1 //===- Instructions.cpp - Implement the LLVM instructions -----------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file implements all of the non-inline methods for the LLVM instruction
10 // classes.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "llvm/IR/Instructions.h"
15 #include "LLVMContextImpl.h"
16 #include "llvm/ADT/None.h"
17 #include "llvm/ADT/SmallVector.h"
18 #include "llvm/ADT/Twine.h"
19 #include "llvm/IR/Attributes.h"
20 #include "llvm/IR/BasicBlock.h"
21 #include "llvm/IR/Constant.h"
22 #include "llvm/IR/Constants.h"
23 #include "llvm/IR/DataLayout.h"
24 #include "llvm/IR/DerivedTypes.h"
25 #include "llvm/IR/Function.h"
26 #include "llvm/IR/InstrTypes.h"
27 #include "llvm/IR/Instruction.h"
28 #include "llvm/IR/Intrinsics.h"
29 #include "llvm/IR/LLVMContext.h"
30 #include "llvm/IR/MDBuilder.h"
31 #include "llvm/IR/Metadata.h"
32 #include "llvm/IR/Module.h"
33 #include "llvm/IR/Operator.h"
34 #include "llvm/IR/Type.h"
35 #include "llvm/IR/Value.h"
36 #include "llvm/Support/AtomicOrdering.h"
37 #include "llvm/Support/Casting.h"
38 #include "llvm/Support/ErrorHandling.h"
39 #include "llvm/Support/MathExtras.h"
40 #include "llvm/Support/TypeSize.h"
41 #include <algorithm>
42 #include <cassert>
43 #include <cstdint>
44 #include <vector>
45 
46 using namespace llvm;
47 
48 //===----------------------------------------------------------------------===//
49 //                            AllocaInst Class
50 //===----------------------------------------------------------------------===//
51 
52 Optional<TypeSize>
53 AllocaInst::getAllocationSizeInBits(const DataLayout &DL) const {
54   TypeSize Size = DL.getTypeAllocSizeInBits(getAllocatedType());
55   if (isArrayAllocation()) {
56     auto *C = dyn_cast<ConstantInt>(getArraySize());
57     if (!C)
58       return None;
59     assert(!Size.isScalable() && "Array elements cannot have a scalable size");
60     Size *= C->getZExtValue();
61   }
62   return Size;
63 }
64 
65 //===----------------------------------------------------------------------===//
66 //                              SelectInst Class
67 //===----------------------------------------------------------------------===//
68 
69 /// areInvalidOperands - Return a string if the specified operands are invalid
70 /// for a select operation, otherwise return null.
71 const char *SelectInst::areInvalidOperands(Value *Op0, Value *Op1, Value *Op2) {
72   if (Op1->getType() != Op2->getType())
73     return "both values to select must have same type";
74 
75   if (Op1->getType()->isTokenTy())
76     return "select values cannot have token type";
77 
78   if (VectorType *VT = dyn_cast<VectorType>(Op0->getType())) {
79     // Vector select.
80     if (VT->getElementType() != Type::getInt1Ty(Op0->getContext()))
81       return "vector select condition element type must be i1";
82     VectorType *ET = dyn_cast<VectorType>(Op1->getType());
83     if (!ET)
84       return "selected values for vector select must be vectors";
85     if (ET->getElementCount() != VT->getElementCount())
86       return "vector select requires selected vectors to have "
87                    "the same vector length as select condition";
88   } else if (Op0->getType() != Type::getInt1Ty(Op0->getContext())) {
89     return "select condition must be i1 or <n x i1>";
90   }
91   return nullptr;
92 }
93 
94 //===----------------------------------------------------------------------===//
95 //                               PHINode Class
96 //===----------------------------------------------------------------------===//
97 
98 PHINode::PHINode(const PHINode &PN)
99     : Instruction(PN.getType(), Instruction::PHI, nullptr, PN.getNumOperands()),
100       ReservedSpace(PN.getNumOperands()) {
101   allocHungoffUses(PN.getNumOperands());
102   std::copy(PN.op_begin(), PN.op_end(), op_begin());
103   std::copy(PN.block_begin(), PN.block_end(), block_begin());
104   SubclassOptionalData = PN.SubclassOptionalData;
105 }
106 
107 // removeIncomingValue - Remove an incoming value.  This is useful if a
108 // predecessor basic block is deleted.
109 Value *PHINode::removeIncomingValue(unsigned Idx, bool DeletePHIIfEmpty) {
110   Value *Removed = getIncomingValue(Idx);
111 
112   // Move everything after this operand down.
113   //
114   // FIXME: we could just swap with the end of the list, then erase.  However,
115   // clients might not expect this to happen.  The code as it is thrashes the
116   // use/def lists, which is kinda lame.
117   std::copy(op_begin() + Idx + 1, op_end(), op_begin() + Idx);
118   std::copy(block_begin() + Idx + 1, block_end(), block_begin() + Idx);
119 
120   // Nuke the last value.
121   Op<-1>().set(nullptr);
122   setNumHungOffUseOperands(getNumOperands() - 1);
123 
124   // If the PHI node is dead, because it has zero entries, nuke it now.
125   if (getNumOperands() == 0 && DeletePHIIfEmpty) {
126     // If anyone is using this PHI, make them use a dummy value instead...
127     replaceAllUsesWith(UndefValue::get(getType()));
128     eraseFromParent();
129   }
130   return Removed;
131 }
132 
133 /// growOperands - grow operands - This grows the operand list in response
134 /// to a push_back style of operation.  This grows the number of ops by 1.5
135 /// times.
136 ///
137 void PHINode::growOperands() {
138   unsigned e = getNumOperands();
139   unsigned NumOps = e + e / 2;
140   if (NumOps < 2) NumOps = 2;      // 2 op PHI nodes are VERY common.
141 
142   ReservedSpace = NumOps;
143   growHungoffUses(ReservedSpace, /* IsPhi */ true);
144 }
145 
146 /// hasConstantValue - If the specified PHI node always merges together the same
147 /// value, return the value, otherwise return null.
148 Value *PHINode::hasConstantValue() const {
149   // Exploit the fact that phi nodes always have at least one entry.
150   Value *ConstantValue = getIncomingValue(0);
151   for (unsigned i = 1, e = getNumIncomingValues(); i != e; ++i)
152     if (getIncomingValue(i) != ConstantValue && getIncomingValue(i) != this) {
153       if (ConstantValue != this)
154         return nullptr; // Incoming values not all the same.
155        // The case where the first value is this PHI.
156       ConstantValue = getIncomingValue(i);
157     }
158   if (ConstantValue == this)
159     return UndefValue::get(getType());
160   return ConstantValue;
161 }
162 
163 /// hasConstantOrUndefValue - Whether the specified PHI node always merges
164 /// together the same value, assuming that undefs result in the same value as
165 /// non-undefs.
166 /// Unlike \ref hasConstantValue, this does not return a value because the
167 /// unique non-undef incoming value need not dominate the PHI node.
168 bool PHINode::hasConstantOrUndefValue() const {
169   Value *ConstantValue = nullptr;
170   for (unsigned i = 0, e = getNumIncomingValues(); i != e; ++i) {
171     Value *Incoming = getIncomingValue(i);
172     if (Incoming != this && !isa<UndefValue>(Incoming)) {
173       if (ConstantValue && ConstantValue != Incoming)
174         return false;
175       ConstantValue = Incoming;
176     }
177   }
178   return true;
179 }
180 
181 //===----------------------------------------------------------------------===//
182 //                       LandingPadInst Implementation
183 //===----------------------------------------------------------------------===//
184 
185 LandingPadInst::LandingPadInst(Type *RetTy, unsigned NumReservedValues,
186                                const Twine &NameStr, Instruction *InsertBefore)
187     : Instruction(RetTy, Instruction::LandingPad, nullptr, 0, InsertBefore) {
188   init(NumReservedValues, NameStr);
189 }
190 
191 LandingPadInst::LandingPadInst(Type *RetTy, unsigned NumReservedValues,
192                                const Twine &NameStr, BasicBlock *InsertAtEnd)
193     : Instruction(RetTy, Instruction::LandingPad, nullptr, 0, InsertAtEnd) {
194   init(NumReservedValues, NameStr);
195 }
196 
197 LandingPadInst::LandingPadInst(const LandingPadInst &LP)
198     : Instruction(LP.getType(), Instruction::LandingPad, nullptr,
199                   LP.getNumOperands()),
200       ReservedSpace(LP.getNumOperands()) {
201   allocHungoffUses(LP.getNumOperands());
202   Use *OL = getOperandList();
203   const Use *InOL = LP.getOperandList();
204   for (unsigned I = 0, E = ReservedSpace; I != E; ++I)
205     OL[I] = InOL[I];
206 
207   setCleanup(LP.isCleanup());
208 }
209 
210 LandingPadInst *LandingPadInst::Create(Type *RetTy, unsigned NumReservedClauses,
211                                        const Twine &NameStr,
212                                        Instruction *InsertBefore) {
213   return new LandingPadInst(RetTy, NumReservedClauses, NameStr, InsertBefore);
214 }
215 
216 LandingPadInst *LandingPadInst::Create(Type *RetTy, unsigned NumReservedClauses,
217                                        const Twine &NameStr,
218                                        BasicBlock *InsertAtEnd) {
219   return new LandingPadInst(RetTy, NumReservedClauses, NameStr, InsertAtEnd);
220 }
221 
222 void LandingPadInst::init(unsigned NumReservedValues, const Twine &NameStr) {
223   ReservedSpace = NumReservedValues;
224   setNumHungOffUseOperands(0);
225   allocHungoffUses(ReservedSpace);
226   setName(NameStr);
227   setCleanup(false);
228 }
229 
230 /// growOperands - grow operands - This grows the operand list in response to a
231 /// push_back style of operation. This grows the number of ops by 2 times.
232 void LandingPadInst::growOperands(unsigned Size) {
233   unsigned e = getNumOperands();
234   if (ReservedSpace >= e + Size) return;
235   ReservedSpace = (std::max(e, 1U) + Size / 2) * 2;
236   growHungoffUses(ReservedSpace);
237 }
238 
239 void LandingPadInst::addClause(Constant *Val) {
240   unsigned OpNo = getNumOperands();
241   growOperands(1);
242   assert(OpNo < ReservedSpace && "Growing didn't work!");
243   setNumHungOffUseOperands(getNumOperands() + 1);
244   getOperandList()[OpNo] = Val;
245 }
246 
247 //===----------------------------------------------------------------------===//
248 //                        CallBase Implementation
249 //===----------------------------------------------------------------------===//
250 
251 CallBase *CallBase::Create(CallBase *CB, ArrayRef<OperandBundleDef> Bundles,
252                            Instruction *InsertPt) {
253   switch (CB->getOpcode()) {
254   case Instruction::Call:
255     return CallInst::Create(cast<CallInst>(CB), Bundles, InsertPt);
256   case Instruction::Invoke:
257     return InvokeInst::Create(cast<InvokeInst>(CB), Bundles, InsertPt);
258   case Instruction::CallBr:
259     return CallBrInst::Create(cast<CallBrInst>(CB), Bundles, InsertPt);
260   default:
261     llvm_unreachable("Unknown CallBase sub-class!");
262   }
263 }
264 
265 CallBase *CallBase::Create(CallBase *CI, OperandBundleDef OpB,
266                            Instruction *InsertPt) {
267   SmallVector<OperandBundleDef, 2> OpDefs;
268   for (unsigned i = 0, e = CI->getNumOperandBundles(); i < e; ++i) {
269     auto ChildOB = CI->getOperandBundleAt(i);
270     if (ChildOB.getTagName() != OpB.getTag())
271       OpDefs.emplace_back(ChildOB);
272   }
273   OpDefs.emplace_back(OpB);
274   return CallBase::Create(CI, OpDefs, InsertPt);
275 }
276 
277 
278 Function *CallBase::getCaller() { return getParent()->getParent(); }
279 
280 unsigned CallBase::getNumSubclassExtraOperandsDynamic() const {
281   assert(getOpcode() == Instruction::CallBr && "Unexpected opcode!");
282   return cast<CallBrInst>(this)->getNumIndirectDests() + 1;
283 }
284 
285 bool CallBase::isIndirectCall() const {
286   const Value *V = getCalledOperand();
287   if (isa<Function>(V) || isa<Constant>(V))
288     return false;
289   return !isInlineAsm();
290 }
291 
292 /// Tests if this call site must be tail call optimized. Only a CallInst can
293 /// be tail call optimized.
294 bool CallBase::isMustTailCall() const {
295   if (auto *CI = dyn_cast<CallInst>(this))
296     return CI->isMustTailCall();
297   return false;
298 }
299 
300 /// Tests if this call site is marked as a tail call.
301 bool CallBase::isTailCall() const {
302   if (auto *CI = dyn_cast<CallInst>(this))
303     return CI->isTailCall();
304   return false;
305 }
306 
307 Intrinsic::ID CallBase::getIntrinsicID() const {
308   if (auto *F = getCalledFunction())
309     return F->getIntrinsicID();
310   return Intrinsic::not_intrinsic;
311 }
312 
313 bool CallBase::isReturnNonNull() const {
314   if (hasRetAttr(Attribute::NonNull))
315     return true;
316 
317   if (getDereferenceableBytes(AttributeList::ReturnIndex) > 0 &&
318            !NullPointerIsDefined(getCaller(),
319                                  getType()->getPointerAddressSpace()))
320     return true;
321 
322   return false;
323 }
324 
325 Value *CallBase::getReturnedArgOperand() const {
326   unsigned Index;
327 
328   if (Attrs.hasAttrSomewhere(Attribute::Returned, &Index) && Index)
329     return getArgOperand(Index - AttributeList::FirstArgIndex);
330   if (const Function *F = getCalledFunction())
331     if (F->getAttributes().hasAttrSomewhere(Attribute::Returned, &Index) &&
332         Index)
333       return getArgOperand(Index - AttributeList::FirstArgIndex);
334 
335   return nullptr;
336 }
337 
338 /// Determine whether the argument or parameter has the given attribute.
339 bool CallBase::paramHasAttr(unsigned ArgNo, Attribute::AttrKind Kind) const {
340   assert(ArgNo < getNumArgOperands() && "Param index out of bounds!");
341 
342   if (Attrs.hasParamAttribute(ArgNo, Kind))
343     return true;
344   if (const Function *F = getCalledFunction())
345     return F->getAttributes().hasParamAttribute(ArgNo, Kind);
346   return false;
347 }
348 
349 bool CallBase::hasFnAttrOnCalledFunction(Attribute::AttrKind Kind) const {
350   if (const Function *F = getCalledFunction())
351     return F->getAttributes().hasFnAttribute(Kind);
352   return false;
353 }
354 
355 bool CallBase::hasFnAttrOnCalledFunction(StringRef Kind) const {
356   if (const Function *F = getCalledFunction())
357     return F->getAttributes().hasFnAttribute(Kind);
358   return false;
359 }
360 
361 void CallBase::getOperandBundlesAsDefs(
362     SmallVectorImpl<OperandBundleDef> &Defs) const {
363   for (unsigned i = 0, e = getNumOperandBundles(); i != e; ++i)
364     Defs.emplace_back(getOperandBundleAt(i));
365 }
366 
367 CallBase::op_iterator
368 CallBase::populateBundleOperandInfos(ArrayRef<OperandBundleDef> Bundles,
369                                      const unsigned BeginIndex) {
370   auto It = op_begin() + BeginIndex;
371   for (auto &B : Bundles)
372     It = std::copy(B.input_begin(), B.input_end(), It);
373 
374   auto *ContextImpl = getContext().pImpl;
375   auto BI = Bundles.begin();
376   unsigned CurrentIndex = BeginIndex;
377 
378   for (auto &BOI : bundle_op_infos()) {
379     assert(BI != Bundles.end() && "Incorrect allocation?");
380 
381     BOI.Tag = ContextImpl->getOrInsertBundleTag(BI->getTag());
382     BOI.Begin = CurrentIndex;
383     BOI.End = CurrentIndex + BI->input_size();
384     CurrentIndex = BOI.End;
385     BI++;
386   }
387 
388   assert(BI == Bundles.end() && "Incorrect allocation?");
389 
390   return It;
391 }
392 
393 CallBase::BundleOpInfo &CallBase::getBundleOpInfoForOperand(unsigned OpIdx) {
394   /// When there isn't many bundles, we do a simple linear search.
395   /// Else fallback to a binary-search that use the fact that bundles usually
396   /// have similar number of argument to get faster convergence.
397   if (bundle_op_info_end() - bundle_op_info_begin() < 8) {
398     for (auto &BOI : bundle_op_infos())
399       if (BOI.Begin <= OpIdx && OpIdx < BOI.End)
400         return BOI;
401 
402     llvm_unreachable("Did not find operand bundle for operand!");
403   }
404 
405   assert(OpIdx >= arg_size() && "the Idx is not in the operand bundles");
406   assert(bundle_op_info_end() - bundle_op_info_begin() > 0 &&
407          OpIdx < std::prev(bundle_op_info_end())->End &&
408          "The Idx isn't in the operand bundle");
409 
410   /// We need a decimal number below and to prevent using floating point numbers
411   /// we use an intergal value multiplied by this constant.
412   constexpr unsigned NumberScaling = 1024;
413 
414   bundle_op_iterator Begin = bundle_op_info_begin();
415   bundle_op_iterator End = bundle_op_info_end();
416   bundle_op_iterator Current = Begin;
417 
418   while (Begin != End) {
419     unsigned ScaledOperandPerBundle =
420         NumberScaling * (std::prev(End)->End - Begin->Begin) / (End - Begin);
421     Current = Begin + (((OpIdx - Begin->Begin) * NumberScaling) /
422                        ScaledOperandPerBundle);
423     if (Current >= End)
424       Current = std::prev(End);
425     assert(Current < End && Current >= Begin &&
426            "the operand bundle doesn't cover every value in the range");
427     if (OpIdx >= Current->Begin && OpIdx < Current->End)
428       break;
429     if (OpIdx >= Current->End)
430       Begin = Current + 1;
431     else
432       End = Current;
433   }
434 
435   assert(OpIdx >= Current->Begin && OpIdx < Current->End &&
436          "the operand bundle doesn't cover every value in the range");
437   return *Current;
438 }
439 
440 CallBase *CallBase::addOperandBundle(CallBase *CB, uint32_t ID,
441                                      OperandBundleDef OB,
442                                      Instruction *InsertPt) {
443   if (CB->getOperandBundle(ID))
444     return CB;
445 
446   SmallVector<OperandBundleDef, 1> Bundles;
447   CB->getOperandBundlesAsDefs(Bundles);
448   Bundles.push_back(OB);
449   return Create(CB, Bundles, InsertPt);
450 }
451 
452 CallBase *CallBase::removeOperandBundle(CallBase *CB, uint32_t ID,
453                                         Instruction *InsertPt) {
454   SmallVector<OperandBundleDef, 1> Bundles;
455   bool CreateNew = false;
456 
457   for (unsigned I = 0, E = CB->getNumOperandBundles(); I != E; ++I) {
458     auto Bundle = CB->getOperandBundleAt(I);
459     if (Bundle.getTagID() == ID) {
460       CreateNew = true;
461       continue;
462     }
463     Bundles.emplace_back(Bundle);
464   }
465 
466   return CreateNew ? Create(CB, Bundles, InsertPt) : CB;
467 }
468 
469 bool CallBase::hasReadingOperandBundles() const {
470   // Implementation note: this is a conservative implementation of operand
471   // bundle semantics, where *any* non-assume operand bundle forces a callsite
472   // to be at least readonly.
473   return hasOperandBundles() && getIntrinsicID() != Intrinsic::assume;
474 }
475 
476 //===----------------------------------------------------------------------===//
477 //                        CallInst Implementation
478 //===----------------------------------------------------------------------===//
479 
480 void CallInst::init(FunctionType *FTy, Value *Func, ArrayRef<Value *> Args,
481                     ArrayRef<OperandBundleDef> Bundles, const Twine &NameStr) {
482   this->FTy = FTy;
483   assert(getNumOperands() == Args.size() + CountBundleInputs(Bundles) + 1 &&
484          "NumOperands not set up?");
485   setCalledOperand(Func);
486 
487 #ifndef NDEBUG
488   assert((Args.size() == FTy->getNumParams() ||
489           (FTy->isVarArg() && Args.size() > FTy->getNumParams())) &&
490          "Calling a function with bad signature!");
491 
492   for (unsigned i = 0; i != Args.size(); ++i)
493     assert((i >= FTy->getNumParams() ||
494             FTy->getParamType(i) == Args[i]->getType()) &&
495            "Calling a function with a bad signature!");
496 #endif
497 
498   llvm::copy(Args, op_begin());
499 
500   auto It = populateBundleOperandInfos(Bundles, Args.size());
501   (void)It;
502   assert(It + 1 == op_end() && "Should add up!");
503 
504   setName(NameStr);
505 }
506 
507 void CallInst::init(FunctionType *FTy, Value *Func, const Twine &NameStr) {
508   this->FTy = FTy;
509   assert(getNumOperands() == 1 && "NumOperands not set up?");
510   setCalledOperand(Func);
511 
512   assert(FTy->getNumParams() == 0 && "Calling a function with bad signature");
513 
514   setName(NameStr);
515 }
516 
517 CallInst::CallInst(FunctionType *Ty, Value *Func, const Twine &Name,
518                    Instruction *InsertBefore)
519     : CallBase(Ty->getReturnType(), Instruction::Call,
520                OperandTraits<CallBase>::op_end(this) - 1, 1, InsertBefore) {
521   init(Ty, Func, Name);
522 }
523 
524 CallInst::CallInst(FunctionType *Ty, Value *Func, const Twine &Name,
525                    BasicBlock *InsertAtEnd)
526     : CallBase(Ty->getReturnType(), Instruction::Call,
527                OperandTraits<CallBase>::op_end(this) - 1, 1, InsertAtEnd) {
528   init(Ty, Func, Name);
529 }
530 
531 CallInst::CallInst(const CallInst &CI)
532     : CallBase(CI.Attrs, CI.FTy, CI.getType(), Instruction::Call,
533                OperandTraits<CallBase>::op_end(this) - CI.getNumOperands(),
534                CI.getNumOperands()) {
535   setTailCallKind(CI.getTailCallKind());
536   setCallingConv(CI.getCallingConv());
537 
538   std::copy(CI.op_begin(), CI.op_end(), op_begin());
539   std::copy(CI.bundle_op_info_begin(), CI.bundle_op_info_end(),
540             bundle_op_info_begin());
541   SubclassOptionalData = CI.SubclassOptionalData;
542 }
543 
544 CallInst *CallInst::Create(CallInst *CI, ArrayRef<OperandBundleDef> OpB,
545                            Instruction *InsertPt) {
546   std::vector<Value *> Args(CI->arg_begin(), CI->arg_end());
547 
548   auto *NewCI = CallInst::Create(CI->getFunctionType(), CI->getCalledOperand(),
549                                  Args, OpB, CI->getName(), InsertPt);
550   NewCI->setTailCallKind(CI->getTailCallKind());
551   NewCI->setCallingConv(CI->getCallingConv());
552   NewCI->SubclassOptionalData = CI->SubclassOptionalData;
553   NewCI->setAttributes(CI->getAttributes());
554   NewCI->setDebugLoc(CI->getDebugLoc());
555   return NewCI;
556 }
557 
558 // Update profile weight for call instruction by scaling it using the ratio
559 // of S/T. The meaning of "branch_weights" meta data for call instruction is
560 // transfered to represent call count.
561 void CallInst::updateProfWeight(uint64_t S, uint64_t T) {
562   auto *ProfileData = getMetadata(LLVMContext::MD_prof);
563   if (ProfileData == nullptr)
564     return;
565 
566   auto *ProfDataName = dyn_cast<MDString>(ProfileData->getOperand(0));
567   if (!ProfDataName || (!ProfDataName->getString().equals("branch_weights") &&
568                         !ProfDataName->getString().equals("VP")))
569     return;
570 
571   if (T == 0) {
572     LLVM_DEBUG(dbgs() << "Attempting to update profile weights will result in "
573                          "div by 0. Ignoring. Likely the function "
574                       << getParent()->getParent()->getName()
575                       << " has 0 entry count, and contains call instructions "
576                          "with non-zero prof info.");
577     return;
578   }
579 
580   MDBuilder MDB(getContext());
581   SmallVector<Metadata *, 3> Vals;
582   Vals.push_back(ProfileData->getOperand(0));
583   APInt APS(128, S), APT(128, T);
584   if (ProfDataName->getString().equals("branch_weights") &&
585       ProfileData->getNumOperands() > 0) {
586     // Using APInt::div may be expensive, but most cases should fit 64 bits.
587     APInt Val(128, mdconst::dyn_extract<ConstantInt>(ProfileData->getOperand(1))
588                        ->getValue()
589                        .getZExtValue());
590     Val *= APS;
591     Vals.push_back(MDB.createConstant(
592         ConstantInt::get(Type::getInt32Ty(getContext()),
593                          Val.udiv(APT).getLimitedValue(UINT32_MAX))));
594   } else if (ProfDataName->getString().equals("VP"))
595     for (unsigned i = 1; i < ProfileData->getNumOperands(); i += 2) {
596       // The first value is the key of the value profile, which will not change.
597       Vals.push_back(ProfileData->getOperand(i));
598       uint64_t Count =
599           mdconst::dyn_extract<ConstantInt>(ProfileData->getOperand(i + 1))
600               ->getValue()
601               .getZExtValue();
602       // Don't scale the magic number.
603       if (Count == NOMORE_ICP_MAGICNUM) {
604         Vals.push_back(ProfileData->getOperand(i + 1));
605         continue;
606       }
607       // Using APInt::div may be expensive, but most cases should fit 64 bits.
608       APInt Val(128, Count);
609       Val *= APS;
610       Vals.push_back(MDB.createConstant(
611           ConstantInt::get(Type::getInt64Ty(getContext()),
612                            Val.udiv(APT).getLimitedValue())));
613     }
614   setMetadata(LLVMContext::MD_prof, MDNode::get(getContext(), Vals));
615 }
616 
617 /// IsConstantOne - Return true only if val is constant int 1
618 static bool IsConstantOne(Value *val) {
619   assert(val && "IsConstantOne does not work with nullptr val");
620   const ConstantInt *CVal = dyn_cast<ConstantInt>(val);
621   return CVal && CVal->isOne();
622 }
623 
624 static Instruction *createMalloc(Instruction *InsertBefore,
625                                  BasicBlock *InsertAtEnd, Type *IntPtrTy,
626                                  Type *AllocTy, Value *AllocSize,
627                                  Value *ArraySize,
628                                  ArrayRef<OperandBundleDef> OpB,
629                                  Function *MallocF, const Twine &Name) {
630   assert(((!InsertBefore && InsertAtEnd) || (InsertBefore && !InsertAtEnd)) &&
631          "createMalloc needs either InsertBefore or InsertAtEnd");
632 
633   // malloc(type) becomes:
634   //       bitcast (i8* malloc(typeSize)) to type*
635   // malloc(type, arraySize) becomes:
636   //       bitcast (i8* malloc(typeSize*arraySize)) to type*
637   if (!ArraySize)
638     ArraySize = ConstantInt::get(IntPtrTy, 1);
639   else if (ArraySize->getType() != IntPtrTy) {
640     if (InsertBefore)
641       ArraySize = CastInst::CreateIntegerCast(ArraySize, IntPtrTy, false,
642                                               "", InsertBefore);
643     else
644       ArraySize = CastInst::CreateIntegerCast(ArraySize, IntPtrTy, false,
645                                               "", InsertAtEnd);
646   }
647 
648   if (!IsConstantOne(ArraySize)) {
649     if (IsConstantOne(AllocSize)) {
650       AllocSize = ArraySize;         // Operand * 1 = Operand
651     } else if (Constant *CO = dyn_cast<Constant>(ArraySize)) {
652       Constant *Scale = ConstantExpr::getIntegerCast(CO, IntPtrTy,
653                                                      false /*ZExt*/);
654       // Malloc arg is constant product of type size and array size
655       AllocSize = ConstantExpr::getMul(Scale, cast<Constant>(AllocSize));
656     } else {
657       // Multiply type size by the array size...
658       if (InsertBefore)
659         AllocSize = BinaryOperator::CreateMul(ArraySize, AllocSize,
660                                               "mallocsize", InsertBefore);
661       else
662         AllocSize = BinaryOperator::CreateMul(ArraySize, AllocSize,
663                                               "mallocsize", InsertAtEnd);
664     }
665   }
666 
667   assert(AllocSize->getType() == IntPtrTy && "malloc arg is wrong size");
668   // Create the call to Malloc.
669   BasicBlock *BB = InsertBefore ? InsertBefore->getParent() : InsertAtEnd;
670   Module *M = BB->getParent()->getParent();
671   Type *BPTy = Type::getInt8PtrTy(BB->getContext());
672   FunctionCallee MallocFunc = MallocF;
673   if (!MallocFunc)
674     // prototype malloc as "void *malloc(size_t)"
675     MallocFunc = M->getOrInsertFunction("malloc", BPTy, IntPtrTy);
676   PointerType *AllocPtrType = PointerType::getUnqual(AllocTy);
677   CallInst *MCall = nullptr;
678   Instruction *Result = nullptr;
679   if (InsertBefore) {
680     MCall = CallInst::Create(MallocFunc, AllocSize, OpB, "malloccall",
681                              InsertBefore);
682     Result = MCall;
683     if (Result->getType() != AllocPtrType)
684       // Create a cast instruction to convert to the right type...
685       Result = new BitCastInst(MCall, AllocPtrType, Name, InsertBefore);
686   } else {
687     MCall = CallInst::Create(MallocFunc, AllocSize, OpB, "malloccall");
688     Result = MCall;
689     if (Result->getType() != AllocPtrType) {
690       InsertAtEnd->getInstList().push_back(MCall);
691       // Create a cast instruction to convert to the right type...
692       Result = new BitCastInst(MCall, AllocPtrType, Name);
693     }
694   }
695   MCall->setTailCall();
696   if (Function *F = dyn_cast<Function>(MallocFunc.getCallee())) {
697     MCall->setCallingConv(F->getCallingConv());
698     if (!F->returnDoesNotAlias())
699       F->setReturnDoesNotAlias();
700   }
701   assert(!MCall->getType()->isVoidTy() && "Malloc has void return type");
702 
703   return Result;
704 }
705 
706 /// CreateMalloc - Generate the IR for a call to malloc:
707 /// 1. Compute the malloc call's argument as the specified type's size,
708 ///    possibly multiplied by the array size if the array size is not
709 ///    constant 1.
710 /// 2. Call malloc with that argument.
711 /// 3. Bitcast the result of the malloc call to the specified type.
712 Instruction *CallInst::CreateMalloc(Instruction *InsertBefore,
713                                     Type *IntPtrTy, Type *AllocTy,
714                                     Value *AllocSize, Value *ArraySize,
715                                     Function *MallocF,
716                                     const Twine &Name) {
717   return createMalloc(InsertBefore, nullptr, IntPtrTy, AllocTy, AllocSize,
718                       ArraySize, None, MallocF, Name);
719 }
720 Instruction *CallInst::CreateMalloc(Instruction *InsertBefore,
721                                     Type *IntPtrTy, Type *AllocTy,
722                                     Value *AllocSize, Value *ArraySize,
723                                     ArrayRef<OperandBundleDef> OpB,
724                                     Function *MallocF,
725                                     const Twine &Name) {
726   return createMalloc(InsertBefore, nullptr, IntPtrTy, AllocTy, AllocSize,
727                       ArraySize, OpB, MallocF, Name);
728 }
729 
730 /// CreateMalloc - Generate the IR for a call to malloc:
731 /// 1. Compute the malloc call's argument as the specified type's size,
732 ///    possibly multiplied by the array size if the array size is not
733 ///    constant 1.
734 /// 2. Call malloc with that argument.
735 /// 3. Bitcast the result of the malloc call to the specified type.
736 /// Note: This function does not add the bitcast to the basic block, that is the
737 /// responsibility of the caller.
738 Instruction *CallInst::CreateMalloc(BasicBlock *InsertAtEnd,
739                                     Type *IntPtrTy, Type *AllocTy,
740                                     Value *AllocSize, Value *ArraySize,
741                                     Function *MallocF, const Twine &Name) {
742   return createMalloc(nullptr, InsertAtEnd, IntPtrTy, AllocTy, AllocSize,
743                       ArraySize, None, MallocF, Name);
744 }
745 Instruction *CallInst::CreateMalloc(BasicBlock *InsertAtEnd,
746                                     Type *IntPtrTy, Type *AllocTy,
747                                     Value *AllocSize, Value *ArraySize,
748                                     ArrayRef<OperandBundleDef> OpB,
749                                     Function *MallocF, const Twine &Name) {
750   return createMalloc(nullptr, InsertAtEnd, IntPtrTy, AllocTy, AllocSize,
751                       ArraySize, OpB, MallocF, Name);
752 }
753 
754 static Instruction *createFree(Value *Source,
755                                ArrayRef<OperandBundleDef> Bundles,
756                                Instruction *InsertBefore,
757                                BasicBlock *InsertAtEnd) {
758   assert(((!InsertBefore && InsertAtEnd) || (InsertBefore && !InsertAtEnd)) &&
759          "createFree needs either InsertBefore or InsertAtEnd");
760   assert(Source->getType()->isPointerTy() &&
761          "Can not free something of nonpointer type!");
762 
763   BasicBlock *BB = InsertBefore ? InsertBefore->getParent() : InsertAtEnd;
764   Module *M = BB->getParent()->getParent();
765 
766   Type *VoidTy = Type::getVoidTy(M->getContext());
767   Type *IntPtrTy = Type::getInt8PtrTy(M->getContext());
768   // prototype free as "void free(void*)"
769   FunctionCallee FreeFunc = M->getOrInsertFunction("free", VoidTy, IntPtrTy);
770   CallInst *Result = nullptr;
771   Value *PtrCast = Source;
772   if (InsertBefore) {
773     if (Source->getType() != IntPtrTy)
774       PtrCast = new BitCastInst(Source, IntPtrTy, "", InsertBefore);
775     Result = CallInst::Create(FreeFunc, PtrCast, Bundles, "", InsertBefore);
776   } else {
777     if (Source->getType() != IntPtrTy)
778       PtrCast = new BitCastInst(Source, IntPtrTy, "", InsertAtEnd);
779     Result = CallInst::Create(FreeFunc, PtrCast, Bundles, "");
780   }
781   Result->setTailCall();
782   if (Function *F = dyn_cast<Function>(FreeFunc.getCallee()))
783     Result->setCallingConv(F->getCallingConv());
784 
785   return Result;
786 }
787 
788 /// CreateFree - Generate the IR for a call to the builtin free function.
789 Instruction *CallInst::CreateFree(Value *Source, Instruction *InsertBefore) {
790   return createFree(Source, None, InsertBefore, nullptr);
791 }
792 Instruction *CallInst::CreateFree(Value *Source,
793                                   ArrayRef<OperandBundleDef> Bundles,
794                                   Instruction *InsertBefore) {
795   return createFree(Source, Bundles, InsertBefore, nullptr);
796 }
797 
798 /// CreateFree - Generate the IR for a call to the builtin free function.
799 /// Note: This function does not add the call to the basic block, that is the
800 /// responsibility of the caller.
801 Instruction *CallInst::CreateFree(Value *Source, BasicBlock *InsertAtEnd) {
802   Instruction *FreeCall = createFree(Source, None, nullptr, InsertAtEnd);
803   assert(FreeCall && "CreateFree did not create a CallInst");
804   return FreeCall;
805 }
806 Instruction *CallInst::CreateFree(Value *Source,
807                                   ArrayRef<OperandBundleDef> Bundles,
808                                   BasicBlock *InsertAtEnd) {
809   Instruction *FreeCall = createFree(Source, Bundles, nullptr, InsertAtEnd);
810   assert(FreeCall && "CreateFree did not create a CallInst");
811   return FreeCall;
812 }
813 
814 //===----------------------------------------------------------------------===//
815 //                        InvokeInst Implementation
816 //===----------------------------------------------------------------------===//
817 
818 void InvokeInst::init(FunctionType *FTy, Value *Fn, BasicBlock *IfNormal,
819                       BasicBlock *IfException, ArrayRef<Value *> Args,
820                       ArrayRef<OperandBundleDef> Bundles,
821                       const Twine &NameStr) {
822   this->FTy = FTy;
823 
824   assert((int)getNumOperands() ==
825              ComputeNumOperands(Args.size(), CountBundleInputs(Bundles)) &&
826          "NumOperands not set up?");
827   setNormalDest(IfNormal);
828   setUnwindDest(IfException);
829   setCalledOperand(Fn);
830 
831 #ifndef NDEBUG
832   assert(((Args.size() == FTy->getNumParams()) ||
833           (FTy->isVarArg() && Args.size() > FTy->getNumParams())) &&
834          "Invoking a function with bad signature");
835 
836   for (unsigned i = 0, e = Args.size(); i != e; i++)
837     assert((i >= FTy->getNumParams() ||
838             FTy->getParamType(i) == Args[i]->getType()) &&
839            "Invoking a function with a bad signature!");
840 #endif
841 
842   llvm::copy(Args, op_begin());
843 
844   auto It = populateBundleOperandInfos(Bundles, Args.size());
845   (void)It;
846   assert(It + 3 == op_end() && "Should add up!");
847 
848   setName(NameStr);
849 }
850 
851 InvokeInst::InvokeInst(const InvokeInst &II)
852     : CallBase(II.Attrs, II.FTy, II.getType(), Instruction::Invoke,
853                OperandTraits<CallBase>::op_end(this) - II.getNumOperands(),
854                II.getNumOperands()) {
855   setCallingConv(II.getCallingConv());
856   std::copy(II.op_begin(), II.op_end(), op_begin());
857   std::copy(II.bundle_op_info_begin(), II.bundle_op_info_end(),
858             bundle_op_info_begin());
859   SubclassOptionalData = II.SubclassOptionalData;
860 }
861 
862 InvokeInst *InvokeInst::Create(InvokeInst *II, ArrayRef<OperandBundleDef> OpB,
863                                Instruction *InsertPt) {
864   std::vector<Value *> Args(II->arg_begin(), II->arg_end());
865 
866   auto *NewII = InvokeInst::Create(
867       II->getFunctionType(), II->getCalledOperand(), II->getNormalDest(),
868       II->getUnwindDest(), Args, OpB, II->getName(), InsertPt);
869   NewII->setCallingConv(II->getCallingConv());
870   NewII->SubclassOptionalData = II->SubclassOptionalData;
871   NewII->setAttributes(II->getAttributes());
872   NewII->setDebugLoc(II->getDebugLoc());
873   return NewII;
874 }
875 
876 LandingPadInst *InvokeInst::getLandingPadInst() const {
877   return cast<LandingPadInst>(getUnwindDest()->getFirstNonPHI());
878 }
879 
880 //===----------------------------------------------------------------------===//
881 //                        CallBrInst Implementation
882 //===----------------------------------------------------------------------===//
883 
884 void CallBrInst::init(FunctionType *FTy, Value *Fn, BasicBlock *Fallthrough,
885                       ArrayRef<BasicBlock *> IndirectDests,
886                       ArrayRef<Value *> Args,
887                       ArrayRef<OperandBundleDef> Bundles,
888                       const Twine &NameStr) {
889   this->FTy = FTy;
890 
891   assert((int)getNumOperands() ==
892              ComputeNumOperands(Args.size(), IndirectDests.size(),
893                                 CountBundleInputs(Bundles)) &&
894          "NumOperands not set up?");
895   NumIndirectDests = IndirectDests.size();
896   setDefaultDest(Fallthrough);
897   for (unsigned i = 0; i != NumIndirectDests; ++i)
898     setIndirectDest(i, IndirectDests[i]);
899   setCalledOperand(Fn);
900 
901 #ifndef NDEBUG
902   assert(((Args.size() == FTy->getNumParams()) ||
903           (FTy->isVarArg() && Args.size() > FTy->getNumParams())) &&
904          "Calling a function with bad signature");
905 
906   for (unsigned i = 0, e = Args.size(); i != e; i++)
907     assert((i >= FTy->getNumParams() ||
908             FTy->getParamType(i) == Args[i]->getType()) &&
909            "Calling a function with a bad signature!");
910 #endif
911 
912   std::copy(Args.begin(), Args.end(), op_begin());
913 
914   auto It = populateBundleOperandInfos(Bundles, Args.size());
915   (void)It;
916   assert(It + 2 + IndirectDests.size() == op_end() && "Should add up!");
917 
918   setName(NameStr);
919 }
920 
921 void CallBrInst::updateArgBlockAddresses(unsigned i, BasicBlock *B) {
922   assert(getNumIndirectDests() > i && "IndirectDest # out of range for callbr");
923   if (BasicBlock *OldBB = getIndirectDest(i)) {
924     BlockAddress *Old = BlockAddress::get(OldBB);
925     BlockAddress *New = BlockAddress::get(B);
926     for (unsigned ArgNo = 0, e = getNumArgOperands(); ArgNo != e; ++ArgNo)
927       if (dyn_cast<BlockAddress>(getArgOperand(ArgNo)) == Old)
928         setArgOperand(ArgNo, New);
929   }
930 }
931 
932 CallBrInst::CallBrInst(const CallBrInst &CBI)
933     : CallBase(CBI.Attrs, CBI.FTy, CBI.getType(), Instruction::CallBr,
934                OperandTraits<CallBase>::op_end(this) - CBI.getNumOperands(),
935                CBI.getNumOperands()) {
936   setCallingConv(CBI.getCallingConv());
937   std::copy(CBI.op_begin(), CBI.op_end(), op_begin());
938   std::copy(CBI.bundle_op_info_begin(), CBI.bundle_op_info_end(),
939             bundle_op_info_begin());
940   SubclassOptionalData = CBI.SubclassOptionalData;
941   NumIndirectDests = CBI.NumIndirectDests;
942 }
943 
944 CallBrInst *CallBrInst::Create(CallBrInst *CBI, ArrayRef<OperandBundleDef> OpB,
945                                Instruction *InsertPt) {
946   std::vector<Value *> Args(CBI->arg_begin(), CBI->arg_end());
947 
948   auto *NewCBI = CallBrInst::Create(
949       CBI->getFunctionType(), CBI->getCalledOperand(), CBI->getDefaultDest(),
950       CBI->getIndirectDests(), Args, OpB, CBI->getName(), InsertPt);
951   NewCBI->setCallingConv(CBI->getCallingConv());
952   NewCBI->SubclassOptionalData = CBI->SubclassOptionalData;
953   NewCBI->setAttributes(CBI->getAttributes());
954   NewCBI->setDebugLoc(CBI->getDebugLoc());
955   NewCBI->NumIndirectDests = CBI->NumIndirectDests;
956   return NewCBI;
957 }
958 
959 //===----------------------------------------------------------------------===//
960 //                        ReturnInst Implementation
961 //===----------------------------------------------------------------------===//
962 
963 ReturnInst::ReturnInst(const ReturnInst &RI)
964     : Instruction(Type::getVoidTy(RI.getContext()), Instruction::Ret,
965                   OperandTraits<ReturnInst>::op_end(this) - RI.getNumOperands(),
966                   RI.getNumOperands()) {
967   if (RI.getNumOperands())
968     Op<0>() = RI.Op<0>();
969   SubclassOptionalData = RI.SubclassOptionalData;
970 }
971 
972 ReturnInst::ReturnInst(LLVMContext &C, Value *retVal, Instruction *InsertBefore)
973     : Instruction(Type::getVoidTy(C), Instruction::Ret,
974                   OperandTraits<ReturnInst>::op_end(this) - !!retVal, !!retVal,
975                   InsertBefore) {
976   if (retVal)
977     Op<0>() = retVal;
978 }
979 
980 ReturnInst::ReturnInst(LLVMContext &C, Value *retVal, BasicBlock *InsertAtEnd)
981     : Instruction(Type::getVoidTy(C), Instruction::Ret,
982                   OperandTraits<ReturnInst>::op_end(this) - !!retVal, !!retVal,
983                   InsertAtEnd) {
984   if (retVal)
985     Op<0>() = retVal;
986 }
987 
988 ReturnInst::ReturnInst(LLVMContext &Context, BasicBlock *InsertAtEnd)
989     : Instruction(Type::getVoidTy(Context), Instruction::Ret,
990                   OperandTraits<ReturnInst>::op_end(this), 0, InsertAtEnd) {}
991 
992 //===----------------------------------------------------------------------===//
993 //                        ResumeInst Implementation
994 //===----------------------------------------------------------------------===//
995 
996 ResumeInst::ResumeInst(const ResumeInst &RI)
997     : Instruction(Type::getVoidTy(RI.getContext()), Instruction::Resume,
998                   OperandTraits<ResumeInst>::op_begin(this), 1) {
999   Op<0>() = RI.Op<0>();
1000 }
1001 
1002 ResumeInst::ResumeInst(Value *Exn, Instruction *InsertBefore)
1003     : Instruction(Type::getVoidTy(Exn->getContext()), Instruction::Resume,
1004                   OperandTraits<ResumeInst>::op_begin(this), 1, InsertBefore) {
1005   Op<0>() = Exn;
1006 }
1007 
1008 ResumeInst::ResumeInst(Value *Exn, BasicBlock *InsertAtEnd)
1009     : Instruction(Type::getVoidTy(Exn->getContext()), Instruction::Resume,
1010                   OperandTraits<ResumeInst>::op_begin(this), 1, InsertAtEnd) {
1011   Op<0>() = Exn;
1012 }
1013 
1014 //===----------------------------------------------------------------------===//
1015 //                        CleanupReturnInst Implementation
1016 //===----------------------------------------------------------------------===//
1017 
1018 CleanupReturnInst::CleanupReturnInst(const CleanupReturnInst &CRI)
1019     : Instruction(CRI.getType(), Instruction::CleanupRet,
1020                   OperandTraits<CleanupReturnInst>::op_end(this) -
1021                       CRI.getNumOperands(),
1022                   CRI.getNumOperands()) {
1023   setSubclassData<Instruction::OpaqueField>(
1024       CRI.getSubclassData<Instruction::OpaqueField>());
1025   Op<0>() = CRI.Op<0>();
1026   if (CRI.hasUnwindDest())
1027     Op<1>() = CRI.Op<1>();
1028 }
1029 
1030 void CleanupReturnInst::init(Value *CleanupPad, BasicBlock *UnwindBB) {
1031   if (UnwindBB)
1032     setSubclassData<UnwindDestField>(true);
1033 
1034   Op<0>() = CleanupPad;
1035   if (UnwindBB)
1036     Op<1>() = UnwindBB;
1037 }
1038 
1039 CleanupReturnInst::CleanupReturnInst(Value *CleanupPad, BasicBlock *UnwindBB,
1040                                      unsigned Values, Instruction *InsertBefore)
1041     : Instruction(Type::getVoidTy(CleanupPad->getContext()),
1042                   Instruction::CleanupRet,
1043                   OperandTraits<CleanupReturnInst>::op_end(this) - Values,
1044                   Values, InsertBefore) {
1045   init(CleanupPad, UnwindBB);
1046 }
1047 
1048 CleanupReturnInst::CleanupReturnInst(Value *CleanupPad, BasicBlock *UnwindBB,
1049                                      unsigned Values, BasicBlock *InsertAtEnd)
1050     : Instruction(Type::getVoidTy(CleanupPad->getContext()),
1051                   Instruction::CleanupRet,
1052                   OperandTraits<CleanupReturnInst>::op_end(this) - Values,
1053                   Values, InsertAtEnd) {
1054   init(CleanupPad, UnwindBB);
1055 }
1056 
1057 //===----------------------------------------------------------------------===//
1058 //                        CatchReturnInst Implementation
1059 //===----------------------------------------------------------------------===//
1060 void CatchReturnInst::init(Value *CatchPad, BasicBlock *BB) {
1061   Op<0>() = CatchPad;
1062   Op<1>() = BB;
1063 }
1064 
1065 CatchReturnInst::CatchReturnInst(const CatchReturnInst &CRI)
1066     : Instruction(Type::getVoidTy(CRI.getContext()), Instruction::CatchRet,
1067                   OperandTraits<CatchReturnInst>::op_begin(this), 2) {
1068   Op<0>() = CRI.Op<0>();
1069   Op<1>() = CRI.Op<1>();
1070 }
1071 
1072 CatchReturnInst::CatchReturnInst(Value *CatchPad, BasicBlock *BB,
1073                                  Instruction *InsertBefore)
1074     : Instruction(Type::getVoidTy(BB->getContext()), Instruction::CatchRet,
1075                   OperandTraits<CatchReturnInst>::op_begin(this), 2,
1076                   InsertBefore) {
1077   init(CatchPad, BB);
1078 }
1079 
1080 CatchReturnInst::CatchReturnInst(Value *CatchPad, BasicBlock *BB,
1081                                  BasicBlock *InsertAtEnd)
1082     : Instruction(Type::getVoidTy(BB->getContext()), Instruction::CatchRet,
1083                   OperandTraits<CatchReturnInst>::op_begin(this), 2,
1084                   InsertAtEnd) {
1085   init(CatchPad, BB);
1086 }
1087 
1088 //===----------------------------------------------------------------------===//
1089 //                       CatchSwitchInst Implementation
1090 //===----------------------------------------------------------------------===//
1091 
1092 CatchSwitchInst::CatchSwitchInst(Value *ParentPad, BasicBlock *UnwindDest,
1093                                  unsigned NumReservedValues,
1094                                  const Twine &NameStr,
1095                                  Instruction *InsertBefore)
1096     : Instruction(ParentPad->getType(), Instruction::CatchSwitch, nullptr, 0,
1097                   InsertBefore) {
1098   if (UnwindDest)
1099     ++NumReservedValues;
1100   init(ParentPad, UnwindDest, NumReservedValues + 1);
1101   setName(NameStr);
1102 }
1103 
1104 CatchSwitchInst::CatchSwitchInst(Value *ParentPad, BasicBlock *UnwindDest,
1105                                  unsigned NumReservedValues,
1106                                  const Twine &NameStr, BasicBlock *InsertAtEnd)
1107     : Instruction(ParentPad->getType(), Instruction::CatchSwitch, nullptr, 0,
1108                   InsertAtEnd) {
1109   if (UnwindDest)
1110     ++NumReservedValues;
1111   init(ParentPad, UnwindDest, NumReservedValues + 1);
1112   setName(NameStr);
1113 }
1114 
1115 CatchSwitchInst::CatchSwitchInst(const CatchSwitchInst &CSI)
1116     : Instruction(CSI.getType(), Instruction::CatchSwitch, nullptr,
1117                   CSI.getNumOperands()) {
1118   init(CSI.getParentPad(), CSI.getUnwindDest(), CSI.getNumOperands());
1119   setNumHungOffUseOperands(ReservedSpace);
1120   Use *OL = getOperandList();
1121   const Use *InOL = CSI.getOperandList();
1122   for (unsigned I = 1, E = ReservedSpace; I != E; ++I)
1123     OL[I] = InOL[I];
1124 }
1125 
1126 void CatchSwitchInst::init(Value *ParentPad, BasicBlock *UnwindDest,
1127                            unsigned NumReservedValues) {
1128   assert(ParentPad && NumReservedValues);
1129 
1130   ReservedSpace = NumReservedValues;
1131   setNumHungOffUseOperands(UnwindDest ? 2 : 1);
1132   allocHungoffUses(ReservedSpace);
1133 
1134   Op<0>() = ParentPad;
1135   if (UnwindDest) {
1136     setSubclassData<UnwindDestField>(true);
1137     setUnwindDest(UnwindDest);
1138   }
1139 }
1140 
1141 /// growOperands - grow operands - This grows the operand list in response to a
1142 /// push_back style of operation. This grows the number of ops by 2 times.
1143 void CatchSwitchInst::growOperands(unsigned Size) {
1144   unsigned NumOperands = getNumOperands();
1145   assert(NumOperands >= 1);
1146   if (ReservedSpace >= NumOperands + Size)
1147     return;
1148   ReservedSpace = (NumOperands + Size / 2) * 2;
1149   growHungoffUses(ReservedSpace);
1150 }
1151 
1152 void CatchSwitchInst::addHandler(BasicBlock *Handler) {
1153   unsigned OpNo = getNumOperands();
1154   growOperands(1);
1155   assert(OpNo < ReservedSpace && "Growing didn't work!");
1156   setNumHungOffUseOperands(getNumOperands() + 1);
1157   getOperandList()[OpNo] = Handler;
1158 }
1159 
1160 void CatchSwitchInst::removeHandler(handler_iterator HI) {
1161   // Move all subsequent handlers up one.
1162   Use *EndDst = op_end() - 1;
1163   for (Use *CurDst = HI.getCurrent(); CurDst != EndDst; ++CurDst)
1164     *CurDst = *(CurDst + 1);
1165   // Null out the last handler use.
1166   *EndDst = nullptr;
1167 
1168   setNumHungOffUseOperands(getNumOperands() - 1);
1169 }
1170 
1171 //===----------------------------------------------------------------------===//
1172 //                        FuncletPadInst Implementation
1173 //===----------------------------------------------------------------------===//
1174 void FuncletPadInst::init(Value *ParentPad, ArrayRef<Value *> Args,
1175                           const Twine &NameStr) {
1176   assert(getNumOperands() == 1 + Args.size() && "NumOperands not set up?");
1177   llvm::copy(Args, op_begin());
1178   setParentPad(ParentPad);
1179   setName(NameStr);
1180 }
1181 
1182 FuncletPadInst::FuncletPadInst(const FuncletPadInst &FPI)
1183     : Instruction(FPI.getType(), FPI.getOpcode(),
1184                   OperandTraits<FuncletPadInst>::op_end(this) -
1185                       FPI.getNumOperands(),
1186                   FPI.getNumOperands()) {
1187   std::copy(FPI.op_begin(), FPI.op_end(), op_begin());
1188   setParentPad(FPI.getParentPad());
1189 }
1190 
1191 FuncletPadInst::FuncletPadInst(Instruction::FuncletPadOps Op, Value *ParentPad,
1192                                ArrayRef<Value *> Args, unsigned Values,
1193                                const Twine &NameStr, Instruction *InsertBefore)
1194     : Instruction(ParentPad->getType(), Op,
1195                   OperandTraits<FuncletPadInst>::op_end(this) - Values, Values,
1196                   InsertBefore) {
1197   init(ParentPad, Args, NameStr);
1198 }
1199 
1200 FuncletPadInst::FuncletPadInst(Instruction::FuncletPadOps Op, Value *ParentPad,
1201                                ArrayRef<Value *> Args, unsigned Values,
1202                                const Twine &NameStr, BasicBlock *InsertAtEnd)
1203     : Instruction(ParentPad->getType(), Op,
1204                   OperandTraits<FuncletPadInst>::op_end(this) - Values, Values,
1205                   InsertAtEnd) {
1206   init(ParentPad, Args, NameStr);
1207 }
1208 
1209 //===----------------------------------------------------------------------===//
1210 //                      UnreachableInst Implementation
1211 //===----------------------------------------------------------------------===//
1212 
1213 UnreachableInst::UnreachableInst(LLVMContext &Context,
1214                                  Instruction *InsertBefore)
1215     : Instruction(Type::getVoidTy(Context), Instruction::Unreachable, nullptr,
1216                   0, InsertBefore) {}
1217 UnreachableInst::UnreachableInst(LLVMContext &Context, BasicBlock *InsertAtEnd)
1218     : Instruction(Type::getVoidTy(Context), Instruction::Unreachable, nullptr,
1219                   0, InsertAtEnd) {}
1220 
1221 //===----------------------------------------------------------------------===//
1222 //                        BranchInst Implementation
1223 //===----------------------------------------------------------------------===//
1224 
1225 void BranchInst::AssertOK() {
1226   if (isConditional())
1227     assert(getCondition()->getType()->isIntegerTy(1) &&
1228            "May only branch on boolean predicates!");
1229 }
1230 
1231 BranchInst::BranchInst(BasicBlock *IfTrue, Instruction *InsertBefore)
1232     : Instruction(Type::getVoidTy(IfTrue->getContext()), Instruction::Br,
1233                   OperandTraits<BranchInst>::op_end(this) - 1, 1,
1234                   InsertBefore) {
1235   assert(IfTrue && "Branch destination may not be null!");
1236   Op<-1>() = IfTrue;
1237 }
1238 
1239 BranchInst::BranchInst(BasicBlock *IfTrue, BasicBlock *IfFalse, Value *Cond,
1240                        Instruction *InsertBefore)
1241     : Instruction(Type::getVoidTy(IfTrue->getContext()), Instruction::Br,
1242                   OperandTraits<BranchInst>::op_end(this) - 3, 3,
1243                   InsertBefore) {
1244   Op<-1>() = IfTrue;
1245   Op<-2>() = IfFalse;
1246   Op<-3>() = Cond;
1247 #ifndef NDEBUG
1248   AssertOK();
1249 #endif
1250 }
1251 
1252 BranchInst::BranchInst(BasicBlock *IfTrue, BasicBlock *InsertAtEnd)
1253     : Instruction(Type::getVoidTy(IfTrue->getContext()), Instruction::Br,
1254                   OperandTraits<BranchInst>::op_end(this) - 1, 1, InsertAtEnd) {
1255   assert(IfTrue && "Branch destination may not be null!");
1256   Op<-1>() = IfTrue;
1257 }
1258 
1259 BranchInst::BranchInst(BasicBlock *IfTrue, BasicBlock *IfFalse, Value *Cond,
1260                        BasicBlock *InsertAtEnd)
1261     : Instruction(Type::getVoidTy(IfTrue->getContext()), Instruction::Br,
1262                   OperandTraits<BranchInst>::op_end(this) - 3, 3, InsertAtEnd) {
1263   Op<-1>() = IfTrue;
1264   Op<-2>() = IfFalse;
1265   Op<-3>() = Cond;
1266 #ifndef NDEBUG
1267   AssertOK();
1268 #endif
1269 }
1270 
1271 BranchInst::BranchInst(const BranchInst &BI)
1272     : Instruction(Type::getVoidTy(BI.getContext()), Instruction::Br,
1273                   OperandTraits<BranchInst>::op_end(this) - BI.getNumOperands(),
1274                   BI.getNumOperands()) {
1275   Op<-1>() = BI.Op<-1>();
1276   if (BI.getNumOperands() != 1) {
1277     assert(BI.getNumOperands() == 3 && "BR can have 1 or 3 operands!");
1278     Op<-3>() = BI.Op<-3>();
1279     Op<-2>() = BI.Op<-2>();
1280   }
1281   SubclassOptionalData = BI.SubclassOptionalData;
1282 }
1283 
1284 void BranchInst::swapSuccessors() {
1285   assert(isConditional() &&
1286          "Cannot swap successors of an unconditional branch");
1287   Op<-1>().swap(Op<-2>());
1288 
1289   // Update profile metadata if present and it matches our structural
1290   // expectations.
1291   swapProfMetadata();
1292 }
1293 
1294 //===----------------------------------------------------------------------===//
1295 //                        AllocaInst Implementation
1296 //===----------------------------------------------------------------------===//
1297 
1298 static Value *getAISize(LLVMContext &Context, Value *Amt) {
1299   if (!Amt)
1300     Amt = ConstantInt::get(Type::getInt32Ty(Context), 1);
1301   else {
1302     assert(!isa<BasicBlock>(Amt) &&
1303            "Passed basic block into allocation size parameter! Use other ctor");
1304     assert(Amt->getType()->isIntegerTy() &&
1305            "Allocation array size is not an integer!");
1306   }
1307   return Amt;
1308 }
1309 
1310 static Align computeAllocaDefaultAlign(Type *Ty, BasicBlock *BB) {
1311   assert(BB && "Insertion BB cannot be null when alignment not provided!");
1312   assert(BB->getParent() &&
1313          "BB must be in a Function when alignment not provided!");
1314   const DataLayout &DL = BB->getModule()->getDataLayout();
1315   return DL.getPrefTypeAlign(Ty);
1316 }
1317 
1318 static Align computeAllocaDefaultAlign(Type *Ty, Instruction *I) {
1319   assert(I && "Insertion position cannot be null when alignment not provided!");
1320   return computeAllocaDefaultAlign(Ty, I->getParent());
1321 }
1322 
1323 AllocaInst::AllocaInst(Type *Ty, unsigned AddrSpace, const Twine &Name,
1324                        Instruction *InsertBefore)
1325   : AllocaInst(Ty, AddrSpace, /*ArraySize=*/nullptr, Name, InsertBefore) {}
1326 
1327 AllocaInst::AllocaInst(Type *Ty, unsigned AddrSpace, const Twine &Name,
1328                        BasicBlock *InsertAtEnd)
1329   : AllocaInst(Ty, AddrSpace, /*ArraySize=*/nullptr, Name, InsertAtEnd) {}
1330 
1331 AllocaInst::AllocaInst(Type *Ty, unsigned AddrSpace, Value *ArraySize,
1332                        const Twine &Name, Instruction *InsertBefore)
1333     : AllocaInst(Ty, AddrSpace, ArraySize,
1334                  computeAllocaDefaultAlign(Ty, InsertBefore), Name,
1335                  InsertBefore) {}
1336 
1337 AllocaInst::AllocaInst(Type *Ty, unsigned AddrSpace, Value *ArraySize,
1338                        const Twine &Name, BasicBlock *InsertAtEnd)
1339     : AllocaInst(Ty, AddrSpace, ArraySize,
1340                  computeAllocaDefaultAlign(Ty, InsertAtEnd), Name,
1341                  InsertAtEnd) {}
1342 
1343 AllocaInst::AllocaInst(Type *Ty, unsigned AddrSpace, Value *ArraySize,
1344                        Align Align, const Twine &Name,
1345                        Instruction *InsertBefore)
1346     : UnaryInstruction(PointerType::get(Ty, AddrSpace), Alloca,
1347                        getAISize(Ty->getContext(), ArraySize), InsertBefore),
1348       AllocatedType(Ty) {
1349   setAlignment(Align);
1350   assert(!Ty->isVoidTy() && "Cannot allocate void!");
1351   setName(Name);
1352 }
1353 
1354 AllocaInst::AllocaInst(Type *Ty, unsigned AddrSpace, Value *ArraySize,
1355                        Align Align, const Twine &Name, BasicBlock *InsertAtEnd)
1356     : UnaryInstruction(PointerType::get(Ty, AddrSpace), Alloca,
1357                        getAISize(Ty->getContext(), ArraySize), InsertAtEnd),
1358       AllocatedType(Ty) {
1359   setAlignment(Align);
1360   assert(!Ty->isVoidTy() && "Cannot allocate void!");
1361   setName(Name);
1362 }
1363 
1364 
1365 bool AllocaInst::isArrayAllocation() const {
1366   if (ConstantInt *CI = dyn_cast<ConstantInt>(getOperand(0)))
1367     return !CI->isOne();
1368   return true;
1369 }
1370 
1371 /// isStaticAlloca - Return true if this alloca is in the entry block of the
1372 /// function and is a constant size.  If so, the code generator will fold it
1373 /// into the prolog/epilog code, so it is basically free.
1374 bool AllocaInst::isStaticAlloca() const {
1375   // Must be constant size.
1376   if (!isa<ConstantInt>(getArraySize())) return false;
1377 
1378   // Must be in the entry block.
1379   const BasicBlock *Parent = getParent();
1380   return Parent == &Parent->getParent()->front() && !isUsedWithInAlloca();
1381 }
1382 
1383 //===----------------------------------------------------------------------===//
1384 //                           LoadInst Implementation
1385 //===----------------------------------------------------------------------===//
1386 
1387 void LoadInst::AssertOK() {
1388   assert(getOperand(0)->getType()->isPointerTy() &&
1389          "Ptr must have pointer type.");
1390   assert(!(isAtomic() && getAlignment() == 0) &&
1391          "Alignment required for atomic load");
1392 }
1393 
1394 static Align computeLoadStoreDefaultAlign(Type *Ty, BasicBlock *BB) {
1395   assert(BB && "Insertion BB cannot be null when alignment not provided!");
1396   assert(BB->getParent() &&
1397          "BB must be in a Function when alignment not provided!");
1398   const DataLayout &DL = BB->getModule()->getDataLayout();
1399   return DL.getABITypeAlign(Ty);
1400 }
1401 
1402 static Align computeLoadStoreDefaultAlign(Type *Ty, Instruction *I) {
1403   assert(I && "Insertion position cannot be null when alignment not provided!");
1404   return computeLoadStoreDefaultAlign(Ty, I->getParent());
1405 }
1406 
1407 LoadInst::LoadInst(Type *Ty, Value *Ptr, const Twine &Name,
1408                    Instruction *InsertBef)
1409     : LoadInst(Ty, Ptr, Name, /*isVolatile=*/false, InsertBef) {}
1410 
1411 LoadInst::LoadInst(Type *Ty, Value *Ptr, const Twine &Name,
1412                    BasicBlock *InsertAE)
1413     : LoadInst(Ty, Ptr, Name, /*isVolatile=*/false, InsertAE) {}
1414 
1415 LoadInst::LoadInst(Type *Ty, Value *Ptr, const Twine &Name, bool isVolatile,
1416                    Instruction *InsertBef)
1417     : LoadInst(Ty, Ptr, Name, isVolatile,
1418                computeLoadStoreDefaultAlign(Ty, InsertBef), InsertBef) {}
1419 
1420 LoadInst::LoadInst(Type *Ty, Value *Ptr, const Twine &Name, bool isVolatile,
1421                    BasicBlock *InsertAE)
1422     : LoadInst(Ty, Ptr, Name, isVolatile,
1423                computeLoadStoreDefaultAlign(Ty, InsertAE), InsertAE) {}
1424 
1425 LoadInst::LoadInst(Type *Ty, Value *Ptr, const Twine &Name, bool isVolatile,
1426                    Align Align, Instruction *InsertBef)
1427     : LoadInst(Ty, Ptr, Name, isVolatile, Align, AtomicOrdering::NotAtomic,
1428                SyncScope::System, InsertBef) {}
1429 
1430 LoadInst::LoadInst(Type *Ty, Value *Ptr, const Twine &Name, bool isVolatile,
1431                    Align Align, BasicBlock *InsertAE)
1432     : LoadInst(Ty, Ptr, Name, isVolatile, Align, AtomicOrdering::NotAtomic,
1433                SyncScope::System, InsertAE) {}
1434 
1435 LoadInst::LoadInst(Type *Ty, Value *Ptr, const Twine &Name, bool isVolatile,
1436                    Align Align, AtomicOrdering Order, SyncScope::ID SSID,
1437                    Instruction *InsertBef)
1438     : UnaryInstruction(Ty, Load, Ptr, InsertBef) {
1439   assert(Ty == cast<PointerType>(Ptr->getType())->getElementType());
1440   setVolatile(isVolatile);
1441   setAlignment(Align);
1442   setAtomic(Order, SSID);
1443   AssertOK();
1444   setName(Name);
1445 }
1446 
1447 LoadInst::LoadInst(Type *Ty, Value *Ptr, const Twine &Name, bool isVolatile,
1448                    Align Align, AtomicOrdering Order, SyncScope::ID SSID,
1449                    BasicBlock *InsertAE)
1450     : UnaryInstruction(Ty, Load, Ptr, InsertAE) {
1451   assert(Ty == cast<PointerType>(Ptr->getType())->getElementType());
1452   setVolatile(isVolatile);
1453   setAlignment(Align);
1454   setAtomic(Order, SSID);
1455   AssertOK();
1456   setName(Name);
1457 }
1458 
1459 //===----------------------------------------------------------------------===//
1460 //                           StoreInst Implementation
1461 //===----------------------------------------------------------------------===//
1462 
1463 void StoreInst::AssertOK() {
1464   assert(getOperand(0) && getOperand(1) && "Both operands must be non-null!");
1465   assert(getOperand(1)->getType()->isPointerTy() &&
1466          "Ptr must have pointer type!");
1467   assert(getOperand(0)->getType() ==
1468                  cast<PointerType>(getOperand(1)->getType())->getElementType()
1469          && "Ptr must be a pointer to Val type!");
1470   assert(!(isAtomic() && getAlignment() == 0) &&
1471          "Alignment required for atomic store");
1472 }
1473 
1474 StoreInst::StoreInst(Value *val, Value *addr, Instruction *InsertBefore)
1475     : StoreInst(val, addr, /*isVolatile=*/false, InsertBefore) {}
1476 
1477 StoreInst::StoreInst(Value *val, Value *addr, BasicBlock *InsertAtEnd)
1478     : StoreInst(val, addr, /*isVolatile=*/false, InsertAtEnd) {}
1479 
1480 StoreInst::StoreInst(Value *val, Value *addr, bool isVolatile,
1481                      Instruction *InsertBefore)
1482     : StoreInst(val, addr, isVolatile,
1483                 computeLoadStoreDefaultAlign(val->getType(), InsertBefore),
1484                 InsertBefore) {}
1485 
1486 StoreInst::StoreInst(Value *val, Value *addr, bool isVolatile,
1487                      BasicBlock *InsertAtEnd)
1488     : StoreInst(val, addr, isVolatile,
1489                 computeLoadStoreDefaultAlign(val->getType(), InsertAtEnd),
1490                 InsertAtEnd) {}
1491 
1492 StoreInst::StoreInst(Value *val, Value *addr, bool isVolatile, Align Align,
1493                      Instruction *InsertBefore)
1494     : StoreInst(val, addr, isVolatile, Align, AtomicOrdering::NotAtomic,
1495                 SyncScope::System, InsertBefore) {}
1496 
1497 StoreInst::StoreInst(Value *val, Value *addr, bool isVolatile, Align Align,
1498                      BasicBlock *InsertAtEnd)
1499     : StoreInst(val, addr, isVolatile, Align, AtomicOrdering::NotAtomic,
1500                 SyncScope::System, InsertAtEnd) {}
1501 
1502 StoreInst::StoreInst(Value *val, Value *addr, bool isVolatile, Align Align,
1503                      AtomicOrdering Order, SyncScope::ID SSID,
1504                      Instruction *InsertBefore)
1505     : Instruction(Type::getVoidTy(val->getContext()), Store,
1506                   OperandTraits<StoreInst>::op_begin(this),
1507                   OperandTraits<StoreInst>::operands(this), InsertBefore) {
1508   Op<0>() = val;
1509   Op<1>() = addr;
1510   setVolatile(isVolatile);
1511   setAlignment(Align);
1512   setAtomic(Order, SSID);
1513   AssertOK();
1514 }
1515 
1516 StoreInst::StoreInst(Value *val, Value *addr, bool isVolatile, Align Align,
1517                      AtomicOrdering Order, SyncScope::ID SSID,
1518                      BasicBlock *InsertAtEnd)
1519     : Instruction(Type::getVoidTy(val->getContext()), Store,
1520                   OperandTraits<StoreInst>::op_begin(this),
1521                   OperandTraits<StoreInst>::operands(this), InsertAtEnd) {
1522   Op<0>() = val;
1523   Op<1>() = addr;
1524   setVolatile(isVolatile);
1525   setAlignment(Align);
1526   setAtomic(Order, SSID);
1527   AssertOK();
1528 }
1529 
1530 
1531 //===----------------------------------------------------------------------===//
1532 //                       AtomicCmpXchgInst Implementation
1533 //===----------------------------------------------------------------------===//
1534 
1535 void AtomicCmpXchgInst::Init(Value *Ptr, Value *Cmp, Value *NewVal,
1536                              Align Alignment, AtomicOrdering SuccessOrdering,
1537                              AtomicOrdering FailureOrdering,
1538                              SyncScope::ID SSID) {
1539   Op<0>() = Ptr;
1540   Op<1>() = Cmp;
1541   Op<2>() = NewVal;
1542   setSuccessOrdering(SuccessOrdering);
1543   setFailureOrdering(FailureOrdering);
1544   setSyncScopeID(SSID);
1545   setAlignment(Alignment);
1546 
1547   assert(getOperand(0) && getOperand(1) && getOperand(2) &&
1548          "All operands must be non-null!");
1549   assert(getOperand(0)->getType()->isPointerTy() &&
1550          "Ptr must have pointer type!");
1551   assert(getOperand(1)->getType() ==
1552                  cast<PointerType>(getOperand(0)->getType())->getElementType()
1553          && "Ptr must be a pointer to Cmp type!");
1554   assert(getOperand(2)->getType() ==
1555                  cast<PointerType>(getOperand(0)->getType())->getElementType()
1556          && "Ptr must be a pointer to NewVal type!");
1557   assert(SuccessOrdering != AtomicOrdering::NotAtomic &&
1558          "AtomicCmpXchg instructions must be atomic!");
1559   assert(FailureOrdering != AtomicOrdering::NotAtomic &&
1560          "AtomicCmpXchg instructions must be atomic!");
1561   assert(FailureOrdering != AtomicOrdering::Release &&
1562          FailureOrdering != AtomicOrdering::AcquireRelease &&
1563          "AtomicCmpXchg failure ordering cannot include release semantics");
1564 }
1565 
1566 AtomicCmpXchgInst::AtomicCmpXchgInst(Value *Ptr, Value *Cmp, Value *NewVal,
1567                                      Align Alignment,
1568                                      AtomicOrdering SuccessOrdering,
1569                                      AtomicOrdering FailureOrdering,
1570                                      SyncScope::ID SSID,
1571                                      Instruction *InsertBefore)
1572     : Instruction(
1573           StructType::get(Cmp->getType(), Type::getInt1Ty(Cmp->getContext())),
1574           AtomicCmpXchg, OperandTraits<AtomicCmpXchgInst>::op_begin(this),
1575           OperandTraits<AtomicCmpXchgInst>::operands(this), InsertBefore) {
1576   Init(Ptr, Cmp, NewVal, Alignment, SuccessOrdering, FailureOrdering, SSID);
1577 }
1578 
1579 AtomicCmpXchgInst::AtomicCmpXchgInst(Value *Ptr, Value *Cmp, Value *NewVal,
1580                                      Align Alignment,
1581                                      AtomicOrdering SuccessOrdering,
1582                                      AtomicOrdering FailureOrdering,
1583                                      SyncScope::ID SSID,
1584                                      BasicBlock *InsertAtEnd)
1585     : Instruction(
1586           StructType::get(Cmp->getType(), Type::getInt1Ty(Cmp->getContext())),
1587           AtomicCmpXchg, OperandTraits<AtomicCmpXchgInst>::op_begin(this),
1588           OperandTraits<AtomicCmpXchgInst>::operands(this), InsertAtEnd) {
1589   Init(Ptr, Cmp, NewVal, Alignment, SuccessOrdering, FailureOrdering, SSID);
1590 }
1591 
1592 //===----------------------------------------------------------------------===//
1593 //                       AtomicRMWInst Implementation
1594 //===----------------------------------------------------------------------===//
1595 
1596 void AtomicRMWInst::Init(BinOp Operation, Value *Ptr, Value *Val,
1597                          Align Alignment, AtomicOrdering Ordering,
1598                          SyncScope::ID SSID) {
1599   Op<0>() = Ptr;
1600   Op<1>() = Val;
1601   setOperation(Operation);
1602   setOrdering(Ordering);
1603   setSyncScopeID(SSID);
1604   setAlignment(Alignment);
1605 
1606   assert(getOperand(0) && getOperand(1) &&
1607          "All operands must be non-null!");
1608   assert(getOperand(0)->getType()->isPointerTy() &&
1609          "Ptr must have pointer type!");
1610   assert(getOperand(1)->getType() ==
1611          cast<PointerType>(getOperand(0)->getType())->getElementType()
1612          && "Ptr must be a pointer to Val type!");
1613   assert(Ordering != AtomicOrdering::NotAtomic &&
1614          "AtomicRMW instructions must be atomic!");
1615 }
1616 
1617 AtomicRMWInst::AtomicRMWInst(BinOp Operation, Value *Ptr, Value *Val,
1618                              Align Alignment, AtomicOrdering Ordering,
1619                              SyncScope::ID SSID, Instruction *InsertBefore)
1620     : Instruction(Val->getType(), AtomicRMW,
1621                   OperandTraits<AtomicRMWInst>::op_begin(this),
1622                   OperandTraits<AtomicRMWInst>::operands(this), InsertBefore) {
1623   Init(Operation, Ptr, Val, Alignment, Ordering, SSID);
1624 }
1625 
1626 AtomicRMWInst::AtomicRMWInst(BinOp Operation, Value *Ptr, Value *Val,
1627                              Align Alignment, AtomicOrdering Ordering,
1628                              SyncScope::ID SSID, BasicBlock *InsertAtEnd)
1629     : Instruction(Val->getType(), AtomicRMW,
1630                   OperandTraits<AtomicRMWInst>::op_begin(this),
1631                   OperandTraits<AtomicRMWInst>::operands(this), InsertAtEnd) {
1632   Init(Operation, Ptr, Val, Alignment, Ordering, SSID);
1633 }
1634 
1635 StringRef AtomicRMWInst::getOperationName(BinOp Op) {
1636   switch (Op) {
1637   case AtomicRMWInst::Xchg:
1638     return "xchg";
1639   case AtomicRMWInst::Add:
1640     return "add";
1641   case AtomicRMWInst::Sub:
1642     return "sub";
1643   case AtomicRMWInst::And:
1644     return "and";
1645   case AtomicRMWInst::Nand:
1646     return "nand";
1647   case AtomicRMWInst::Or:
1648     return "or";
1649   case AtomicRMWInst::Xor:
1650     return "xor";
1651   case AtomicRMWInst::Max:
1652     return "max";
1653   case AtomicRMWInst::Min:
1654     return "min";
1655   case AtomicRMWInst::UMax:
1656     return "umax";
1657   case AtomicRMWInst::UMin:
1658     return "umin";
1659   case AtomicRMWInst::FAdd:
1660     return "fadd";
1661   case AtomicRMWInst::FSub:
1662     return "fsub";
1663   case AtomicRMWInst::BAD_BINOP:
1664     return "<invalid operation>";
1665   }
1666 
1667   llvm_unreachable("invalid atomicrmw operation");
1668 }
1669 
1670 //===----------------------------------------------------------------------===//
1671 //                       FenceInst Implementation
1672 //===----------------------------------------------------------------------===//
1673 
1674 FenceInst::FenceInst(LLVMContext &C, AtomicOrdering Ordering,
1675                      SyncScope::ID SSID,
1676                      Instruction *InsertBefore)
1677   : Instruction(Type::getVoidTy(C), Fence, nullptr, 0, InsertBefore) {
1678   setOrdering(Ordering);
1679   setSyncScopeID(SSID);
1680 }
1681 
1682 FenceInst::FenceInst(LLVMContext &C, AtomicOrdering Ordering,
1683                      SyncScope::ID SSID,
1684                      BasicBlock *InsertAtEnd)
1685   : Instruction(Type::getVoidTy(C), Fence, nullptr, 0, InsertAtEnd) {
1686   setOrdering(Ordering);
1687   setSyncScopeID(SSID);
1688 }
1689 
1690 //===----------------------------------------------------------------------===//
1691 //                       GetElementPtrInst Implementation
1692 //===----------------------------------------------------------------------===//
1693 
1694 void GetElementPtrInst::init(Value *Ptr, ArrayRef<Value *> IdxList,
1695                              const Twine &Name) {
1696   assert(getNumOperands() == 1 + IdxList.size() &&
1697          "NumOperands not initialized?");
1698   Op<0>() = Ptr;
1699   llvm::copy(IdxList, op_begin() + 1);
1700   setName(Name);
1701 }
1702 
1703 GetElementPtrInst::GetElementPtrInst(const GetElementPtrInst &GEPI)
1704     : Instruction(GEPI.getType(), GetElementPtr,
1705                   OperandTraits<GetElementPtrInst>::op_end(this) -
1706                       GEPI.getNumOperands(),
1707                   GEPI.getNumOperands()),
1708       SourceElementType(GEPI.SourceElementType),
1709       ResultElementType(GEPI.ResultElementType) {
1710   std::copy(GEPI.op_begin(), GEPI.op_end(), op_begin());
1711   SubclassOptionalData = GEPI.SubclassOptionalData;
1712 }
1713 
1714 Type *GetElementPtrInst::getTypeAtIndex(Type *Ty, Value *Idx) {
1715   if (auto *Struct = dyn_cast<StructType>(Ty)) {
1716     if (!Struct->indexValid(Idx))
1717       return nullptr;
1718     return Struct->getTypeAtIndex(Idx);
1719   }
1720   if (!Idx->getType()->isIntOrIntVectorTy())
1721     return nullptr;
1722   if (auto *Array = dyn_cast<ArrayType>(Ty))
1723     return Array->getElementType();
1724   if (auto *Vector = dyn_cast<VectorType>(Ty))
1725     return Vector->getElementType();
1726   return nullptr;
1727 }
1728 
1729 Type *GetElementPtrInst::getTypeAtIndex(Type *Ty, uint64_t Idx) {
1730   if (auto *Struct = dyn_cast<StructType>(Ty)) {
1731     if (Idx >= Struct->getNumElements())
1732       return nullptr;
1733     return Struct->getElementType(Idx);
1734   }
1735   if (auto *Array = dyn_cast<ArrayType>(Ty))
1736     return Array->getElementType();
1737   if (auto *Vector = dyn_cast<VectorType>(Ty))
1738     return Vector->getElementType();
1739   return nullptr;
1740 }
1741 
1742 template <typename IndexTy>
1743 static Type *getIndexedTypeInternal(Type *Ty, ArrayRef<IndexTy> IdxList) {
1744   if (IdxList.empty())
1745     return Ty;
1746   for (IndexTy V : IdxList.slice(1)) {
1747     Ty = GetElementPtrInst::getTypeAtIndex(Ty, V);
1748     if (!Ty)
1749       return Ty;
1750   }
1751   return Ty;
1752 }
1753 
1754 Type *GetElementPtrInst::getIndexedType(Type *Ty, ArrayRef<Value *> IdxList) {
1755   return getIndexedTypeInternal(Ty, IdxList);
1756 }
1757 
1758 Type *GetElementPtrInst::getIndexedType(Type *Ty,
1759                                         ArrayRef<Constant *> IdxList) {
1760   return getIndexedTypeInternal(Ty, IdxList);
1761 }
1762 
1763 Type *GetElementPtrInst::getIndexedType(Type *Ty, ArrayRef<uint64_t> IdxList) {
1764   return getIndexedTypeInternal(Ty, IdxList);
1765 }
1766 
1767 /// hasAllZeroIndices - Return true if all of the indices of this GEP are
1768 /// zeros.  If so, the result pointer and the first operand have the same
1769 /// value, just potentially different types.
1770 bool GetElementPtrInst::hasAllZeroIndices() const {
1771   for (unsigned i = 1, e = getNumOperands(); i != e; ++i) {
1772     if (ConstantInt *CI = dyn_cast<ConstantInt>(getOperand(i))) {
1773       if (!CI->isZero()) return false;
1774     } else {
1775       return false;
1776     }
1777   }
1778   return true;
1779 }
1780 
1781 /// hasAllConstantIndices - Return true if all of the indices of this GEP are
1782 /// constant integers.  If so, the result pointer and the first operand have
1783 /// a constant offset between them.
1784 bool GetElementPtrInst::hasAllConstantIndices() const {
1785   for (unsigned i = 1, e = getNumOperands(); i != e; ++i) {
1786     if (!isa<ConstantInt>(getOperand(i)))
1787       return false;
1788   }
1789   return true;
1790 }
1791 
1792 void GetElementPtrInst::setIsInBounds(bool B) {
1793   cast<GEPOperator>(this)->setIsInBounds(B);
1794 }
1795 
1796 bool GetElementPtrInst::isInBounds() const {
1797   return cast<GEPOperator>(this)->isInBounds();
1798 }
1799 
1800 bool GetElementPtrInst::accumulateConstantOffset(const DataLayout &DL,
1801                                                  APInt &Offset) const {
1802   // Delegate to the generic GEPOperator implementation.
1803   return cast<GEPOperator>(this)->accumulateConstantOffset(DL, Offset);
1804 }
1805 
1806 //===----------------------------------------------------------------------===//
1807 //                           ExtractElementInst Implementation
1808 //===----------------------------------------------------------------------===//
1809 
1810 ExtractElementInst::ExtractElementInst(Value *Val, Value *Index,
1811                                        const Twine &Name,
1812                                        Instruction *InsertBef)
1813   : Instruction(cast<VectorType>(Val->getType())->getElementType(),
1814                 ExtractElement,
1815                 OperandTraits<ExtractElementInst>::op_begin(this),
1816                 2, InsertBef) {
1817   assert(isValidOperands(Val, Index) &&
1818          "Invalid extractelement instruction operands!");
1819   Op<0>() = Val;
1820   Op<1>() = Index;
1821   setName(Name);
1822 }
1823 
1824 ExtractElementInst::ExtractElementInst(Value *Val, Value *Index,
1825                                        const Twine &Name,
1826                                        BasicBlock *InsertAE)
1827   : Instruction(cast<VectorType>(Val->getType())->getElementType(),
1828                 ExtractElement,
1829                 OperandTraits<ExtractElementInst>::op_begin(this),
1830                 2, InsertAE) {
1831   assert(isValidOperands(Val, Index) &&
1832          "Invalid extractelement instruction operands!");
1833 
1834   Op<0>() = Val;
1835   Op<1>() = Index;
1836   setName(Name);
1837 }
1838 
1839 bool ExtractElementInst::isValidOperands(const Value *Val, const Value *Index) {
1840   if (!Val->getType()->isVectorTy() || !Index->getType()->isIntegerTy())
1841     return false;
1842   return true;
1843 }
1844 
1845 //===----------------------------------------------------------------------===//
1846 //                           InsertElementInst Implementation
1847 //===----------------------------------------------------------------------===//
1848 
1849 InsertElementInst::InsertElementInst(Value *Vec, Value *Elt, Value *Index,
1850                                      const Twine &Name,
1851                                      Instruction *InsertBef)
1852   : Instruction(Vec->getType(), InsertElement,
1853                 OperandTraits<InsertElementInst>::op_begin(this),
1854                 3, InsertBef) {
1855   assert(isValidOperands(Vec, Elt, Index) &&
1856          "Invalid insertelement instruction operands!");
1857   Op<0>() = Vec;
1858   Op<1>() = Elt;
1859   Op<2>() = Index;
1860   setName(Name);
1861 }
1862 
1863 InsertElementInst::InsertElementInst(Value *Vec, Value *Elt, Value *Index,
1864                                      const Twine &Name,
1865                                      BasicBlock *InsertAE)
1866   : Instruction(Vec->getType(), InsertElement,
1867                 OperandTraits<InsertElementInst>::op_begin(this),
1868                 3, InsertAE) {
1869   assert(isValidOperands(Vec, Elt, Index) &&
1870          "Invalid insertelement instruction operands!");
1871 
1872   Op<0>() = Vec;
1873   Op<1>() = Elt;
1874   Op<2>() = Index;
1875   setName(Name);
1876 }
1877 
1878 bool InsertElementInst::isValidOperands(const Value *Vec, const Value *Elt,
1879                                         const Value *Index) {
1880   if (!Vec->getType()->isVectorTy())
1881     return false;   // First operand of insertelement must be vector type.
1882 
1883   if (Elt->getType() != cast<VectorType>(Vec->getType())->getElementType())
1884     return false;// Second operand of insertelement must be vector element type.
1885 
1886   if (!Index->getType()->isIntegerTy())
1887     return false;  // Third operand of insertelement must be i32.
1888   return true;
1889 }
1890 
1891 //===----------------------------------------------------------------------===//
1892 //                      ShuffleVectorInst Implementation
1893 //===----------------------------------------------------------------------===//
1894 
1895 ShuffleVectorInst::ShuffleVectorInst(Value *V1, Value *V2, Value *Mask,
1896                                      const Twine &Name,
1897                                      Instruction *InsertBefore)
1898     : Instruction(
1899           VectorType::get(cast<VectorType>(V1->getType())->getElementType(),
1900                           cast<VectorType>(Mask->getType())->getElementCount()),
1901           ShuffleVector, OperandTraits<ShuffleVectorInst>::op_begin(this),
1902           OperandTraits<ShuffleVectorInst>::operands(this), InsertBefore) {
1903   assert(isValidOperands(V1, V2, Mask) &&
1904          "Invalid shuffle vector instruction operands!");
1905 
1906   Op<0>() = V1;
1907   Op<1>() = V2;
1908   SmallVector<int, 16> MaskArr;
1909   getShuffleMask(cast<Constant>(Mask), MaskArr);
1910   setShuffleMask(MaskArr);
1911   setName(Name);
1912 }
1913 
1914 ShuffleVectorInst::ShuffleVectorInst(Value *V1, Value *V2, Value *Mask,
1915                                      const Twine &Name, BasicBlock *InsertAtEnd)
1916     : Instruction(
1917           VectorType::get(cast<VectorType>(V1->getType())->getElementType(),
1918                           cast<VectorType>(Mask->getType())->getElementCount()),
1919           ShuffleVector, OperandTraits<ShuffleVectorInst>::op_begin(this),
1920           OperandTraits<ShuffleVectorInst>::operands(this), InsertAtEnd) {
1921   assert(isValidOperands(V1, V2, Mask) &&
1922          "Invalid shuffle vector instruction operands!");
1923 
1924   Op<0>() = V1;
1925   Op<1>() = V2;
1926   SmallVector<int, 16> MaskArr;
1927   getShuffleMask(cast<Constant>(Mask), MaskArr);
1928   setShuffleMask(MaskArr);
1929   setName(Name);
1930 }
1931 
1932 ShuffleVectorInst::ShuffleVectorInst(Value *V1, Value *V2, ArrayRef<int> Mask,
1933                                      const Twine &Name,
1934                                      Instruction *InsertBefore)
1935     : Instruction(
1936           VectorType::get(cast<VectorType>(V1->getType())->getElementType(),
1937                           Mask.size(), isa<ScalableVectorType>(V1->getType())),
1938           ShuffleVector, OperandTraits<ShuffleVectorInst>::op_begin(this),
1939           OperandTraits<ShuffleVectorInst>::operands(this), InsertBefore) {
1940   assert(isValidOperands(V1, V2, Mask) &&
1941          "Invalid shuffle vector instruction operands!");
1942   Op<0>() = V1;
1943   Op<1>() = V2;
1944   setShuffleMask(Mask);
1945   setName(Name);
1946 }
1947 
1948 ShuffleVectorInst::ShuffleVectorInst(Value *V1, Value *V2, ArrayRef<int> Mask,
1949                                      const Twine &Name, BasicBlock *InsertAtEnd)
1950     : Instruction(
1951           VectorType::get(cast<VectorType>(V1->getType())->getElementType(),
1952                           Mask.size(), isa<ScalableVectorType>(V1->getType())),
1953           ShuffleVector, OperandTraits<ShuffleVectorInst>::op_begin(this),
1954           OperandTraits<ShuffleVectorInst>::operands(this), InsertAtEnd) {
1955   assert(isValidOperands(V1, V2, Mask) &&
1956          "Invalid shuffle vector instruction operands!");
1957 
1958   Op<0>() = V1;
1959   Op<1>() = V2;
1960   setShuffleMask(Mask);
1961   setName(Name);
1962 }
1963 
1964 void ShuffleVectorInst::commute() {
1965   int NumOpElts = cast<FixedVectorType>(Op<0>()->getType())->getNumElements();
1966   int NumMaskElts = ShuffleMask.size();
1967   SmallVector<int, 16> NewMask(NumMaskElts);
1968   for (int i = 0; i != NumMaskElts; ++i) {
1969     int MaskElt = getMaskValue(i);
1970     if (MaskElt == UndefMaskElem) {
1971       NewMask[i] = UndefMaskElem;
1972       continue;
1973     }
1974     assert(MaskElt >= 0 && MaskElt < 2 * NumOpElts && "Out-of-range mask");
1975     MaskElt = (MaskElt < NumOpElts) ? MaskElt + NumOpElts : MaskElt - NumOpElts;
1976     NewMask[i] = MaskElt;
1977   }
1978   setShuffleMask(NewMask);
1979   Op<0>().swap(Op<1>());
1980 }
1981 
1982 bool ShuffleVectorInst::isValidOperands(const Value *V1, const Value *V2,
1983                                         ArrayRef<int> Mask) {
1984   // V1 and V2 must be vectors of the same type.
1985   if (!isa<VectorType>(V1->getType()) || V1->getType() != V2->getType())
1986     return false;
1987 
1988   // Make sure the mask elements make sense.
1989   int V1Size =
1990       cast<VectorType>(V1->getType())->getElementCount().getKnownMinValue();
1991   for (int Elem : Mask)
1992     if (Elem != UndefMaskElem && Elem >= V1Size * 2)
1993       return false;
1994 
1995   if (isa<ScalableVectorType>(V1->getType()))
1996     if ((Mask[0] != 0 && Mask[0] != UndefMaskElem) || !is_splat(Mask))
1997       return false;
1998 
1999   return true;
2000 }
2001 
2002 bool ShuffleVectorInst::isValidOperands(const Value *V1, const Value *V2,
2003                                         const Value *Mask) {
2004   // V1 and V2 must be vectors of the same type.
2005   if (!V1->getType()->isVectorTy() || V1->getType() != V2->getType())
2006     return false;
2007 
2008   // Mask must be vector of i32, and must be the same kind of vector as the
2009   // input vectors
2010   auto *MaskTy = dyn_cast<VectorType>(Mask->getType());
2011   if (!MaskTy || !MaskTy->getElementType()->isIntegerTy(32) ||
2012       isa<ScalableVectorType>(MaskTy) != isa<ScalableVectorType>(V1->getType()))
2013     return false;
2014 
2015   // Check to see if Mask is valid.
2016   if (isa<UndefValue>(Mask) || isa<ConstantAggregateZero>(Mask))
2017     return true;
2018 
2019   if (const auto *MV = dyn_cast<ConstantVector>(Mask)) {
2020     unsigned V1Size = cast<FixedVectorType>(V1->getType())->getNumElements();
2021     for (Value *Op : MV->operands()) {
2022       if (auto *CI = dyn_cast<ConstantInt>(Op)) {
2023         if (CI->uge(V1Size*2))
2024           return false;
2025       } else if (!isa<UndefValue>(Op)) {
2026         return false;
2027       }
2028     }
2029     return true;
2030   }
2031 
2032   if (const auto *CDS = dyn_cast<ConstantDataSequential>(Mask)) {
2033     unsigned V1Size = cast<FixedVectorType>(V1->getType())->getNumElements();
2034     for (unsigned i = 0, e = cast<FixedVectorType>(MaskTy)->getNumElements();
2035          i != e; ++i)
2036       if (CDS->getElementAsInteger(i) >= V1Size*2)
2037         return false;
2038     return true;
2039   }
2040 
2041   return false;
2042 }
2043 
2044 void ShuffleVectorInst::getShuffleMask(const Constant *Mask,
2045                                        SmallVectorImpl<int> &Result) {
2046   ElementCount EC = cast<VectorType>(Mask->getType())->getElementCount();
2047 
2048   if (isa<ConstantAggregateZero>(Mask)) {
2049     Result.resize(EC.getKnownMinValue(), 0);
2050     return;
2051   }
2052 
2053   Result.reserve(EC.getKnownMinValue());
2054 
2055   if (EC.isScalable()) {
2056     assert((isa<ConstantAggregateZero>(Mask) || isa<UndefValue>(Mask)) &&
2057            "Scalable vector shuffle mask must be undef or zeroinitializer");
2058     int MaskVal = isa<UndefValue>(Mask) ? -1 : 0;
2059     for (unsigned I = 0; I < EC.getKnownMinValue(); ++I)
2060       Result.emplace_back(MaskVal);
2061     return;
2062   }
2063 
2064   unsigned NumElts = EC.getKnownMinValue();
2065 
2066   if (auto *CDS = dyn_cast<ConstantDataSequential>(Mask)) {
2067     for (unsigned i = 0; i != NumElts; ++i)
2068       Result.push_back(CDS->getElementAsInteger(i));
2069     return;
2070   }
2071   for (unsigned i = 0; i != NumElts; ++i) {
2072     Constant *C = Mask->getAggregateElement(i);
2073     Result.push_back(isa<UndefValue>(C) ? -1 :
2074                      cast<ConstantInt>(C)->getZExtValue());
2075   }
2076 }
2077 
2078 void ShuffleVectorInst::setShuffleMask(ArrayRef<int> Mask) {
2079   ShuffleMask.assign(Mask.begin(), Mask.end());
2080   ShuffleMaskForBitcode = convertShuffleMaskForBitcode(Mask, getType());
2081 }
2082 Constant *ShuffleVectorInst::convertShuffleMaskForBitcode(ArrayRef<int> Mask,
2083                                                           Type *ResultTy) {
2084   Type *Int32Ty = Type::getInt32Ty(ResultTy->getContext());
2085   if (isa<ScalableVectorType>(ResultTy)) {
2086     assert(is_splat(Mask) && "Unexpected shuffle");
2087     Type *VecTy = VectorType::get(Int32Ty, Mask.size(), true);
2088     if (Mask[0] == 0)
2089       return Constant::getNullValue(VecTy);
2090     return UndefValue::get(VecTy);
2091   }
2092   SmallVector<Constant *, 16> MaskConst;
2093   for (int Elem : Mask) {
2094     if (Elem == UndefMaskElem)
2095       MaskConst.push_back(UndefValue::get(Int32Ty));
2096     else
2097       MaskConst.push_back(ConstantInt::get(Int32Ty, Elem));
2098   }
2099   return ConstantVector::get(MaskConst);
2100 }
2101 
2102 static bool isSingleSourceMaskImpl(ArrayRef<int> Mask, int NumOpElts) {
2103   assert(!Mask.empty() && "Shuffle mask must contain elements");
2104   bool UsesLHS = false;
2105   bool UsesRHS = false;
2106   for (int I : Mask) {
2107     if (I == -1)
2108       continue;
2109     assert(I >= 0 && I < (NumOpElts * 2) &&
2110            "Out-of-bounds shuffle mask element");
2111     UsesLHS |= (I < NumOpElts);
2112     UsesRHS |= (I >= NumOpElts);
2113     if (UsesLHS && UsesRHS)
2114       return false;
2115   }
2116   // Allow for degenerate case: completely undef mask means neither source is used.
2117   return UsesLHS || UsesRHS;
2118 }
2119 
2120 bool ShuffleVectorInst::isSingleSourceMask(ArrayRef<int> Mask) {
2121   // We don't have vector operand size information, so assume operands are the
2122   // same size as the mask.
2123   return isSingleSourceMaskImpl(Mask, Mask.size());
2124 }
2125 
2126 static bool isIdentityMaskImpl(ArrayRef<int> Mask, int NumOpElts) {
2127   if (!isSingleSourceMaskImpl(Mask, NumOpElts))
2128     return false;
2129   for (int i = 0, NumMaskElts = Mask.size(); i < NumMaskElts; ++i) {
2130     if (Mask[i] == -1)
2131       continue;
2132     if (Mask[i] != i && Mask[i] != (NumOpElts + i))
2133       return false;
2134   }
2135   return true;
2136 }
2137 
2138 bool ShuffleVectorInst::isIdentityMask(ArrayRef<int> Mask) {
2139   // We don't have vector operand size information, so assume operands are the
2140   // same size as the mask.
2141   return isIdentityMaskImpl(Mask, Mask.size());
2142 }
2143 
2144 bool ShuffleVectorInst::isReverseMask(ArrayRef<int> Mask) {
2145   if (!isSingleSourceMask(Mask))
2146     return false;
2147   for (int i = 0, NumElts = Mask.size(); i < NumElts; ++i) {
2148     if (Mask[i] == -1)
2149       continue;
2150     if (Mask[i] != (NumElts - 1 - i) && Mask[i] != (NumElts + NumElts - 1 - i))
2151       return false;
2152   }
2153   return true;
2154 }
2155 
2156 bool ShuffleVectorInst::isZeroEltSplatMask(ArrayRef<int> Mask) {
2157   if (!isSingleSourceMask(Mask))
2158     return false;
2159   for (int i = 0, NumElts = Mask.size(); i < NumElts; ++i) {
2160     if (Mask[i] == -1)
2161       continue;
2162     if (Mask[i] != 0 && Mask[i] != NumElts)
2163       return false;
2164   }
2165   return true;
2166 }
2167 
2168 bool ShuffleVectorInst::isSelectMask(ArrayRef<int> Mask) {
2169   // Select is differentiated from identity. It requires using both sources.
2170   if (isSingleSourceMask(Mask))
2171     return false;
2172   for (int i = 0, NumElts = Mask.size(); i < NumElts; ++i) {
2173     if (Mask[i] == -1)
2174       continue;
2175     if (Mask[i] != i && Mask[i] != (NumElts + i))
2176       return false;
2177   }
2178   return true;
2179 }
2180 
2181 bool ShuffleVectorInst::isTransposeMask(ArrayRef<int> Mask) {
2182   // Example masks that will return true:
2183   // v1 = <a, b, c, d>
2184   // v2 = <e, f, g, h>
2185   // trn1 = shufflevector v1, v2 <0, 4, 2, 6> = <a, e, c, g>
2186   // trn2 = shufflevector v1, v2 <1, 5, 3, 7> = <b, f, d, h>
2187 
2188   // 1. The number of elements in the mask must be a power-of-2 and at least 2.
2189   int NumElts = Mask.size();
2190   if (NumElts < 2 || !isPowerOf2_32(NumElts))
2191     return false;
2192 
2193   // 2. The first element of the mask must be either a 0 or a 1.
2194   if (Mask[0] != 0 && Mask[0] != 1)
2195     return false;
2196 
2197   // 3. The difference between the first 2 elements must be equal to the
2198   // number of elements in the mask.
2199   if ((Mask[1] - Mask[0]) != NumElts)
2200     return false;
2201 
2202   // 4. The difference between consecutive even-numbered and odd-numbered
2203   // elements must be equal to 2.
2204   for (int i = 2; i < NumElts; ++i) {
2205     int MaskEltVal = Mask[i];
2206     if (MaskEltVal == -1)
2207       return false;
2208     int MaskEltPrevVal = Mask[i - 2];
2209     if (MaskEltVal - MaskEltPrevVal != 2)
2210       return false;
2211   }
2212   return true;
2213 }
2214 
2215 bool ShuffleVectorInst::isExtractSubvectorMask(ArrayRef<int> Mask,
2216                                                int NumSrcElts, int &Index) {
2217   // Must extract from a single source.
2218   if (!isSingleSourceMaskImpl(Mask, NumSrcElts))
2219     return false;
2220 
2221   // Must be smaller (else this is an Identity shuffle).
2222   if (NumSrcElts <= (int)Mask.size())
2223     return false;
2224 
2225   // Find start of extraction, accounting that we may start with an UNDEF.
2226   int SubIndex = -1;
2227   for (int i = 0, e = Mask.size(); i != e; ++i) {
2228     int M = Mask[i];
2229     if (M < 0)
2230       continue;
2231     int Offset = (M % NumSrcElts) - i;
2232     if (0 <= SubIndex && SubIndex != Offset)
2233       return false;
2234     SubIndex = Offset;
2235   }
2236 
2237   if (0 <= SubIndex && SubIndex + (int)Mask.size() <= NumSrcElts) {
2238     Index = SubIndex;
2239     return true;
2240   }
2241   return false;
2242 }
2243 
2244 bool ShuffleVectorInst::isIdentityWithPadding() const {
2245   if (isa<UndefValue>(Op<2>()))
2246     return false;
2247 
2248   // FIXME: Not currently possible to express a shuffle mask for a scalable
2249   // vector for this case.
2250   if (isa<ScalableVectorType>(getType()))
2251     return false;
2252 
2253   int NumOpElts = cast<FixedVectorType>(Op<0>()->getType())->getNumElements();
2254   int NumMaskElts = cast<FixedVectorType>(getType())->getNumElements();
2255   if (NumMaskElts <= NumOpElts)
2256     return false;
2257 
2258   // The first part of the mask must choose elements from exactly 1 source op.
2259   ArrayRef<int> Mask = getShuffleMask();
2260   if (!isIdentityMaskImpl(Mask, NumOpElts))
2261     return false;
2262 
2263   // All extending must be with undef elements.
2264   for (int i = NumOpElts; i < NumMaskElts; ++i)
2265     if (Mask[i] != -1)
2266       return false;
2267 
2268   return true;
2269 }
2270 
2271 bool ShuffleVectorInst::isIdentityWithExtract() const {
2272   if (isa<UndefValue>(Op<2>()))
2273     return false;
2274 
2275   // FIXME: Not currently possible to express a shuffle mask for a scalable
2276   // vector for this case.
2277   if (isa<ScalableVectorType>(getType()))
2278     return false;
2279 
2280   int NumOpElts = cast<FixedVectorType>(Op<0>()->getType())->getNumElements();
2281   int NumMaskElts = cast<FixedVectorType>(getType())->getNumElements();
2282   if (NumMaskElts >= NumOpElts)
2283     return false;
2284 
2285   return isIdentityMaskImpl(getShuffleMask(), NumOpElts);
2286 }
2287 
2288 bool ShuffleVectorInst::isConcat() const {
2289   // Vector concatenation is differentiated from identity with padding.
2290   if (isa<UndefValue>(Op<0>()) || isa<UndefValue>(Op<1>()) ||
2291       isa<UndefValue>(Op<2>()))
2292     return false;
2293 
2294   // FIXME: Not currently possible to express a shuffle mask for a scalable
2295   // vector for this case.
2296   if (isa<ScalableVectorType>(getType()))
2297     return false;
2298 
2299   int NumOpElts = cast<FixedVectorType>(Op<0>()->getType())->getNumElements();
2300   int NumMaskElts = cast<FixedVectorType>(getType())->getNumElements();
2301   if (NumMaskElts != NumOpElts * 2)
2302     return false;
2303 
2304   // Use the mask length rather than the operands' vector lengths here. We
2305   // already know that the shuffle returns a vector twice as long as the inputs,
2306   // and neither of the inputs are undef vectors. If the mask picks consecutive
2307   // elements from both inputs, then this is a concatenation of the inputs.
2308   return isIdentityMaskImpl(getShuffleMask(), NumMaskElts);
2309 }
2310 
2311 //===----------------------------------------------------------------------===//
2312 //                             InsertValueInst Class
2313 //===----------------------------------------------------------------------===//
2314 
2315 void InsertValueInst::init(Value *Agg, Value *Val, ArrayRef<unsigned> Idxs,
2316                            const Twine &Name) {
2317   assert(getNumOperands() == 2 && "NumOperands not initialized?");
2318 
2319   // There's no fundamental reason why we require at least one index
2320   // (other than weirdness with &*IdxBegin being invalid; see
2321   // getelementptr's init routine for example). But there's no
2322   // present need to support it.
2323   assert(!Idxs.empty() && "InsertValueInst must have at least one index");
2324 
2325   assert(ExtractValueInst::getIndexedType(Agg->getType(), Idxs) ==
2326          Val->getType() && "Inserted value must match indexed type!");
2327   Op<0>() = Agg;
2328   Op<1>() = Val;
2329 
2330   Indices.append(Idxs.begin(), Idxs.end());
2331   setName(Name);
2332 }
2333 
2334 InsertValueInst::InsertValueInst(const InsertValueInst &IVI)
2335   : Instruction(IVI.getType(), InsertValue,
2336                 OperandTraits<InsertValueInst>::op_begin(this), 2),
2337     Indices(IVI.Indices) {
2338   Op<0>() = IVI.getOperand(0);
2339   Op<1>() = IVI.getOperand(1);
2340   SubclassOptionalData = IVI.SubclassOptionalData;
2341 }
2342 
2343 //===----------------------------------------------------------------------===//
2344 //                             ExtractValueInst Class
2345 //===----------------------------------------------------------------------===//
2346 
2347 void ExtractValueInst::init(ArrayRef<unsigned> Idxs, const Twine &Name) {
2348   assert(getNumOperands() == 1 && "NumOperands not initialized?");
2349 
2350   // There's no fundamental reason why we require at least one index.
2351   // But there's no present need to support it.
2352   assert(!Idxs.empty() && "ExtractValueInst must have at least one index");
2353 
2354   Indices.append(Idxs.begin(), Idxs.end());
2355   setName(Name);
2356 }
2357 
2358 ExtractValueInst::ExtractValueInst(const ExtractValueInst &EVI)
2359   : UnaryInstruction(EVI.getType(), ExtractValue, EVI.getOperand(0)),
2360     Indices(EVI.Indices) {
2361   SubclassOptionalData = EVI.SubclassOptionalData;
2362 }
2363 
2364 // getIndexedType - Returns the type of the element that would be extracted
2365 // with an extractvalue instruction with the specified parameters.
2366 //
2367 // A null type is returned if the indices are invalid for the specified
2368 // pointer type.
2369 //
2370 Type *ExtractValueInst::getIndexedType(Type *Agg,
2371                                        ArrayRef<unsigned> Idxs) {
2372   for (unsigned Index : Idxs) {
2373     // We can't use CompositeType::indexValid(Index) here.
2374     // indexValid() always returns true for arrays because getelementptr allows
2375     // out-of-bounds indices. Since we don't allow those for extractvalue and
2376     // insertvalue we need to check array indexing manually.
2377     // Since the only other types we can index into are struct types it's just
2378     // as easy to check those manually as well.
2379     if (ArrayType *AT = dyn_cast<ArrayType>(Agg)) {
2380       if (Index >= AT->getNumElements())
2381         return nullptr;
2382       Agg = AT->getElementType();
2383     } else if (StructType *ST = dyn_cast<StructType>(Agg)) {
2384       if (Index >= ST->getNumElements())
2385         return nullptr;
2386       Agg = ST->getElementType(Index);
2387     } else {
2388       // Not a valid type to index into.
2389       return nullptr;
2390     }
2391   }
2392   return const_cast<Type*>(Agg);
2393 }
2394 
2395 //===----------------------------------------------------------------------===//
2396 //                             UnaryOperator Class
2397 //===----------------------------------------------------------------------===//
2398 
2399 UnaryOperator::UnaryOperator(UnaryOps iType, Value *S,
2400                              Type *Ty, const Twine &Name,
2401                              Instruction *InsertBefore)
2402   : UnaryInstruction(Ty, iType, S, InsertBefore) {
2403   Op<0>() = S;
2404   setName(Name);
2405   AssertOK();
2406 }
2407 
2408 UnaryOperator::UnaryOperator(UnaryOps iType, Value *S,
2409                              Type *Ty, const Twine &Name,
2410                              BasicBlock *InsertAtEnd)
2411   : UnaryInstruction(Ty, iType, S, InsertAtEnd) {
2412   Op<0>() = S;
2413   setName(Name);
2414   AssertOK();
2415 }
2416 
2417 UnaryOperator *UnaryOperator::Create(UnaryOps Op, Value *S,
2418                                      const Twine &Name,
2419                                      Instruction *InsertBefore) {
2420   return new UnaryOperator(Op, S, S->getType(), Name, InsertBefore);
2421 }
2422 
2423 UnaryOperator *UnaryOperator::Create(UnaryOps Op, Value *S,
2424                                      const Twine &Name,
2425                                      BasicBlock *InsertAtEnd) {
2426   UnaryOperator *Res = Create(Op, S, Name);
2427   InsertAtEnd->getInstList().push_back(Res);
2428   return Res;
2429 }
2430 
2431 void UnaryOperator::AssertOK() {
2432   Value *LHS = getOperand(0);
2433   (void)LHS; // Silence warnings.
2434 #ifndef NDEBUG
2435   switch (getOpcode()) {
2436   case FNeg:
2437     assert(getType() == LHS->getType() &&
2438            "Unary operation should return same type as operand!");
2439     assert(getType()->isFPOrFPVectorTy() &&
2440            "Tried to create a floating-point operation on a "
2441            "non-floating-point type!");
2442     break;
2443   default: llvm_unreachable("Invalid opcode provided");
2444   }
2445 #endif
2446 }
2447 
2448 //===----------------------------------------------------------------------===//
2449 //                             BinaryOperator Class
2450 //===----------------------------------------------------------------------===//
2451 
2452 BinaryOperator::BinaryOperator(BinaryOps iType, Value *S1, Value *S2,
2453                                Type *Ty, const Twine &Name,
2454                                Instruction *InsertBefore)
2455   : Instruction(Ty, iType,
2456                 OperandTraits<BinaryOperator>::op_begin(this),
2457                 OperandTraits<BinaryOperator>::operands(this),
2458                 InsertBefore) {
2459   Op<0>() = S1;
2460   Op<1>() = S2;
2461   setName(Name);
2462   AssertOK();
2463 }
2464 
2465 BinaryOperator::BinaryOperator(BinaryOps iType, Value *S1, Value *S2,
2466                                Type *Ty, const Twine &Name,
2467                                BasicBlock *InsertAtEnd)
2468   : Instruction(Ty, iType,
2469                 OperandTraits<BinaryOperator>::op_begin(this),
2470                 OperandTraits<BinaryOperator>::operands(this),
2471                 InsertAtEnd) {
2472   Op<0>() = S1;
2473   Op<1>() = S2;
2474   setName(Name);
2475   AssertOK();
2476 }
2477 
2478 void BinaryOperator::AssertOK() {
2479   Value *LHS = getOperand(0), *RHS = getOperand(1);
2480   (void)LHS; (void)RHS; // Silence warnings.
2481   assert(LHS->getType() == RHS->getType() &&
2482          "Binary operator operand types must match!");
2483 #ifndef NDEBUG
2484   switch (getOpcode()) {
2485   case Add: case Sub:
2486   case Mul:
2487     assert(getType() == LHS->getType() &&
2488            "Arithmetic operation should return same type as operands!");
2489     assert(getType()->isIntOrIntVectorTy() &&
2490            "Tried to create an integer operation on a non-integer type!");
2491     break;
2492   case FAdd: case FSub:
2493   case FMul:
2494     assert(getType() == LHS->getType() &&
2495            "Arithmetic operation should return same type as operands!");
2496     assert(getType()->isFPOrFPVectorTy() &&
2497            "Tried to create a floating-point operation on a "
2498            "non-floating-point type!");
2499     break;
2500   case UDiv:
2501   case SDiv:
2502     assert(getType() == LHS->getType() &&
2503            "Arithmetic operation should return same type as operands!");
2504     assert(getType()->isIntOrIntVectorTy() &&
2505            "Incorrect operand type (not integer) for S/UDIV");
2506     break;
2507   case FDiv:
2508     assert(getType() == LHS->getType() &&
2509            "Arithmetic operation should return same type as operands!");
2510     assert(getType()->isFPOrFPVectorTy() &&
2511            "Incorrect operand type (not floating point) for FDIV");
2512     break;
2513   case URem:
2514   case SRem:
2515     assert(getType() == LHS->getType() &&
2516            "Arithmetic operation should return same type as operands!");
2517     assert(getType()->isIntOrIntVectorTy() &&
2518            "Incorrect operand type (not integer) for S/UREM");
2519     break;
2520   case FRem:
2521     assert(getType() == LHS->getType() &&
2522            "Arithmetic operation should return same type as operands!");
2523     assert(getType()->isFPOrFPVectorTy() &&
2524            "Incorrect operand type (not floating point) for FREM");
2525     break;
2526   case Shl:
2527   case LShr:
2528   case AShr:
2529     assert(getType() == LHS->getType() &&
2530            "Shift operation should return same type as operands!");
2531     assert(getType()->isIntOrIntVectorTy() &&
2532            "Tried to create a shift operation on a non-integral type!");
2533     break;
2534   case And: case Or:
2535   case Xor:
2536     assert(getType() == LHS->getType() &&
2537            "Logical operation should return same type as operands!");
2538     assert(getType()->isIntOrIntVectorTy() &&
2539            "Tried to create a logical operation on a non-integral type!");
2540     break;
2541   default: llvm_unreachable("Invalid opcode provided");
2542   }
2543 #endif
2544 }
2545 
2546 BinaryOperator *BinaryOperator::Create(BinaryOps Op, Value *S1, Value *S2,
2547                                        const Twine &Name,
2548                                        Instruction *InsertBefore) {
2549   assert(S1->getType() == S2->getType() &&
2550          "Cannot create binary operator with two operands of differing type!");
2551   return new BinaryOperator(Op, S1, S2, S1->getType(), Name, InsertBefore);
2552 }
2553 
2554 BinaryOperator *BinaryOperator::Create(BinaryOps Op, Value *S1, Value *S2,
2555                                        const Twine &Name,
2556                                        BasicBlock *InsertAtEnd) {
2557   BinaryOperator *Res = Create(Op, S1, S2, Name);
2558   InsertAtEnd->getInstList().push_back(Res);
2559   return Res;
2560 }
2561 
2562 BinaryOperator *BinaryOperator::CreateNeg(Value *Op, const Twine &Name,
2563                                           Instruction *InsertBefore) {
2564   Value *zero = ConstantFP::getZeroValueForNegation(Op->getType());
2565   return new BinaryOperator(Instruction::Sub,
2566                             zero, Op,
2567                             Op->getType(), Name, InsertBefore);
2568 }
2569 
2570 BinaryOperator *BinaryOperator::CreateNeg(Value *Op, const Twine &Name,
2571                                           BasicBlock *InsertAtEnd) {
2572   Value *zero = ConstantFP::getZeroValueForNegation(Op->getType());
2573   return new BinaryOperator(Instruction::Sub,
2574                             zero, Op,
2575                             Op->getType(), Name, InsertAtEnd);
2576 }
2577 
2578 BinaryOperator *BinaryOperator::CreateNSWNeg(Value *Op, const Twine &Name,
2579                                              Instruction *InsertBefore) {
2580   Value *zero = ConstantFP::getZeroValueForNegation(Op->getType());
2581   return BinaryOperator::CreateNSWSub(zero, Op, Name, InsertBefore);
2582 }
2583 
2584 BinaryOperator *BinaryOperator::CreateNSWNeg(Value *Op, const Twine &Name,
2585                                              BasicBlock *InsertAtEnd) {
2586   Value *zero = ConstantFP::getZeroValueForNegation(Op->getType());
2587   return BinaryOperator::CreateNSWSub(zero, Op, Name, InsertAtEnd);
2588 }
2589 
2590 BinaryOperator *BinaryOperator::CreateNUWNeg(Value *Op, const Twine &Name,
2591                                              Instruction *InsertBefore) {
2592   Value *zero = ConstantFP::getZeroValueForNegation(Op->getType());
2593   return BinaryOperator::CreateNUWSub(zero, Op, Name, InsertBefore);
2594 }
2595 
2596 BinaryOperator *BinaryOperator::CreateNUWNeg(Value *Op, const Twine &Name,
2597                                              BasicBlock *InsertAtEnd) {
2598   Value *zero = ConstantFP::getZeroValueForNegation(Op->getType());
2599   return BinaryOperator::CreateNUWSub(zero, Op, Name, InsertAtEnd);
2600 }
2601 
2602 BinaryOperator *BinaryOperator::CreateNot(Value *Op, const Twine &Name,
2603                                           Instruction *InsertBefore) {
2604   Constant *C = Constant::getAllOnesValue(Op->getType());
2605   return new BinaryOperator(Instruction::Xor, Op, C,
2606                             Op->getType(), Name, InsertBefore);
2607 }
2608 
2609 BinaryOperator *BinaryOperator::CreateNot(Value *Op, const Twine &Name,
2610                                           BasicBlock *InsertAtEnd) {
2611   Constant *AllOnes = Constant::getAllOnesValue(Op->getType());
2612   return new BinaryOperator(Instruction::Xor, Op, AllOnes,
2613                             Op->getType(), Name, InsertAtEnd);
2614 }
2615 
2616 // Exchange the two operands to this instruction. This instruction is safe to
2617 // use on any binary instruction and does not modify the semantics of the
2618 // instruction. If the instruction is order-dependent (SetLT f.e.), the opcode
2619 // is changed.
2620 bool BinaryOperator::swapOperands() {
2621   if (!isCommutative())
2622     return true; // Can't commute operands
2623   Op<0>().swap(Op<1>());
2624   return false;
2625 }
2626 
2627 //===----------------------------------------------------------------------===//
2628 //                             FPMathOperator Class
2629 //===----------------------------------------------------------------------===//
2630 
2631 float FPMathOperator::getFPAccuracy() const {
2632   const MDNode *MD =
2633       cast<Instruction>(this)->getMetadata(LLVMContext::MD_fpmath);
2634   if (!MD)
2635     return 0.0;
2636   ConstantFP *Accuracy = mdconst::extract<ConstantFP>(MD->getOperand(0));
2637   return Accuracy->getValueAPF().convertToFloat();
2638 }
2639 
2640 //===----------------------------------------------------------------------===//
2641 //                                CastInst Class
2642 //===----------------------------------------------------------------------===//
2643 
2644 // Just determine if this cast only deals with integral->integral conversion.
2645 bool CastInst::isIntegerCast() const {
2646   switch (getOpcode()) {
2647     default: return false;
2648     case Instruction::ZExt:
2649     case Instruction::SExt:
2650     case Instruction::Trunc:
2651       return true;
2652     case Instruction::BitCast:
2653       return getOperand(0)->getType()->isIntegerTy() &&
2654         getType()->isIntegerTy();
2655   }
2656 }
2657 
2658 bool CastInst::isLosslessCast() const {
2659   // Only BitCast can be lossless, exit fast if we're not BitCast
2660   if (getOpcode() != Instruction::BitCast)
2661     return false;
2662 
2663   // Identity cast is always lossless
2664   Type *SrcTy = getOperand(0)->getType();
2665   Type *DstTy = getType();
2666   if (SrcTy == DstTy)
2667     return true;
2668 
2669   // Pointer to pointer is always lossless.
2670   if (SrcTy->isPointerTy())
2671     return DstTy->isPointerTy();
2672   return false;  // Other types have no identity values
2673 }
2674 
2675 /// This function determines if the CastInst does not require any bits to be
2676 /// changed in order to effect the cast. Essentially, it identifies cases where
2677 /// no code gen is necessary for the cast, hence the name no-op cast.  For
2678 /// example, the following are all no-op casts:
2679 /// # bitcast i32* %x to i8*
2680 /// # bitcast <2 x i32> %x to <4 x i16>
2681 /// # ptrtoint i32* %x to i32     ; on 32-bit plaforms only
2682 /// Determine if the described cast is a no-op.
2683 bool CastInst::isNoopCast(Instruction::CastOps Opcode,
2684                           Type *SrcTy,
2685                           Type *DestTy,
2686                           const DataLayout &DL) {
2687   assert(castIsValid(Opcode, SrcTy, DestTy) && "method precondition");
2688   switch (Opcode) {
2689     default: llvm_unreachable("Invalid CastOp");
2690     case Instruction::Trunc:
2691     case Instruction::ZExt:
2692     case Instruction::SExt:
2693     case Instruction::FPTrunc:
2694     case Instruction::FPExt:
2695     case Instruction::UIToFP:
2696     case Instruction::SIToFP:
2697     case Instruction::FPToUI:
2698     case Instruction::FPToSI:
2699     case Instruction::AddrSpaceCast:
2700       // TODO: Target informations may give a more accurate answer here.
2701       return false;
2702     case Instruction::BitCast:
2703       return true;  // BitCast never modifies bits.
2704     case Instruction::PtrToInt:
2705       return DL.getIntPtrType(SrcTy)->getScalarSizeInBits() ==
2706              DestTy->getScalarSizeInBits();
2707     case Instruction::IntToPtr:
2708       return DL.getIntPtrType(DestTy)->getScalarSizeInBits() ==
2709              SrcTy->getScalarSizeInBits();
2710   }
2711 }
2712 
2713 bool CastInst::isNoopCast(const DataLayout &DL) const {
2714   return isNoopCast(getOpcode(), getOperand(0)->getType(), getType(), DL);
2715 }
2716 
2717 /// This function determines if a pair of casts can be eliminated and what
2718 /// opcode should be used in the elimination. This assumes that there are two
2719 /// instructions like this:
2720 /// *  %F = firstOpcode SrcTy %x to MidTy
2721 /// *  %S = secondOpcode MidTy %F to DstTy
2722 /// The function returns a resultOpcode so these two casts can be replaced with:
2723 /// *  %Replacement = resultOpcode %SrcTy %x to DstTy
2724 /// If no such cast is permitted, the function returns 0.
2725 unsigned CastInst::isEliminableCastPair(
2726   Instruction::CastOps firstOp, Instruction::CastOps secondOp,
2727   Type *SrcTy, Type *MidTy, Type *DstTy, Type *SrcIntPtrTy, Type *MidIntPtrTy,
2728   Type *DstIntPtrTy) {
2729   // Define the 144 possibilities for these two cast instructions. The values
2730   // in this matrix determine what to do in a given situation and select the
2731   // case in the switch below.  The rows correspond to firstOp, the columns
2732   // correspond to secondOp.  In looking at the table below, keep in mind
2733   // the following cast properties:
2734   //
2735   //          Size Compare       Source               Destination
2736   // Operator  Src ? Size   Type       Sign         Type       Sign
2737   // -------- ------------ -------------------   ---------------------
2738   // TRUNC         >       Integer      Any        Integral     Any
2739   // ZEXT          <       Integral   Unsigned     Integer      Any
2740   // SEXT          <       Integral    Signed      Integer      Any
2741   // FPTOUI       n/a      FloatPt      n/a        Integral   Unsigned
2742   // FPTOSI       n/a      FloatPt      n/a        Integral    Signed
2743   // UITOFP       n/a      Integral   Unsigned     FloatPt      n/a
2744   // SITOFP       n/a      Integral    Signed      FloatPt      n/a
2745   // FPTRUNC       >       FloatPt      n/a        FloatPt      n/a
2746   // FPEXT         <       FloatPt      n/a        FloatPt      n/a
2747   // PTRTOINT     n/a      Pointer      n/a        Integral   Unsigned
2748   // INTTOPTR     n/a      Integral   Unsigned     Pointer      n/a
2749   // BITCAST       =       FirstClass   n/a       FirstClass    n/a
2750   // ADDRSPCST    n/a      Pointer      n/a        Pointer      n/a
2751   //
2752   // NOTE: some transforms are safe, but we consider them to be non-profitable.
2753   // For example, we could merge "fptoui double to i32" + "zext i32 to i64",
2754   // into "fptoui double to i64", but this loses information about the range
2755   // of the produced value (we no longer know the top-part is all zeros).
2756   // Further this conversion is often much more expensive for typical hardware,
2757   // and causes issues when building libgcc.  We disallow fptosi+sext for the
2758   // same reason.
2759   const unsigned numCastOps =
2760     Instruction::CastOpsEnd - Instruction::CastOpsBegin;
2761   static const uint8_t CastResults[numCastOps][numCastOps] = {
2762     // T        F  F  U  S  F  F  P  I  B  A  -+
2763     // R  Z  S  P  P  I  I  T  P  2  N  T  S   |
2764     // U  E  E  2  2  2  2  R  E  I  T  C  C   +- secondOp
2765     // N  X  X  U  S  F  F  N  X  N  2  V  V   |
2766     // C  T  T  I  I  P  P  C  T  T  P  T  T  -+
2767     {  1, 0, 0,99,99, 0, 0,99,99,99, 0, 3, 0}, // Trunc         -+
2768     {  8, 1, 9,99,99, 2,17,99,99,99, 2, 3, 0}, // ZExt           |
2769     {  8, 0, 1,99,99, 0, 2,99,99,99, 0, 3, 0}, // SExt           |
2770     {  0, 0, 0,99,99, 0, 0,99,99,99, 0, 3, 0}, // FPToUI         |
2771     {  0, 0, 0,99,99, 0, 0,99,99,99, 0, 3, 0}, // FPToSI         |
2772     { 99,99,99, 0, 0,99,99, 0, 0,99,99, 4, 0}, // UIToFP         +- firstOp
2773     { 99,99,99, 0, 0,99,99, 0, 0,99,99, 4, 0}, // SIToFP         |
2774     { 99,99,99, 0, 0,99,99, 0, 0,99,99, 4, 0}, // FPTrunc        |
2775     { 99,99,99, 2, 2,99,99, 8, 2,99,99, 4, 0}, // FPExt          |
2776     {  1, 0, 0,99,99, 0, 0,99,99,99, 7, 3, 0}, // PtrToInt       |
2777     { 99,99,99,99,99,99,99,99,99,11,99,15, 0}, // IntToPtr       |
2778     {  5, 5, 5, 6, 6, 5, 5, 6, 6,16, 5, 1,14}, // BitCast        |
2779     {  0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,13,12}, // AddrSpaceCast -+
2780   };
2781 
2782   // TODO: This logic could be encoded into the table above and handled in the
2783   // switch below.
2784   // If either of the casts are a bitcast from scalar to vector, disallow the
2785   // merging. However, any pair of bitcasts are allowed.
2786   bool IsFirstBitcast  = (firstOp == Instruction::BitCast);
2787   bool IsSecondBitcast = (secondOp == Instruction::BitCast);
2788   bool AreBothBitcasts = IsFirstBitcast && IsSecondBitcast;
2789 
2790   // Check if any of the casts convert scalars <-> vectors.
2791   if ((IsFirstBitcast  && isa<VectorType>(SrcTy) != isa<VectorType>(MidTy)) ||
2792       (IsSecondBitcast && isa<VectorType>(MidTy) != isa<VectorType>(DstTy)))
2793     if (!AreBothBitcasts)
2794       return 0;
2795 
2796   int ElimCase = CastResults[firstOp-Instruction::CastOpsBegin]
2797                             [secondOp-Instruction::CastOpsBegin];
2798   switch (ElimCase) {
2799     case 0:
2800       // Categorically disallowed.
2801       return 0;
2802     case 1:
2803       // Allowed, use first cast's opcode.
2804       return firstOp;
2805     case 2:
2806       // Allowed, use second cast's opcode.
2807       return secondOp;
2808     case 3:
2809       // No-op cast in second op implies firstOp as long as the DestTy
2810       // is integer and we are not converting between a vector and a
2811       // non-vector type.
2812       if (!SrcTy->isVectorTy() && DstTy->isIntegerTy())
2813         return firstOp;
2814       return 0;
2815     case 4:
2816       // No-op cast in second op implies firstOp as long as the DestTy
2817       // is floating point.
2818       if (DstTy->isFloatingPointTy())
2819         return firstOp;
2820       return 0;
2821     case 5:
2822       // No-op cast in first op implies secondOp as long as the SrcTy
2823       // is an integer.
2824       if (SrcTy->isIntegerTy())
2825         return secondOp;
2826       return 0;
2827     case 6:
2828       // No-op cast in first op implies secondOp as long as the SrcTy
2829       // is a floating point.
2830       if (SrcTy->isFloatingPointTy())
2831         return secondOp;
2832       return 0;
2833     case 7: {
2834       // Cannot simplify if address spaces are different!
2835       if (SrcTy->getPointerAddressSpace() != DstTy->getPointerAddressSpace())
2836         return 0;
2837 
2838       unsigned MidSize = MidTy->getScalarSizeInBits();
2839       // We can still fold this without knowing the actual sizes as long we
2840       // know that the intermediate pointer is the largest possible
2841       // pointer size.
2842       // FIXME: Is this always true?
2843       if (MidSize == 64)
2844         return Instruction::BitCast;
2845 
2846       // ptrtoint, inttoptr -> bitcast (ptr -> ptr) if int size is >= ptr size.
2847       if (!SrcIntPtrTy || DstIntPtrTy != SrcIntPtrTy)
2848         return 0;
2849       unsigned PtrSize = SrcIntPtrTy->getScalarSizeInBits();
2850       if (MidSize >= PtrSize)
2851         return Instruction::BitCast;
2852       return 0;
2853     }
2854     case 8: {
2855       // ext, trunc -> bitcast,    if the SrcTy and DstTy are same size
2856       // ext, trunc -> ext,        if sizeof(SrcTy) < sizeof(DstTy)
2857       // ext, trunc -> trunc,      if sizeof(SrcTy) > sizeof(DstTy)
2858       unsigned SrcSize = SrcTy->getScalarSizeInBits();
2859       unsigned DstSize = DstTy->getScalarSizeInBits();
2860       if (SrcSize == DstSize)
2861         return Instruction::BitCast;
2862       else if (SrcSize < DstSize)
2863         return firstOp;
2864       return secondOp;
2865     }
2866     case 9:
2867       // zext, sext -> zext, because sext can't sign extend after zext
2868       return Instruction::ZExt;
2869     case 11: {
2870       // inttoptr, ptrtoint -> bitcast if SrcSize<=PtrSize and SrcSize==DstSize
2871       if (!MidIntPtrTy)
2872         return 0;
2873       unsigned PtrSize = MidIntPtrTy->getScalarSizeInBits();
2874       unsigned SrcSize = SrcTy->getScalarSizeInBits();
2875       unsigned DstSize = DstTy->getScalarSizeInBits();
2876       if (SrcSize <= PtrSize && SrcSize == DstSize)
2877         return Instruction::BitCast;
2878       return 0;
2879     }
2880     case 12:
2881       // addrspacecast, addrspacecast -> bitcast,       if SrcAS == DstAS
2882       // addrspacecast, addrspacecast -> addrspacecast, if SrcAS != DstAS
2883       if (SrcTy->getPointerAddressSpace() != DstTy->getPointerAddressSpace())
2884         return Instruction::AddrSpaceCast;
2885       return Instruction::BitCast;
2886     case 13:
2887       // FIXME: this state can be merged with (1), but the following assert
2888       // is useful to check the correcteness of the sequence due to semantic
2889       // change of bitcast.
2890       assert(
2891         SrcTy->isPtrOrPtrVectorTy() &&
2892         MidTy->isPtrOrPtrVectorTy() &&
2893         DstTy->isPtrOrPtrVectorTy() &&
2894         SrcTy->getPointerAddressSpace() != MidTy->getPointerAddressSpace() &&
2895         MidTy->getPointerAddressSpace() == DstTy->getPointerAddressSpace() &&
2896         "Illegal addrspacecast, bitcast sequence!");
2897       // Allowed, use first cast's opcode
2898       return firstOp;
2899     case 14:
2900       // bitcast, addrspacecast -> addrspacecast if the element type of
2901       // bitcast's source is the same as that of addrspacecast's destination.
2902       if (SrcTy->getScalarType()->getPointerElementType() ==
2903           DstTy->getScalarType()->getPointerElementType())
2904         return Instruction::AddrSpaceCast;
2905       return 0;
2906     case 15:
2907       // FIXME: this state can be merged with (1), but the following assert
2908       // is useful to check the correcteness of the sequence due to semantic
2909       // change of bitcast.
2910       assert(
2911         SrcTy->isIntOrIntVectorTy() &&
2912         MidTy->isPtrOrPtrVectorTy() &&
2913         DstTy->isPtrOrPtrVectorTy() &&
2914         MidTy->getPointerAddressSpace() == DstTy->getPointerAddressSpace() &&
2915         "Illegal inttoptr, bitcast sequence!");
2916       // Allowed, use first cast's opcode
2917       return firstOp;
2918     case 16:
2919       // FIXME: this state can be merged with (2), but the following assert
2920       // is useful to check the correcteness of the sequence due to semantic
2921       // change of bitcast.
2922       assert(
2923         SrcTy->isPtrOrPtrVectorTy() &&
2924         MidTy->isPtrOrPtrVectorTy() &&
2925         DstTy->isIntOrIntVectorTy() &&
2926         SrcTy->getPointerAddressSpace() == MidTy->getPointerAddressSpace() &&
2927         "Illegal bitcast, ptrtoint sequence!");
2928       // Allowed, use second cast's opcode
2929       return secondOp;
2930     case 17:
2931       // (sitofp (zext x)) -> (uitofp x)
2932       return Instruction::UIToFP;
2933     case 99:
2934       // Cast combination can't happen (error in input). This is for all cases
2935       // where the MidTy is not the same for the two cast instructions.
2936       llvm_unreachable("Invalid Cast Combination");
2937     default:
2938       llvm_unreachable("Error in CastResults table!!!");
2939   }
2940 }
2941 
2942 CastInst *CastInst::Create(Instruction::CastOps op, Value *S, Type *Ty,
2943   const Twine &Name, Instruction *InsertBefore) {
2944   assert(castIsValid(op, S, Ty) && "Invalid cast!");
2945   // Construct and return the appropriate CastInst subclass
2946   switch (op) {
2947   case Trunc:         return new TruncInst         (S, Ty, Name, InsertBefore);
2948   case ZExt:          return new ZExtInst          (S, Ty, Name, InsertBefore);
2949   case SExt:          return new SExtInst          (S, Ty, Name, InsertBefore);
2950   case FPTrunc:       return new FPTruncInst       (S, Ty, Name, InsertBefore);
2951   case FPExt:         return new FPExtInst         (S, Ty, Name, InsertBefore);
2952   case UIToFP:        return new UIToFPInst        (S, Ty, Name, InsertBefore);
2953   case SIToFP:        return new SIToFPInst        (S, Ty, Name, InsertBefore);
2954   case FPToUI:        return new FPToUIInst        (S, Ty, Name, InsertBefore);
2955   case FPToSI:        return new FPToSIInst        (S, Ty, Name, InsertBefore);
2956   case PtrToInt:      return new PtrToIntInst      (S, Ty, Name, InsertBefore);
2957   case IntToPtr:      return new IntToPtrInst      (S, Ty, Name, InsertBefore);
2958   case BitCast:       return new BitCastInst       (S, Ty, Name, InsertBefore);
2959   case AddrSpaceCast: return new AddrSpaceCastInst (S, Ty, Name, InsertBefore);
2960   default: llvm_unreachable("Invalid opcode provided");
2961   }
2962 }
2963 
2964 CastInst *CastInst::Create(Instruction::CastOps op, Value *S, Type *Ty,
2965   const Twine &Name, BasicBlock *InsertAtEnd) {
2966   assert(castIsValid(op, S, Ty) && "Invalid cast!");
2967   // Construct and return the appropriate CastInst subclass
2968   switch (op) {
2969   case Trunc:         return new TruncInst         (S, Ty, Name, InsertAtEnd);
2970   case ZExt:          return new ZExtInst          (S, Ty, Name, InsertAtEnd);
2971   case SExt:          return new SExtInst          (S, Ty, Name, InsertAtEnd);
2972   case FPTrunc:       return new FPTruncInst       (S, Ty, Name, InsertAtEnd);
2973   case FPExt:         return new FPExtInst         (S, Ty, Name, InsertAtEnd);
2974   case UIToFP:        return new UIToFPInst        (S, Ty, Name, InsertAtEnd);
2975   case SIToFP:        return new SIToFPInst        (S, Ty, Name, InsertAtEnd);
2976   case FPToUI:        return new FPToUIInst        (S, Ty, Name, InsertAtEnd);
2977   case FPToSI:        return new FPToSIInst        (S, Ty, Name, InsertAtEnd);
2978   case PtrToInt:      return new PtrToIntInst      (S, Ty, Name, InsertAtEnd);
2979   case IntToPtr:      return new IntToPtrInst      (S, Ty, Name, InsertAtEnd);
2980   case BitCast:       return new BitCastInst       (S, Ty, Name, InsertAtEnd);
2981   case AddrSpaceCast: return new AddrSpaceCastInst (S, Ty, Name, InsertAtEnd);
2982   default: llvm_unreachable("Invalid opcode provided");
2983   }
2984 }
2985 
2986 CastInst *CastInst::CreateZExtOrBitCast(Value *S, Type *Ty,
2987                                         const Twine &Name,
2988                                         Instruction *InsertBefore) {
2989   if (S->getType()->getScalarSizeInBits() == Ty->getScalarSizeInBits())
2990     return Create(Instruction::BitCast, S, Ty, Name, InsertBefore);
2991   return Create(Instruction::ZExt, S, Ty, Name, InsertBefore);
2992 }
2993 
2994 CastInst *CastInst::CreateZExtOrBitCast(Value *S, Type *Ty,
2995                                         const Twine &Name,
2996                                         BasicBlock *InsertAtEnd) {
2997   if (S->getType()->getScalarSizeInBits() == Ty->getScalarSizeInBits())
2998     return Create(Instruction::BitCast, S, Ty, Name, InsertAtEnd);
2999   return Create(Instruction::ZExt, S, Ty, Name, InsertAtEnd);
3000 }
3001 
3002 CastInst *CastInst::CreateSExtOrBitCast(Value *S, Type *Ty,
3003                                         const Twine &Name,
3004                                         Instruction *InsertBefore) {
3005   if (S->getType()->getScalarSizeInBits() == Ty->getScalarSizeInBits())
3006     return Create(Instruction::BitCast, S, Ty, Name, InsertBefore);
3007   return Create(Instruction::SExt, S, Ty, Name, InsertBefore);
3008 }
3009 
3010 CastInst *CastInst::CreateSExtOrBitCast(Value *S, Type *Ty,
3011                                         const Twine &Name,
3012                                         BasicBlock *InsertAtEnd) {
3013   if (S->getType()->getScalarSizeInBits() == Ty->getScalarSizeInBits())
3014     return Create(Instruction::BitCast, S, Ty, Name, InsertAtEnd);
3015   return Create(Instruction::SExt, S, Ty, Name, InsertAtEnd);
3016 }
3017 
3018 CastInst *CastInst::CreateTruncOrBitCast(Value *S, Type *Ty,
3019                                          const Twine &Name,
3020                                          Instruction *InsertBefore) {
3021   if (S->getType()->getScalarSizeInBits() == Ty->getScalarSizeInBits())
3022     return Create(Instruction::BitCast, S, Ty, Name, InsertBefore);
3023   return Create(Instruction::Trunc, S, Ty, Name, InsertBefore);
3024 }
3025 
3026 CastInst *CastInst::CreateTruncOrBitCast(Value *S, Type *Ty,
3027                                          const Twine &Name,
3028                                          BasicBlock *InsertAtEnd) {
3029   if (S->getType()->getScalarSizeInBits() == Ty->getScalarSizeInBits())
3030     return Create(Instruction::BitCast, S, Ty, Name, InsertAtEnd);
3031   return Create(Instruction::Trunc, S, Ty, Name, InsertAtEnd);
3032 }
3033 
3034 CastInst *CastInst::CreatePointerCast(Value *S, Type *Ty,
3035                                       const Twine &Name,
3036                                       BasicBlock *InsertAtEnd) {
3037   assert(S->getType()->isPtrOrPtrVectorTy() && "Invalid cast");
3038   assert((Ty->isIntOrIntVectorTy() || Ty->isPtrOrPtrVectorTy()) &&
3039          "Invalid cast");
3040   assert(Ty->isVectorTy() == S->getType()->isVectorTy() && "Invalid cast");
3041   assert((!Ty->isVectorTy() ||
3042           cast<VectorType>(Ty)->getElementCount() ==
3043               cast<VectorType>(S->getType())->getElementCount()) &&
3044          "Invalid cast");
3045 
3046   if (Ty->isIntOrIntVectorTy())
3047     return Create(Instruction::PtrToInt, S, Ty, Name, InsertAtEnd);
3048 
3049   return CreatePointerBitCastOrAddrSpaceCast(S, Ty, Name, InsertAtEnd);
3050 }
3051 
3052 /// Create a BitCast or a PtrToInt cast instruction
3053 CastInst *CastInst::CreatePointerCast(Value *S, Type *Ty,
3054                                       const Twine &Name,
3055                                       Instruction *InsertBefore) {
3056   assert(S->getType()->isPtrOrPtrVectorTy() && "Invalid cast");
3057   assert((Ty->isIntOrIntVectorTy() || Ty->isPtrOrPtrVectorTy()) &&
3058          "Invalid cast");
3059   assert(Ty->isVectorTy() == S->getType()->isVectorTy() && "Invalid cast");
3060   assert((!Ty->isVectorTy() ||
3061           cast<VectorType>(Ty)->getElementCount() ==
3062               cast<VectorType>(S->getType())->getElementCount()) &&
3063          "Invalid cast");
3064 
3065   if (Ty->isIntOrIntVectorTy())
3066     return Create(Instruction::PtrToInt, S, Ty, Name, InsertBefore);
3067 
3068   return CreatePointerBitCastOrAddrSpaceCast(S, Ty, Name, InsertBefore);
3069 }
3070 
3071 CastInst *CastInst::CreatePointerBitCastOrAddrSpaceCast(
3072   Value *S, Type *Ty,
3073   const Twine &Name,
3074   BasicBlock *InsertAtEnd) {
3075   assert(S->getType()->isPtrOrPtrVectorTy() && "Invalid cast");
3076   assert(Ty->isPtrOrPtrVectorTy() && "Invalid cast");
3077 
3078   if (S->getType()->getPointerAddressSpace() != Ty->getPointerAddressSpace())
3079     return Create(Instruction::AddrSpaceCast, S, Ty, Name, InsertAtEnd);
3080 
3081   return Create(Instruction::BitCast, S, Ty, Name, InsertAtEnd);
3082 }
3083 
3084 CastInst *CastInst::CreatePointerBitCastOrAddrSpaceCast(
3085   Value *S, Type *Ty,
3086   const Twine &Name,
3087   Instruction *InsertBefore) {
3088   assert(S->getType()->isPtrOrPtrVectorTy() && "Invalid cast");
3089   assert(Ty->isPtrOrPtrVectorTy() && "Invalid cast");
3090 
3091   if (S->getType()->getPointerAddressSpace() != Ty->getPointerAddressSpace())
3092     return Create(Instruction::AddrSpaceCast, S, Ty, Name, InsertBefore);
3093 
3094   return Create(Instruction::BitCast, S, Ty, Name, InsertBefore);
3095 }
3096 
3097 CastInst *CastInst::CreateBitOrPointerCast(Value *S, Type *Ty,
3098                                            const Twine &Name,
3099                                            Instruction *InsertBefore) {
3100   if (S->getType()->isPointerTy() && Ty->isIntegerTy())
3101     return Create(Instruction::PtrToInt, S, Ty, Name, InsertBefore);
3102   if (S->getType()->isIntegerTy() && Ty->isPointerTy())
3103     return Create(Instruction::IntToPtr, S, Ty, Name, InsertBefore);
3104 
3105   return Create(Instruction::BitCast, S, Ty, Name, InsertBefore);
3106 }
3107 
3108 CastInst *CastInst::CreateIntegerCast(Value *C, Type *Ty,
3109                                       bool isSigned, const Twine &Name,
3110                                       Instruction *InsertBefore) {
3111   assert(C->getType()->isIntOrIntVectorTy() && Ty->isIntOrIntVectorTy() &&
3112          "Invalid integer cast");
3113   unsigned SrcBits = C->getType()->getScalarSizeInBits();
3114   unsigned DstBits = Ty->getScalarSizeInBits();
3115   Instruction::CastOps opcode =
3116     (SrcBits == DstBits ? Instruction::BitCast :
3117      (SrcBits > DstBits ? Instruction::Trunc :
3118       (isSigned ? Instruction::SExt : Instruction::ZExt)));
3119   return Create(opcode, C, Ty, Name, InsertBefore);
3120 }
3121 
3122 CastInst *CastInst::CreateIntegerCast(Value *C, Type *Ty,
3123                                       bool isSigned, const Twine &Name,
3124                                       BasicBlock *InsertAtEnd) {
3125   assert(C->getType()->isIntOrIntVectorTy() && Ty->isIntOrIntVectorTy() &&
3126          "Invalid cast");
3127   unsigned SrcBits = C->getType()->getScalarSizeInBits();
3128   unsigned DstBits = Ty->getScalarSizeInBits();
3129   Instruction::CastOps opcode =
3130     (SrcBits == DstBits ? Instruction::BitCast :
3131      (SrcBits > DstBits ? Instruction::Trunc :
3132       (isSigned ? Instruction::SExt : Instruction::ZExt)));
3133   return Create(opcode, C, Ty, Name, InsertAtEnd);
3134 }
3135 
3136 CastInst *CastInst::CreateFPCast(Value *C, Type *Ty,
3137                                  const Twine &Name,
3138                                  Instruction *InsertBefore) {
3139   assert(C->getType()->isFPOrFPVectorTy() && Ty->isFPOrFPVectorTy() &&
3140          "Invalid cast");
3141   unsigned SrcBits = C->getType()->getScalarSizeInBits();
3142   unsigned DstBits = Ty->getScalarSizeInBits();
3143   Instruction::CastOps opcode =
3144     (SrcBits == DstBits ? Instruction::BitCast :
3145      (SrcBits > DstBits ? Instruction::FPTrunc : Instruction::FPExt));
3146   return Create(opcode, C, Ty, Name, InsertBefore);
3147 }
3148 
3149 CastInst *CastInst::CreateFPCast(Value *C, Type *Ty,
3150                                  const Twine &Name,
3151                                  BasicBlock *InsertAtEnd) {
3152   assert(C->getType()->isFPOrFPVectorTy() && Ty->isFPOrFPVectorTy() &&
3153          "Invalid cast");
3154   unsigned SrcBits = C->getType()->getScalarSizeInBits();
3155   unsigned DstBits = Ty->getScalarSizeInBits();
3156   Instruction::CastOps opcode =
3157     (SrcBits == DstBits ? Instruction::BitCast :
3158      (SrcBits > DstBits ? Instruction::FPTrunc : Instruction::FPExt));
3159   return Create(opcode, C, Ty, Name, InsertAtEnd);
3160 }
3161 
3162 bool CastInst::isBitCastable(Type *SrcTy, Type *DestTy) {
3163   if (!SrcTy->isFirstClassType() || !DestTy->isFirstClassType())
3164     return false;
3165 
3166   if (SrcTy == DestTy)
3167     return true;
3168 
3169   if (VectorType *SrcVecTy = dyn_cast<VectorType>(SrcTy)) {
3170     if (VectorType *DestVecTy = dyn_cast<VectorType>(DestTy)) {
3171       if (SrcVecTy->getElementCount() == DestVecTy->getElementCount()) {
3172         // An element by element cast. Valid if casting the elements is valid.
3173         SrcTy = SrcVecTy->getElementType();
3174         DestTy = DestVecTy->getElementType();
3175       }
3176     }
3177   }
3178 
3179   if (PointerType *DestPtrTy = dyn_cast<PointerType>(DestTy)) {
3180     if (PointerType *SrcPtrTy = dyn_cast<PointerType>(SrcTy)) {
3181       return SrcPtrTy->getAddressSpace() == DestPtrTy->getAddressSpace();
3182     }
3183   }
3184 
3185   TypeSize SrcBits = SrcTy->getPrimitiveSizeInBits();   // 0 for ptr
3186   TypeSize DestBits = DestTy->getPrimitiveSizeInBits(); // 0 for ptr
3187 
3188   // Could still have vectors of pointers if the number of elements doesn't
3189   // match
3190   if (SrcBits.getKnownMinSize() == 0 || DestBits.getKnownMinSize() == 0)
3191     return false;
3192 
3193   if (SrcBits != DestBits)
3194     return false;
3195 
3196   if (DestTy->isX86_MMXTy() || SrcTy->isX86_MMXTy())
3197     return false;
3198 
3199   return true;
3200 }
3201 
3202 bool CastInst::isBitOrNoopPointerCastable(Type *SrcTy, Type *DestTy,
3203                                           const DataLayout &DL) {
3204   // ptrtoint and inttoptr are not allowed on non-integral pointers
3205   if (auto *PtrTy = dyn_cast<PointerType>(SrcTy))
3206     if (auto *IntTy = dyn_cast<IntegerType>(DestTy))
3207       return (IntTy->getBitWidth() == DL.getPointerTypeSizeInBits(PtrTy) &&
3208               !DL.isNonIntegralPointerType(PtrTy));
3209   if (auto *PtrTy = dyn_cast<PointerType>(DestTy))
3210     if (auto *IntTy = dyn_cast<IntegerType>(SrcTy))
3211       return (IntTy->getBitWidth() == DL.getPointerTypeSizeInBits(PtrTy) &&
3212               !DL.isNonIntegralPointerType(PtrTy));
3213 
3214   return isBitCastable(SrcTy, DestTy);
3215 }
3216 
3217 // Provide a way to get a "cast" where the cast opcode is inferred from the
3218 // types and size of the operand. This, basically, is a parallel of the
3219 // logic in the castIsValid function below.  This axiom should hold:
3220 //   castIsValid( getCastOpcode(Val, Ty), Val, Ty)
3221 // should not assert in castIsValid. In other words, this produces a "correct"
3222 // casting opcode for the arguments passed to it.
3223 Instruction::CastOps
3224 CastInst::getCastOpcode(
3225   const Value *Src, bool SrcIsSigned, Type *DestTy, bool DestIsSigned) {
3226   Type *SrcTy = Src->getType();
3227 
3228   assert(SrcTy->isFirstClassType() && DestTy->isFirstClassType() &&
3229          "Only first class types are castable!");
3230 
3231   if (SrcTy == DestTy)
3232     return BitCast;
3233 
3234   // FIXME: Check address space sizes here
3235   if (VectorType *SrcVecTy = dyn_cast<VectorType>(SrcTy))
3236     if (VectorType *DestVecTy = dyn_cast<VectorType>(DestTy))
3237       if (SrcVecTy->getElementCount() == DestVecTy->getElementCount()) {
3238         // An element by element cast.  Find the appropriate opcode based on the
3239         // element types.
3240         SrcTy = SrcVecTy->getElementType();
3241         DestTy = DestVecTy->getElementType();
3242       }
3243 
3244   // Get the bit sizes, we'll need these
3245   unsigned SrcBits = SrcTy->getPrimitiveSizeInBits();   // 0 for ptr
3246   unsigned DestBits = DestTy->getPrimitiveSizeInBits(); // 0 for ptr
3247 
3248   // Run through the possibilities ...
3249   if (DestTy->isIntegerTy()) {                      // Casting to integral
3250     if (SrcTy->isIntegerTy()) {                     // Casting from integral
3251       if (DestBits < SrcBits)
3252         return Trunc;                               // int -> smaller int
3253       else if (DestBits > SrcBits) {                // its an extension
3254         if (SrcIsSigned)
3255           return SExt;                              // signed -> SEXT
3256         else
3257           return ZExt;                              // unsigned -> ZEXT
3258       } else {
3259         return BitCast;                             // Same size, No-op cast
3260       }
3261     } else if (SrcTy->isFloatingPointTy()) {        // Casting from floating pt
3262       if (DestIsSigned)
3263         return FPToSI;                              // FP -> sint
3264       else
3265         return FPToUI;                              // FP -> uint
3266     } else if (SrcTy->isVectorTy()) {
3267       assert(DestBits == SrcBits &&
3268              "Casting vector to integer of different width");
3269       return BitCast;                             // Same size, no-op cast
3270     } else {
3271       assert(SrcTy->isPointerTy() &&
3272              "Casting from a value that is not first-class type");
3273       return PtrToInt;                              // ptr -> int
3274     }
3275   } else if (DestTy->isFloatingPointTy()) {         // Casting to floating pt
3276     if (SrcTy->isIntegerTy()) {                     // Casting from integral
3277       if (SrcIsSigned)
3278         return SIToFP;                              // sint -> FP
3279       else
3280         return UIToFP;                              // uint -> FP
3281     } else if (SrcTy->isFloatingPointTy()) {        // Casting from floating pt
3282       if (DestBits < SrcBits) {
3283         return FPTrunc;                             // FP -> smaller FP
3284       } else if (DestBits > SrcBits) {
3285         return FPExt;                               // FP -> larger FP
3286       } else  {
3287         return BitCast;                             // same size, no-op cast
3288       }
3289     } else if (SrcTy->isVectorTy()) {
3290       assert(DestBits == SrcBits &&
3291              "Casting vector to floating point of different width");
3292       return BitCast;                             // same size, no-op cast
3293     }
3294     llvm_unreachable("Casting pointer or non-first class to float");
3295   } else if (DestTy->isVectorTy()) {
3296     assert(DestBits == SrcBits &&
3297            "Illegal cast to vector (wrong type or size)");
3298     return BitCast;
3299   } else if (DestTy->isPointerTy()) {
3300     if (SrcTy->isPointerTy()) {
3301       if (DestTy->getPointerAddressSpace() != SrcTy->getPointerAddressSpace())
3302         return AddrSpaceCast;
3303       return BitCast;                               // ptr -> ptr
3304     } else if (SrcTy->isIntegerTy()) {
3305       return IntToPtr;                              // int -> ptr
3306     }
3307     llvm_unreachable("Casting pointer to other than pointer or int");
3308   } else if (DestTy->isX86_MMXTy()) {
3309     if (SrcTy->isVectorTy()) {
3310       assert(DestBits == SrcBits && "Casting vector of wrong width to X86_MMX");
3311       return BitCast;                               // 64-bit vector to MMX
3312     }
3313     llvm_unreachable("Illegal cast to X86_MMX");
3314   }
3315   llvm_unreachable("Casting to type that is not first-class");
3316 }
3317 
3318 //===----------------------------------------------------------------------===//
3319 //                    CastInst SubClass Constructors
3320 //===----------------------------------------------------------------------===//
3321 
3322 /// Check that the construction parameters for a CastInst are correct. This
3323 /// could be broken out into the separate constructors but it is useful to have
3324 /// it in one place and to eliminate the redundant code for getting the sizes
3325 /// of the types involved.
3326 bool
3327 CastInst::castIsValid(Instruction::CastOps op, Type *SrcTy, Type *DstTy) {
3328   if (!SrcTy->isFirstClassType() || !DstTy->isFirstClassType() ||
3329       SrcTy->isAggregateType() || DstTy->isAggregateType())
3330     return false;
3331 
3332   // Get the size of the types in bits, and whether we are dealing
3333   // with vector types, we'll need this later.
3334   bool SrcIsVec = isa<VectorType>(SrcTy);
3335   bool DstIsVec = isa<VectorType>(DstTy);
3336   unsigned SrcScalarBitSize = SrcTy->getScalarSizeInBits();
3337   unsigned DstScalarBitSize = DstTy->getScalarSizeInBits();
3338 
3339   // If these are vector types, get the lengths of the vectors (using zero for
3340   // scalar types means that checking that vector lengths match also checks that
3341   // scalars are not being converted to vectors or vectors to scalars).
3342   ElementCount SrcEC = SrcIsVec ? cast<VectorType>(SrcTy)->getElementCount()
3343                                 : ElementCount::getFixed(0);
3344   ElementCount DstEC = DstIsVec ? cast<VectorType>(DstTy)->getElementCount()
3345                                 : ElementCount::getFixed(0);
3346 
3347   // Switch on the opcode provided
3348   switch (op) {
3349   default: return false; // This is an input error
3350   case Instruction::Trunc:
3351     return SrcTy->isIntOrIntVectorTy() && DstTy->isIntOrIntVectorTy() &&
3352            SrcEC == DstEC && SrcScalarBitSize > DstScalarBitSize;
3353   case Instruction::ZExt:
3354     return SrcTy->isIntOrIntVectorTy() && DstTy->isIntOrIntVectorTy() &&
3355            SrcEC == DstEC && SrcScalarBitSize < DstScalarBitSize;
3356   case Instruction::SExt:
3357     return SrcTy->isIntOrIntVectorTy() && DstTy->isIntOrIntVectorTy() &&
3358            SrcEC == DstEC && SrcScalarBitSize < DstScalarBitSize;
3359   case Instruction::FPTrunc:
3360     return SrcTy->isFPOrFPVectorTy() && DstTy->isFPOrFPVectorTy() &&
3361            SrcEC == DstEC && SrcScalarBitSize > DstScalarBitSize;
3362   case Instruction::FPExt:
3363     return SrcTy->isFPOrFPVectorTy() && DstTy->isFPOrFPVectorTy() &&
3364            SrcEC == DstEC && SrcScalarBitSize < DstScalarBitSize;
3365   case Instruction::UIToFP:
3366   case Instruction::SIToFP:
3367     return SrcTy->isIntOrIntVectorTy() && DstTy->isFPOrFPVectorTy() &&
3368            SrcEC == DstEC;
3369   case Instruction::FPToUI:
3370   case Instruction::FPToSI:
3371     return SrcTy->isFPOrFPVectorTy() && DstTy->isIntOrIntVectorTy() &&
3372            SrcEC == DstEC;
3373   case Instruction::PtrToInt:
3374     if (SrcEC != DstEC)
3375       return false;
3376     return SrcTy->isPtrOrPtrVectorTy() && DstTy->isIntOrIntVectorTy();
3377   case Instruction::IntToPtr:
3378     if (SrcEC != DstEC)
3379       return false;
3380     return SrcTy->isIntOrIntVectorTy() && DstTy->isPtrOrPtrVectorTy();
3381   case Instruction::BitCast: {
3382     PointerType *SrcPtrTy = dyn_cast<PointerType>(SrcTy->getScalarType());
3383     PointerType *DstPtrTy = dyn_cast<PointerType>(DstTy->getScalarType());
3384 
3385     // BitCast implies a no-op cast of type only. No bits change.
3386     // However, you can't cast pointers to anything but pointers.
3387     if (!SrcPtrTy != !DstPtrTy)
3388       return false;
3389 
3390     // For non-pointer cases, the cast is okay if the source and destination bit
3391     // widths are identical.
3392     if (!SrcPtrTy)
3393       return SrcTy->getPrimitiveSizeInBits() == DstTy->getPrimitiveSizeInBits();
3394 
3395     // If both are pointers then the address spaces must match.
3396     if (SrcPtrTy->getAddressSpace() != DstPtrTy->getAddressSpace())
3397       return false;
3398 
3399     // A vector of pointers must have the same number of elements.
3400     if (SrcIsVec && DstIsVec)
3401       return SrcEC == DstEC;
3402     if (SrcIsVec)
3403       return SrcEC == ElementCount::getFixed(1);
3404     if (DstIsVec)
3405       return DstEC == ElementCount::getFixed(1);
3406 
3407     return true;
3408   }
3409   case Instruction::AddrSpaceCast: {
3410     PointerType *SrcPtrTy = dyn_cast<PointerType>(SrcTy->getScalarType());
3411     if (!SrcPtrTy)
3412       return false;
3413 
3414     PointerType *DstPtrTy = dyn_cast<PointerType>(DstTy->getScalarType());
3415     if (!DstPtrTy)
3416       return false;
3417 
3418     if (SrcPtrTy->getAddressSpace() == DstPtrTy->getAddressSpace())
3419       return false;
3420 
3421     return SrcEC == DstEC;
3422   }
3423   }
3424 }
3425 
3426 TruncInst::TruncInst(
3427   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3428 ) : CastInst(Ty, Trunc, S, Name, InsertBefore) {
3429   assert(castIsValid(getOpcode(), S, Ty) && "Illegal Trunc");
3430 }
3431 
3432 TruncInst::TruncInst(
3433   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3434 ) : CastInst(Ty, Trunc, S, Name, InsertAtEnd) {
3435   assert(castIsValid(getOpcode(), S, Ty) && "Illegal Trunc");
3436 }
3437 
3438 ZExtInst::ZExtInst(
3439   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3440 )  : CastInst(Ty, ZExt, S, Name, InsertBefore) {
3441   assert(castIsValid(getOpcode(), S, Ty) && "Illegal ZExt");
3442 }
3443 
3444 ZExtInst::ZExtInst(
3445   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3446 )  : CastInst(Ty, ZExt, S, Name, InsertAtEnd) {
3447   assert(castIsValid(getOpcode(), S, Ty) && "Illegal ZExt");
3448 }
3449 SExtInst::SExtInst(
3450   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3451 ) : CastInst(Ty, SExt, S, Name, InsertBefore) {
3452   assert(castIsValid(getOpcode(), S, Ty) && "Illegal SExt");
3453 }
3454 
3455 SExtInst::SExtInst(
3456   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3457 )  : CastInst(Ty, SExt, S, Name, InsertAtEnd) {
3458   assert(castIsValid(getOpcode(), S, Ty) && "Illegal SExt");
3459 }
3460 
3461 FPTruncInst::FPTruncInst(
3462   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3463 ) : CastInst(Ty, FPTrunc, S, Name, InsertBefore) {
3464   assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPTrunc");
3465 }
3466 
3467 FPTruncInst::FPTruncInst(
3468   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3469 ) : CastInst(Ty, FPTrunc, S, Name, InsertAtEnd) {
3470   assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPTrunc");
3471 }
3472 
3473 FPExtInst::FPExtInst(
3474   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3475 ) : CastInst(Ty, FPExt, S, Name, InsertBefore) {
3476   assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPExt");
3477 }
3478 
3479 FPExtInst::FPExtInst(
3480   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3481 ) : CastInst(Ty, FPExt, S, Name, InsertAtEnd) {
3482   assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPExt");
3483 }
3484 
3485 UIToFPInst::UIToFPInst(
3486   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3487 ) : CastInst(Ty, UIToFP, S, Name, InsertBefore) {
3488   assert(castIsValid(getOpcode(), S, Ty) && "Illegal UIToFP");
3489 }
3490 
3491 UIToFPInst::UIToFPInst(
3492   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3493 ) : CastInst(Ty, UIToFP, S, Name, InsertAtEnd) {
3494   assert(castIsValid(getOpcode(), S, Ty) && "Illegal UIToFP");
3495 }
3496 
3497 SIToFPInst::SIToFPInst(
3498   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3499 ) : CastInst(Ty, SIToFP, S, Name, InsertBefore) {
3500   assert(castIsValid(getOpcode(), S, Ty) && "Illegal SIToFP");
3501 }
3502 
3503 SIToFPInst::SIToFPInst(
3504   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3505 ) : CastInst(Ty, SIToFP, S, Name, InsertAtEnd) {
3506   assert(castIsValid(getOpcode(), S, Ty) && "Illegal SIToFP");
3507 }
3508 
3509 FPToUIInst::FPToUIInst(
3510   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3511 ) : CastInst(Ty, FPToUI, S, Name, InsertBefore) {
3512   assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPToUI");
3513 }
3514 
3515 FPToUIInst::FPToUIInst(
3516   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3517 ) : CastInst(Ty, FPToUI, S, Name, InsertAtEnd) {
3518   assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPToUI");
3519 }
3520 
3521 FPToSIInst::FPToSIInst(
3522   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3523 ) : CastInst(Ty, FPToSI, S, Name, InsertBefore) {
3524   assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPToSI");
3525 }
3526 
3527 FPToSIInst::FPToSIInst(
3528   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3529 ) : CastInst(Ty, FPToSI, S, Name, InsertAtEnd) {
3530   assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPToSI");
3531 }
3532 
3533 PtrToIntInst::PtrToIntInst(
3534   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3535 ) : CastInst(Ty, PtrToInt, S, Name, InsertBefore) {
3536   assert(castIsValid(getOpcode(), S, Ty) && "Illegal PtrToInt");
3537 }
3538 
3539 PtrToIntInst::PtrToIntInst(
3540   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3541 ) : CastInst(Ty, PtrToInt, S, Name, InsertAtEnd) {
3542   assert(castIsValid(getOpcode(), S, Ty) && "Illegal PtrToInt");
3543 }
3544 
3545 IntToPtrInst::IntToPtrInst(
3546   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3547 ) : CastInst(Ty, IntToPtr, S, Name, InsertBefore) {
3548   assert(castIsValid(getOpcode(), S, Ty) && "Illegal IntToPtr");
3549 }
3550 
3551 IntToPtrInst::IntToPtrInst(
3552   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3553 ) : CastInst(Ty, IntToPtr, S, Name, InsertAtEnd) {
3554   assert(castIsValid(getOpcode(), S, Ty) && "Illegal IntToPtr");
3555 }
3556 
3557 BitCastInst::BitCastInst(
3558   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3559 ) : CastInst(Ty, BitCast, S, Name, InsertBefore) {
3560   assert(castIsValid(getOpcode(), S, Ty) && "Illegal BitCast");
3561 }
3562 
3563 BitCastInst::BitCastInst(
3564   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3565 ) : CastInst(Ty, BitCast, S, Name, InsertAtEnd) {
3566   assert(castIsValid(getOpcode(), S, Ty) && "Illegal BitCast");
3567 }
3568 
3569 AddrSpaceCastInst::AddrSpaceCastInst(
3570   Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore
3571 ) : CastInst(Ty, AddrSpaceCast, S, Name, InsertBefore) {
3572   assert(castIsValid(getOpcode(), S, Ty) && "Illegal AddrSpaceCast");
3573 }
3574 
3575 AddrSpaceCastInst::AddrSpaceCastInst(
3576   Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd
3577 ) : CastInst(Ty, AddrSpaceCast, S, Name, InsertAtEnd) {
3578   assert(castIsValid(getOpcode(), S, Ty) && "Illegal AddrSpaceCast");
3579 }
3580 
3581 //===----------------------------------------------------------------------===//
3582 //                               CmpInst Classes
3583 //===----------------------------------------------------------------------===//
3584 
3585 CmpInst::CmpInst(Type *ty, OtherOps op, Predicate predicate, Value *LHS,
3586                  Value *RHS, const Twine &Name, Instruction *InsertBefore,
3587                  Instruction *FlagsSource)
3588   : Instruction(ty, op,
3589                 OperandTraits<CmpInst>::op_begin(this),
3590                 OperandTraits<CmpInst>::operands(this),
3591                 InsertBefore) {
3592   Op<0>() = LHS;
3593   Op<1>() = RHS;
3594   setPredicate((Predicate)predicate);
3595   setName(Name);
3596   if (FlagsSource)
3597     copyIRFlags(FlagsSource);
3598 }
3599 
3600 CmpInst::CmpInst(Type *ty, OtherOps op, Predicate predicate, Value *LHS,
3601                  Value *RHS, const Twine &Name, BasicBlock *InsertAtEnd)
3602   : Instruction(ty, op,
3603                 OperandTraits<CmpInst>::op_begin(this),
3604                 OperandTraits<CmpInst>::operands(this),
3605                 InsertAtEnd) {
3606   Op<0>() = LHS;
3607   Op<1>() = RHS;
3608   setPredicate((Predicate)predicate);
3609   setName(Name);
3610 }
3611 
3612 CmpInst *
3613 CmpInst::Create(OtherOps Op, Predicate predicate, Value *S1, Value *S2,
3614                 const Twine &Name, Instruction *InsertBefore) {
3615   if (Op == Instruction::ICmp) {
3616     if (InsertBefore)
3617       return new ICmpInst(InsertBefore, CmpInst::Predicate(predicate),
3618                           S1, S2, Name);
3619     else
3620       return new ICmpInst(CmpInst::Predicate(predicate),
3621                           S1, S2, Name);
3622   }
3623 
3624   if (InsertBefore)
3625     return new FCmpInst(InsertBefore, CmpInst::Predicate(predicate),
3626                         S1, S2, Name);
3627   else
3628     return new FCmpInst(CmpInst::Predicate(predicate),
3629                         S1, S2, Name);
3630 }
3631 
3632 CmpInst *
3633 CmpInst::Create(OtherOps Op, Predicate predicate, Value *S1, Value *S2,
3634                 const Twine &Name, BasicBlock *InsertAtEnd) {
3635   if (Op == Instruction::ICmp) {
3636     return new ICmpInst(*InsertAtEnd, CmpInst::Predicate(predicate),
3637                         S1, S2, Name);
3638   }
3639   return new FCmpInst(*InsertAtEnd, CmpInst::Predicate(predicate),
3640                       S1, S2, Name);
3641 }
3642 
3643 void CmpInst::swapOperands() {
3644   if (ICmpInst *IC = dyn_cast<ICmpInst>(this))
3645     IC->swapOperands();
3646   else
3647     cast<FCmpInst>(this)->swapOperands();
3648 }
3649 
3650 bool CmpInst::isCommutative() const {
3651   if (const ICmpInst *IC = dyn_cast<ICmpInst>(this))
3652     return IC->isCommutative();
3653   return cast<FCmpInst>(this)->isCommutative();
3654 }
3655 
3656 bool CmpInst::isEquality(Predicate P) {
3657   if (ICmpInst::isIntPredicate(P))
3658     return ICmpInst::isEquality(P);
3659   if (FCmpInst::isFPPredicate(P))
3660     return FCmpInst::isEquality(P);
3661   llvm_unreachable("Unsupported predicate kind");
3662 }
3663 
3664 CmpInst::Predicate CmpInst::getInversePredicate(Predicate pred) {
3665   switch (pred) {
3666     default: llvm_unreachable("Unknown cmp predicate!");
3667     case ICMP_EQ: return ICMP_NE;
3668     case ICMP_NE: return ICMP_EQ;
3669     case ICMP_UGT: return ICMP_ULE;
3670     case ICMP_ULT: return ICMP_UGE;
3671     case ICMP_UGE: return ICMP_ULT;
3672     case ICMP_ULE: return ICMP_UGT;
3673     case ICMP_SGT: return ICMP_SLE;
3674     case ICMP_SLT: return ICMP_SGE;
3675     case ICMP_SGE: return ICMP_SLT;
3676     case ICMP_SLE: return ICMP_SGT;
3677 
3678     case FCMP_OEQ: return FCMP_UNE;
3679     case FCMP_ONE: return FCMP_UEQ;
3680     case FCMP_OGT: return FCMP_ULE;
3681     case FCMP_OLT: return FCMP_UGE;
3682     case FCMP_OGE: return FCMP_ULT;
3683     case FCMP_OLE: return FCMP_UGT;
3684     case FCMP_UEQ: return FCMP_ONE;
3685     case FCMP_UNE: return FCMP_OEQ;
3686     case FCMP_UGT: return FCMP_OLE;
3687     case FCMP_ULT: return FCMP_OGE;
3688     case FCMP_UGE: return FCMP_OLT;
3689     case FCMP_ULE: return FCMP_OGT;
3690     case FCMP_ORD: return FCMP_UNO;
3691     case FCMP_UNO: return FCMP_ORD;
3692     case FCMP_TRUE: return FCMP_FALSE;
3693     case FCMP_FALSE: return FCMP_TRUE;
3694   }
3695 }
3696 
3697 StringRef CmpInst::getPredicateName(Predicate Pred) {
3698   switch (Pred) {
3699   default:                   return "unknown";
3700   case FCmpInst::FCMP_FALSE: return "false";
3701   case FCmpInst::FCMP_OEQ:   return "oeq";
3702   case FCmpInst::FCMP_OGT:   return "ogt";
3703   case FCmpInst::FCMP_OGE:   return "oge";
3704   case FCmpInst::FCMP_OLT:   return "olt";
3705   case FCmpInst::FCMP_OLE:   return "ole";
3706   case FCmpInst::FCMP_ONE:   return "one";
3707   case FCmpInst::FCMP_ORD:   return "ord";
3708   case FCmpInst::FCMP_UNO:   return "uno";
3709   case FCmpInst::FCMP_UEQ:   return "ueq";
3710   case FCmpInst::FCMP_UGT:   return "ugt";
3711   case FCmpInst::FCMP_UGE:   return "uge";
3712   case FCmpInst::FCMP_ULT:   return "ult";
3713   case FCmpInst::FCMP_ULE:   return "ule";
3714   case FCmpInst::FCMP_UNE:   return "une";
3715   case FCmpInst::FCMP_TRUE:  return "true";
3716   case ICmpInst::ICMP_EQ:    return "eq";
3717   case ICmpInst::ICMP_NE:    return "ne";
3718   case ICmpInst::ICMP_SGT:   return "sgt";
3719   case ICmpInst::ICMP_SGE:   return "sge";
3720   case ICmpInst::ICMP_SLT:   return "slt";
3721   case ICmpInst::ICMP_SLE:   return "sle";
3722   case ICmpInst::ICMP_UGT:   return "ugt";
3723   case ICmpInst::ICMP_UGE:   return "uge";
3724   case ICmpInst::ICMP_ULT:   return "ult";
3725   case ICmpInst::ICMP_ULE:   return "ule";
3726   }
3727 }
3728 
3729 ICmpInst::Predicate ICmpInst::getSignedPredicate(Predicate pred) {
3730   switch (pred) {
3731     default: llvm_unreachable("Unknown icmp predicate!");
3732     case ICMP_EQ: case ICMP_NE:
3733     case ICMP_SGT: case ICMP_SLT: case ICMP_SGE: case ICMP_SLE:
3734        return pred;
3735     case ICMP_UGT: return ICMP_SGT;
3736     case ICMP_ULT: return ICMP_SLT;
3737     case ICMP_UGE: return ICMP_SGE;
3738     case ICMP_ULE: return ICMP_SLE;
3739   }
3740 }
3741 
3742 ICmpInst::Predicate ICmpInst::getUnsignedPredicate(Predicate pred) {
3743   switch (pred) {
3744     default: llvm_unreachable("Unknown icmp predicate!");
3745     case ICMP_EQ: case ICMP_NE:
3746     case ICMP_UGT: case ICMP_ULT: case ICMP_UGE: case ICMP_ULE:
3747        return pred;
3748     case ICMP_SGT: return ICMP_UGT;
3749     case ICMP_SLT: return ICMP_ULT;
3750     case ICMP_SGE: return ICMP_UGE;
3751     case ICMP_SLE: return ICMP_ULE;
3752   }
3753 }
3754 
3755 CmpInst::Predicate CmpInst::getSwappedPredicate(Predicate pred) {
3756   switch (pred) {
3757     default: llvm_unreachable("Unknown cmp predicate!");
3758     case ICMP_EQ: case ICMP_NE:
3759       return pred;
3760     case ICMP_SGT: return ICMP_SLT;
3761     case ICMP_SLT: return ICMP_SGT;
3762     case ICMP_SGE: return ICMP_SLE;
3763     case ICMP_SLE: return ICMP_SGE;
3764     case ICMP_UGT: return ICMP_ULT;
3765     case ICMP_ULT: return ICMP_UGT;
3766     case ICMP_UGE: return ICMP_ULE;
3767     case ICMP_ULE: return ICMP_UGE;
3768 
3769     case FCMP_FALSE: case FCMP_TRUE:
3770     case FCMP_OEQ: case FCMP_ONE:
3771     case FCMP_UEQ: case FCMP_UNE:
3772     case FCMP_ORD: case FCMP_UNO:
3773       return pred;
3774     case FCMP_OGT: return FCMP_OLT;
3775     case FCMP_OLT: return FCMP_OGT;
3776     case FCMP_OGE: return FCMP_OLE;
3777     case FCMP_OLE: return FCMP_OGE;
3778     case FCMP_UGT: return FCMP_ULT;
3779     case FCMP_ULT: return FCMP_UGT;
3780     case FCMP_UGE: return FCMP_ULE;
3781     case FCMP_ULE: return FCMP_UGE;
3782   }
3783 }
3784 
3785 bool CmpInst::isNonStrictPredicate(Predicate pred) {
3786   switch (pred) {
3787   case ICMP_SGE:
3788   case ICMP_SLE:
3789   case ICMP_UGE:
3790   case ICMP_ULE:
3791   case FCMP_OGE:
3792   case FCMP_OLE:
3793   case FCMP_UGE:
3794   case FCMP_ULE:
3795     return true;
3796   default:
3797     return false;
3798   }
3799 }
3800 
3801 bool CmpInst::isStrictPredicate(Predicate pred) {
3802   switch (pred) {
3803   case ICMP_SGT:
3804   case ICMP_SLT:
3805   case ICMP_UGT:
3806   case ICMP_ULT:
3807   case FCMP_OGT:
3808   case FCMP_OLT:
3809   case FCMP_UGT:
3810   case FCMP_ULT:
3811     return true;
3812   default:
3813     return false;
3814   }
3815 }
3816 
3817 CmpInst::Predicate CmpInst::getStrictPredicate(Predicate pred) {
3818   switch (pred) {
3819   case ICMP_SGE:
3820     return ICMP_SGT;
3821   case ICMP_SLE:
3822     return ICMP_SLT;
3823   case ICMP_UGE:
3824     return ICMP_UGT;
3825   case ICMP_ULE:
3826     return ICMP_ULT;
3827   case FCMP_OGE:
3828     return FCMP_OGT;
3829   case FCMP_OLE:
3830     return FCMP_OLT;
3831   case FCMP_UGE:
3832     return FCMP_UGT;
3833   case FCMP_ULE:
3834     return FCMP_ULT;
3835   default:
3836     return pred;
3837   }
3838 }
3839 
3840 CmpInst::Predicate CmpInst::getNonStrictPredicate(Predicate pred) {
3841   switch (pred) {
3842   case ICMP_SGT:
3843     return ICMP_SGE;
3844   case ICMP_SLT:
3845     return ICMP_SLE;
3846   case ICMP_UGT:
3847     return ICMP_UGE;
3848   case ICMP_ULT:
3849     return ICMP_ULE;
3850   case FCMP_OGT:
3851     return FCMP_OGE;
3852   case FCMP_OLT:
3853     return FCMP_OLE;
3854   case FCMP_UGT:
3855     return FCMP_UGE;
3856   case FCMP_ULT:
3857     return FCMP_ULE;
3858   default:
3859     return pred;
3860   }
3861 }
3862 
3863 CmpInst::Predicate CmpInst::getFlippedStrictnessPredicate(Predicate pred) {
3864   assert(CmpInst::isRelational(pred) && "Call only with relational predicate!");
3865 
3866   if (isStrictPredicate(pred))
3867     return getNonStrictPredicate(pred);
3868   if (isNonStrictPredicate(pred))
3869     return getStrictPredicate(pred);
3870 
3871   llvm_unreachable("Unknown predicate!");
3872 }
3873 
3874 CmpInst::Predicate CmpInst::getSignedPredicate(Predicate pred) {
3875   assert(CmpInst::isUnsigned(pred) && "Call only with unsigned predicates!");
3876 
3877   switch (pred) {
3878   default:
3879     llvm_unreachable("Unknown predicate!");
3880   case CmpInst::ICMP_ULT:
3881     return CmpInst::ICMP_SLT;
3882   case CmpInst::ICMP_ULE:
3883     return CmpInst::ICMP_SLE;
3884   case CmpInst::ICMP_UGT:
3885     return CmpInst::ICMP_SGT;
3886   case CmpInst::ICMP_UGE:
3887     return CmpInst::ICMP_SGE;
3888   }
3889 }
3890 
3891 CmpInst::Predicate CmpInst::getUnsignedPredicate(Predicate pred) {
3892   assert(CmpInst::isSigned(pred) && "Call only with signed predicates!");
3893 
3894   switch (pred) {
3895   default:
3896     llvm_unreachable("Unknown predicate!");
3897   case CmpInst::ICMP_SLT:
3898     return CmpInst::ICMP_ULT;
3899   case CmpInst::ICMP_SLE:
3900     return CmpInst::ICMP_ULE;
3901   case CmpInst::ICMP_SGT:
3902     return CmpInst::ICMP_UGT;
3903   case CmpInst::ICMP_SGE:
3904     return CmpInst::ICMP_UGE;
3905   }
3906 }
3907 
3908 bool CmpInst::isUnsigned(Predicate predicate) {
3909   switch (predicate) {
3910     default: return false;
3911     case ICmpInst::ICMP_ULT: case ICmpInst::ICMP_ULE: case ICmpInst::ICMP_UGT:
3912     case ICmpInst::ICMP_UGE: return true;
3913   }
3914 }
3915 
3916 bool CmpInst::isSigned(Predicate predicate) {
3917   switch (predicate) {
3918     default: return false;
3919     case ICmpInst::ICMP_SLT: case ICmpInst::ICMP_SLE: case ICmpInst::ICMP_SGT:
3920     case ICmpInst::ICMP_SGE: return true;
3921   }
3922 }
3923 
3924 CmpInst::Predicate CmpInst::getFlippedSignednessPredicate(Predicate pred) {
3925   assert(CmpInst::isRelational(pred) &&
3926          "Call only with non-equality predicates!");
3927 
3928   if (isSigned(pred))
3929     return getUnsignedPredicate(pred);
3930   if (isUnsigned(pred))
3931     return getSignedPredicate(pred);
3932 
3933   llvm_unreachable("Unknown predicate!");
3934 }
3935 
3936 bool CmpInst::isOrdered(Predicate predicate) {
3937   switch (predicate) {
3938     default: return false;
3939     case FCmpInst::FCMP_OEQ: case FCmpInst::FCMP_ONE: case FCmpInst::FCMP_OGT:
3940     case FCmpInst::FCMP_OLT: case FCmpInst::FCMP_OGE: case FCmpInst::FCMP_OLE:
3941     case FCmpInst::FCMP_ORD: return true;
3942   }
3943 }
3944 
3945 bool CmpInst::isUnordered(Predicate predicate) {
3946   switch (predicate) {
3947     default: return false;
3948     case FCmpInst::FCMP_UEQ: case FCmpInst::FCMP_UNE: case FCmpInst::FCMP_UGT:
3949     case FCmpInst::FCMP_ULT: case FCmpInst::FCMP_UGE: case FCmpInst::FCMP_ULE:
3950     case FCmpInst::FCMP_UNO: return true;
3951   }
3952 }
3953 
3954 bool CmpInst::isTrueWhenEqual(Predicate predicate) {
3955   switch(predicate) {
3956     default: return false;
3957     case ICMP_EQ:   case ICMP_UGE: case ICMP_ULE: case ICMP_SGE: case ICMP_SLE:
3958     case FCMP_TRUE: case FCMP_UEQ: case FCMP_UGE: case FCMP_ULE: return true;
3959   }
3960 }
3961 
3962 bool CmpInst::isFalseWhenEqual(Predicate predicate) {
3963   switch(predicate) {
3964   case ICMP_NE:    case ICMP_UGT: case ICMP_ULT: case ICMP_SGT: case ICMP_SLT:
3965   case FCMP_FALSE: case FCMP_ONE: case FCMP_OGT: case FCMP_OLT: return true;
3966   default: return false;
3967   }
3968 }
3969 
3970 bool CmpInst::isImpliedTrueByMatchingCmp(Predicate Pred1, Predicate Pred2) {
3971   // If the predicates match, then we know the first condition implies the
3972   // second is true.
3973   if (Pred1 == Pred2)
3974     return true;
3975 
3976   switch (Pred1) {
3977   default:
3978     break;
3979   case ICMP_EQ:
3980     // A == B implies A >=u B, A <=u B, A >=s B, and A <=s B are true.
3981     return Pred2 == ICMP_UGE || Pred2 == ICMP_ULE || Pred2 == ICMP_SGE ||
3982            Pred2 == ICMP_SLE;
3983   case ICMP_UGT: // A >u B implies A != B and A >=u B are true.
3984     return Pred2 == ICMP_NE || Pred2 == ICMP_UGE;
3985   case ICMP_ULT: // A <u B implies A != B and A <=u B are true.
3986     return Pred2 == ICMP_NE || Pred2 == ICMP_ULE;
3987   case ICMP_SGT: // A >s B implies A != B and A >=s B are true.
3988     return Pred2 == ICMP_NE || Pred2 == ICMP_SGE;
3989   case ICMP_SLT: // A <s B implies A != B and A <=s B are true.
3990     return Pred2 == ICMP_NE || Pred2 == ICMP_SLE;
3991   }
3992   return false;
3993 }
3994 
3995 bool CmpInst::isImpliedFalseByMatchingCmp(Predicate Pred1, Predicate Pred2) {
3996   return isImpliedTrueByMatchingCmp(Pred1, getInversePredicate(Pred2));
3997 }
3998 
3999 //===----------------------------------------------------------------------===//
4000 //                        SwitchInst Implementation
4001 //===----------------------------------------------------------------------===//
4002 
4003 void SwitchInst::init(Value *Value, BasicBlock *Default, unsigned NumReserved) {
4004   assert(Value && Default && NumReserved);
4005   ReservedSpace = NumReserved;
4006   setNumHungOffUseOperands(2);
4007   allocHungoffUses(ReservedSpace);
4008 
4009   Op<0>() = Value;
4010   Op<1>() = Default;
4011 }
4012 
4013 /// SwitchInst ctor - Create a new switch instruction, specifying a value to
4014 /// switch on and a default destination.  The number of additional cases can
4015 /// be specified here to make memory allocation more efficient.  This
4016 /// constructor can also autoinsert before another instruction.
4017 SwitchInst::SwitchInst(Value *Value, BasicBlock *Default, unsigned NumCases,
4018                        Instruction *InsertBefore)
4019     : Instruction(Type::getVoidTy(Value->getContext()), Instruction::Switch,
4020                   nullptr, 0, InsertBefore) {
4021   init(Value, Default, 2+NumCases*2);
4022 }
4023 
4024 /// SwitchInst ctor - Create a new switch instruction, specifying a value to
4025 /// switch on and a default destination.  The number of additional cases can
4026 /// be specified here to make memory allocation more efficient.  This
4027 /// constructor also autoinserts at the end of the specified BasicBlock.
4028 SwitchInst::SwitchInst(Value *Value, BasicBlock *Default, unsigned NumCases,
4029                        BasicBlock *InsertAtEnd)
4030     : Instruction(Type::getVoidTy(Value->getContext()), Instruction::Switch,
4031                   nullptr, 0, InsertAtEnd) {
4032   init(Value, Default, 2+NumCases*2);
4033 }
4034 
4035 SwitchInst::SwitchInst(const SwitchInst &SI)
4036     : Instruction(SI.getType(), Instruction::Switch, nullptr, 0) {
4037   init(SI.getCondition(), SI.getDefaultDest(), SI.getNumOperands());
4038   setNumHungOffUseOperands(SI.getNumOperands());
4039   Use *OL = getOperandList();
4040   const Use *InOL = SI.getOperandList();
4041   for (unsigned i = 2, E = SI.getNumOperands(); i != E; i += 2) {
4042     OL[i] = InOL[i];
4043     OL[i+1] = InOL[i+1];
4044   }
4045   SubclassOptionalData = SI.SubclassOptionalData;
4046 }
4047 
4048 /// addCase - Add an entry to the switch instruction...
4049 ///
4050 void SwitchInst::addCase(ConstantInt *OnVal, BasicBlock *Dest) {
4051   unsigned NewCaseIdx = getNumCases();
4052   unsigned OpNo = getNumOperands();
4053   if (OpNo+2 > ReservedSpace)
4054     growOperands();  // Get more space!
4055   // Initialize some new operands.
4056   assert(OpNo+1 < ReservedSpace && "Growing didn't work!");
4057   setNumHungOffUseOperands(OpNo+2);
4058   CaseHandle Case(this, NewCaseIdx);
4059   Case.setValue(OnVal);
4060   Case.setSuccessor(Dest);
4061 }
4062 
4063 /// removeCase - This method removes the specified case and its successor
4064 /// from the switch instruction.
4065 SwitchInst::CaseIt SwitchInst::removeCase(CaseIt I) {
4066   unsigned idx = I->getCaseIndex();
4067 
4068   assert(2 + idx*2 < getNumOperands() && "Case index out of range!!!");
4069 
4070   unsigned NumOps = getNumOperands();
4071   Use *OL = getOperandList();
4072 
4073   // Overwrite this case with the end of the list.
4074   if (2 + (idx + 1) * 2 != NumOps) {
4075     OL[2 + idx * 2] = OL[NumOps - 2];
4076     OL[2 + idx * 2 + 1] = OL[NumOps - 1];
4077   }
4078 
4079   // Nuke the last value.
4080   OL[NumOps-2].set(nullptr);
4081   OL[NumOps-2+1].set(nullptr);
4082   setNumHungOffUseOperands(NumOps-2);
4083 
4084   return CaseIt(this, idx);
4085 }
4086 
4087 /// growOperands - grow operands - This grows the operand list in response
4088 /// to a push_back style of operation.  This grows the number of ops by 3 times.
4089 ///
4090 void SwitchInst::growOperands() {
4091   unsigned e = getNumOperands();
4092   unsigned NumOps = e*3;
4093 
4094   ReservedSpace = NumOps;
4095   growHungoffUses(ReservedSpace);
4096 }
4097 
4098 MDNode *
4099 SwitchInstProfUpdateWrapper::getProfBranchWeightsMD(const SwitchInst &SI) {
4100   if (MDNode *ProfileData = SI.getMetadata(LLVMContext::MD_prof))
4101     if (auto *MDName = dyn_cast<MDString>(ProfileData->getOperand(0)))
4102       if (MDName->getString() == "branch_weights")
4103         return ProfileData;
4104   return nullptr;
4105 }
4106 
4107 MDNode *SwitchInstProfUpdateWrapper::buildProfBranchWeightsMD() {
4108   assert(Changed && "called only if metadata has changed");
4109 
4110   if (!Weights)
4111     return nullptr;
4112 
4113   assert(SI.getNumSuccessors() == Weights->size() &&
4114          "num of prof branch_weights must accord with num of successors");
4115 
4116   bool AllZeroes =
4117       all_of(Weights.getValue(), [](uint32_t W) { return W == 0; });
4118 
4119   if (AllZeroes || Weights.getValue().size() < 2)
4120     return nullptr;
4121 
4122   return MDBuilder(SI.getParent()->getContext()).createBranchWeights(*Weights);
4123 }
4124 
4125 void SwitchInstProfUpdateWrapper::init() {
4126   MDNode *ProfileData = getProfBranchWeightsMD(SI);
4127   if (!ProfileData)
4128     return;
4129 
4130   if (ProfileData->getNumOperands() != SI.getNumSuccessors() + 1) {
4131     llvm_unreachable("number of prof branch_weights metadata operands does "
4132                      "not correspond to number of succesors");
4133   }
4134 
4135   SmallVector<uint32_t, 8> Weights;
4136   for (unsigned CI = 1, CE = SI.getNumSuccessors(); CI <= CE; ++CI) {
4137     ConstantInt *C = mdconst::extract<ConstantInt>(ProfileData->getOperand(CI));
4138     uint32_t CW = C->getValue().getZExtValue();
4139     Weights.push_back(CW);
4140   }
4141   this->Weights = std::move(Weights);
4142 }
4143 
4144 SwitchInst::CaseIt
4145 SwitchInstProfUpdateWrapper::removeCase(SwitchInst::CaseIt I) {
4146   if (Weights) {
4147     assert(SI.getNumSuccessors() == Weights->size() &&
4148            "num of prof branch_weights must accord with num of successors");
4149     Changed = true;
4150     // Copy the last case to the place of the removed one and shrink.
4151     // This is tightly coupled with the way SwitchInst::removeCase() removes
4152     // the cases in SwitchInst::removeCase(CaseIt).
4153     Weights.getValue()[I->getCaseIndex() + 1] = Weights.getValue().back();
4154     Weights.getValue().pop_back();
4155   }
4156   return SI.removeCase(I);
4157 }
4158 
4159 void SwitchInstProfUpdateWrapper::addCase(
4160     ConstantInt *OnVal, BasicBlock *Dest,
4161     SwitchInstProfUpdateWrapper::CaseWeightOpt W) {
4162   SI.addCase(OnVal, Dest);
4163 
4164   if (!Weights && W && *W) {
4165     Changed = true;
4166     Weights = SmallVector<uint32_t, 8>(SI.getNumSuccessors(), 0);
4167     Weights.getValue()[SI.getNumSuccessors() - 1] = *W;
4168   } else if (Weights) {
4169     Changed = true;
4170     Weights.getValue().push_back(W ? *W : 0);
4171   }
4172   if (Weights)
4173     assert(SI.getNumSuccessors() == Weights->size() &&
4174            "num of prof branch_weights must accord with num of successors");
4175 }
4176 
4177 SymbolTableList<Instruction>::iterator
4178 SwitchInstProfUpdateWrapper::eraseFromParent() {
4179   // Instruction is erased. Mark as unchanged to not touch it in the destructor.
4180   Changed = false;
4181   if (Weights)
4182     Weights->resize(0);
4183   return SI.eraseFromParent();
4184 }
4185 
4186 SwitchInstProfUpdateWrapper::CaseWeightOpt
4187 SwitchInstProfUpdateWrapper::getSuccessorWeight(unsigned idx) {
4188   if (!Weights)
4189     return None;
4190   return Weights.getValue()[idx];
4191 }
4192 
4193 void SwitchInstProfUpdateWrapper::setSuccessorWeight(
4194     unsigned idx, SwitchInstProfUpdateWrapper::CaseWeightOpt W) {
4195   if (!W)
4196     return;
4197 
4198   if (!Weights && *W)
4199     Weights = SmallVector<uint32_t, 8>(SI.getNumSuccessors(), 0);
4200 
4201   if (Weights) {
4202     auto &OldW = Weights.getValue()[idx];
4203     if (*W != OldW) {
4204       Changed = true;
4205       OldW = *W;
4206     }
4207   }
4208 }
4209 
4210 SwitchInstProfUpdateWrapper::CaseWeightOpt
4211 SwitchInstProfUpdateWrapper::getSuccessorWeight(const SwitchInst &SI,
4212                                                 unsigned idx) {
4213   if (MDNode *ProfileData = getProfBranchWeightsMD(SI))
4214     if (ProfileData->getNumOperands() == SI.getNumSuccessors() + 1)
4215       return mdconst::extract<ConstantInt>(ProfileData->getOperand(idx + 1))
4216           ->getValue()
4217           .getZExtValue();
4218 
4219   return None;
4220 }
4221 
4222 //===----------------------------------------------------------------------===//
4223 //                        IndirectBrInst Implementation
4224 //===----------------------------------------------------------------------===//
4225 
4226 void IndirectBrInst::init(Value *Address, unsigned NumDests) {
4227   assert(Address && Address->getType()->isPointerTy() &&
4228          "Address of indirectbr must be a pointer");
4229   ReservedSpace = 1+NumDests;
4230   setNumHungOffUseOperands(1);
4231   allocHungoffUses(ReservedSpace);
4232 
4233   Op<0>() = Address;
4234 }
4235 
4236 
4237 /// growOperands - grow operands - This grows the operand list in response
4238 /// to a push_back style of operation.  This grows the number of ops by 2 times.
4239 ///
4240 void IndirectBrInst::growOperands() {
4241   unsigned e = getNumOperands();
4242   unsigned NumOps = e*2;
4243 
4244   ReservedSpace = NumOps;
4245   growHungoffUses(ReservedSpace);
4246 }
4247 
4248 IndirectBrInst::IndirectBrInst(Value *Address, unsigned NumCases,
4249                                Instruction *InsertBefore)
4250     : Instruction(Type::getVoidTy(Address->getContext()),
4251                   Instruction::IndirectBr, nullptr, 0, InsertBefore) {
4252   init(Address, NumCases);
4253 }
4254 
4255 IndirectBrInst::IndirectBrInst(Value *Address, unsigned NumCases,
4256                                BasicBlock *InsertAtEnd)
4257     : Instruction(Type::getVoidTy(Address->getContext()),
4258                   Instruction::IndirectBr, nullptr, 0, InsertAtEnd) {
4259   init(Address, NumCases);
4260 }
4261 
4262 IndirectBrInst::IndirectBrInst(const IndirectBrInst &IBI)
4263     : Instruction(Type::getVoidTy(IBI.getContext()), Instruction::IndirectBr,
4264                   nullptr, IBI.getNumOperands()) {
4265   allocHungoffUses(IBI.getNumOperands());
4266   Use *OL = getOperandList();
4267   const Use *InOL = IBI.getOperandList();
4268   for (unsigned i = 0, E = IBI.getNumOperands(); i != E; ++i)
4269     OL[i] = InOL[i];
4270   SubclassOptionalData = IBI.SubclassOptionalData;
4271 }
4272 
4273 /// addDestination - Add a destination.
4274 ///
4275 void IndirectBrInst::addDestination(BasicBlock *DestBB) {
4276   unsigned OpNo = getNumOperands();
4277   if (OpNo+1 > ReservedSpace)
4278     growOperands();  // Get more space!
4279   // Initialize some new operands.
4280   assert(OpNo < ReservedSpace && "Growing didn't work!");
4281   setNumHungOffUseOperands(OpNo+1);
4282   getOperandList()[OpNo] = DestBB;
4283 }
4284 
4285 /// removeDestination - This method removes the specified successor from the
4286 /// indirectbr instruction.
4287 void IndirectBrInst::removeDestination(unsigned idx) {
4288   assert(idx < getNumOperands()-1 && "Successor index out of range!");
4289 
4290   unsigned NumOps = getNumOperands();
4291   Use *OL = getOperandList();
4292 
4293   // Replace this value with the last one.
4294   OL[idx+1] = OL[NumOps-1];
4295 
4296   // Nuke the last value.
4297   OL[NumOps-1].set(nullptr);
4298   setNumHungOffUseOperands(NumOps-1);
4299 }
4300 
4301 //===----------------------------------------------------------------------===//
4302 //                            FreezeInst Implementation
4303 //===----------------------------------------------------------------------===//
4304 
4305 FreezeInst::FreezeInst(Value *S,
4306                        const Twine &Name, Instruction *InsertBefore)
4307     : UnaryInstruction(S->getType(), Freeze, S, InsertBefore) {
4308   setName(Name);
4309 }
4310 
4311 FreezeInst::FreezeInst(Value *S,
4312                        const Twine &Name, BasicBlock *InsertAtEnd)
4313     : UnaryInstruction(S->getType(), Freeze, S, InsertAtEnd) {
4314   setName(Name);
4315 }
4316 
4317 //===----------------------------------------------------------------------===//
4318 //                           cloneImpl() implementations
4319 //===----------------------------------------------------------------------===//
4320 
4321 // Define these methods here so vtables don't get emitted into every translation
4322 // unit that uses these classes.
4323 
4324 GetElementPtrInst *GetElementPtrInst::cloneImpl() const {
4325   return new (getNumOperands()) GetElementPtrInst(*this);
4326 }
4327 
4328 UnaryOperator *UnaryOperator::cloneImpl() const {
4329   return Create(getOpcode(), Op<0>());
4330 }
4331 
4332 BinaryOperator *BinaryOperator::cloneImpl() const {
4333   return Create(getOpcode(), Op<0>(), Op<1>());
4334 }
4335 
4336 FCmpInst *FCmpInst::cloneImpl() const {
4337   return new FCmpInst(getPredicate(), Op<0>(), Op<1>());
4338 }
4339 
4340 ICmpInst *ICmpInst::cloneImpl() const {
4341   return new ICmpInst(getPredicate(), Op<0>(), Op<1>());
4342 }
4343 
4344 ExtractValueInst *ExtractValueInst::cloneImpl() const {
4345   return new ExtractValueInst(*this);
4346 }
4347 
4348 InsertValueInst *InsertValueInst::cloneImpl() const {
4349   return new InsertValueInst(*this);
4350 }
4351 
4352 AllocaInst *AllocaInst::cloneImpl() const {
4353   AllocaInst *Result =
4354       new AllocaInst(getAllocatedType(), getType()->getAddressSpace(),
4355                      getOperand(0), getAlign());
4356   Result->setUsedWithInAlloca(isUsedWithInAlloca());
4357   Result->setSwiftError(isSwiftError());
4358   return Result;
4359 }
4360 
4361 LoadInst *LoadInst::cloneImpl() const {
4362   return new LoadInst(getType(), getOperand(0), Twine(), isVolatile(),
4363                       getAlign(), getOrdering(), getSyncScopeID());
4364 }
4365 
4366 StoreInst *StoreInst::cloneImpl() const {
4367   return new StoreInst(getOperand(0), getOperand(1), isVolatile(), getAlign(),
4368                        getOrdering(), getSyncScopeID());
4369 }
4370 
4371 AtomicCmpXchgInst *AtomicCmpXchgInst::cloneImpl() const {
4372   AtomicCmpXchgInst *Result = new AtomicCmpXchgInst(
4373       getOperand(0), getOperand(1), getOperand(2), getAlign(),
4374       getSuccessOrdering(), getFailureOrdering(), getSyncScopeID());
4375   Result->setVolatile(isVolatile());
4376   Result->setWeak(isWeak());
4377   return Result;
4378 }
4379 
4380 AtomicRMWInst *AtomicRMWInst::cloneImpl() const {
4381   AtomicRMWInst *Result =
4382       new AtomicRMWInst(getOperation(), getOperand(0), getOperand(1),
4383                         getAlign(), getOrdering(), getSyncScopeID());
4384   Result->setVolatile(isVolatile());
4385   return Result;
4386 }
4387 
4388 FenceInst *FenceInst::cloneImpl() const {
4389   return new FenceInst(getContext(), getOrdering(), getSyncScopeID());
4390 }
4391 
4392 TruncInst *TruncInst::cloneImpl() const {
4393   return new TruncInst(getOperand(0), getType());
4394 }
4395 
4396 ZExtInst *ZExtInst::cloneImpl() const {
4397   return new ZExtInst(getOperand(0), getType());
4398 }
4399 
4400 SExtInst *SExtInst::cloneImpl() const {
4401   return new SExtInst(getOperand(0), getType());
4402 }
4403 
4404 FPTruncInst *FPTruncInst::cloneImpl() const {
4405   return new FPTruncInst(getOperand(0), getType());
4406 }
4407 
4408 FPExtInst *FPExtInst::cloneImpl() const {
4409   return new FPExtInst(getOperand(0), getType());
4410 }
4411 
4412 UIToFPInst *UIToFPInst::cloneImpl() const {
4413   return new UIToFPInst(getOperand(0), getType());
4414 }
4415 
4416 SIToFPInst *SIToFPInst::cloneImpl() const {
4417   return new SIToFPInst(getOperand(0), getType());
4418 }
4419 
4420 FPToUIInst *FPToUIInst::cloneImpl() const {
4421   return new FPToUIInst(getOperand(0), getType());
4422 }
4423 
4424 FPToSIInst *FPToSIInst::cloneImpl() const {
4425   return new FPToSIInst(getOperand(0), getType());
4426 }
4427 
4428 PtrToIntInst *PtrToIntInst::cloneImpl() const {
4429   return new PtrToIntInst(getOperand(0), getType());
4430 }
4431 
4432 IntToPtrInst *IntToPtrInst::cloneImpl() const {
4433   return new IntToPtrInst(getOperand(0), getType());
4434 }
4435 
4436 BitCastInst *BitCastInst::cloneImpl() const {
4437   return new BitCastInst(getOperand(0), getType());
4438 }
4439 
4440 AddrSpaceCastInst *AddrSpaceCastInst::cloneImpl() const {
4441   return new AddrSpaceCastInst(getOperand(0), getType());
4442 }
4443 
4444 CallInst *CallInst::cloneImpl() const {
4445   if (hasOperandBundles()) {
4446     unsigned DescriptorBytes = getNumOperandBundles() * sizeof(BundleOpInfo);
4447     return new(getNumOperands(), DescriptorBytes) CallInst(*this);
4448   }
4449   return  new(getNumOperands()) CallInst(*this);
4450 }
4451 
4452 SelectInst *SelectInst::cloneImpl() const {
4453   return SelectInst::Create(getOperand(0), getOperand(1), getOperand(2));
4454 }
4455 
4456 VAArgInst *VAArgInst::cloneImpl() const {
4457   return new VAArgInst(getOperand(0), getType());
4458 }
4459 
4460 ExtractElementInst *ExtractElementInst::cloneImpl() const {
4461   return ExtractElementInst::Create(getOperand(0), getOperand(1));
4462 }
4463 
4464 InsertElementInst *InsertElementInst::cloneImpl() const {
4465   return InsertElementInst::Create(getOperand(0), getOperand(1), getOperand(2));
4466 }
4467 
4468 ShuffleVectorInst *ShuffleVectorInst::cloneImpl() const {
4469   return new ShuffleVectorInst(getOperand(0), getOperand(1), getShuffleMask());
4470 }
4471 
4472 PHINode *PHINode::cloneImpl() const { return new PHINode(*this); }
4473 
4474 LandingPadInst *LandingPadInst::cloneImpl() const {
4475   return new LandingPadInst(*this);
4476 }
4477 
4478 ReturnInst *ReturnInst::cloneImpl() const {
4479   return new(getNumOperands()) ReturnInst(*this);
4480 }
4481 
4482 BranchInst *BranchInst::cloneImpl() const {
4483   return new(getNumOperands()) BranchInst(*this);
4484 }
4485 
4486 SwitchInst *SwitchInst::cloneImpl() const { return new SwitchInst(*this); }
4487 
4488 IndirectBrInst *IndirectBrInst::cloneImpl() const {
4489   return new IndirectBrInst(*this);
4490 }
4491 
4492 InvokeInst *InvokeInst::cloneImpl() const {
4493   if (hasOperandBundles()) {
4494     unsigned DescriptorBytes = getNumOperandBundles() * sizeof(BundleOpInfo);
4495     return new(getNumOperands(), DescriptorBytes) InvokeInst(*this);
4496   }
4497   return new(getNumOperands()) InvokeInst(*this);
4498 }
4499 
4500 CallBrInst *CallBrInst::cloneImpl() const {
4501   if (hasOperandBundles()) {
4502     unsigned DescriptorBytes = getNumOperandBundles() * sizeof(BundleOpInfo);
4503     return new (getNumOperands(), DescriptorBytes) CallBrInst(*this);
4504   }
4505   return new (getNumOperands()) CallBrInst(*this);
4506 }
4507 
4508 ResumeInst *ResumeInst::cloneImpl() const { return new (1) ResumeInst(*this); }
4509 
4510 CleanupReturnInst *CleanupReturnInst::cloneImpl() const {
4511   return new (getNumOperands()) CleanupReturnInst(*this);
4512 }
4513 
4514 CatchReturnInst *CatchReturnInst::cloneImpl() const {
4515   return new (getNumOperands()) CatchReturnInst(*this);
4516 }
4517 
4518 CatchSwitchInst *CatchSwitchInst::cloneImpl() const {
4519   return new CatchSwitchInst(*this);
4520 }
4521 
4522 FuncletPadInst *FuncletPadInst::cloneImpl() const {
4523   return new (getNumOperands()) FuncletPadInst(*this);
4524 }
4525 
4526 UnreachableInst *UnreachableInst::cloneImpl() const {
4527   LLVMContext &Context = getContext();
4528   return new UnreachableInst(Context);
4529 }
4530 
4531 FreezeInst *FreezeInst::cloneImpl() const {
4532   return new FreezeInst(getOperand(0));
4533 }
4534