NDEBUG
2491   VerifyNode(N);
2492 #endif
2493   return SDValue(N, 0);
2494 }
2495 
2496 SDValue SelectionDAG::FoldConstantArithmetic(unsigned Opcode,
2497                                              MVT VT,
2498                                              ConstantSDNode *Cst1,
2499                                              ConstantSDNode *Cst2) {
2500   const APInt &C1 = Cst1->getAPIntValue(), &C2 = Cst2->getAPIntValue();
2501 
2502   switch (Opcode) {
2503   case ISD::ADD:  return getConstant(C1 + C2, VT);
2504   case ISD::SUB:  return getConstant(C1 - C2, VT);
2505   case ISD::MUL:  return getConstant(C1 * C2, VT);
2506   case ISD::UDIV:
2507     if (C2.getBoolValue()) return getConstant(C1.udiv(C2), VT);
2508     break;
2509   case ISD::UREM:
2510     if (C2.getBoolValue()) return getConstant(C1.urem(C2), VT);
2511     break;
2512   case ISD::SDIV:
2513     if (C2.getBoolValue()) return getConstant(C1.sdiv(C2), VT);
2514     break;
2515   case ISD::SREM:
2516     if (C2.getBoolValue()) return getConstant(C1.srem(C2), VT);
2517     break;
2518   case ISD::AND:  return getConstant(C1 & C2, VT);
2519   case ISD::OR:   return getConstant(C1 | C2, VT);
2520   case ISD::XOR:  return getConstant(C1 ^ C2, VT);
2521   case ISD::SHL:  return getConstant(C1 << C2, VT);
2522   case ISD::SRL:  return getConstant(C1.lshr(C2), VT);
2523   case ISD::SRA:  return getConstant(C1.ashr(C2), VT);
2524   case ISD::ROTL: return getConstant(C1.rotl(C2), VT);
2525   case ISD::ROTR: return getConstant(C1.rotr(C2), VT);
2526   default: break;
2527   }
2528 
2529   return SDValue();
2530 }
2531 
2532 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, MVT VT,
2533                               SDValue N1, SDValue N2) {
2534   ConstantSDNode *N1C = dyn_cast<ConstantSDNode>(N1.getNode());
2535   ConstantSDNode *N2C = dyn_cast<ConstantSDNode>(N2.getNode());
2536   switch (Opcode) {
2537   default: break;
2538   case ISD::TokenFactor:
2539     assert(VT == MVT::Other && N1.getValueType() == MVT::Other &&
2540            N2.getValueType() == MVT::Other && "Invalid token factor!");
2541     // Fold trivial token factors.
2542     if (N1.getOpcode() == ISD::EntryToken) return N2;
2543     if (N2.getOpcode() == ISD::EntryToken) return N1;
2544     if (N1 == N2) return N1;
2545     break;
2546   case ISD::CONCAT_VECTORS:
2547     // A CONCAT_VECTOR with all operands BUILD_VECTOR can be simplified to
2548     // one big BUILD_VECTOR.
2549     if (N1.getOpcode() == ISD::BUILD_VECTOR &&
2550         N2.getOpcode() == ISD::BUILD_VECTOR) {
2551       SmallVector<SDValue, 16> Elts(N1.getNode()->op_begin(), N1.getNode()->op_end());
2552       Elts.insert(Elts.end(), N2.getNode()->op_begin(), N2.getNode()->op_end());
2553       return getNode(ISD::BUILD_VECTOR, DL, VT, &Elts[0], Elts.size());
2554     }
2555     break;
2556   case ISD::AND:
2557     assert(VT.isInteger() && N1.getValueType() == N2.getValueType() &&
2558            N1.getValueType() == VT && "Binary operator types must match!");
2559     // (X & 0) -> 0.  This commonly occurs when legalizing i64 values, so it's
2560     // worth handling here.
2561     if (N2C && N2C->isNullValue())
2562       return N2;
2563     if (N2C && N2C->isAllOnesValue())  // X & -1 -> X
2564       return N1;
2565     break;
2566   case ISD::OR:
2567   case ISD::XOR:
2568   case ISD::ADD:
2569   case ISD::SUB:
2570     assert(VT.isInteger() && N1.getValueType() == N2.getValueType() &&
2571            N1.getValueType() == VT && "Binary operator types must match!");
2572     // (X ^|+- 0) -> X.  This commonly occurs when legalizing i64 values, so
2573     // it's worth handling here.
2574     if (N2C && N2C->isNullValue())
2575       return N1;
2576     break;
2577   case ISD::UDIV:
2578   case ISD::UREM:
2579   case ISD::MULHU:
2580   case ISD::MULHS:
2581   case ISD::MUL:
2582   case ISD::SDIV:
2583   case ISD::SREM:
2584     assert(VT.isInteger() && "This operator does not apply to FP types!");
2585     // fall through
2586   case ISD::FADD:
2587   case ISD::FSUB:
2588   case ISD::FMUL:
2589   case ISD::FDIV:
2590   case ISD::FREM:
2591     if (UnsafeFPMath) {
2592       if (Opcode == ISD::FADD) {
2593         // 0+x --> x
2594         if (ConstantFPSDNode *CFP = dyn_cast<ConstantFPSDNode>(N1))
2595           if (CFP->getValueAPF().isZero())
2596             return N2;
2597         // x+0 --> x
2598         if (ConstantFPSDNode *CFP = dyn_cast<ConstantFPSDNode>(N2))
2599           if (CFP->getValueAPF().isZero())
2600             return N1;
2601       } else if (Opcode == ISD::FSUB) {
2602         // x-0 --> x
2603         if (ConstantFPSDNode *CFP = dyn_cast<ConstantFPSDNode>(N2))
2604           if (CFP->getValueAPF().isZero())
2605             return N1;
2606       }
2607     }
2608     assert(N1.getValueType() == N2.getValueType() &&
2609            N1.getValueType() == VT && "Binary operator types must match!");
2610     break;
2611   case ISD::FCOPYSIGN:   // N1 and result must match.  N1/N2 need not match.
2612     assert(N1.getValueType() == VT &&
2613            N1.getValueType().isFloatingPoint() &&
2614            N2.getValueType().isFloatingPoint() &&
2615            "Invalid FCOPYSIGN!");
2616     break;
2617   case ISD::SHL:
2618   case ISD::SRA:
2619   case ISD::SRL:
2620   case ISD::ROTL:
2621   case ISD::ROTR:
2622     assert(VT == N1.getValueType() &&
2623            "Shift operators return type must be the same as their first arg");
2624     assert(VT.isInteger() && N2.getValueType().isInteger() &&
2625            "Shifts only work on integers");
2626 
2627     // Always fold shifts of i1 values so the code generator doesn't need to
2628     // handle them.  Since we know the size of the shift has to be less than the
2629     // size of the value, the shift/rotate count is guaranteed to be zero.
2630     if (VT == MVT::i1)
2631       return N1;
2632     break;
2633   case ISD::FP_ROUND_INREG: {
2634     MVT EVT = cast<VTSDNode>(N2)->getVT();
2635     assert(VT == N1.getValueType() && "Not an inreg round!");
2636     assert(VT.isFloatingPoint() && EVT.isFloatingPoint() &&
2637            "Cannot FP_ROUND_INREG integer types");
2638     assert(EVT.bitsLE(VT) && "Not rounding down!");
2639     if (cast<VTSDNode>(N2)->getVT() == VT) return N1;  // Not actually rounding.
2640     break;
2641   }
2642   case ISD::FP_ROUND:
2643     assert(VT.isFloatingPoint() &&
2644            N1.getValueType().isFloatingPoint() &&
2645            VT.bitsLE(N1.getValueType()) &&
2646            isa<ConstantSDNode>(N2) && "Invalid FP_ROUND!");
2647     if (N1.getValueType() == VT) return N1;  // noop conversion.
2648     break;
2649   case ISD::AssertSext:
2650   case ISD::AssertZext: {
2651     MVT EVT = cast<VTSDNode>(N2)->getVT();
2652     assert(VT == N1.getValueType() && "Not an inreg extend!");
2653     assert(VT.isInteger() && EVT.isInteger() &&
2654            "Cannot *_EXTEND_INREG FP types");
2655     assert(EVT.bitsLE(VT) && "Not extending!");
2656     if (VT == EVT) return N1; // noop assertion.
2657     break;
2658   }
2659   case ISD::SIGN_EXTEND_INREG: {
2660     MVT EVT = cast<VTSDNode>(N2)->getVT();
2661     assert(VT == N1.getValueType() && "Not an inreg extend!");
2662     assert(VT.isInteger() && EVT.isInteger() &&
2663            "Cannot *_EXTEND_INREG FP types");
2664     assert(EVT.bitsLE(VT) && "Not extending!");
2665     if (EVT == VT) return N1;  // Not actually extending
2666 
2667     if (N1C) {
2668       APInt Val = N1C->getAPIntValue();
2669       unsigned FromBits = cast<VTSDNode>(N2)->getVT().getSizeInBits();
2670       Val <<= Val.getBitWidth()-FromBits;
2671       Val = Val.ashr(Val.getBitWidth()-FromBits);
2672       return getConstant(Val, VT);
2673     }
2674     break;
2675   }
2676   case ISD::EXTRACT_VECTOR_ELT:
2677     // EXTRACT_VECTOR_ELT of an UNDEF is an UNDEF.
2678     if (N1.getOpcode() == ISD::UNDEF)
2679       return getUNDEF(VT);
2680 
2681     // EXTRACT_VECTOR_ELT of CONCAT_VECTORS is often formed while lowering is
2682     // expanding copies of large vectors from registers.
2683     if (N2C &&
2684         N1.getOpcode() == ISD::CONCAT_VECTORS &&
2685         N1.getNumOperands() > 0) {
2686       unsigned Factor =
2687         N1.getOperand(0).getValueType().getVectorNumElements();
2688       return getNode(ISD::EXTRACT_VECTOR_ELT, DL, VT,
2689                      N1.getOperand(N2C->getZExtValue() / Factor),
2690                      getConstant(N2C->getZExtValue() % Factor,
2691                                  N2.getValueType()));
2692     }
2693 
2694     // EXTRACT_VECTOR_ELT of BUILD_VECTOR is often formed while lowering is
2695     // expanding large vector constants.
2696     if (N2C && N1.getOpcode() == ISD::BUILD_VECTOR) {
2697       SDValue Elt = N1.getOperand(N2C->getZExtValue());
2698       MVT VEltTy = N1.getValueType().getVectorElementType();
2699       if (Elt.getValueType() != VEltTy) {
2700         // If the vector element type is not legal, the BUILD_VECTOR operands
2701         // are promoted and implicitly truncated.  Make that explicit here.
2702         Elt = getNode(ISD::TRUNCATE, DL, VEltTy, Elt);
2703       }
2704       if (VT != VEltTy) {
2705         // If the vector element type is not legal, the EXTRACT_VECTOR_ELT
2706         // result is implicitly extended.
2707         Elt = getNode(ISD::ANY_EXTEND, DL, VT, Elt);
2708       }
2709       return Elt;
2710     }
2711 
2712     // EXTRACT_VECTOR_ELT of INSERT_VECTOR_ELT is often formed when vector
2713     // operations are lowered to scalars.
2714     if (N1.getOpcode() == ISD::INSERT_VECTOR_ELT) {
2715       // If the indices are the same, return the inserted element.
2716       if (N1.getOperand(2) == N2)
2717         return N1.getOperand(1);
2718       // If the indices are known different, extract the element from
2719       // the original vector.
2720       else if (isa<ConstantSDNode>(N1.getOperand(2)) &&
2721                isa<ConstantSDNode>(N2))
2722         return getNode(ISD::EXTRACT_VECTOR_ELT, DL, VT, N1.getOperand(0), N2);
2723     }
2724     break;
2725   case ISD::EXTRACT_ELEMENT:
2726     assert(N2C && (unsigned)N2C->getZExtValue() < 2 && "Bad EXTRACT_ELEMENT!");
2727     assert(!N1.getValueType().isVector() && !VT.isVector() &&
2728            (N1.getValueType().isInteger() == VT.isInteger()) &&
2729            "Wrong types for EXTRACT_ELEMENT!");
2730 
2731     // EXTRACT_ELEMENT of BUILD_PAIR is often formed while legalize is expanding
2732     // 64-bit integers into 32-bit parts.  Instead of building the extract of
2733     // the BUILD_PAIR, only to have legalize rip it apart, just do it now.
2734     if (N1.getOpcode() == ISD::BUILD_PAIR)
2735       return N1.getOperand(N2C->getZExtValue());
2736 
2737     // EXTRACT_ELEMENT of a constant int is also very common.
2738     if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(N1)) {
2739       unsigned ElementSize = VT.getSizeInBits();
2740       unsigned Shift = ElementSize * N2C->getZExtValue();
2741       APInt ShiftedVal = C->getAPIntValue().lshr(Shift);
2742       return getConstant(ShiftedVal.trunc(ElementSize), VT);
2743     }
2744     break;
2745   case ISD::EXTRACT_SUBVECTOR:
2746     if (N1.getValueType() == VT) // Trivial extraction.
2747       return N1;
2748     break;
2749   }
2750 
2751   if (N1C) {
2752     if (N2C) {
2753       SDValue SV = FoldConstantArithmetic(Opcode, VT, N1C, N2C);
2754       if (SV.getNode()) return SV;
2755     } else {      // Cannonicalize constant to RHS if commutative
2756       if (isCommutativeBinOp(Opcode)) {
2757         std::swap(N1C, N2C);
2758         std::swap(N1, N2);
2759       }
2760     }
2761   }
2762 
2763   // Constant fold FP operations.
2764   ConstantFPSDNode *N1CFP = dyn_cast<ConstantFPSDNode>(N1.getNode());
2765   ConstantFPSDNode *N2CFP = dyn_cast<ConstantFPSDNode>(N2.getNode());
2766   if (N1CFP) {
2767     if (!N2CFP && isCommutativeBinOp(Opcode)) {
2768       // Cannonicalize constant to RHS if commutative
2769       std::swap(N1CFP, N2CFP);
2770       std::swap(N1, N2);
2771     } else if (N2CFP && VT != MVT::ppcf128) {
2772       APFloat V1 = N1CFP->getValueAPF(), V2 = N2CFP->getValueAPF();
2773       APFloat::opStatus s;
2774       switch (Opcode) {
2775       case ISD::FADD:
2776         s = V1.add(V2, APFloat::rmNearestTiesToEven);
2777         if (s != APFloat::opInvalidOp)
2778           return getConstantFP(V1, VT);
2779         break;
2780       case ISD::FSUB:
2781         s = V1.subtract(V2, APFloat::rmNearestTiesToEven);
2782         if (s!=APFloat::opInvalidOp)
2783           return getConstantFP(V1, VT);
2784         break;
2785       case ISD::FMUL:
2786         s = V1.multiply(V2, APFloat::rmNearestTiesToEven);
2787         if (s!=APFloat::opInvalidOp)
2788           return getConstantFP(V1, VT);
2789         break;
2790       case ISD::FDIV:
2791         s = V1.divide(V2, APFloat::rmNearestTiesToEven);
2792         if (s!=APFloat::opInvalidOp && s!=APFloat::opDivByZero)
2793           return getConstantFP(V1, VT);
2794         break;
2795       case ISD::FREM :
2796         s = V1.mod(V2, APFloat::rmNearestTiesToEven);
2797         if (s!=APFloat::opInvalidOp && s!=APFloat::opDivByZero)
2798           return getConstantFP(V1, VT);
2799         break;
2800       case ISD::FCOPYSIGN:
2801         V1.copySign(V2);
2802         return getConstantFP(V1, VT);
2803       default: break;
2804       }
2805     }
2806   }
2807 
2808   // Canonicalize an UNDEF to the RHS, even over a constant.
2809   if (N1.getOpcode() == ISD::UNDEF) {
2810     if (isCommutativeBinOp(Opcode)) {
2811       std::swap(N1, N2);
2812     } else {
2813       switch (Opcode) {
2814       case ISD::FP_ROUND_INREG:
2815       case ISD::SIGN_EXTEND_INREG:
2816       case ISD::SUB:
2817       case ISD::FSUB:
2818       case ISD::FDIV:
2819       case ISD::FREM:
2820       case ISD::SRA:
2821         return N1;     // fold op(undef, arg2) -> undef
2822       case ISD::UDIV:
2823       case ISD::SDIV:
2824       case ISD::UREM:
2825       case ISD::SREM:
2826       case ISD::SRL:
2827       case ISD::SHL:
2828         if (!VT.isVector())
2829           return getConstant(0, VT);    // fold op(undef, arg2) -> 0
2830         // For vectors, we can't easily build an all zero vector, just return
2831         // the LHS.
2832         return N2;
2833       }
2834     }
2835   }
2836 
2837   // Fold a bunch of operators when the RHS is undef.
2838   if (N2.getOpcode() == ISD::UNDEF) {
2839     switch (Opcode) {
2840     case ISD::XOR:
2841       if (N1.getOpcode() == ISD::UNDEF)
2842         // Handle undef ^ undef -> 0 special case. This is a common
2843         // idiom (misuse).
2844         return getConstant(0, VT);
2845       // fallthrough
2846     case ISD::ADD:
2847     case ISD::ADDC:
2848     case ISD::ADDE:
2849     case ISD::SUB:
2850     case ISD::UDIV:
2851     case ISD::SDIV:
2852     case ISD::UREM:
2853     case ISD::SREM:
2854       return N2;       // fold op(arg1, undef) -> undef
2855     case ISD::FADD:
2856     case ISD::FSUB:
2857     case ISD::FMUL:
2858     case ISD::FDIV:
2859     case ISD::FREM:
2860       if (UnsafeFPMath)
2861         return N2;
2862       break;
2863     case ISD::MUL:
2864     case ISD::AND:
2865     case ISD::SRL:
2866     case ISD::SHL:
2867       if (!VT.isVector())
2868         return getConstant(0, VT);  // fold op(arg1, undef) -> 0
2869       // For vectors, we can't easily build an all zero vector, just return
2870       // the LHS.
2871       return N1;
2872     case ISD::OR:
2873       if (!VT.isVector())
2874         return getConstant(APInt::getAllOnesValue(VT.getSizeInBits()), VT);
2875       // For vectors, we can't easily build an all one vector, just return
2876       // the LHS.
2877       return N1;
2878     case ISD::SRA:
2879       return N1;
2880     }
2881   }
2882 
2883   // Memoize this node if possible.
2884   SDNode *N;
2885   SDVTList VTs = getVTList(VT);
2886   if (VT != MVT::Flag) {
2887     SDValue Ops[] = { N1, N2 };
2888     FoldingSetNodeID ID;
2889     AddNodeIDNode(ID, Opcode, VTs, Ops, 2);
2890     void *IP = 0;
2891     if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
2892       return SDValue(E, 0);
2893     N = NodeAllocator.Allocate<BinarySDNode>();
2894     new (N) BinarySDNode(Opcode, DL, VTs, N1, N2);
2895     CSEMap.InsertNode(N, IP);
2896   } else {
2897     N = NodeAllocator.Allocate<BinarySDNode>();
2898     new (N) BinarySDNode(Opcode, DL, VTs, N1, N2);
2899   }
2900 
2901   AllNodes.push_back(N);
2902 #ifndef NDEBUG
2903   VerifyNode(N);
2904 #endif
2905   return SDValue(N, 0);
2906 }
2907 
2908 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, MVT VT,
2909                               SDValue N1, SDValue N2, SDValue N3) {
2910   // Perform various simplifications.
2911   ConstantSDNode *N1C = dyn_cast<ConstantSDNode>(N1.getNode());
2912   ConstantSDNode *N2C = dyn_cast<ConstantSDNode>(N2.getNode());
2913   switch (Opcode) {
2914   case ISD::CONCAT_VECTORS:
2915     // A CONCAT_VECTOR with all operands BUILD_VECTOR can be simplified to
2916     // one big BUILD_VECTOR.
2917     if (N1.getOpcode() == ISD::BUILD_VECTOR &&
2918         N2.getOpcode() == ISD::BUILD_VECTOR &&
2919         N3.getOpcode() == ISD::BUILD_VECTOR) {
2920       SmallVector<SDValue, 16> Elts(N1.getNode()->op_begin(), N1.getNode()->op_end());
2921       Elts.insert(Elts.end(), N2.getNode()->op_begin(), N2.getNode()->op_end());
2922       Elts.insert(Elts.end(), N3.getNode()->op_begin(), N3.getNode()->op_end());
2923       return getNode(ISD::BUILD_VECTOR, DL, VT, &Elts[0], Elts.size());
2924     }
2925     break;
2926   case ISD::SETCC: {
2927     // Use FoldSetCC to simplify SETCC's.
2928     SDValue Simp = FoldSetCC(VT, N1, N2, cast<CondCodeSDNode>(N3)->get(), DL);
2929     if (Simp.getNode()) return Simp;
2930     break;
2931   }
2932   case ISD::SELECT:
2933     if (N1C) {
2934      if (N1C->getZExtValue())
2935         return N2;             // select true, X, Y -> X
2936       else
2937         return N3;             // select false, X, Y -> Y
2938     }
2939 
2940     if (N2 == N3) return N2;   // select C, X, X -> X
2941     break;
2942   case ISD::BRCOND:
2943     if (N2C) {
2944       if (N2C->getZExtValue()) // Unconditional branch
2945         return getNode(ISD::BR, DL, MVT::Other, N1, N3);
2946       else
2947         return N1;         // Never-taken branch
2948     }
2949     break;
2950   case ISD::VECTOR_SHUFFLE:
2951     llvm_unreachable("should use getVectorShuffle constructor!");
2952     break;
2953   case ISD::BIT_CONVERT:
2954     // Fold bit_convert nodes from a type to themselves.
2955     if (N1.getValueType() == VT)
2956       return N1;
2957     break;
2958   }
2959 
2960   // Memoize node if it doesn't produce a flag.
2961   SDNode *N;
2962   SDVTList VTs = getVTList(VT);
2963   if (VT != MVT::Flag) {
2964     SDValue Ops[] = { N1, N2, N3 };
2965     FoldingSetNodeID ID;
2966     AddNodeIDNode(ID, Opcode, VTs, Ops, 3);
2967     void *IP = 0;
2968     if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
2969       return SDValue(E, 0);
2970     N = NodeAllocator.Allocate<TernarySDNode>();
2971     new (N) TernarySDNode(Opcode, DL, VTs, N1, N2, N3);
2972     CSEMap.InsertNode(N, IP);
2973   } else {
2974     N = NodeAllocator.Allocate<TernarySDNode>();
2975     new (N) TernarySDNode(Opcode, DL, VTs, N1, N2, N3);
2976   }
2977   AllNodes.push_back(N);
2978 #ifndef NDEBUG
2979   VerifyNode(N);
2980 #endif
2981   return SDValue(N, 0);
2982 }
2983 
2984 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, MVT VT,
2985                               SDValue N1, SDValue N2, SDValue N3,
2986                               SDValue N4) {
2987   SDValue Ops[] = { N1, N2, N3, N4 };
2988   return getNode(Opcode, DL, VT, Ops, 4);
2989 }
2990 
2991 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, MVT VT,
2992                               SDValue N1, SDValue N2, SDValue N3,
2993                               SDValue N4, SDValue N5) {
2994   SDValue Ops[] = { N1, N2, N3, N4, N5 };
2995   return getNode(Opcode, DL, VT, Ops, 5);
2996 }
2997 
2998 /// getMemsetValue - Vectorized representation of the memset value
2999 /// operand.
3000 static SDValue getMemsetValue(SDValue Value, MVT VT, SelectionDAG &DAG,
3001                               DebugLoc dl) {
3002   unsigned NumBits = VT.isVector() ?
3003     VT.getVectorElementType().getSizeInBits() : VT.getSizeInBits();
3004   if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Value)) {
3005     APInt Val = APInt(NumBits, C->getZExtValue() & 255);
3006     unsigned Shift = 8;
3007     for (unsigned i = NumBits; i > 8; i >>= 1) {
3008       Val = (Val << Shift) | Val;
3009       Shift <<= 1;
3010     }
3011     if (VT.isInteger())
3012       return DAG.getConstant(Val, VT);
3013     return DAG.getConstantFP(APFloat(Val), VT);
3014   }
3015 
3016   const TargetLowering &TLI = DAG.getTargetLoweringInfo();
3017   Value = DAG.getNode(ISD::ZERO_EXTEND, dl, VT, Value);
3018   unsigned Shift = 8;
3019   for (unsigned i = NumBits; i > 8; i >>= 1) {
3020     Value = DAG.getNode(ISD::OR, dl, VT,
3021                         DAG.getNode(ISD::SHL, dl, VT, Value,
3022                                     DAG.getConstant(Shift,
3023                                                     TLI.getShiftAmountTy())),
3024                         Value);
3025     Shift <<= 1;
3026   }
3027 
3028   return Value;
3029 }
3030 
3031 /// getMemsetStringVal - Similar to getMemsetValue. Except this is only
3032 /// used when a memcpy is turned into a memset when the source is a constant
3033 /// string ptr.
3034 static SDValue getMemsetStringVal(MVT VT, DebugLoc dl, SelectionDAG &DAG,
3035                                     const TargetLowering &TLI,
3036                                     std::string &Str, unsigned Offset) {
3037   // Handle vector with all elements zero.
3038   if (Str.empty()) {
3039     if (VT.isInteger())
3040       return DAG.getConstant(0, VT);
3041     unsigned NumElts = VT.getVectorNumElements();
3042     MVT EltVT = (VT.getVectorElementType() == MVT::f32) ? MVT::i32 : MVT::i64;
3043     return DAG.getNode(ISD::BIT_CONVERT, dl, VT,
3044                        DAG.getConstant(0, MVT::getVectorVT(EltVT, NumElts)));
3045   }
3046 
3047   assert(!VT.isVector() && "Can't handle vector type here!");
3048   unsigned NumBits = VT.getSizeInBits();
3049   unsigned MSB = NumBits / 8;
3050   uint64_t Val = 0;
3051   if (TLI.isLittleEndian())
3052     Offset = Offset + MSB - 1;
3053   for (unsigned i = 0; i != MSB; ++i) {
3054     Val = (Val << 8) | (unsigned char)Str[Offset];
3055     Offset += TLI.isLittleEndian() ? -1 : 1;
3056   }
3057   return DAG.getConstant(Val, VT);
3058 }
3059 
3060 /// getMemBasePlusOffset - Returns base and offset node for the
3061 ///
3062 static SDValue getMemBasePlusOffset(SDValue Base, unsigned Offset,
3063                                       SelectionDAG &DAG) {
3064   MVT VT = Base.getValueType();
3065   return DAG.getNode(ISD::ADD, Base.getDebugLoc(),
3066                      VT, Base, DAG.getConstant(Offset, VT));
3067 }
3068 
3069 /// isMemSrcFromString - Returns true if memcpy source is a string constant.
3070 ///
3071 static bool isMemSrcFromString(SDValue Src, std::string &Str) {
3072   unsigned SrcDelta = 0;
3073   GlobalAddressSDNode *G = NULL;
3074   if (Src.getOpcode() == ISD::GlobalAddress)
3075     G = cast<GlobalAddressSDNode>(Src);
3076   else if (Src.getOpcode() == ISD::ADD &&
3077            Src.getOperand(0).getOpcode() == ISD::GlobalAddress &&
3078            Src.getOperand(1).getOpcode() == ISD::Constant) {
3079     G = cast<GlobalAddressSDNode>(Src.getOperand(0));
3080     SrcDelta = cast<ConstantSDNode>(Src.getOperand(1))->getZExtValue();
3081   }
3082   if (!G)
3083     return false;
3084 
3085   GlobalVariable *GV = dyn_cast<GlobalVariable>(G->getGlobal());
3086   if (GV && GetConstantStringInfo(GV, Str, SrcDelta, false))
3087     return true;
3088 
3089   return false;
3090 }
3091 
3092 /// MeetsMaxMemopRequirement - Determines if the number of memory ops required
3093 /// to replace the memset / memcpy is below the threshold. It also returns the
3094 /// types of the sequence of memory ops to perform memset / memcpy.
3095 static
3096 bool MeetsMaxMemopRequirement(std::vector<MVT> &MemOps,
3097                               SDValue Dst, SDValue Src,
3098                               unsigned Limit, uint64_t Size, unsigned &Align,
3099                               std::string &Str, bool &isSrcStr,
3100                               SelectionDAG &DAG,
3101                               const TargetLowering &TLI) {
3102   isSrcStr = isMemSrcFromString(Src, Str);
3103   bool isSrcConst = isa<ConstantSDNode>(Src);
3104   bool AllowUnalign = TLI.allowsUnalignedMemoryAccesses();
3105   MVT VT = TLI.getOptimalMemOpType(Size, Align, isSrcConst, isSrcStr, DAG);
3106   if (VT != MVT::iAny) {
3107     unsigned NewAlign = (unsigned)
3108       TLI.getTargetData()->getABITypeAlignment(VT.getTypeForMVT());
3109     // If source is a string constant, this will require an unaligned load.
3110     if (NewAlign > Align && (isSrcConst || AllowUnalign)) {
3111       if (Dst.getOpcode() != ISD::FrameIndex) {
3112         // Can't change destination alignment. It requires a unaligned store.
3113         if (AllowUnalign)
3114           VT = MVT::iAny;
3115       } else {
3116         int FI = cast<FrameIndexSDNode>(Dst)->getIndex();
3117         MachineFrameInfo *MFI = DAG.getMachineFunction().getFrameInfo();
3118         if (MFI->isFixedObjectIndex(FI)) {
3119           // Can't change destination alignment. It requires a unaligned store.
3120           if (AllowUnalign)
3121             VT = MVT::iAny;
3122         } else {
3123           // Give the stack frame object a larger alignment if needed.
3124           if (MFI->getObjectAlignment(FI) < NewAlign)
3125             MFI->setObjectAlignment(FI, NewAlign);
3126           Align = NewAlign;
3127         }
3128       }
3129     }
3130   }
3131 
3132   if (VT == MVT::iAny) {
3133     if (AllowUnalign) {
3134       VT = MVT::i64;
3135     } else {
3136       switch (Align & 7) {
3137       case 0:  VT = MVT::i64; break;
3138       case 4:  VT = MVT::i32; break;
3139       case 2:  VT = MVT::i16; break;
3140       default: VT = MVT::i8;  break;
3141       }
3142     }
3143 
3144     MVT LVT = MVT::i64;
3145     while (!TLI.isTypeLegal(LVT))
3146       LVT = (MVT::SimpleValueType)(LVT.getSimpleVT() - 1);
3147     assert(LVT.isInteger());
3148 
3149     if (VT.bitsGT(LVT))
3150       VT = LVT;
3151   }
3152 
3153   unsigned NumMemOps = 0;
3154   while (Size != 0) {
3155     unsigned VTSize = VT.getSizeInBits() / 8;
3156     while (VTSize > Size) {
3157       // For now, only use non-vector load / store's for the left-over pieces.
3158       if (VT.isVector()) {
3159         VT = MVT::i64;
3160         while (!TLI.isTypeLegal(VT))
3161           VT = (MVT::SimpleValueType)(VT.getSimpleVT() - 1);
3162         VTSize = VT.getSizeInBits() / 8;
3163       } else {
3164         // This can result in a type that is not legal on the target, e.g.
3165         // 1 or 2 bytes on PPC.
3166         VT = (MVT::SimpleValueType)(VT.getSimpleVT() - 1);
3167         VTSize >>= 1;
3168       }
3169     }
3170 
3171     if (++NumMemOps > Limit)
3172       return false;
3173     MemOps.push_back(VT);
3174     Size -= VTSize;
3175   }
3176 
3177   return true;
3178 }
3179 
3180 static SDValue getMemcpyLoadsAndStores(SelectionDAG &DAG, DebugLoc dl,
3181                                          SDValue Chain, SDValue Dst,
3182                                          SDValue Src, uint64_t Size,
3183                                          unsigned Align, bool AlwaysInline,
3184                                          const Value *DstSV, uint64_t DstSVOff,
3185                                          const Value *SrcSV, uint64_t SrcSVOff){
3186   const TargetLowering &TLI = DAG.getTargetLoweringInfo();
3187 
3188   // Expand memcpy to a series of load and store ops if the size operand falls
3189   // below a certain threshold.
3190   std::vector<MVT> MemOps;
3191   uint64_t Limit = -1ULL;
3192   if (!AlwaysInline)
3193     Limit = TLI.getMaxStoresPerMemcpy();
3194   unsigned DstAlign = Align;  // Destination alignment can change.
3195   std::string Str;
3196   bool CopyFromStr;
3197   if (!MeetsMaxMemopRequirement(MemOps, Dst, Src, Limit, Size, DstAlign,
3198                                 Str, CopyFromStr, DAG, TLI))
3199     return SDValue();
3200 
3201 
3202   bool isZeroStr = CopyFromStr && Str.empty();
3203   SmallVector<SDValue, 8> OutChains;
3204   unsigned NumMemOps = MemOps.size();
3205   uint64_t SrcOff = 0, DstOff = 0;
3206   for (unsigned i = 0; i < NumMemOps; i++) {
3207     MVT VT = MemOps[i];
3208     unsigned VTSize = VT.getSizeInBits() / 8;
3209     SDValue Value, Store;
3210 
3211     if (CopyFromStr && (isZeroStr || !VT.isVector())) {
3212       // It's unlikely a store of a vector immediate can be done in a single
3213       // instruction. It would require a load from a constantpool first.
3214       // We also handle store a vector with all zero's.
3215       // FIXME: Handle other cases where store of vector immediate is done in
3216       // a single instruction.
3217       Value = getMemsetStringVal(VT, dl, DAG, TLI, Str, SrcOff);
3218       Store = DAG.getStore(Chain, dl, Value,
3219                            getMemBasePlusOffset(Dst, DstOff, DAG),
3220                            DstSV, DstSVOff + DstOff, false, DstAlign);
3221     } else {
3222       // The type might not be legal for the target.  This should only happen
3223       // if the type is smaller than a legal type, as on PPC, so the right
3224       // thing to do is generate a LoadExt/StoreTrunc pair.  These simplify
3225       // to Load/Store if NVT==VT.
3226       // FIXME does the case above also need this?
3227       MVT NVT = TLI.getTypeToTransformTo(VT);
3228       assert(NVT.bitsGE(VT));
3229       Value = DAG.getExtLoad(ISD::EXTLOAD, dl, NVT, Chain,
3230                              getMemBasePlusOffset(Src, SrcOff, DAG),
3231                              SrcSV, SrcSVOff + SrcOff, VT, false, Align);
3232       Store = DAG.getTruncStore(Chain, dl, Value,
3233                              getMemBasePlusOffset(Dst, DstOff, DAG),
3234                              DstSV, DstSVOff + DstOff, VT, false, DstAlign);
3235     }
3236     OutChains.push_back(Store);
3237     SrcOff += VTSize;
3238     DstOff += VTSize;
3239   }
3240 
3241   return DAG.getNode(ISD::TokenFactor, dl, MVT::Other,
3242                      &OutChains[0], OutChains.size());
3243 }
3244 
3245 static SDValue getMemmoveLoadsAndStores(SelectionDAG &DAG, DebugLoc dl,
3246                                           SDValue Chain, SDValue Dst,
3247                                           SDValue Src, uint64_t Size,
3248                                           unsigned Align, bool AlwaysInline,
3249                                           const Value *DstSV, uint64_t DstSVOff,
3250                                           const Value *SrcSV, uint64_t SrcSVOff){
3251   const TargetLowering &TLI = DAG.getTargetLoweringInfo();
3252 
3253   // Expand memmove to a series of load and store ops if the size operand falls
3254   // below a certain threshold.
3255   std::vector<MVT> MemOps;
3256   uint64_t Limit = -1ULL;
3257   if (!AlwaysInline)
3258     Limit = TLI.getMaxStoresPerMemmove();
3259   unsigned DstAlign = Align;  // Destination alignment can change.
3260   std::string Str;
3261   bool CopyFromStr;
3262   if (!MeetsMaxMemopRequirement(MemOps, Dst, Src, Limit, Size, DstAlign,
3263                                 Str, CopyFromStr, DAG, TLI))
3264     return SDValue();
3265 
3266   uint64_t SrcOff = 0, DstOff = 0;
3267 
3268   SmallVector<SDValue, 8> LoadValues;
3269   SmallVector<SDValue, 8> LoadChains;
3270   SmallVector<SDValue, 8> OutChains;
3271   unsigned NumMemOps = MemOps.size();
3272   for (unsigned i = 0; i < NumMemOps; i++) {
3273     MVT VT = MemOps[i];
3274     unsigned VTSize = VT.getSizeInBits() / 8;
3275     SDValue Value, Store;
3276 
3277     Value = DAG.getLoad(VT, dl, Chain,
3278                         getMemBasePlusOffset(Src, SrcOff, DAG),
3279                         SrcSV, SrcSVOff + SrcOff, false, Align);
3280     LoadValues.push_back(Value);
3281     LoadChains.push_back(Value.getValue(1));
3282     SrcOff += VTSize;
3283   }
3284   Chain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other,
3285                       &LoadChains[0], LoadChains.size());
3286   OutChains.clear();
3287   for (unsigned i = 0; i < NumMemOps; i++) {
3288     MVT VT = MemOps[i];
3289     unsigned VTSize = VT.getSizeInBits() / 8;
3290     SDValue Value, Store;
3291 
3292     Store = DAG.getStore(Chain, dl, LoadValues[i],
3293                          getMemBasePlusOffset(Dst, DstOff, DAG),
3294                          DstSV, DstSVOff + DstOff, false, DstAlign);
3295     OutChains.push_back(Store);
3296     DstOff += VTSize;
3297   }
3298 
3299   return DAG.getNode(ISD::TokenFactor, dl, MVT::Other,
3300                      &OutChains[0], OutChains.size());
3301 }
3302 
3303 static SDValue getMemsetStores(SelectionDAG &DAG, DebugLoc dl,
3304                                  SDValue Chain, SDValue Dst,
3305                                  SDValue Src, uint64_t Size,
3306                                  unsigned Align,
3307                                  const Value *DstSV, uint64_t DstSVOff) {
3308   const TargetLowering &TLI = DAG.getTargetLoweringInfo();
3309 
3310   // Expand memset to a series of load/store ops if the size operand
3311   // falls below a certain threshold.
3312   std::vector<MVT> MemOps;
3313   std::string Str;
3314   bool CopyFromStr;
3315   if (!MeetsMaxMemopRequirement(MemOps, Dst, Src, TLI.getMaxStoresPerMemset(),
3316                                 Size, Align, Str, CopyFromStr, DAG, TLI))
3317     return SDValue();
3318 
3319   SmallVector<SDValue, 8> OutChains;
3320   uint64_t DstOff = 0;
3321 
3322   unsigned NumMemOps = MemOps.size();
3323   for (unsigned i = 0; i < NumMemOps; i++) {
3324     MVT VT = MemOps[i];
3325     unsigned VTSize = VT.getSizeInBits() / 8;
3326     SDValue Value = getMemsetValue(Src, VT, DAG, dl);
3327     SDValue Store = DAG.getStore(Chain, dl, Value,
3328                                  getMemBasePlusOffset(Dst, DstOff, DAG),
3329                                  DstSV, DstSVOff + DstOff);
3330     OutChains.push_back(Store);
3331     DstOff += VTSize;
3332   }
3333 
3334   return DAG.getNode(ISD::TokenFactor, dl, MVT::Other,
3335                      &OutChains[0], OutChains.size());
3336 }
3337 
3338 SDValue SelectionDAG::getMemcpy(SDValue Chain, DebugLoc dl, SDValue Dst,
3339                                 SDValue Src, SDValue Size,
3340                                 unsigned Align, bool AlwaysInline,
3341                                 const Value *DstSV, uint64_t DstSVOff,
3342                                 const Value *SrcSV, uint64_t SrcSVOff) {
3343 
3344   // Check to see if we should lower the memcpy to loads and stores first.
3345   // For cases within the target-specified limits, this is the best choice.
3346   ConstantSDNode *ConstantSize = dyn_cast<ConstantSDNode>(Size);
3347   if (ConstantSize) {
3348     // Memcpy with size zero? Just return the original chain.
3349     if (ConstantSize->isNullValue())
3350       return Chain;
3351 
3352     SDValue Result =
3353       getMemcpyLoadsAndStores(*this, dl, Chain, Dst, Src,
3354                               ConstantSize->getZExtValue(),
3355                               Align, false, DstSV, DstSVOff, SrcSV, SrcSVOff);
3356     if (Result.getNode())
3357       return Result;
3358   }
3359 
3360   // Then check to see if we should lower the memcpy with target-specific
3361   // code. If the target chooses to do this, this is the next best.
3362   SDValue Result =
3363     TLI.EmitTargetCodeForMemcpy(*this, dl, Chain, Dst, Src, Size, Align,
3364                                 AlwaysInline,
3365                                 DstSV, DstSVOff, SrcSV, SrcSVOff);
3366   if (Result.getNode())
3367     return Result;
3368 
3369   // If we really need inline code and the target declined to provide it,
3370   // use a (potentially long) sequence of loads and stores.
3371   if (AlwaysInline) {
3372     assert(ConstantSize && "AlwaysInline requires a constant size!");
3373     return getMemcpyLoadsAndStores(*this, dl, Chain, Dst, Src,
3374                                    ConstantSize->getZExtValue(), Align, true,
3375                                    DstSV, DstSVOff, SrcSV, SrcSVOff);
3376   }
3377 
3378   // Emit a library call.
3379   TargetLowering::ArgListTy Args;
3380   TargetLowering::ArgListEntry Entry;
3381   Entry.Ty = TLI.getTargetData()->getIntPtrType();
3382   Entry.Node = Dst; Args.push_back(Entry);
3383   Entry.Node = Src; Args.push_back(Entry);
3384   Entry.Node = Size; Args.push_back(Entry);
3385   // FIXME: pass in DebugLoc
3386   std::pair<SDValue,SDValue> CallResult =
3387     TLI.LowerCallTo(Chain, Type::VoidTy,
3388                     false, false, false, false, 0, CallingConv::C, false,
3389                     getExternalSymbol(TLI.getLibcallName(RTLIB::MEMCPY),
3390                                       TLI.getPointerTy()),
3391                     Args, *this, dl);
3392   return CallResult.second;
3393 }
3394 
3395 SDValue SelectionDAG::getMemmove(SDValue Chain, DebugLoc dl, SDValue Dst,
3396                                  SDValue Src, SDValue Size,
3397                                  unsigned Align,
3398                                  const Value *DstSV, uint64_t DstSVOff,
3399                                  const Value *SrcSV, uint64_t SrcSVOff) {
3400 
3401   // Check to see if we should lower the memmove to loads and stores first.
3402   // For cases within the target-specified limits, this is the best choice.
3403   ConstantSDNode *ConstantSize = dyn_cast<ConstantSDNode>(Size);
3404   if (ConstantSize) {
3405     // Memmove with size zero? Just return the original chain.
3406     if (ConstantSize->isNullValue())
3407       return Chain;
3408 
3409     SDValue Result =
3410       getMemmoveLoadsAndStores(*this, dl, Chain, Dst, Src,
3411                                ConstantSize->getZExtValue(),
3412                                Align, false, DstSV, DstSVOff, SrcSV, SrcSVOff);
3413     if (Result.getNode())
3414       return Result;
3415   }
3416 
3417   // Then check to see if we should lower the memmove with target-specific
3418   // code. If the target chooses to do this, this is the next best.
3419   SDValue Result =
3420     TLI.EmitTargetCodeForMemmove(*this, dl, Chain, Dst, Src, Size, Align,
3421                                  DstSV, DstSVOff, SrcSV, SrcSVOff);
3422   if (Result.getNode())
3423     return Result;
3424 
3425   // Emit a library call.
3426   TargetLowering::ArgListTy Args;
3427   TargetLowering::ArgListEntry Entry;
3428   Entry.Ty = TLI.getTargetData()->getIntPtrType();
3429   Entry.Node = Dst; Args.push_back(Entry);
3430   Entry.Node = Src; Args.push_back(Entry);
3431   Entry.Node = Size; Args.push_back(Entry);
3432   // FIXME:  pass in DebugLoc
3433   std::pair<SDValue,SDValue> CallResult =
3434     TLI.LowerCallTo(Chain, Type::VoidTy,
3435                     false, false, false, false, 0, CallingConv::C, false,
3436                     getExternalSymbol(TLI.getLibcallName(RTLIB::MEMMOVE),
3437                                       TLI.getPointerTy()),
3438                     Args, *this, dl);
3439   return CallResult.second;
3440 }
3441 
3442 SDValue SelectionDAG::getMemset(SDValue Chain, DebugLoc dl, SDValue Dst,
3443                                 SDValue Src, SDValue Size,
3444                                 unsigned Align,
3445                                 const Value *DstSV, uint64_t DstSVOff) {
3446 
3447   // Check to see if we should lower the memset to stores first.
3448   // For cases within the target-specified limits, this is the best choice.
3449   ConstantSDNode *ConstantSize = dyn_cast<ConstantSDNode>(Size);
3450   if (ConstantSize) {
3451     // Memset with size zero? Just return the original chain.
3452     if (ConstantSize->isNullValue())
3453       return Chain;
3454 
3455     SDValue Result =
3456       getMemsetStores(*this, dl, Chain, Dst, Src, ConstantSize->getZExtValue(),
3457                       Align, DstSV, DstSVOff);
3458     if (Result.getNode())
3459       return Result;
3460   }
3461 
3462   // Then check to see if we should lower the memset with target-specific
3463   // code. If the target chooses to do this, this is the next best.
3464   SDValue Result =
3465     TLI.EmitTargetCodeForMemset(*this, dl, Chain, Dst, Src, Size, Align,
3466                                 DstSV, DstSVOff);
3467   if (Result.getNode())
3468     return Result;
3469 
3470   // Emit a library call.
3471   const Type *IntPtrTy = TLI.getTargetData()->getIntPtrType();
3472   TargetLowering::ArgListTy Args;
3473   TargetLowering::ArgListEntry Entry;
3474   Entry.Node = Dst; Entry.Ty = IntPtrTy;
3475   Args.push_back(Entry);
3476   // Extend or truncate the argument to be an i32 value for the call.
3477   if (Src.getValueType().bitsGT(MVT::i32))
3478     Src = getNode(ISD::TRUNCATE, dl, MVT::i32, Src);
3479   else
3480     Src = getNode(ISD::ZERO_EXTEND, dl, MVT::i32, Src);
3481   Entry.Node = Src; Entry.Ty = Type::Int32Ty; Entry.isSExt = true;
3482   Args.push_back(Entry);
3483   Entry.Node = Size; Entry.Ty = IntPtrTy; Entry.isSExt = false;
3484   Args.push_back(Entry);
3485   // FIXME: pass in DebugLoc
3486   std::pair<SDValue,SDValue> CallResult =
3487     TLI.LowerCallTo(Chain, Type::VoidTy,
3488                     false, false, false, false, 0, CallingConv::C, false,
3489                     getExternalSymbol(TLI.getLibcallName(RTLIB::MEMSET),
3490                                       TLI.getPointerTy()),
3491                     Args, *this, dl);
3492   return CallResult.second;
3493 }
3494 
3495 SDValue SelectionDAG::getAtomic(unsigned Opcode, DebugLoc dl, MVT MemVT,
3496                                 SDValue Chain,
3497                                 SDValue Ptr, SDValue Cmp,
3498                                 SDValue Swp, const Value* PtrVal,
3499                                 unsigned Alignment) {
3500   assert(Opcode == ISD::ATOMIC_CMP_SWAP && "Invalid Atomic Op");
3501   assert(Cmp.getValueType() == Swp.getValueType() && "Invalid Atomic Op Types");
3502 
3503   MVT VT = Cmp.getValueType();
3504 
3505   if (Alignment == 0)  // Ensure that codegen never sees alignment 0
3506     Alignment = getMVTAlignment(MemVT);
3507 
3508   SDVTList VTs = getVTList(VT, MVT::Other);
3509   FoldingSetNodeID ID;
3510   ID.AddInteger(MemVT.getRawBits());
3511   SDValue Ops[] = {Chain, Ptr, Cmp, Swp};
3512   AddNodeIDNode(ID, Opcode, VTs, Ops, 4);
3513   void* IP = 0;
3514   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
3515     return SDValue(E, 0);
3516   SDNode* N = NodeAllocator.Allocate<AtomicSDNode>();
3517   new (N) AtomicSDNode(Opcode, dl, VTs, MemVT,
3518                        Chain, Ptr, Cmp, Swp, PtrVal, Alignment);
3519   CSEMap.InsertNode(N, IP);
3520   AllNodes.push_back(N);
3521   return SDValue(N, 0);
3522 }
3523 
3524 SDValue SelectionDAG::getAtomic(unsigned Opcode, DebugLoc dl, MVT MemVT,
3525                                 SDValue Chain,
3526                                 SDValue Ptr, SDValue Val,
3527                                 const Value* PtrVal,
3528                                 unsigned Alignment) {
3529   assert((Opcode == ISD::ATOMIC_LOAD_ADD ||
3530           Opcode == ISD::ATOMIC_LOAD_SUB ||
3531           Opcode == ISD::ATOMIC_LOAD_AND ||
3532           Opcode == ISD::ATOMIC_LOAD_OR ||
3533           Opcode == ISD::ATOMIC_LOAD_XOR ||
3534           Opcode == ISD::ATOMIC_LOAD_NAND ||
3535           Opcode == ISD::ATOMIC_LOAD_MIN ||
3536           Opcode == ISD::ATOMIC_LOAD_MAX ||
3537           Opcode == ISD::ATOMIC_LOAD_UMIN ||
3538           Opcode == ISD::ATOMIC_LOAD_UMAX ||
3539           Opcode == ISD::ATOMIC_SWAP) &&
3540          "Invalid Atomic Op");
3541 
3542   MVT VT = Val.getValueType();
3543 
3544   if (Alignment == 0)  // Ensure that codegen never sees alignment 0
3545     Alignment = getMVTAlignment(MemVT);
3546 
3547   SDVTList VTs = getVTList(VT, MVT::Other);
3548   FoldingSetNodeID ID;
3549   ID.AddInteger(MemVT.getRawBits());
3550   SDValue Ops[] = {Chain, Ptr, Val};
3551   AddNodeIDNode(ID, Opcode, VTs, Ops, 3);
3552   void* IP = 0;
3553   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
3554     return SDValue(E, 0);
3555   SDNode* N = NodeAllocator.Allocate<AtomicSDNode>();
3556   new (N) AtomicSDNode(Opcode, dl, VTs, MemVT,
3557                        Chain, Ptr, Val, PtrVal, Alignment);
3558   CSEMap.InsertNode(N, IP);
3559   AllNodes.push_back(N);
3560   return SDValue(N, 0);
3561 }
3562 
3563 /// getMergeValues - Create a MERGE_VALUES node from the given operands.
3564 /// Allowed to return something different (and simpler) if Simplify is true.
3565 SDValue SelectionDAG::getMergeValues(const SDValue *Ops, unsigned NumOps,
3566                                      DebugLoc dl) {
3567   if (NumOps == 1)
3568     return Ops[0];
3569 
3570   SmallVector<MVT, 4> VTs;
3571   VTs.reserve(NumOps);
3572   for (unsigned i = 0; i < NumOps; ++i)
3573     VTs.push_back(Ops[i].getValueType());
3574   return getNode(ISD::MERGE_VALUES, dl, getVTList(&VTs[0], NumOps),
3575                  Ops, NumOps);
3576 }
3577 
3578 SDValue
3579 SelectionDAG::getMemIntrinsicNode(unsigned Opcode, DebugLoc dl,
3580                                   const MVT *VTs, unsigned NumVTs,
3581                                   const SDValue *Ops, unsigned NumOps,
3582                                   MVT MemVT, const Value *srcValue, int SVOff,
3583                                   unsigned Align, bool Vol,
3584                                   bool ReadMem, bool WriteMem) {
3585   return getMemIntrinsicNode(Opcode, dl, makeVTList(VTs, NumVTs), Ops, NumOps,
3586                              MemVT, srcValue, SVOff, Align, Vol,
3587                              ReadMem, WriteMem);
3588 }
3589 
3590 SDValue
3591 SelectionDAG::getMemIntrinsicNode(unsigned Opcode, DebugLoc dl, SDVTList VTList,
3592                                   const SDValue *Ops, unsigned NumOps,
3593                                   MVT MemVT, const Value *srcValue, int SVOff,
3594                                   unsigned Align, bool Vol,
3595                                   bool ReadMem, bool WriteMem) {
3596   // Memoize the node unless it returns a flag.
3597   MemIntrinsicSDNode *N;
3598   if (VTList.VTs[VTList.NumVTs-1] != MVT::Flag) {
3599     FoldingSetNodeID ID;
3600     AddNodeIDNode(ID, Opcode, VTList, Ops, NumOps);
3601     void *IP = 0;
3602     if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
3603       return SDValue(E, 0);
3604 
3605     N = NodeAllocator.Allocate<MemIntrinsicSDNode>();
3606     new (N) MemIntrinsicSDNode(Opcode, dl, VTList, Ops, NumOps, MemVT,
3607                                srcValue, SVOff, Align, Vol, ReadMem, WriteMem);
3608     CSEMap.InsertNode(N, IP);
3609   } else {
3610     N = NodeAllocator.Allocate<MemIntrinsicSDNode>();
3611     new (N) MemIntrinsicSDNode(Opcode, dl, VTList, Ops, NumOps, MemVT,
3612                                srcValue, SVOff, Align, Vol, ReadMem, WriteMem);
3613   }
3614   AllNodes.push_back(N);
3615   return SDValue(N, 0);
3616 }
3617 
3618 SDValue
3619 SelectionDAG::getCall(unsigned CallingConv, DebugLoc dl, bool IsVarArgs,
3620                       bool IsTailCall, bool IsInreg, SDVTList VTs,
3621                       const SDValue *Operands, unsigned NumOperands,
3622                       unsigned NumFixedArgs) {
3623   // Do not include isTailCall in the folding set profile.
3624   FoldingSetNodeID ID;
3625   AddNodeIDNode(ID, ISD::CALL, VTs, Operands, NumOperands);
3626   ID.AddInteger(CallingConv);
3627   ID.AddInteger(IsVarArgs);
3628   void *IP = 0;
3629   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP)) {
3630     // Instead of including isTailCall in the folding set, we just
3631     // set the flag of the existing node.
3632     if (!IsTailCall)
3633       cast<CallSDNode>(E)->setNotTailCall();
3634     return SDValue(E, 0);
3635   }
3636   SDNode *N = NodeAllocator.Allocate<CallSDNode>();
3637   new (N) CallSDNode(CallingConv, dl, IsVarArgs, IsTailCall, IsInreg,
3638                      VTs, Operands, NumOperands, NumFixedArgs);
3639   CSEMap.InsertNode(N, IP);
3640   AllNodes.push_back(N);
3641   return SDValue(N, 0);
3642 }
3643 
3644 SDValue
3645 SelectionDAG::getLoad(ISD::MemIndexedMode AM, DebugLoc dl,
3646                       ISD::LoadExtType ExtType, MVT VT, SDValue Chain,
3647                       SDValue Ptr, SDValue Offset,
3648                       const Value *SV, int SVOffset, MVT EVT,
3649                       bool isVolatile, unsigned Alignment) {
3650   if (Alignment == 0)  // Ensure that codegen never sees alignment 0
3651     Alignment = getMVTAlignment(VT);
3652 
3653   if (VT == EVT) {
3654     ExtType = ISD::NON_EXTLOAD;
3655   } else if (ExtType == ISD::NON_EXTLOAD) {
3656     assert(VT == EVT && "Non-extending load from different memory type!");
3657   } else {
3658     // Extending load.
3659     if (VT.isVector())
3660       assert(EVT.getVectorNumElements() == VT.getVectorNumElements() &&
3661              "Invalid vector extload!");
3662     else
3663       assert(EVT.bitsLT(VT) &&
3664              "Should only be an extending load, not truncating!");
3665     assert((ExtType == ISD::EXTLOAD || VT.isInteger()) &&
3666            "Cannot sign/zero extend a FP/Vector load!");
3667     assert(VT.isInteger() == EVT.isInteger() &&
3668            "Cannot convert from FP to Int or Int -> FP!");
3669   }
3670 
3671   bool Indexed = AM != ISD::UNINDEXED;
3672   assert((Indexed || Offset.getOpcode() == ISD::UNDEF) &&
3673          "Unindexed load with an offset!");
3674 
3675   SDVTList VTs = Indexed ?
3676     getVTList(VT, Ptr.getValueType(), MVT::Other) : getVTList(VT, MVT::Other);
3677   SDValue Ops[] = { Chain, Ptr, Offset };
3678   FoldingSetNodeID ID;
3679   AddNodeIDNode(ID, ISD::LOAD, VTs, Ops, 3);
3680   ID.AddInteger(EVT.getRawBits());
3681   ID.AddInteger(encodeMemSDNodeFlags(ExtType, AM, isVolatile, Alignment));
3682   void *IP = 0;
3683   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
3684     return SDValue(E, 0);
3685   SDNode *N = NodeAllocator.Allocate<LoadSDNode>();
3686   new (N) LoadSDNode(Ops, dl, VTs, AM, ExtType, EVT, SV, SVOffset,
3687                      Alignment, isVolatile);
3688   CSEMap.InsertNode(N, IP);
3689   AllNodes.push_back(N);
3690   return SDValue(N, 0);
3691 }
3692 
3693 SDValue SelectionDAG::getLoad(MVT VT, DebugLoc dl,
3694                               SDValue Chain, SDValue Ptr,
3695                               const Value *SV, int SVOffset,
3696                               bool isVolatile, unsigned Alignment) {
3697   SDValue Undef = getUNDEF(Ptr.getValueType());
3698   return getLoad(ISD::UNINDEXED, dl, ISD::NON_EXTLOAD, VT, Chain, Ptr, Undef,
3699                  SV, SVOffset, VT, isVolatile, Alignment);
3700 }
3701 
3702 SDValue SelectionDAG::getExtLoad(ISD::LoadExtType ExtType, DebugLoc dl, MVT VT,
3703                                  SDValue Chain, SDValue Ptr,
3704                                  const Value *SV,
3705                                  int SVOffset, MVT EVT,
3706                                  bool isVolatile, unsigned Alignment) {
3707   SDValue Undef = getUNDEF(Ptr.getValueType());
3708   return getLoad(ISD::UNINDEXED, dl, ExtType, VT, Chain, Ptr, Undef,
3709                  SV, SVOffset, EVT, isVolatile, Alignment);
3710 }
3711 
3712 SDValue
3713 SelectionDAG::getIndexedLoad(SDValue OrigLoad, DebugLoc dl, SDValue Base,
3714                              SDValue Offset, ISD::MemIndexedMode AM) {
3715   LoadSDNode *LD = cast<LoadSDNode>(OrigLoad);
3716   assert(LD->getOffset().getOpcode() == ISD::UNDEF &&
3717          "Load is already a indexed load!");
3718   return getLoad(AM, dl, LD->getExtensionType(), OrigLoad.getValueType(),
3719                  LD->getChain(), Base, Offset, LD->getSrcValue(),
3720                  LD->getSrcValueOffset(), LD->getMemoryVT(),
3721                  LD->isVolatile(), LD->getAlignment());
3722 }
3723 
3724 SDValue SelectionDAG::getStore(SDValue Chain, DebugLoc dl, SDValue Val,
3725                                SDValue Ptr, const Value *SV, int SVOffset,
3726                                bool isVolatile, unsigned Alignment) {
3727   MVT VT = Val.getValueType();
3728 
3729   if (Alignment == 0)  // Ensure that codegen never sees alignment 0
3730     Alignment = getMVTAlignment(VT);
3731 
3732   SDVTList VTs = getVTList(MVT::Other);
3733   SDValue Undef = getUNDEF(Ptr.getValueType());
3734   SDValue Ops[] = { Chain, Val, Ptr, Undef };
3735   FoldingSetNodeID ID;
3736   AddNodeIDNode(ID, ISD::STORE, VTs, Ops, 4);
3737   ID.AddInteger(VT.getRawBits());
3738   ID.AddInteger(encodeMemSDNodeFlags(false, ISD::UNINDEXED,
3739                                      isVolatile, Alignment));
3740   void *IP = 0;
3741   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
3742     return SDValue(E, 0);
3743   SDNode *N = NodeAllocator.Allocate<StoreSDNode>();
3744   new (N) StoreSDNode(Ops, dl, VTs, ISD::UNINDEXED, false,
3745                       VT, SV, SVOffset, Alignment, isVolatile);
3746   CSEMap.InsertNode(N, IP);
3747   AllNodes.push_back(N);
3748   return SDValue(N, 0);
3749 }
3750 
3751 SDValue SelectionDAG::getTruncStore(SDValue Chain, DebugLoc dl, SDValue Val,
3752                                     SDValue Ptr, const Value *SV,
3753                                     int SVOffset, MVT SVT,
3754                                     bool isVolatile, unsigned Alignment) {
3755   MVT VT = Val.getValueType();
3756 
3757   if (VT == SVT)
3758     return getStore(Chain, dl, Val, Ptr, SV, SVOffset, isVolatile, Alignment);
3759 
3760   assert(VT.bitsGT(SVT) && "Not a truncation?");
3761   assert(VT.isInteger() == SVT.isInteger() &&
3762          "Can't do FP-INT conversion!");
3763 
3764   if (Alignment == 0)  // Ensure that codegen never sees alignment 0
3765     Alignment = getMVTAlignment(VT);
3766 
3767   SDVTList VTs = getVTList(MVT::Other);
3768   SDValue Undef = getUNDEF(Ptr.getValueType());
3769   SDValue Ops[] = { Chain, Val, Ptr, Undef };
3770   FoldingSetNodeID ID;
3771   AddNodeIDNode(ID, ISD::STORE, VTs, Ops, 4);
3772   ID.AddInteger(SVT.getRawBits());
3773   ID.AddInteger(encodeMemSDNodeFlags(true, ISD::UNINDEXED,
3774                                      isVolatile, Alignment));
3775   void *IP = 0;
3776   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
3777     return SDValue(E, 0);
3778   SDNode *N = NodeAllocator.Allocate<StoreSDNode>();
3779   new (N) StoreSDNode(Ops, dl, VTs, ISD::UNINDEXED, true,
3780                       SVT, SV, SVOffset, Alignment, isVolatile);
3781   CSEMap.InsertNode(N, IP);
3782   AllNodes.push_back(N);
3783   return SDValue(N, 0);
3784 }
3785 
3786 SDValue
3787 SelectionDAG::getIndexedStore(SDValue OrigStore, DebugLoc dl, SDValue Base,
3788                               SDValue Offset, ISD::MemIndexedMode AM) {
3789   StoreSDNode *ST = cast<StoreSDNode>(OrigStore);
3790   assert(ST->getOffset().getOpcode() == ISD::UNDEF &&
3791          "Store is already a indexed store!");
3792   SDVTList VTs = getVTList(Base.getValueType(), MVT::Other);
3793   SDValue Ops[] = { ST->getChain(), ST->getValue(), Base, Offset };
3794   FoldingSetNodeID ID;
3795   AddNodeIDNode(ID, ISD::STORE, VTs, Ops, 4);
3796   ID.AddInteger(ST->getMemoryVT().getRawBits());
3797   ID.AddInteger(ST->getRawSubclassData());
3798   void *IP = 0;
3799   if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
3800     return SDValue(E, 0);
3801   SDNode *N = NodeAllocator.Allocate<StoreSDNode>();
3802   new (N) StoreSDNode(Ops, dl, VTs, AM,
3803                       ST->isTruncatingStore(), ST->getMemoryVT(),
3804                       ST->getSrcValue(), ST->getSrcValueOffset(),
3805                       ST->getAlignment(), ST->isVolatile());
3806   CSEMap.InsertNode(N, IP);
3807   AllNodes.push_back(N);
3808   return SDValue(N, 0);
3809 }
3810 
3811 SDValue SelectionDAG::getVAArg(MVT VT, DebugLoc dl,
3812                                SDValue Chain, SDValue Ptr,
3813                                SDValue SV) {
3814   SDValue Ops[] = { Chain, Ptr, SV };
3815   return getNode(ISD::VAARG, dl, getVTList(VT, MVT::Other), Ops, 3);
3816 }
3817 
3818 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, MVT VT,
3819                               const SDUse *Ops, unsigned NumOps) {
3820   switch (NumOps) {
3821   case 0: return getNode(Opcode, DL, VT);
3822   case 1: return getNode(Opcode, DL, VT, Ops[0]);
3823   case 2: return getNode(Opcode, DL, VT, Ops[0], Ops[1]);
3824   case 3: return getNode(Opcode, DL, VT, Ops[0], Ops[1], Ops[2]);
3825   default: break;
3826   }
3827 
3828   // Copy from an SDUse array into an SDValue array for use with
3829   // the regular getNode logic.
3830   SmallVector<SDValue, 8> NewOps(Ops, Ops + NumOps);
3831   return getNode(Opcode, DL, VT, &NewOps[0], NumOps);
3832 }
3833 
3834 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, MVT VT,
3835                               const SDValue *Ops, unsigned NumOps) {
3836   switch (NumOps) {
3837   case 0: return getNode(Opcode, DL, VT);
3838   case 1: return getNode(Opcode, DL, VT, Ops[0]);
3839   case 2: return getNode(Opcode, DL, VT, Ops[0], Ops[1]);
3840   case 3: return getNode(Opcode, DL, VT, Ops[0], Ops[1], Ops[2]);
3841   default: break;
3842   }
3843 
3844   switch (Opcode) {
3845   default: break;
3846   case ISD::SELECT_CC: {
3847     assert(NumOps == 5 && "SELECT_CC takes 5 operands!");
3848     assert(Ops[0].getValueType() == Ops[1].getValueType() &&
3849            "LHS and RHS of condition must have same type!");
3850     assert(Ops[2].getValueType() == Ops[3].getValueType() &&
3851            "True and False arms of SelectCC must have same type!");
3852     assert(Ops[2].getValueType() == VT &&
3853            "select_cc node must be of same type as true and false value!");
3854     break;
3855   }
3856   case ISD::BR_CC: {
3857     assert(NumOps == 5 && "BR_CC takes 5 operands!");
3858     assert(Ops[2].getValueType() == Ops[3].getValueType() &&
3859            "LHS/RHS of comparison should match types!");
3860     break;
3861   }
3862   }
3863 
3864   // Memoize nodes.
3865   SDNode *N;
3866   SDVTList VTs = getVTList(VT);
3867 
3868   if (VT != MVT::Flag) {
3869     FoldingSetNodeID ID;
3870     AddNodeIDNode(ID, Opcode, VTs, Ops, NumOps);
3871     void *IP = 0;
3872 
3873     if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
3874       return SDValue(E, 0);
3875 
3876     N = NodeAllocator.Allocate<SDNode>();
3877     new (N) SDNode(Opcode, DL, VTs, Ops, NumOps);
3878     CSEMap.InsertNode(N, IP);
3879   } else {
3880     N = NodeAllocator.Allocate<SDNode>();
3881     new (N) SDNode(Opcode, DL, VTs, Ops, NumOps);
3882   }
3883 
3884   AllNodes.push_back(N);
3885 #ifndef NDEBUG
3886   VerifyNode(N);
3887 #endif
3888   return SDValue(N, 0);
3889 }
3890 
3891 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL,
3892                               const std::vector<MVT> &ResultTys,
3893                               const SDValue *Ops, unsigned NumOps) {
3894   return getNode(Opcode, DL, getVTList(&ResultTys[0], ResultTys.size()),
3895                  Ops, NumOps);
3896 }
3897 
3898 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL,
3899                               const MVT *VTs, unsigned NumVTs,
3900                               const SDValue *Ops, unsigned NumOps) {
3901   if (NumVTs == 1)
3902     return getNode(Opcode, DL, VTs[0], Ops, NumOps);
3903   return getNode(Opcode, DL, makeVTList(VTs, NumVTs), Ops, NumOps);
3904 }
3905 
3906 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, SDVTList VTList,
3907                               const SDValue *Ops, unsigned NumOps) {
3908   if (VTList.NumVTs == 1)
3909     return getNode(Opcode, DL, VTList.VTs[0], Ops, NumOps);
3910 
3911 #if 0
3912   switch (Opcode) {
3913   // FIXME: figure out how to safely handle things like
3914   // int foo(int x) { return 1 << (x & 255); }
3915   // int bar() { return foo(256); }
3916   case ISD::SRA_PARTS:
3917   case ISD::SRL_PARTS:
3918   case ISD::SHL_PARTS:
3919     if (N3.getOpcode() == ISD::SIGN_EXTEND_INREG &&
3920         cast<VTSDNode>(N3.getOperand(1))->getVT() != MVT::i1)
3921       return getNode(Opcode, DL, VT, N1, N2, N3.getOperand(0));
3922     else if (N3.getOpcode() == ISD::AND)
3923       if (ConstantSDNode *AndRHS = dyn_cast<ConstantSDNode>(N3.getOperand(1))) {
3924         // If the and is only masking out bits that cannot effect the shift,
3925         // eliminate the and.
3926         unsigned NumBits = VT.getSizeInBits()*2;
3927         if ((AndRHS->getValue() & (NumBits-1)) == NumBits-1)
3928           return getNode(Opcode, DL, VT, N1, N2, N3.getOperand(0));
3929       }
3930     break;
3931   }
3932 #endif
3933 
3934   // Memoize the node unless it returns a flag.
3935   SDNode *N;
3936   if (VTList.VTs[VTList.NumVTs-1] != MVT::Flag) {
3937     FoldingSetNodeID ID;
3938     AddNodeIDNode(ID, Opcode, VTList, Ops, NumOps);
3939     void *IP = 0;
3940     if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
3941       return SDValue(E, 0);
3942     if (NumOps == 1) {
3943       N = NodeAllocator.Allocate<UnarySDNode>();
3944       new (N) UnarySDNode(Opcode, DL, VTList, Ops[0]);
3945     } else if (NumOps == 2) {
3946       N = NodeAllocator.Allocate<BinarySDNode>();
3947       new (N) BinarySDNode(Opcode, DL, VTList, Ops[0], Ops[1]);
3948     } else if (NumOps == 3) {
3949       N = NodeAllocator.Allocate<TernarySDNode>();
3950       new (N) TernarySDNode(Opcode, DL, VTList, Ops[0], Ops[1], Ops[2]);
3951     } else {
3952       N = NodeAllocator.Allocate<SDNode>();
3953       new (N) SDNode(Opcode, DL, VTList, Ops, NumOps);
3954     }
3955     CSEMap.InsertNode(N, IP);
3956   } else {
3957     if (NumOps == 1) {
3958       N = NodeAllocator.Allocate<UnarySDNode>();
3959       new (N) UnarySDNode(Opcode, DL, VTList, Ops[0]);
3960     } else if (NumOps == 2) {
3961       N = NodeAllocator.Allocate<BinarySDNode>();
3962       new (N) BinarySDNode(Opcode, DL, VTList, Ops[0], Ops[1]);
3963     } else if (NumOps == 3) {
3964       N = NodeAllocator.Allocate<TernarySDNode>();
3965       new (N) TernarySDNode(Opcode, DL, VTList, Ops[0], Ops[1], Ops[2]);
3966     } else {
3967       N = NodeAllocator.Allocate<SDNode>();
3968       new (N) SDNode(Opcode, DL, VTList, Ops, NumOps);
3969     }
3970   }
3971   AllNodes.push_back(N);
3972 #ifndef NDEBUG
3973   VerifyNode(N);
3974 #endif
3975   return SDValue(N, 0);
3976 }
3977 
3978 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, SDVTList VTList) {
3979   return getNode(Opcode, DL, VTList, 0, 0);
3980 }
3981 
3982 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, SDVTList VTList,
3983                               SDValue N1) {
3984   SDValue Ops[] = { N1 };
3985   return getNode(Opcode, DL, VTList, Ops, 1);
3986 }
3987 
3988 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, SDVTList VTList,
3989                               SDValue N1, SDValue N2) {
3990   SDValue Ops[] = { N1, N2 };
3991   return getNode(Opcode, DL, VTList, Ops, 2);
3992 }
3993 
3994 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, SDVTList VTList,
3995                               SDValue N1, SDValue N2, SDValue N3) {
3996   SDValue Ops[] = { N1, N2, N3 };
3997   return getNode(Opcode, DL, VTList, Ops, 3);
3998 }
3999 
4000 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, SDVTList VTList,
4001                               SDValue N1, SDValue N2, SDValue N3,
4002                               SDValue N4) {
4003   SDValue Ops[] = { N1, N2, N3, N4 };
4004   return getNode(Opcode, DL, VTList, Ops, 4);
4005 }
4006 
4007 SDValue SelectionDAG::getNode(unsigned Opcode, DebugLoc DL, SDVTList VTList,
4008                               SDValue N1, SDValue N2, SDValue N3,
4009                               SDValue N4, SDValue N5) {
4010   SDValue Ops[] = { N1, N2, N3, N4, N5 };
4011   return getNode(Opcode, DL, VTList, Ops, 5);
4012 }
4013 
4014 SDVTList SelectionDAG::getVTList(MVT VT) {
4015   return makeVTList(SDNode::getValueTypeList(VT), 1);
4016 }
4017 
4018 SDVTList SelectionDAG::getVTList(MVT VT1, MVT VT2) {
4019   for (std::vector<SDVTList>::reverse_iterator I = VTList.rbegin(),
4020        E = VTList.rend(); I != E; ++I)
4021     if (I->NumVTs == 2 && I->VTs[0] == VT1 && I->VTs[1] == VT2)
4022       return *I;
4023 
4024   MVT *Array = Allocator.Allocate<MVT>(2);
4025   Array[0] = VT1;
4026   Array[1] = VT2;
4027   SDVTList Result = makeVTList(Array, 2);
4028   VTList.push_back(Result);
4029   return Result;
4030 }
4031 
4032 SDVTList SelectionDAG::getVTList(MVT VT1, MVT VT2, MVT VT3) {
4033   for (std::vector<SDVTList>::reverse_iterator I = VTList.rbegin(),
4034        E = VTList.rend(); I != E; ++I)
4035     if (I->NumVTs == 3 && I->VTs[0] == VT1 && I->VTs[1] == VT2 &&
4036                           I->VTs[2] == VT3)
4037       return *I;
4038 
4039   MVT *Array = Allocator.Allocate<MVT>(3);
4040   Array[0] = VT1;
4041   Array[1] = VT2;
4042   Array[2] = VT3;
4043   SDVTList Result = makeVTList(Array, 3);
4044   VTList.push_back(Result);
4045   return Result;
4046 }
4047 
4048 SDVTList SelectionDAG::getVTList(MVT VT1, MVT VT2, MVT VT3, MVT VT4) {
4049   for (std::vector<SDVTList>::reverse_iterator I = VTList.rbegin(),
4050        E = VTList.rend(); I != E; ++I)
4051     if (I->NumVTs == 4 && I->VTs[0] == VT1 && I->VTs[1] == VT2 &&
4052                           I->VTs[2] == VT3 && I->VTs[3] == VT4)
4053       return *I;
4054 
4055   MVT *Array = Allocator.Allocate<MVT>(3);
4056   Array[0] = VT1;
4057   Array[1] = VT2;
4058   Array[2] = VT3;
4059   Array[3] = VT4;
4060   SDVTList Result = makeVTList(Array, 4);
4061   VTList.push_back(Result);
4062   return Result;
4063 }
4064 
4065 SDVTList SelectionDAG::getVTList(const MVT *VTs, unsigned NumVTs) {
4066   switch (NumVTs) {
4067     case 0: llvm_unreachable("Cannot have nodes without results!");
4068     case 1: return getVTList(VTs[0]);
4069     case 2: return getVTList(VTs[0], VTs[1]);
4070     case 3: return getVTList(VTs[0], VTs[1], VTs[2]);
4071     default: break;
4072   }
4073 
4074   for (std::vector<SDVTList>::reverse_iterator I = VTList.rbegin(),
4075        E = VTList.rend(); I != E; ++I) {
4076     if (I->NumVTs != NumVTs || VTs[0] != I->VTs[0] || VTs[1] != I->VTs[1])
4077       continue;
4078 
4079     bool NoMatch = false;
4080     for (unsigned i = 2; i != NumVTs; ++i)
4081       if (VTs[i] != I->VTs[i]) {
4082         NoMatch = true;
4083         break;
4084       }
4085     if (!NoMatch)
4086       return *I;
4087   }
4088 
4089   MVT *Array = Allocator.Allocate<MVT>(NumVTs);
4090   std::copy(VTs, VTs+NumVTs, Array);
4091   SDVTList Result = makeVTList(Array, NumVTs);
4092   VTList.push_back(Result);
4093   return Result;
4094 }
4095 
4096 
4097 /// UpdateNodeOperands - *Mutate* the specified node in-place to have the
4098 /// specified operands.  If the resultant node already exists in the DAG,
4099 /// this does not modify the specified node, instead it returns the node that
4100 /// already exists.  If the resultant node does not exist in the DAG, the
4101 /// input node is returned.  As a degenerate case, if you specify the same
4102 /// input operands as the node already has, the input node is returned.
4103 SDValue SelectionDAG::UpdateNodeOperands(SDValue InN, SDValue Op) {
4104   SDNode *N = InN.getNode();
4105   assert(N->getNumOperands() == 1 && "Update with wrong number of operands");
4106 
4107   // Check to see if there is no change.
4108   if (Op == N->getOperand(0)) return InN;
4109 
4110   // See if the modified node already exists.
4111   void *InsertPos = 0;
4112   if (SDNode *Existing = FindModifiedNodeSlot(N, Op, InsertPos))
4113     return SDValue(Existing, InN.getResNo());
4114 
4115   // Nope it doesn't.  Remove the node from its current place in the maps.
4116   if (InsertPos)
4117     if (!RemoveNodeFromCSEMaps(N))
4118       InsertPos = 0;
4119 
4120   // Now we update the operands.
4121   N->OperandList[0].set(Op);
4122 
4123   // If this gets put into a CSE map, add it.
4124   if (InsertPos) CSEMap.InsertNode(N, InsertPos);
4125   return InN;
4126 }
4127 
4128 SDValue SelectionDAG::
4129 UpdateNodeOperands(SDValue InN, SDValue Op1, SDValue Op2) {
4130   SDNode *N = InN.getNode();
4131   assert(N->getNumOperands() == 2 && "Update with wrong number of operands");
4132 
4133   // Check to see if there is no change.
4134   if (Op1 == N->getOperand(0) && Op2 == N->getOperand(1))
4135     return InN;   // No operands changed, just return the input node.
4136 
4137   // See if the modified node already exists.
4138   void *InsertPos = 0;
4139   if (SDNode *Existing = FindModifiedNodeSlot(N, Op1, Op2, InsertPos))
4140     return SDValue(Existing, InN.getResNo());
4141 
4142   // Nope it doesn't.  Remove the node from its current place in the maps.
4143   if (InsertPos)
4144     if (!RemoveNodeFromCSEMaps(N))
4145       InsertPos = 0;
4146 
4147   // Now we update the operands.
4148   if (N->OperandList[0] != Op1)
4149     N->OperandList[0].set(Op1);
4150   if (N->OperandList[1] != Op2)
4151     N->OperandList[1].set(Op2);
4152 
4153   // If this gets put into a CSE map, add it.
4154   if (InsertPos) CSEMap.InsertNode(N, InsertPos);
4155   return InN;
4156 }
4157 
4158 SDValue SelectionDAG::
4159 UpdateNodeOperands(SDValue N, SDValue Op1, SDValue Op2, SDValue Op3) {
4160   SDValue Ops[] = { Op1, Op2, Op3 };
4161   return UpdateNodeOperands(N, Ops, 3);
4162 }
4163 
4164 SDValue SelectionDAG::
4165 UpdateNodeOperands(SDValue N, SDValue Op1, SDValue Op2,
4166                    SDValue Op3, SDValue Op4) {
4167   SDValue Ops[] = { Op1, Op2, Op3, Op4 };
4168   return UpdateNodeOperands(N, Ops, 4);
4169 }
4170 
4171 SDValue SelectionDAG::
4172 UpdateNodeOperands(SDValue N, SDValue Op1, SDValue Op2,
4173                    SDValue Op3, SDValue Op4, SDValue Op5) {
4174   SDValue Ops[] = { Op1, Op2, Op3, Op4, Op5 };
4175   return UpdateNodeOperands(N, Ops, 5);
4176 }
4177 
4178 SDValue SelectionDAG::
4179 UpdateNodeOperands(SDValue InN, const SDValue *Ops, unsigned NumOps) {
4180   SDNode *N = InN.getNode();
4181   assert(N->getNumOperands() == NumOps &&
4182          "Update with wrong number of operands");
4183 
4184   // Check to see if there is no change.
4185   bool AnyChange = false;
4186   for (unsigned i = 0; i != NumOps; ++i) {
4187     if (Ops[i] != N->getOperand(i)) {
4188       AnyChange = true;
4189       break;
4190     }
4191   }
4192 
4193   // No operands changed, just return the input node.
4194   if (!AnyChange) return InN;
4195 
4196   // See if the modified node already exists.
4197   void *InsertPos = 0;
4198   if (SDNode *Existing = FindModifiedNodeSlot(N, Ops, NumOps, InsertPos))
4199     return SDValue(Existing, InN.getResNo());
4200 
4201   // Nope it doesn't.  Remove the node from its current place in the maps.
4202   if (InsertPos)
4203     if (!RemoveNodeFromCSEMaps(N))
4204       InsertPos = 0;
4205 
4206   // Now we update the operands.
4207   for (unsigned i = 0; i != NumOps; ++i)
4208     if (N->OperandList[i] != Ops[i])
4209       N->OperandList[i].set(Ops[i]);
4210 
4211   // If this gets put into a CSE map, add it.
4212   if (InsertPos) CSEMap.InsertNode(N, InsertPos);
4213   return InN;
4214 }
4215 
4216 /// DropOperands - Release the operands and set this node to have
4217 /// zero operands.
4218 void SDNode::DropOperands() {
4219   // Unlike the code in MorphNodeTo that does this, we don't need to
4220   // watch for dead nodes here.
4221   for (op_iterator I = op_begin(), E = op_end(); I != E; ) {
4222     SDUse &Use = *I++;
4223     Use.set(SDValue());
4224   }
4225 }
4226 
4227 /// SelectNodeTo - These are wrappers around MorphNodeTo that accept a
4228 /// machine opcode.
4229 ///
4230 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4231                                    MVT VT) {
4232   SDVTList VTs = getVTList(VT);
4233   return SelectNodeTo(N, MachineOpc, VTs, 0, 0);
4234 }
4235 
4236 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4237                                    MVT VT, SDValue Op1) {
4238   SDVTList VTs = getVTList(VT);
4239   SDValue Ops[] = { Op1 };
4240   return SelectNodeTo(N, MachineOpc, VTs, Ops, 1);
4241 }
4242 
4243 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4244                                    MVT VT, SDValue Op1,
4245                                    SDValue Op2) {
4246   SDVTList VTs = getVTList(VT);
4247   SDValue Ops[] = { Op1, Op2 };
4248   return SelectNodeTo(N, MachineOpc, VTs, Ops, 2);
4249 }
4250 
4251 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4252                                    MVT VT, SDValue Op1,
4253                                    SDValue Op2, SDValue Op3) {
4254   SDVTList VTs = getVTList(VT);
4255   SDValue Ops[] = { Op1, Op2, Op3 };
4256   return SelectNodeTo(N, MachineOpc, VTs, Ops, 3);
4257 }
4258 
4259 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4260                                    MVT VT, const SDValue *Ops,
4261                                    unsigned NumOps) {
4262   SDVTList VTs = getVTList(VT);
4263   return SelectNodeTo(N, MachineOpc, VTs, Ops, NumOps);
4264 }
4265 
4266 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4267                                    MVT VT1, MVT VT2, const SDValue *Ops,
4268                                    unsigned NumOps) {
4269   SDVTList VTs = getVTList(VT1, VT2);
4270   return SelectNodeTo(N, MachineOpc, VTs, Ops, NumOps);
4271 }
4272 
4273 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4274                                    MVT VT1, MVT VT2) {
4275   SDVTList VTs = getVTList(VT1, VT2);
4276   return SelectNodeTo(N, MachineOpc, VTs, (SDValue *)0, 0);
4277 }
4278 
4279 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4280                                    MVT VT1, MVT VT2, MVT VT3,
4281                                    const SDValue *Ops, unsigned NumOps) {
4282   SDVTList VTs = getVTList(VT1, VT2, VT3);
4283   return SelectNodeTo(N, MachineOpc, VTs, Ops, NumOps);
4284 }
4285 
4286 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4287                                    MVT VT1, MVT VT2, MVT VT3, MVT VT4,
4288                                    const SDValue *Ops, unsigned NumOps) {
4289   SDVTList VTs = getVTList(VT1, VT2, VT3, VT4);
4290   return SelectNodeTo(N, MachineOpc, VTs, Ops, NumOps);
4291 }
4292 
4293 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4294                                    MVT VT1, MVT VT2,
4295                                    SDValue Op1) {
4296   SDVTList VTs = getVTList(VT1, VT2);
4297   SDValue Ops[] = { Op1 };
4298   return SelectNodeTo(N, MachineOpc, VTs, Ops, 1);
4299 }
4300 
4301 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4302                                    MVT VT1, MVT VT2,
4303                                    SDValue Op1, SDValue Op2) {
4304   SDVTList VTs = getVTList(VT1, VT2);
4305   SDValue Ops[] = { Op1, Op2 };
4306   return SelectNodeTo(N, MachineOpc, VTs, Ops, 2);
4307 }
4308 
4309 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4310                                    MVT VT1, MVT VT2,
4311                                    SDValue Op1, SDValue Op2,
4312                                    SDValue Op3) {
4313   SDVTList VTs = getVTList(VT1, VT2);
4314   SDValue Ops[] = { Op1, Op2, Op3 };
4315   return SelectNodeTo(N, MachineOpc, VTs, Ops, 3);
4316 }
4317 
4318 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4319                                    MVT VT1, MVT VT2, MVT VT3,
4320                                    SDValue Op1, SDValue Op2,
4321                                    SDValue Op3) {
4322   SDVTList VTs = getVTList(VT1, VT2, VT3);
4323   SDValue Ops[] = { Op1, Op2, Op3 };
4324   return SelectNodeTo(N, MachineOpc, VTs, Ops, 3);
4325 }
4326 
4327 SDNode *SelectionDAG::SelectNodeTo(SDNode *N, unsigned MachineOpc,
4328                                    SDVTList VTs, const SDValue *Ops,
4329                                    unsigned NumOps) {
4330   return MorphNodeTo(N, ~MachineOpc, VTs, Ops, NumOps);
4331 }
4332 
4333 SDNode *SelectionDAG::MorphNodeTo(SDNode *N, unsigned Opc,
4334                                   MVT VT) {
4335   SDVTList VTs = getVTList(VT);
4336   return MorphNodeTo(N, Opc, VTs, 0, 0);
4337 }
4338 
4339 SDNode *SelectionDAG::MorphNodeTo(SDNode *N, unsigned Opc,
4340                                   MVT VT, SDValue Op1) {
4341   SDVTList VTs = getVTList(VT);
4342   SDValue Ops[] = { Op1 };
4343   return MorphNodeTo(N, Opc, VTs, Ops, 1);
4344 }
4345 
4346 SDNode *SelectionDAG::MorphNodeTo(SDNode *N, unsigned Opc,
4347                                   MVT VT, SDValue Op1,
4348                                   SDValue Op2) {
4349   SDVTList VTs = getVTList(VT);
4350   SDValue Ops[] = { Op1, Op2 };
4351   return MorphNodeTo(N, Opc, VTs, Ops, 2);
4352 }
4353 
4354 SDNode *SelectionDAG::MorphNodeTo(SDNode *N, unsigned Opc,
4355                                   MVT VT, SDValue Op1,
4356                                   SDValue Op2, SDValue Op3) {
4357   SDVTList VTs = getVTList(VT);
4358   SDValue Ops[] = { Op1, Op2, Op3 };
4359   return MorphNodeTo(N, Opc, VTs, Ops, 3);
4360 }
4361 
4362 SDNode *SelectionDAG::MorphNodeTo(SDNode *N, unsigned Opc,
4363                                   MVT VT, const SDValue *Ops,
4364                                   unsigned NumOps) {
4365   SDVTList VTs = getVTList(VT);
4366   return MorphNodeTo(N, Opc, VTs, Ops, NumOps);
4367 }
4368 
4369 SDNode *SelectionDAG::MorphNodeTo(SDNode *N, unsigned Opc,
4370                                   MVT VT1, MVT VT2, const SDValue *Ops,
4371                                   unsigned NumOps) {
4372   SDVTList VTs = getVTList(VT1, VT2);
4373   return MorphNodeTo(N, Opc, VTs, Ops, NumOps);
4374 }
4375 
4376 SDNode *SelectionDAG::MorphNodeTo(SDNode *N, unsigned Opc,
4377                                   MVT VT1, MVT VT2) {
4378   SDVTList VTs = getVTList(VT1, VT2);
4379   return MorphNodeTo(N, Opc, VTs, (SDValue *)0, 0);
4380 }
4381 
4382 SDNode *SelectionDAG::MorphNodeTo(SDNode *N, unsigned Opc,
4383                                   MVT VT1, MVT VT2, MVT VT3,
4384                                   const SDValue *Ops, unsigned NumOps) {
4385   SDVTList VTs = getVTList(VT1, VT2, VT3);
4386   return MorphNodeTo(N, Opc, VTs, Ops, NumOps);
4387 }
4388 
4389 SDNode *SelectionDAG::MorphNodeTo(SDNode *N, unsigned Opc,
4390                                   MVT VT1, MVT VT2,
4391                                   SDValue Op1) {
4392   SDVTList VTs = getVTList(VT1, VT2);
4393   SDValue Ops[] = { Op1 };
4394   return MorphNodeTo(N, Opc, VTs, Ops, 1);
4395 }
4396 
4397 SDNode *SelectionDAG::MorphNodeTo(SDNode *N, unsigned Opc,
4398                                   MVT VT1, MVT VT2,
4399                                   SDValue Op1, SDValue Op2) {
4400   SDVTList VTs = getVTList(VT1, VT2);
4401   SDValue Ops[] = { Op1, Op2 };
4402   return MorphNodeTo(N, Opc, VTs, Ops, 2);
4403 }
4404 
4405 SDNode *SelectionDAG::MorphNodeTo(SDNode *N, unsigned Opc,
4406                                   MVT VT1, MVT VT2,
4407                                   SDValue Op1, SDValue Op2,
4408                                   SDValue Op3) {
4409   SDVTList VTs = getVTList(VT1, VT2);
4410   SDValue Ops[] = { Op1, Op2, Op3 };
4411   return MorphNodeTo(N, Opc, VTs, Ops, 3);
4412 }
4413 
4414 /// MorphNodeTo - These *mutate* the specified node to have the specified
4415 /// return type, opcode, and operands.
4416 ///
4417 /// Note that MorphNodeTo returns the resultant node.  If there is already a
4418 /// node of the specified opcode and operands, it returns that node instead of
4419 /// the current one.  Note that the DebugLoc need not be the same.
4420 ///
4421 /// Using MorphNodeTo is faster than creating a new node and swapping it in
4422 /// with ReplaceAllUsesWith both because it often avoids allocating a new
4423 /// node, and because it doesn't require CSE recalculation for any of
4424 /// the node's users.
4425 ///
4426 SDNode *SelectionDAG::MorphNodeTo(SDNode *N, unsigned Opc,
4427                                   SDVTList VTs, const SDValue *Ops,
4428                                   unsigned NumOps) {
4429   // If an identical node already exists, use it.
4430   void *IP = 0;
4431   if (VTs.VTs[VTs.NumVTs-1] != MVT::Flag) {
4432     FoldingSetNodeID ID;
4433     AddNodeIDNode(ID, Opc, VTs, Ops, NumOps);
4434     if (SDNode *ON = CSEMap.FindNodeOrInsertPos(ID, IP))
4435       return ON;
4436   }
4437 
4438   if (!RemoveNodeFromCSEMaps(N))
4439     IP = 0;
4440 
4441   // Start the morphing.
4442   N->NodeType = Opc;
4443   N->ValueList = VTs.VTs;
4444   N->NumValues = VTs.NumVTs;
4445 
4446   // Clear the operands list, updating used nodes to remove this from their
4447   // use list.  Keep track of any operands that become dead as a result.
4448   SmallPtrSet<SDNode*, 16> DeadNodeSet;
4449   for (SDNode::op_iterator I = N->op_begin(), E = N->op_end(); I != E; ) {
4450     SDUse &Use = *I++;
4451     SDNode *Used = Use.getNode();
4452     Use.set(SDValue());
4453     if (Used->use_empty())
4454       DeadNodeSet.insert(Used);
4455   }
4456 
4457   // If NumOps is larger than the # of operands we currently have, reallocate
4458   // the operand list.
4459   if (NumOps > N->NumOperands) {
4460     if (N->OperandsNeedDelete)
4461       delete[] N->OperandList;
4462 
4463     if (N->isMachineOpcode()) {
4464       // We're creating a final node that will live unmorphed for the
4465       // remainder of the current SelectionDAG iteration, so we can allocate
4466       // the operands directly out of a pool with no recycling metadata.
4467       N->OperandList = OperandAllocator.Allocate<SDUse>(NumOps);
4468       N->OperandsNeedDelete = false;
4469     } else {
4470       N->OperandList = new SDUse[NumOps];
4471       N->OperandsNeedDelete = true;
4472     }
4473   }
4474 
4475   // Assign the new operands.
4476   N->NumOperands = NumOps;
4477   for (unsigned i = 0, e = NumOps; i != e; ++i) {
4478     N->OperandList[i].setUser(N);
4479     N->OperandList[i].setInitial(Ops[i]);
4480   }
4481 
4482   // Delete any nodes that are still dead after adding the uses for the
4483   // new operands.
4484   SmallVector<SDNode *, 16> DeadNodes;
4485   for (SmallPtrSet<SDNode *, 16>::iterator I = DeadNodeSet.begin(),
4486        E = DeadNodeSet.end(); I != E; ++I)
4487     if ((*I)->use_empty())
4488       DeadNodes.push_back(*I);
4489   RemoveDeadNodes(DeadNodes);
4490 
4491   if (IP)
4492     CSEMap.InsertNode(N, IP);   // Memoize the new node.
4493   return N;
4494 }
4495 
4496 
4497 /// getTargetNode - These are used for target selectors to create a new node
4498 /// with specified return type(s), target opcode, and operands.
4499 ///
4500 /// Note that getTargetNode returns the resultant node.  If there is already a
4501 /// node of the specified opcode and operands, it returns that node instead of
4502 /// the current one.
4503 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl, MVT VT) {
4504   return getNode(~Opcode, dl, VT).getNode();
4505 }
4506 
4507 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl, MVT VT,
4508                                     SDValue Op1) {
4509   return getNode(~Opcode, dl, VT, Op1).getNode();
4510 }
4511 
4512 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl, MVT VT,
4513                                     SDValue Op1, SDValue Op2) {
4514   return getNode(~Opcode, dl, VT, Op1, Op2).getNode();
4515 }
4516 
4517 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl, MVT VT,
4518                                     SDValue Op1, SDValue Op2,
4519                                     SDValue Op3) {
4520   return getNode(~Opcode, dl, VT, Op1, Op2, Op3).getNode();
4521 }
4522 
4523 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl, MVT VT,
4524                                     const SDValue *Ops, unsigned NumOps) {
4525   return getNode(~Opcode, dl, VT, Ops, NumOps).getNode();
4526 }
4527 
4528 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl,
4529                                     MVT VT1, MVT VT2) {
4530   SDVTList VTs = getVTList(VT1, VT2);
4531   SDValue Op;
4532   return getNode(~Opcode, dl, VTs, &Op, 0).getNode();
4533 }
4534 
4535 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl, MVT VT1,
4536                                     MVT VT2, SDValue Op1) {
4537   SDVTList VTs = getVTList(VT1, VT2);
4538   return getNode(~Opcode, dl, VTs, &Op1, 1).getNode();
4539 }
4540 
4541 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl, MVT VT1,
4542                                     MVT VT2, SDValue Op1,
4543                                     SDValue Op2) {
4544   SDVTList VTs = getVTList(VT1, VT2);
4545   SDValue Ops[] = { Op1, Op2 };
4546   return getNode(~Opcode, dl, VTs, Ops, 2).getNode();
4547 }
4548 
4549 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl, MVT VT1,
4550                                     MVT VT2, SDValue Op1,
4551                                     SDValue Op2, SDValue Op3) {
4552   SDVTList VTs = getVTList(VT1, VT2);
4553   SDValue Ops[] = { Op1, Op2, Op3 };
4554   return getNode(~Opcode, dl, VTs, Ops, 3).getNode();
4555 }
4556 
4557 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl,
4558                                     MVT VT1, MVT VT2,
4559                                     const SDValue *Ops, unsigned NumOps) {
4560   SDVTList VTs = getVTList(VT1, VT2);
4561   return getNode(~Opcode, dl, VTs, Ops, NumOps).getNode();
4562 }
4563 
4564 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl,
4565                                     MVT VT1, MVT VT2, MVT VT3,
4566                                     SDValue Op1, SDValue Op2) {
4567   SDVTList VTs = getVTList(VT1, VT2, VT3);
4568   SDValue Ops[] = { Op1, Op2 };
4569   return getNode(~Opcode, dl, VTs, Ops, 2).getNode();
4570 }
4571 
4572 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl,
4573                                     MVT VT1, MVT VT2, MVT VT3,
4574                                     SDValue Op1, SDValue Op2,
4575                                     SDValue Op3) {
4576   SDVTList VTs = getVTList(VT1, VT2, VT3);
4577   SDValue Ops[] = { Op1, Op2, Op3 };
4578   return getNode(~Opcode, dl, VTs, Ops, 3).getNode();
4579 }
4580 
4581 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl,
4582                                     MVT VT1, MVT VT2, MVT VT3,
4583                                     const SDValue *Ops, unsigned NumOps) {
4584   SDVTList VTs = getVTList(VT1, VT2, VT3);
4585   return getNode(~Opcode, dl, VTs, Ops, NumOps).getNode();
4586 }
4587 
4588 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl, MVT VT1,
4589                                     MVT VT2, MVT VT3, MVT VT4,
4590                                     const SDValue *Ops, unsigned NumOps) {
4591   SDVTList VTs = getVTList(VT1, VT2, VT3, VT4);
4592   return getNode(~Opcode, dl, VTs, Ops, NumOps).getNode();
4593 }
4594 
4595 SDNode *SelectionDAG::getTargetNode(unsigned Opcode, DebugLoc dl,
4596                                     const std::vector<MVT> &ResultTys,
4597                                     const SDValue *Ops, unsigned NumOps) {
4598   return getNode(~Opcode, dl, ResultTys, Ops, NumOps).getNode();
4599 }
4600 
4601 /// getNodeIfExists - Get the specified node if it's already available, or
4602 /// else return NULL.
4603 SDNode *SelectionDAG::getNodeIfExists(unsigned Opcode, SDVTList VTList,
4604                                       const SDValue *Ops, unsigned NumOps) {
4605   if (VTList.VTs[VTList.NumVTs-1] != MVT::Flag) {
4606     FoldingSetNodeID ID;
4607     AddNodeIDNode(ID, Opcode, VTList, Ops, NumOps);
4608     void *IP = 0;
4609     if (SDNode *E = CSEMap.FindNodeOrInsertPos(ID, IP))
4610       return E;
4611   }
4612   return NULL;
4613 }
4614 
4615 /// ReplaceAllUsesWith - Modify anything using 'From' to use 'To' instead.
4616 /// This can cause recursive merging of nodes in the DAG.
4617 ///
4618 /// This version assumes From has a single result value.
4619 ///
4620 void SelectionDAG::ReplaceAllUsesWith(SDValue FromN, SDValue To,
4621                                       DAGUpdateListener *UpdateListener) {
4622   SDNode *From = FromN.getNode();
4623   assert(From->getNumValues() == 1 && FromN.getResNo() == 0 &&
4624          "Cannot replace with this method!");
4625   assert(From != To.getNode() && "Cannot replace uses of with self");
4626 
4627   // Iterate over all the existing uses of From. New uses will be added
4628   // to the beginning of the use list, which we avoid visiting.
4629   // This specifically avoids visiting uses of From that arise while the
4630   // replacement is happening, because any such uses would be the result
4631   // of CSE: If an existing node looks like From after one of its operands
4632   // is replaced by To, we don't want to replace of all its users with To
4633   // too. See PR3018 for more info.
4634   SDNode::use_iterator UI = From->use_begin(), UE = From->use_end();
4635   while (UI != UE) {
4636     SDNode *User = *UI;
4637 
4638     // This node is about to morph, remove its old self from the CSE maps.
4639     RemoveNodeFromCSEMaps(User);
4640 
4641     // A user can appear in a use list multiple times, and when this
4642     // happens the uses are usually next to each other in the list.
4643     // To help reduce the number of CSE recomputations, process all
4644     // the uses of this user that we can find this way.
4645     do {
4646       SDUse &Use = UI.getUse();
4647       ++UI;
4648       Use.set(To);
4649     } while (UI != UE && *UI == User);
4650 
4651     // Now that we have modified User, add it back to the CSE maps.  If it
4652     // already exists there, recursively merge the results together.
4653     AddModifiedNodeToCSEMaps(User, UpdateListener);
4654   }
4655 }
4656 
4657 /// ReplaceAllUsesWith - Modify anything using 'From' to use 'To' instead.
4658 /// This can cause recursive merging of nodes in the DAG.
4659 ///
4660 /// This version assumes that for each value of From, there is a
4661 /// corresponding value in To in the same position with the same type.
4662 ///
4663 void SelectionDAG::ReplaceAllUsesWith(SDNode *From, SDNode *To,
4664                                       DAGUpdateListener *UpdateListener) {
4665 #ifndef NDEBUG
4666   for (unsigned i = 0, e = From->getNumValues(); i != e; ++i)
4667     assert((!From->hasAnyUseOfValue(i) ||
4668             From->getValueType(i) == To->getValueType(i)) &&
4669            "Cannot use this version of ReplaceAllUsesWith!");
4670 #endif
4671 
4672   // Handle the trivial case.
4673   if (From == To)
4674     return;
4675 
4676   // Iterate over just the existing users of From. See the comments in
4677   // the ReplaceAllUsesWith above.
4678   SDNode::use_iterator UI = From->use_begin(), UE = From->use_end();
4679   while (UI != UE) {
4680     SDNode *User = *UI;
4681 
4682     // This node is about to morph, remove its old self from the CSE maps.
4683     RemoveNodeFromCSEMaps(User);
4684 
4685     // A user can appear in a use list multiple times, and when this
4686     // happens the uses are usually next to each other in the list.
4687     // To help reduce the number of CSE recomputations, process all
4688     // the uses of this user that we can find this way.
4689     do {
4690       SDUse &Use = UI.getUse();
4691       ++UI;
4692       Use.setNode(To);
4693     } while (UI != UE && *UI == User);
4694 
4695     // Now that we have modified User, add it back to the CSE maps.  If it
4696     // already exists there, recursively merge the results together.
4697     AddModifiedNodeToCSEMaps(User, UpdateListener);
4698   }
4699 }
4700 
4701 /// ReplaceAllUsesWith - Modify anything using 'From' to use 'To' instead.
4702 /// This can cause recursive merging of nodes in the DAG.
4703 ///
4704 /// This version can replace From with any result values.  To must match the
4705 /// number and types of values returned by From.
4706 void SelectionDAG::ReplaceAllUsesWith(SDNode *From,
4707                                       const SDValue *To,
4708                                       DAGUpdateListener *UpdateListener) {
4709   if (From->getNumValues() == 1)  // Handle the simple case efficiently.
4710     return ReplaceAllUsesWith(SDValue(From, 0), To[0], UpdateListener);
4711 
4712   // Iterate over just the existing users of From. See the comments in
4713   // the ReplaceAllUsesWith above.
4714   SDNode::use_iterator UI = From->use_begin(), UE = From->use_end();
4715   while (UI != UE) {
4716     SDNode *User = *UI;
4717 
4718     // This node is about to morph, remove its old self from the CSE maps.
4719     RemoveNodeFromCSEMaps(User);
4720 
4721     // A user can appear in a use list multiple times, and when this
4722     // happens the uses are usually next to each other in the list.
4723     // To help reduce the number of CSE recomputations, process all
4724     // the uses of this user that we can find this way.
4725     do {
4726       SDUse &Use = UI.getUse();
4727       const SDValue &ToOp = To[Use.getResNo()];
4728       ++UI;
4729       Use.set(ToOp);
4730     } while (UI != UE && *UI == User);
4731 
4732     // Now that we have modified User, add it back to the CSE maps.  If it
4733     // already exists there, recursively merge the results together.
4734     AddModifiedNodeToCSEMaps(User, UpdateListener);
4735   }
4736 }
4737 
4738 /// ReplaceAllUsesOfValueWith - Replace any uses of From with To, leaving
4739 /// uses of other values produced by From.getNode() alone.  The Deleted
4740 /// vector is handled the same way as for ReplaceAllUsesWith.
4741 void SelectionDAG::ReplaceAllUsesOfValueWith(SDValue From, SDValue To,
4742                                              DAGUpdateListener *UpdateListener){
4743   // Handle the really simple, really trivial case efficiently.
4744   if (From == To) return;
4745 
4746   // Handle the simple, trivial, case efficiently.
4747   if (From.getNode()->getNumValues() == 1) {
4748     ReplaceAllUsesWith(From, To, UpdateListener);
4749     return;
4750   }
4751 
4752   // Iterate over just the existing users of From. See the comments in
4753   // the ReplaceAllUsesWith above.
4754   SDNode::use_iterator UI = From.getNode()->use_begin(),
4755                        UE = From.getNode()->use_end();
4756   while (UI != UE) {
4757     SDNode *User = *UI;
4758     bool UserRemovedFromCSEMaps = false;
4759 
4760     // A user can appear in a use list multiple times, and when this
4761     // happens the uses are usually next to each other in the list.
4762     // To help reduce the number of CSE recomputations, process all
4763     // the uses of this user that we can find this way.
4764     do {
4765       SDUse &Use = UI.getUse();
4766 
4767       // Skip uses of different values from the same node.
4768       if (Use.getResNo() != From.getResNo()) {
4769         ++UI;
4770         continue;
4771       }
4772 
4773       // If this node hasn't been modified yet, it's still in the CSE maps,
4774       // so remove its old self from the CSE maps.
4775       if (!UserRemovedFromCSEMaps) {
4776         RemoveNodeFromCSEMaps(User);
4777         UserRemovedFromCSEMaps = true;
4778       }
4779 
4780       ++UI;
4781       Use.set(To);
4782     } while (UI != UE && *UI == User);
4783 
4784     // We are iterating over all uses of the From node, so if a use
4785     // doesn't use the specific value, no changes are made.
4786     if (!UserRemovedFromCSEMaps)
4787       continue;
4788 
4789     // Now that we have modified User, add it back to the CSE maps.  If it
4790     // already exists there, recursively merge the results together.
4791     AddModifiedNodeToCSEMaps(User, UpdateListener);
4792   }
4793 }
4794 
4795 namespace {
4796   /// UseMemo - This class is used by SelectionDAG::ReplaceAllUsesOfValuesWith
4797   /// to record information about a use.
4798   struct UseMemo {
4799     SDNode *User;
4800     unsigned Index;
4801     SDUse *Use;
4802   };
4803 
4804   /// operator< - Sort Memos by User.
4805   bool operator<(const UseMemo &L, const UseMemo &R) {
4806     return (intptr_t)L.User < (intptr_t)R.User;
4807   }
4808 }
4809 
4810 /// ReplaceAllUsesOfValuesWith - Replace any uses of From with To, leaving
4811 /// uses of other values produced by From.getNode() alone.  The same value
4812 /// may appear in both the From and To list.  The Deleted vector is
4813 /// handled the same way as for ReplaceAllUsesWith.
4814 void SelectionDAG::ReplaceAllUsesOfValuesWith(const SDValue *From,
4815                                               const SDValue *To,
4816                                               unsigned Num,
4817                                               DAGUpdateListener *UpdateListener){
4818   // Handle the simple, trivial case efficiently.
4819   if (Num == 1)
4820     return ReplaceAllUsesOfValueWith(*From, *To, UpdateListener);
4821 
4822   // Read up all the uses and make records of them. This helps
4823   // processing new uses that are introduced during the
4824   // replacement process.
4825   SmallVector<UseMemo, 4> Uses;
4826   for (unsigned i = 0; i != Num; ++i) {
4827     unsigned FromResNo = From[i].getResNo();
4828     SDNode *FromNode = From[i].getNode();
4829     for (SDNode::use_iterator UI = FromNode->use_begin(),
4830          E = FromNode->use_end(); UI != E; ++UI) {
4831       SDUse &Use = UI.getUse();
4832       if (Use.getResNo() == FromResNo) {
4833         UseMemo Memo = { *UI, i, &Use };
4834         Uses.push_back(Memo);
4835       }
4836     }
4837   }
4838 
4839   // Sort the uses, so that all the uses from a given User are together.
4840   std::sort(Uses.begin(), Uses.end());
4841 
4842   for (unsigned UseIndex = 0, UseIndexEnd = Uses.size();
4843        UseIndex != UseIndexEnd; ) {
4844     // We know that this user uses some value of From.  If it is the right
4845     // value, update it.
4846     SDNode *User = Uses[UseIndex].User;
4847 
4848     // This node is about to morph, remove its old self from the CSE maps.
4849     RemoveNodeFromCSEMaps(User);
4850 
4851     // The Uses array is sorted, so all the uses for a given User
4852     // are next to each other in the list.
4853     // To help reduce the number of CSE recomputations, process all
4854     // the uses of this user that we can find this way.
4855     do {
4856       unsigned i = Uses[UseIndex].Index;
4857       SDUse &Use = *Uses[UseIndex].Use;
4858       ++UseIndex;
4859 
4860       Use.set(To[i]);
4861     } while (UseIndex != UseIndexEnd && Uses[UseIndex].User == User);
4862 
4863     // Now that we have modified User, add it back to the CSE maps.  If it
4864     // already exists there, recursively merge the results together.
4865     AddModifiedNodeToCSEMaps(User, UpdateListener);
4866   }
4867 }
4868 
4869 /// AssignTopologicalOrder - Assign a unique node id for each node in the DAG
4870 /// based on their topological order. It returns the maximum id and a vector
4871 /// of the SDNodes* in assigned order by reference.
4872 unsigned SelectionDAG::AssignTopologicalOrder() {
4873 
4874   unsigned DAGSize = 0;
4875 
4876   // SortedPos tracks the progress of the algorithm. Nodes before it are
4877   // sorted, nodes after it are unsorted. When the algorithm completes
4878   // it is at the end of the list.
4879   allnodes_iterator SortedPos = allnodes_begin();
4880 
4881   // Visit all the nodes. Move nodes with no operands to the front of
4882   // the list immediately. Annotate nodes that do have operands with their
4883   // operand count. Before we do this, the Node Id fields of the nodes
4884   // may contain arbitrary values. After, the Node Id fields for nodes
4885   // before SortedPos will contain the topological sort index, and the
4886   // Node Id fields for nodes At SortedPos and after will contain the
4887   // count of outstanding operands.
4888   for (allnodes_iterator I = allnodes_begin(),E = allnodes_end(); I != E; ) {
4889     SDNode *N = I++;
4890     unsigned Degree = N->getNumOperands();
4891     if (Degree == 0) {
4892       // A node with no uses, add it to the result array immediately.
4893       N->setNodeId(DAGSize++);
4894       allnodes_iterator Q = N;
4895       if (Q != SortedPos)
4896         SortedPos = AllNodes.insert(SortedPos, AllNodes.remove(Q));
4897       ++SortedPos;
4898     } else {
4899       // Temporarily use the Node Id as scratch space for the degree count.
4900       N->setNodeId(Degree);
4901     }
4902   }
4903 
4904   // Visit all the nodes. As we iterate, moves nodes into sorted order,
4905   // such that by the time the end is reached all nodes will be sorted.
4906   for (allnodes_iterator I = allnodes_begin(),E = allnodes_end(); I != E; ++I) {
4907     SDNode *N = I;
4908     for (SDNode::use_iterator UI = N->use_begin(), UE = N->use_end();
4909          UI != UE; ++UI) {
4910       SDNode *P = *UI;
4911       unsigned Degree = P->getNodeId();
4912       --Degree;
4913       if (Degree == 0) {
4914         // All of P's operands are sorted, so P may sorted now.
4915         P->setNodeId(DAGSize++);
4916         if (P != SortedPos)
4917           SortedPos = AllNodes.insert(SortedPos, AllNodes.remove(P));
4918         ++SortedPos;
4919       } else {
4920         // Update P's outstanding operand count.
4921         P->setNodeId(Degree);
4922       }
4923     }
4924   }
4925 
4926   assert(SortedPos == AllNodes.end() &&
4927          "Topological sort incomplete!");
4928   assert(AllNodes.front().getOpcode() == ISD::EntryToken &&
4929          "First node in topological sort is not the entry token!");
4930   assert(AllNodes.front().getNodeId() == 0 &&
4931          "First node in topological sort has non-zero id!");
4932   assert(AllNodes.front().getNumOperands() == 0 &&
4933          "First node in topological sort has operands!");
4934   assert(AllNodes.back().getNodeId() == (int)DAGSize-1 &&
4935          "Last node in topologic sort has unexpected id!");
4936   assert(AllNodes.back().use_empty() &&
4937          "Last node in topologic sort has users!");
4938   assert(DAGSize == allnodes_size() && "Node count mismatch!");
4939   return DAGSize;
4940 }
4941 
4942 
4943 
4944 //===----------------------------------------------------------------------===//
4945 //                              SDNode Class
4946 //===----------------------------------------------------------------------===//
4947 
4948 HandleSDNode::~HandleSDNode() {
4949   DropOperands();
4950 }
4951 
4952 GlobalAddressSDNode::GlobalAddressSDNode(unsigned Opc, const GlobalValue *GA,
4953                                          MVT VT, int64_t o, unsigned char TF)
4954   : SDNode(Opc, DebugLoc::getUnknownLoc(), getSDVTList(VT)),
4955     Offset(o), TargetFlags(TF) {
4956   TheGlobal = const_cast<GlobalValue*>(GA);
4957 }
4958 
4959 MemSDNode::MemSDNode(unsigned Opc, DebugLoc dl, SDVTList VTs, MVT memvt,
4960                      const Value *srcValue, int SVO,
4961                      unsigned alignment, bool vol)
4962  : SDNode(Opc, dl, VTs), MemoryVT(memvt), SrcValue(srcValue), SVOffset(SVO) {
4963   SubclassData = encodeMemSDNodeFlags(0, ISD::UNINDEXED, vol, alignment);
4964   assert(isPowerOf2_32(alignment) && "Alignment is not a power of 2!");
4965   assert(getAlignment() == alignment && "Alignment representation error!");
4966   assert(isVolatile() == vol && "Volatile representation error!");
4967 }
4968 
4969 MemSDNode::MemSDNode(unsigned Opc, DebugLoc dl, SDVTList VTs,
4970                      const SDValue *Ops,
4971                      unsigned NumOps, MVT memvt, const Value *srcValue,
4972                      int SVO, unsigned alignment, bool vol)
4973    : SDNode(Opc, dl, VTs, Ops, NumOps),
4974      MemoryVT(memvt), SrcValue(srcValue), SVOffset(SVO) {
4975   SubclassData = encodeMemSDNodeFlags(0, ISD::UNINDEXED, vol, alignment);
4976   assert(isPowerOf2_32(alignment) && "Alignment is not a power of 2!");
4977   assert(getAlignment() == alignment && "Alignment representation error!");
4978   assert(isVolatile() == vol && "Volatile representation error!");
4979 }
4980 
4981 /// getMemOperand - Return a MachineMemOperand object describing the memory
4982 /// reference performed by this memory reference.
4983 MachineMemOperand MemSDNode::getMemOperand() const {
4984   int Flags = 0;
4985   if (isa<LoadSDNode>(this))
4986     Flags = MachineMemOperand::MOLoad;
4987   else if (isa<StoreSDNode>(this))
4988     Flags = MachineMemOperand::MOStore;
4989   else if (isa<AtomicSDNode>(this)) {
4990     Flags = MachineMemOperand::MOLoad | MachineMemOperand::MOStore;
4991   }
4992   else {
4993     const MemIntrinsicSDNode* MemIntrinNode = dyn_cast<MemIntrinsicSDNode>(this);
4994     assert(MemIntrinNode && "Unknown MemSDNode opcode!");
4995     if (MemIntrinNode->readMem()) Flags |= MachineMemOperand::MOLoad;
4996     if (MemIntrinNode->writeMem()) Flags |= MachineMemOperand::MOStore;
4997   }
4998 
4999   int Size = (getMemoryVT().getSizeInBits() + 7) >> 3;
5000   if (isVolatile()) Flags |= MachineMemOperand::MOVolatile;
5001 
5002   // Check if the memory reference references a frame index
5003   const FrameIndexSDNode *FI =
5004   dyn_cast<const FrameIndexSDNode>(getBasePtr().getNode());
5005   if (!getSrcValue() && FI)
5006     return MachineMemOperand(PseudoSourceValue::getFixedStack(FI->getIndex()),
5007                              Flags, 0, Size, getAlignment());
5008   else
5009     return MachineMemOperand(getSrcValue(), Flags, getSrcValueOffset(),
5010                              Size, getAlignment());
5011 }
5012 
5013 /// Profile - Gather unique data for the node.
5014 ///
5015 void SDNode::Profile(FoldingSetNodeID &ID) const {
5016   AddNodeIDNode(ID, this);
5017 }
5018 
5019 static ManagedStatic<std::set<MVT, MVT::compareRawBits> > EVTs;
5020 static MVT VTs[MVT::LAST_VALUETYPE];
5021 static ManagedStatic<sys::SmartMutex<true> > VTMutex;
5022 
5023 /// getValueTypeList - Return a pointer to the specified value type.
5024 ///
5025 const MVT *SDNode::getValueTypeList(MVT VT) {
5026   sys::SmartScopedLock<true> Lock(*VTMutex);
5027   if (VT.isExtended()) {
5028     return &(*EVTs->insert(VT).first);
5029   } else {
5030     VTs[VT.getSimpleVT()] = VT;
5031     return &VTs[VT.getSimpleVT()];
5032   }
5033 }
5034 
5035 /// hasNUsesOfValue - Return true if there are exactly NUSES uses of the
5036 /// indicated value.  This method ignores uses of other values defined by this
5037 /// operation.
5038 bool SDNode::hasNUsesOfValue(unsigned NUses, unsigned Value) const {
5039   assert(Value < getNumValues() && "Bad value!");
5040 
5041   // TODO: Only iterate over uses of a given value of the node
5042   for (SDNode::use_iterator UI = use_begin(), E = use_end(); UI != E; ++UI) {
5043     if (UI.getUse().getResNo() == Value) {
5044       if (NUses == 0)
5045         return false;
5046       --NUses;
5047     }
5048   }
5049 
5050   // Found exactly the right number of uses?
5051   return NUses == 0;
5052 }
5053 
5054 
5055 /// hasAnyUseOfValue - Return true if there are any use of the indicated
5056 /// value. This method ignores uses of other values defined by this operation.
5057 bool SDNode::hasAnyUseOfValue(unsigned Value) const {
5058   assert(Value < getNumValues() && "Bad value!");
5059 
5060   for (SDNode::use_iterator UI = use_begin(), E = use_end(); UI != E; ++UI)
5061     if (UI.getUse().getResNo() == Value)
5062       return true;
5063 
5064   return false;
5065 }
5066 
5067 
5068 /// isOnlyUserOf - Return true if this node is the only use of N.
5069 ///
5070 bool SDNode::isOnlyUserOf(SDNode *N) const {
5071   bool Seen = false;
5072   for (SDNode::use_iterator I = N->use_begin(), E = N->use_end(); I != E; ++I) {
5073     SDNode *User = *I;
5074     if (User == this)
5075       Seen = true;
5076     else
5077       return false;
5078   }
5079 
5080   return Seen;
5081 }
5082 
5083 /// isOperand - Return true if this node is an operand of N.
5084 ///
5085 bool SDValue::isOperandOf(SDNode *N) const {
5086   for (unsigned i = 0, e = N->getNumOperands(); i != e; ++i)
5087     if (*this == N->getOperand(i))
5088       return true;
5089   return false;
5090 }
5091 
5092 bool SDNode::isOperandOf(SDNode *N) const {
5093   for (unsigned i = 0, e = N->NumOperands; i != e; ++i)
5094     if (this == N->OperandList[i].getNode())
5095       return true;
5096   return false;
5097 }
5098 
5099 /// reachesChainWithoutSideEffects - Return true if this operand (which must
5100 /// be a chain) reaches the specified operand without crossing any
5101 /// side-effecting instructions.  In practice, this looks through token
5102 /// factors and non-volatile loads.  In order to remain efficient, this only
5103 /// looks a couple of nodes in, it does not do an exhaustive search.
5104 bool SDValue::reachesChainWithoutSideEffects(SDValue Dest,
5105                                                unsigned Depth) const {
5106   if (*this == Dest) return true;
5107 
5108   // Don't search too deeply, we just want to be able to see through
5109   // TokenFactor's etc.
5110   if (Depth == 0) return false;
5111 
5112   // If this is a token factor, all inputs to the TF happen in parallel.  If any
5113   // of the operands of the TF reach dest, then we can do the xform.
5114   if (getOpcode() == ISD::TokenFactor) {
5115     for (unsigned i = 0, e = getNumOperands(); i != e; ++i)
5116       if (getOperand(i).reachesChainWithoutSideEffects(Dest, Depth-1))
5117         return true;
5118     return false;
5119   }
5120 
5121   // Loads don't have side effects, look through them.
5122   if (LoadSDNode *Ld = dyn_cast<LoadSDNode>(*this)) {
5123     if (!Ld->isVolatile())
5124       return Ld->getChain().reachesChainWithoutSideEffects(Dest, Depth-1);
5125   }
5126   return false;
5127 }
5128 
5129 
5130 static void findPredecessor(SDNode *N, const SDNode *P, bool &found,
5131                             SmallPtrSet<SDNode *, 32> &Visited) {
5132   if (found || !Visited.insert(N))
5133     return;
5134 
5135   for (unsigned i = 0, e = N->getNumOperands(); !found && i != e; ++i) {
5136     SDNode *Op = N->getOperand(i).getNode();
5137     if (Op == P) {
5138       found = true;
5139       return;
5140     }
5141     findPredecessor(Op, P, found, Visited);
5142   }
5143 }
5144 
5145 /// isPredecessorOf - Return true if this node is a predecessor of N. This node
5146 /// is either an operand of N or it can be reached by recursively traversing
5147 /// up the operands.
5148 /// NOTE: this is an expensive method. Use it carefully.
5149 bool SDNode::isPredecessorOf(SDNode *N) const {
5150   SmallPtrSet<SDNode *, 32> Visited;
5151   bool found = false;
5152   findPredecessor(N, this, found, Visited);
5153   return found;
5154 }
5155 
5156 uint64_t SDNode::getConstantOperandVal(unsigned Num) const {
5157   assert(Num < NumOperands && "Invalid child # of SDNode!");
5158   return cast<ConstantSDNode>(OperandList[Num])->getZExtValue();
5159 }
5160 
5161 std::string SDNode::getOperationName(const SelectionDAG *G) const {
5162   switch (getOpcode()) {
5163   default:
5164     if (getOpcode() < ISD::BUILTIN_OP_END)
5165       return "<<Unknown DAG Node>>";
5166     if (isMachineOpcode()) {
5167       if (G)
5168         if (const TargetInstrInfo *TII = G->getTarget().getInstrInfo())
5169           if (getMachineOpcode() < TII->getNumOpcodes())
5170             return TII->get(getMachineOpcode()).getName();
5171       return "<<Unknown Machine Node>>";
5172     }
5173     if (G) {
5174       const TargetLowering &TLI = G->getTargetLoweringInfo();
5175       const char *Name = TLI.getTargetNodeName(getOpcode());
5176       if (Name) return Name;
5177       return "<<Unknown Target Node>>";
5178     }
5179     return "<<Unknown Node>>";
5180 
5181 #ifndef NDEBUG
5182   case ISD::DELETED_NODE:
5183     return "<<Deleted Node!>>";
5184 #endif
5185   case ISD::PREFETCH:      return "Prefetch";
5186   case ISD::MEMBARRIER:    return "MemBarrier";
5187   case ISD::ATOMIC_CMP_SWAP:    return "AtomicCmpSwap";
5188   case ISD::ATOMIC_SWAP:        return "AtomicSwap";
5189   case ISD::ATOMIC_LOAD_ADD:    return "AtomicLoadAdd";
5190   case ISD::ATOMIC_LOAD_SUB:    return "AtomicLoadSub";
5191   case ISD::ATOMIC_LOAD_AND:    return "AtomicLoadAnd";
5192   case ISD::ATOMIC_LOAD_OR:     return "AtomicLoadOr";
5193   case ISD::ATOMIC_LOAD_XOR:    return "AtomicLoadXor";
5194   case ISD::ATOMIC_LOAD_NAND:   return "AtomicLoadNand";
5195   case ISD::ATOMIC_LOAD_MIN:    return "AtomicLoadMin";
5196   case ISD::ATOMIC_LOAD_MAX:    return "AtomicLoadMax";
5197   case ISD::ATOMIC_LOAD_UMIN:   return "AtomicLoadUMin";
5198   case ISD::ATOMIC_LOAD_UMAX:   return "AtomicLoadUMax";
5199   case ISD::PCMARKER:      return "PCMarker";
5200   case ISD::READCYCLECOUNTER: return "ReadCycleCounter";
5201   case ISD::SRCVALUE:      return "SrcValue";
5202   case ISD::MEMOPERAND:    return "MemOperand";
5203   case ISD::EntryToken:    return "EntryToken";
5204   case ISD::TokenFactor:   return "TokenFactor";
5205   case ISD::AssertSext:    return "AssertSext";
5206   case ISD::AssertZext:    return "AssertZext";
5207 
5208   case ISD::BasicBlock:    return "BasicBlock";
5209   case ISD::ARG_FLAGS:     return "ArgFlags";
5210   case ISD::VALUETYPE:     return "ValueType";
5211   case ISD::Register:      return "Register";
5212 
5213   case ISD::Constant:      return "Constant";
5214   case ISD::ConstantFP:    return "ConstantFP";
5215   case ISD::GlobalAddress: return "GlobalAddress";
5216   case ISD::GlobalTLSAddress: return "GlobalTLSAddress";
5217   case ISD::FrameIndex:    return "FrameIndex";
5218   case ISD::JumpTable:     return "JumpTable";
5219   case ISD::GLOBAL_OFFSET_TABLE: return "GLOBAL_OFFSET_TABLE";
5220   case ISD::RETURNADDR: return "RETURNADDR";
5221   case ISD::FRAMEADDR: return "FRAMEADDR";
5222   case ISD::FRAME_TO_ARGS_OFFSET: return "FRAME_TO_ARGS_OFFSET";
5223   case ISD::EXCEPTIONADDR: return "EXCEPTIONADDR";
5224   case ISD::EHSELECTION: return "EHSELECTION";
5225   case ISD::EH_RETURN: return "EH_RETURN";
5226   case ISD::ConstantPool:  return "ConstantPool";
5227   case ISD::ExternalSymbol: return "ExternalSymbol";
5228   case ISD::INTRINSIC_WO_CHAIN: {
5229     unsigned IID = cast<ConstantSDNode>(getOperand(0))->getZExtValue();
5230     return Intrinsic::getName((Intrinsic::ID)IID);
5231   }
5232   case ISD::INTRINSIC_VOID:
5233   case ISD::INTRINSIC_W_CHAIN: {
5234     unsigned IID = cast<ConstantSDNode>(getOperand(1))->getZExtValue();
5235     return Intrinsic::getName((Intrinsic::ID)IID);
5236   }
5237 
5238   case ISD::BUILD_VECTOR:   return "BUILD_VECTOR";
5239   case ISD::TargetConstant: return "TargetConstant";
5240   case ISD::TargetConstantFP:return "TargetConstantFP";
5241   case ISD::TargetGlobalAddress: return "TargetGlobalAddress";
5242   case ISD::TargetGlobalTLSAddress: return "TargetGlobalTLSAddress";
5243   case ISD::TargetFrameIndex: return "TargetFrameIndex";
5244   case ISD::TargetJumpTable:  return "TargetJumpTable";
5245   case ISD::TargetConstantPool:  return "TargetConstantPool";
5246   case ISD::TargetExternalSymbol: return "TargetExternalSymbol";
5247 
5248   case ISD::CopyToReg:     return "CopyToReg";
5249   case ISD::CopyFromReg:   return "CopyFromReg";
5250   case ISD::UNDEF:         return "undef";
5251   case ISD::MERGE_VALUES:  return "merge_values";
5252   case ISD::INLINEASM:     return "inlineasm";
5253   case ISD::DBG_LABEL:     return "dbg_label";
5254   case ISD::EH_LABEL:      return "eh_label";
5255   case ISD::DECLARE:       return "declare";
5256   case ISD::HANDLENODE:    return "handlenode";
5257   case ISD::FORMAL_ARGUMENTS: return "formal_arguments";
5258   case ISD::CALL:          return "call";
5259 
5260   // Unary operators
5261   case ISD::FABS:   return "fabs";
5262   case ISD::FNEG:   return "fneg";
5263   case ISD::FSQRT:  return "fsqrt";
5264   case ISD::FSIN:   return "fsin";
5265   case ISD::FCOS:   return "fcos";
5266   case ISD::FPOWI:  return "fpowi";
5267   case ISD::FPOW:   return "fpow";
5268   case ISD::FTRUNC: return "ftrunc";
5269   case ISD::FFLOOR: return "ffloor";
5270   case ISD::FCEIL:  return "fceil";
5271   case ISD::FRINT:  return "frint";
5272   case ISD::FNEARBYINT: return "fnearbyint";
5273 
5274   // Binary operators
5275   case ISD::ADD:    return "add";
5276   case ISD::SUB:    return "sub";
5277   case ISD::MUL:    return "mul";
5278   case ISD::MULHU:  return "mulhu";
5279   case ISD::MULHS:  return "mulhs";
5280   case ISD::SDIV:   return "sdiv";
5281   case ISD::UDIV:   return "udiv";
5282   case ISD::SREM:   return "srem";
5283   case ISD::UREM:   return "urem";
5284   case ISD::SMUL_LOHI:  return "smul_lohi";
5285   case ISD::UMUL_LOHI:  return "umul_lohi";
5286   case ISD::SDIVREM:    return "sdivrem";
5287   case ISD::UDIVREM:    return "udivrem";
5288   case ISD::AND:    return "and";
5289   case ISD::OR:     return "or";
5290   case ISD::XOR:    return "xor";
5291   case ISD::SHL:    return "shl";
5292   case ISD::SRA:    return "sra";
5293   case ISD::SRL:    return "srl";
5294   case ISD::ROTL:   return "rotl";
5295   case ISD::ROTR:   return "rotr";
5296   case ISD::FADD:   return "fadd";
5297   case ISD::FSUB:   return "fsub";
5298   case ISD::FMUL:   return "fmul";
5299   case ISD::FDIV:   return "fdiv";
5300   case ISD::FREM:   return "frem";
5301   case ISD::FCOPYSIGN: return "fcopysign";
5302   case ISD::FGETSIGN:  return "fgetsign";
5303 
5304   case ISD::SETCC:       return "setcc";
5305   case ISD::VSETCC:      return "vsetcc";
5306   case ISD::SELECT:      return "select";
5307   case ISD::SELECT_CC:   return "select_cc";
5308   case ISD::INSERT_VECTOR_ELT:   return "insert_vector_elt";
5309   case ISD::EXTRACT_VECTOR_ELT:  return "extract_vector_elt";
5310   case ISD::CONCAT_VECTORS:      return "concat_vectors";
5311   case ISD::EXTRACT_SUBVECTOR:   return "extract_subvector";
5312   case ISD::SCALAR_TO_VECTOR:    return "scalar_to_vector";
5313   case ISD::VECTOR_SHUFFLE:      return "vector_shuffle";
5314   case ISD::CARRY_FALSE:         return "carry_false";
5315   case ISD::ADDC:        return "addc";
5316   case ISD::ADDE:        return "adde";
5317   case ISD::SADDO:       return "saddo";
5318   case ISD::UADDO:       return "uaddo";
5319   case ISD::SSUBO:       return "ssubo";
5320   case ISD::USUBO:       return "usubo";
5321   case ISD::SMULO:       return "smulo";
5322   case ISD::UMULO:       return "umulo";
5323   case ISD::SUBC:        return "subc";
5324   case ISD::SUBE:        return "sube";
5325   case ISD::SHL_PARTS:   return "shl_parts";
5326   case ISD::SRA_PARTS:   return "sra_parts";
5327   case ISD::SRL_PARTS:   return "srl_parts";
5328 
5329   // Conversion operators.
5330   case ISD::SIGN_EXTEND: return "sign_extend";
5331   case ISD::ZERO_EXTEND: return "zero_extend";
5332   case ISD::ANY_EXTEND:  return "any_extend";
5333   case ISD::SIGN_EXTEND_INREG: return "sign_extend_inreg";
5334   case ISD::TRUNCATE:    return "truncate";
5335   case ISD::FP_ROUND:    return "fp_round";
5336   case ISD::FLT_ROUNDS_: return "flt_rounds";
5337   case ISD::FP_ROUND_INREG: return "fp_round_inreg";
5338   case ISD::FP_EXTEND:   return "fp_extend";
5339 
5340   case ISD::SINT_TO_FP:  return "sint_to_fp";
5341   case ISD::UINT_TO_FP:  return "uint_to_fp";
5342   case ISD::FP_TO_SINT:  return "fp_to_sint";
5343   case ISD::FP_TO_UINT:  return "fp_to_uint";
5344   case ISD::BIT_CONVERT: return "bit_convert";
5345 
5346   case ISD::CONVERT_RNDSAT: {
5347     switch (cast<CvtRndSatSDNode>(this)->getCvtCode()) {
5348     default: llvm_unreachable("Unknown cvt code!");
5349     case ISD::CVT_FF:  return "cvt_ff";
5350     case ISD::CVT_FS:  return "cvt_fs";
5351     case ISD::CVT_FU:  return "cvt_fu";
5352     case ISD::CVT_SF:  return "cvt_sf";
5353     case ISD::CVT_UF:  return "cvt_uf";
5354     case ISD::CVT_SS:  return "cvt_ss";
5355     case ISD::CVT_SU:  return "cvt_su";
5356     case ISD::CVT_US:  return "cvt_us";
5357     case ISD::CVT_UU:  return "cvt_uu";
5358     }
5359   }
5360 
5361     // Control flow instructions
5362   case ISD::BR:      return "br";
5363   case ISD::BRIND:   return "brind";
5364   case ISD::BR_JT:   return "br_jt";
5365   case ISD::BRCOND:  return "brcond";
5366   case ISD::BR_CC:   return "br_cc";
5367   case ISD::RET:     return "ret";
5368   case ISD::CALLSEQ_START:  return "callseq_start";
5369   case ISD::CALLSEQ_END:    return "callseq_end";
5370 
5371     // Other operators
5372   case ISD::LOAD:               return "load";
5373   case ISD::STORE:              return "store";
5374   case ISD::VAARG:              return "vaarg";
5375   case ISD::VACOPY:             return "vacopy";
5376   case ISD::VAEND:              return "vaend";
5377   case ISD::VASTART:            return "vastart";
5378   case ISD::DYNAMIC_STACKALLOC: return "dynamic_stackalloc";
5379   case ISD::EXTRACT_ELEMENT:    return "extract_element";
5380   case ISD::BUILD_PAIR:         return "build_pair";
5381   case ISD::STACKSAVE:          return "stacksave";
5382   case ISD::STACKRESTORE:       return "stackrestore";
5383   case ISD::TRAP:               return "trap";
5384 
5385   // Bit manipulation
5386   case ISD::BSWAP:   return "bswap";
5387   case ISD::CTPOP:   return "ctpop";
5388   case ISD::CTTZ:    return "cttz";
5389   case ISD::CTLZ:    return "ctlz";
5390 
5391   // Debug info
5392   case ISD::DBG_STOPPOINT: return "dbg_stoppoint";
5393   case ISD::DEBUG_LOC: return "debug_loc";
5394 
5395   // Trampolines
5396   case ISD::TRAMPOLINE: return "trampoline";
5397 
5398   case ISD::CONDCODE:
5399     switch (cast<CondCodeSDNode>(this)->get()) {
5400     default: llvm_unreachable("Unknown setcc condition!");
5401     case ISD::SETOEQ:  return "setoeq";
5402     case ISD::SETOGT:  return "setogt";
5403     case ISD::SETOGE:  return "setoge";
5404     case ISD::SETOLT:  return "setolt";
5405     case ISD::SETOLE:  return "setole";
5406     case ISD::SETONE:  return "setone";
5407 
5408     case ISD::SETO:    return "seto";
5409     case ISD::SETUO:   return "setuo";
5410     case ISD::SETUEQ:  return "setue";
5411     case ISD::SETUGT:  return "setugt";
5412     case ISD::SETUGE:  return "setuge";
5413     case ISD::SETULT:  return "setult";
5414     case ISD::SETULE:  return "setule";
5415     case ISD::SETUNE:  return "setune";
5416 
5417     case ISD::SETEQ:   return "seteq";
5418     case ISD::SETGT:   return "setgt";
5419     case ISD::SETGE:   return "setge";
5420     case ISD::SETLT:   return "setlt";
5421     case ISD::SETLE:   return "setle";
5422     case ISD::SETNE:   return "setne";
5423     }
5424   }
5425 }
5426 
5427 const char *SDNode::getIndexedModeName(ISD::MemIndexedMode AM) {
5428   switch (AM) {
5429   default:
5430     return "";
5431   case ISD::PRE_INC:
5432     return "<pre-inc>";
5433   case ISD::PRE_DEC:
5434     return "<pre-dec>";
5435   case ISD::POST_INC:
5436     return "<post-inc>";
5437   case ISD::POST_DEC:
5438     return "<post-dec>";
5439   }
5440 }
5441 
5442 std::string ISD::ArgFlagsTy::getArgFlagsString() {
5443   std::string S = "< ";
5444 
5445   if (isZExt())
5446     S += "zext ";
5447   if (isSExt())
5448     S += "sext ";
5449   if (isInReg())
5450     S += "inreg ";
5451   if (isSRet())
5452     S += "sret ";
5453   if (isByVal())
5454     S += "byval ";
5455   if (isNest())
5456     S += "nest ";
5457   if (getByValAlign())
5458     S += "byval-align:" + utostr(getByValAlign()) + " ";
5459   if (getOrigAlign())
5460     S += "orig-align:" + utostr(getOrigAlign()) + " ";
5461   if (getByValSize())
5462     S += "byval-size:" + utostr(getByValSize()) + " ";
5463   return S + ">";
5464 }
5465 
5466 void SDNode::dump() const { dump(0); }
5467 void SDNode::dump(const SelectionDAG *G) const {
5468   print(errs(), G);
5469 }
5470 
5471 void SDNode::print_types(raw_ostream &OS, const SelectionDAG *G) const {
5472   OS << (void*)this << ": ";
5473 
5474   for (unsigned i = 0, e = getNumValues(); i != e; ++i) {
5475     if (i) OS << ",";
5476     if (getValueType(i) == MVT::Other)
5477       OS << "ch";
5478     else
5479       OS << getValueType(i).getMVTString();
5480   }
5481   OS << " = " << getOperationName(G);
5482 }
5483 
5484 void SDNode::print_details(raw_ostream &OS, const SelectionDAG *G) const {
5485   if (!isTargetOpcode() && getOpcode() == ISD::VECTOR_SHUFFLE) {
5486     const ShuffleVectorSDNode *SVN = cast<ShuffleVectorSDNode>(this);
5487     OS << "<";
5488     for (unsigned i = 0, e = ValueList[0].getVectorNumElements(); i != e; ++i) {
5489       int Idx = SVN->getMaskElt(i);
5490       if (i) OS << ",";
5491       if (Idx < 0)
5492         OS << "u";
5493       else
5494         OS << Idx;
5495     }
5496     OS << ">";
5497   }
5498 
5499   if (const ConstantSDNode *CSDN = dyn_cast<ConstantSDNode>(this)) {
5500     OS << '<' << CSDN->getAPIntValue() << '>';
5501   } else if (const ConstantFPSDNode *CSDN = dyn_cast<ConstantFPSDNode>(this)) {
5502     if (&CSDN->getValueAPF().getSemantics()==&APFloat::IEEEsingle)
5503       OS << '<' << CSDN->getValueAPF().convertToFloat() << '>';
5504     else if (&CSDN->getValueAPF().getSemantics()==&APFloat::IEEEdouble)
5505       OS << '<' << CSDN->getValueAPF().convertToDouble() << '>';
5506     else {
5507       OS << "<APFloat(";
5508       CSDN->getValueAPF().bitcastToAPInt().dump();
5509       OS << ")>";
5510     }
5511   } else if (const GlobalAddressSDNode *GADN =
5512              dyn_cast<GlobalAddressSDNode>(this)) {
5513     int64_t offset = GADN->getOffset();
5514     OS << '<';
5515     WriteAsOperand(OS, GADN->getGlobal());
5516     OS << '>';
5517     if (offset > 0)
5518       OS << " + " << offset;
5519     else
5520       OS << " " << offset;
5521     if (unsigned int TF = GADN->getTargetFlags())
5522       OS << " [TF=" << TF << ']';
5523   } else if (const FrameIndexSDNode *FIDN = dyn_cast<FrameIndexSDNode>(this)) {
5524     OS << "<" << FIDN->getIndex() << ">";
5525   } else if (const JumpTableSDNode *JTDN = dyn_cast<JumpTableSDNode>(this)) {
5526     OS << "<" << JTDN->getIndex() << ">";
5527     if (unsigned int TF = JTDN->getTargetFlags())
5528       OS << " [TF=" << TF << ']';
5529   } else if (const ConstantPoolSDNode *CP = dyn_cast<ConstantPoolSDNode>(this)){
5530     int offset = CP->getOffset();
5531     if (CP->isMachineConstantPoolEntry())
5532       OS << "<" << *CP->getMachineCPVal() << ">";
5533     else
5534       OS << "<" << *CP->getConstVal() << ">";
5535     if (offset > 0)
5536       OS << " + " << offset;
5537     else
5538       OS << " " << offset;
5539     if (unsigned int TF = CP->getTargetFlags())
5540       OS << " [TF=" << TF << ']';
5541   } else if (const BasicBlockSDNode *BBDN = dyn_cast<BasicBlockSDNode>(this)) {
5542     OS << "<";
5543     const Value *LBB = (const Value*)BBDN->getBasicBlock()->getBasicBlock();
5544     if (LBB)
5545       OS << LBB->getName() << " ";
5546     OS << (const void*)BBDN->getBasicBlock() << ">";
5547   } else if (const RegisterSDNode *R = dyn_cast<RegisterSDNode>(this)) {
5548     if (G && R->getReg() &&
5549         TargetRegisterInfo::isPhysicalRegister(R->getReg())) {
5550       OS << " " << G->getTarget().getRegisterInfo()->getName(R->getReg());
5551     } else {
5552       OS << " #" << R->getReg();
5553     }
5554   } else if (const ExternalSymbolSDNode *ES =
5555              dyn_cast<ExternalSymbolSDNode>(this)) {
5556     OS << "'" << ES->getSymbol() << "'";
5557     if (unsigned int TF = ES->getTargetFlags())
5558       OS << " [TF=" << TF << ']';
5559   } else if (const SrcValueSDNode *M = dyn_cast<SrcValueSDNode>(this)) {
5560     if (M->getValue())
5561       OS << "<" << M->getValue() << ">";
5562     else
5563       OS << "<null>";
5564   } else if (const MemOperandSDNode *M = dyn_cast<MemOperandSDNode>(this)) {
5565     if (M->MO.getValue())
5566       OS << "<" << M->MO.getValue() << ":" << M->MO.getOffset() << ">";
5567     else
5568       OS << "<null:" << M->MO.getOffset() << ">";
5569   } else if (const ARG_FLAGSSDNode *N = dyn_cast<ARG_FLAGSSDNode>(this)) {
5570     OS << N->getArgFlags().getArgFlagsString();
5571   } else if (const VTSDNode *N = dyn_cast<VTSDNode>(this)) {
5572     OS << ":" << N->getVT().getMVTString();
5573   }
5574   else if (const LoadSDNode *LD = dyn_cast<LoadSDNode>(this)) {
5575     const Value *SrcValue = LD->getSrcValue();
5576     int SrcOffset = LD->getSrcValueOffset();
5577     OS << " <";
5578     if (SrcValue)
5579       OS << SrcValue;
5580     else
5581       OS << "null";
5582     OS << ":" << SrcOffset << ">";
5583 
5584     bool doExt = true;
5585     switch (LD->getExtensionType()) {
5586     default: doExt = false; break;
5587     case ISD::EXTLOAD: OS << " <anyext "; break;
5588     case ISD::SEXTLOAD: OS << " <sext "; break;
5589     case ISD::ZEXTLOAD: OS << " <zext "; break;
5590     }
5591     if (doExt)
5592       OS << LD->getMemoryVT().getMVTString() << ">";
5593 
5594     const char *AM = getIndexedModeName(LD->getAddressingMode());
5595     if (*AM)
5596       OS << " " << AM;
5597     if (LD->isVolatile())
5598       OS << " <volatile>";
5599     OS << " alignment=" << LD->getAlignment();
5600   } else if (const StoreSDNode *ST = dyn_cast<StoreSDNode>(this)) {
5601     const Value *SrcValue = ST->getSrcValue();
5602     int SrcOffset = ST->getSrcValueOffset();
5603     OS << " <";
5604     if (SrcValue)
5605       OS << SrcValue;
5606     else
5607       OS << "null";
5608     OS << ":" << SrcOffset << ">";
5609 
5610     if (ST->isTruncatingStore())
5611       OS << " <trunc " << ST->getMemoryVT().getMVTString() << ">";
5612 
5613     const char *AM = getIndexedModeName(ST->getAddressingMode());
5614     if (*AM)
5615       OS << " " << AM;
5616     if (ST->isVolatile())
5617       OS << " <volatile>";
5618     OS << " alignment=" << ST->getAlignment();
5619   } else if (const AtomicSDNode* AT = dyn_cast<AtomicSDNode>(this)) {
5620     const Value *SrcValue = AT->getSrcValue();
5621     int SrcOffset = AT->getSrcValueOffset();
5622     OS << " <";
5623     if (SrcValue)
5624       OS << SrcValue;
5625     else
5626       OS << "null";
5627     OS << ":" << SrcOffset << ">";
5628     if (AT->isVolatile())
5629       OS << " <volatile>";
5630     OS << " alignment=" << AT->getAlignment();
5631   }
5632 }
5633 
5634 void SDNode::print(raw_ostream &OS, const SelectionDAG *G) const {
5635   print_types(OS, G);
5636   OS << " ";
5637   for (unsigned i = 0, e = getNumOperands(); i != e; ++i) {
5638     if (i) OS << ", ";
5639     OS << (void*)getOperand(i).getNode();
5640     if (unsigned RN = getOperand(i).getResNo())
5641       OS << ":" << RN;
5642   }
5643   print_details(OS, G);
5644 }
5645 
5646 static void DumpNodes(const SDNode *N, unsigned indent, const SelectionDAG *G) {
5647   for (unsigned i = 0, e = N->getNumOperands(); i != e; ++i)
5648     if (N->getOperand(i).getNode()->hasOneUse())
5649       DumpNodes(N->getOperand(i).getNode(), indent+2, G);
5650     else
5651       cerr << "\n" << std::string(indent+2, ' ')
5652            << (void*)N->getOperand(i).getNode() << ": <multiple use>";
5653 
5654 
5655   cerr << "\n" << std::string(indent, ' ');
5656   N->dump(G);
5657 }
5658 
5659 void SelectionDAG::dump() const {
5660   cerr << "SelectionDAG has " << AllNodes.size() << " nodes:";
5661 
5662   for (allnodes_const_iterator I = allnodes_begin(), E = allnodes_end();
5663        I != E; ++I) {
5664     const SDNode *N = I;
5665     if (!N->hasOneUse() && N != getRoot().getNode())
5666       DumpNodes(N, 2, this);
5667   }
5668 
5669   if (getRoot().getNode()) DumpNodes(getRoot().getNode(), 2, this);
5670 
5671   cerr << "\n\n";
5672 }
5673 
5674 void SDNode::printr(raw_ostream &OS, const SelectionDAG *G) const {
5675   print_types(OS, G);
5676   print_details(OS, G);
5677 }
5678 
5679 typedef SmallPtrSet<const SDNode *, 128> VisitedSDNodeSet;
5680 static void DumpNodesr(raw_ostream &OS, const SDNode *N, unsigned indent,
5681                        const SelectionDAG *G, VisitedSDNodeSet &once) {
5682   if (!once.insert(N))          // If we've been here before, return now.
5683     return;
5684   // Dump the current SDNode, but don't end the line yet.
5685   OS << std::string(indent, ' ');
5686   N->printr(OS, G);
5687   // Having printed this SDNode, walk the children:
5688   for (unsigned i = 0, e = N->getNumOperands(); i != e; ++i) {
5689     const SDNode *child = N->getOperand(i).getNode();
5690     if (i) OS << ",";
5691     OS << " ";
5692     if (child->getNumOperands() == 0) {
5693       // This child has no grandchildren; print it inline right here.
5694       child->printr(OS, G);
5695       once.insert(child);
5696     } else {          // Just the address.  FIXME: also print the child's opcode
5697       OS << (void*)child;
5698       if (unsigned RN = N->getOperand(i).getResNo())
5699         OS << ":" << RN;
5700     }
5701   }
5702   OS << "\n";
5703   // Dump children that have grandchildren on their own line(s).
5704   for (unsigned i = 0, e = N->getNumOperands(); i != e; ++i) {
5705     const SDNode *child = N->getOperand(i).getNode();
5706     DumpNodesr(OS, child, indent+2, G, once);
5707   }
5708 }
5709 
5710 void SDNode::dumpr() const {
5711   VisitedSDNodeSet once;
5712   DumpNodesr(errs(), this, 0, 0, once);
5713 }
5714 
5715 
5716 // getAddressSpace - Return the address space this GlobalAddress belongs to.
5717 unsigned GlobalAddressSDNode::getAddressSpace() const {
5718   return getGlobal()->getType()->getAddressSpace();
5719 }
5720 
5721 
5722 const Type *ConstantPoolSDNode::getType() const {
5723   if (isMachineConstantPoolEntry())
5724     return Val.MachineCPVal->getType();
5725   return Val.ConstVal->getType();
5726 }
5727 
5728 bool BuildVectorSDNode::isConstantSplat(APInt &SplatValue,
5729                                         APInt &SplatUndef,
5730                                         unsigned &SplatBitSize,
5731                                         bool &HasAnyUndefs,
5732                                         unsigned MinSplatBits) {
5733   MVT VT = getValueType(0);
5734   assert(VT.isVector() && "Expected a vector type");
5735   unsigned sz = VT.getSizeInBits();
5736   if (MinSplatBits > sz)
5737     return false;
5738 
5739   SplatValue = APInt(sz, 0);
5740   SplatUndef = APInt(sz, 0);
5741 
5742   // Get the bits.  Bits with undefined values (when the corresponding element
5743   // of the vector is an ISD::UNDEF value) are set in SplatUndef and cleared
5744   // in SplatValue.  If any of the values are not constant, give up and return
5745   // false.
5746   unsigned int nOps = getNumOperands();
5747   assert(nOps > 0 && "isConstantSplat has 0-size build vector");
5748   unsigned EltBitSize = VT.getVectorElementType().getSizeInBits();
5749   for (unsigned i = 0; i < nOps; ++i) {
5750     SDValue OpVal = getOperand(i);
5751     unsigned BitPos = i * EltBitSize;
5752 
5753     if (OpVal.getOpcode() == ISD::UNDEF)
5754       SplatUndef |= APInt::getBitsSet(sz, BitPos, BitPos +EltBitSize);
5755     else if (ConstantSDNode *CN = dyn_cast<ConstantSDNode>(OpVal))
5756       SplatValue |= (APInt(CN->getAPIntValue()).zextOrTrunc(EltBitSize).
5757                      zextOrTrunc(sz) << BitPos);
5758     else if (ConstantFPSDNode *CN = dyn_cast<ConstantFPSDNode>(OpVal))
5759       SplatValue |= CN->getValueAPF().bitcastToAPInt().zextOrTrunc(sz) <<BitPos;
5760      else
5761       return false;
5762   }
5763 
5764   // The build_vector is all constants or undefs.  Find the smallest element
5765   // size that splats the vector.
5766 
5767   HasAnyUndefs = (SplatUndef != 0);
5768   while (sz > 8) {
5769 
5770     unsigned HalfSize = sz / 2;
5771     APInt HighValue = APInt(SplatValue).lshr(HalfSize).trunc(HalfSize);
5772     APInt LowValue = APInt(SplatValue).trunc(HalfSize);
5773     APInt HighUndef = APInt(SplatUndef).lshr(HalfSize).trunc(HalfSize);
5774     APInt LowUndef = APInt(SplatUndef).trunc(HalfSize);
5775 
5776     // If the two halves do not match (ignoring undef bits), stop here.
5777     if ((HighValue & ~LowUndef) != (LowValue & ~HighUndef) ||
5778         MinSplatBits > HalfSize)
5779       break;
5780 
5781     SplatValue = HighValue | LowValue;
5782     SplatUndef = HighUndef & LowUndef;
5783 
5784     sz = HalfSize;
5785   }
5786 
5787   SplatBitSize = sz;
5788   return true;
5789 }
5790 
5791 bool ShuffleVectorSDNode::isSplatMask(const int *Mask, MVT VT) {
5792   // Find the first non-undef value in the shuffle mask.
5793   unsigned i, e;
5794   for (i = 0, e = VT.getVectorNumElements(); i != e && Mask[i] < 0; ++i)
5795     /* search */;
5796 
5797   assert(i != e && "VECTOR_SHUFFLE node with all undef indices!");
5798 
5799   // Make sure all remaining elements are either undef or the same as the first
5800   // non-undef value.
5801   for (int Idx = Mask[i]; i != e; ++i)
5802     if (Mask[i] >= 0 && Mask[i] != Idx)
5803       return false;
5804   return true;
5805 }
5806