1664e354dSChandler Carruth //===- BasicTargetTransformInfo.cpp - Basic target-independent TTI impl ---===//
2664e354dSChandler Carruth //
3664e354dSChandler Carruth //                     The LLVM Compiler Infrastructure
4664e354dSChandler Carruth //
5664e354dSChandler Carruth // This file is distributed under the University of Illinois Open Source
6664e354dSChandler Carruth // License. See LICENSE.TXT for details.
7664e354dSChandler Carruth //
8664e354dSChandler Carruth //===----------------------------------------------------------------------===//
9664e354dSChandler Carruth /// \file
10664e354dSChandler Carruth /// This file provides the implementation of a basic TargetTransformInfo pass
11664e354dSChandler Carruth /// predicated on the target abstractions present in the target independent
12664e354dSChandler Carruth /// code generator. It uses these (primarily TargetLowering) to model as much
13664e354dSChandler Carruth /// of the TTI query interface as possible. It is included by most targets so
14664e354dSChandler Carruth /// that they can specialize only a small subset of the query space.
15664e354dSChandler Carruth ///
16664e354dSChandler Carruth //===----------------------------------------------------------------------===//
17664e354dSChandler Carruth 
18664e354dSChandler Carruth #define DEBUG_TYPE "basictti"
19664e354dSChandler Carruth #include "llvm/CodeGen/Passes.h"
20d3e73556SChandler Carruth #include "llvm/Analysis/TargetTransformInfo.h"
21664e354dSChandler Carruth #include "llvm/Target/TargetLowering.h"
22664e354dSChandler Carruth #include <utility>
23664e354dSChandler Carruth 
24664e354dSChandler Carruth using namespace llvm;
25664e354dSChandler Carruth 
26664e354dSChandler Carruth namespace {
27664e354dSChandler Carruth 
28664e354dSChandler Carruth class BasicTTI : public ImmutablePass, public TargetTransformInfo {
29afc1036fSBill Wendling   const TargetMachine *TM;
30664e354dSChandler Carruth 
31664e354dSChandler Carruth   /// Estimate the overhead of scalarizing an instruction. Insert and Extract
32664e354dSChandler Carruth   /// are set if the result needs to be inserted and/or extracted from vectors.
33664e354dSChandler Carruth   unsigned getScalarizationOverhead(Type *Ty, bool Insert, bool Extract) const;
34664e354dSChandler Carruth 
35afc1036fSBill Wendling   const TargetLoweringBase *getTLI() const { return TM->getTargetLowering(); }
36afc1036fSBill Wendling 
37664e354dSChandler Carruth public:
38afc1036fSBill Wendling   BasicTTI() : ImmutablePass(ID), TM(0) {
39664e354dSChandler Carruth     llvm_unreachable("This pass cannot be directly constructed");
40664e354dSChandler Carruth   }
41664e354dSChandler Carruth 
42afc1036fSBill Wendling   BasicTTI(const TargetMachine *TM) : ImmutablePass(ID), TM(TM) {
43664e354dSChandler Carruth     initializeBasicTTIPass(*PassRegistry::getPassRegistry());
44664e354dSChandler Carruth   }
45664e354dSChandler Carruth 
46664e354dSChandler Carruth   virtual void initializePass() {
47664e354dSChandler Carruth     pushTTIStack(this);
48664e354dSChandler Carruth   }
49664e354dSChandler Carruth 
50664e354dSChandler Carruth   virtual void finalizePass() {
51664e354dSChandler Carruth     popTTIStack();
52664e354dSChandler Carruth   }
53664e354dSChandler Carruth 
54664e354dSChandler Carruth   virtual void getAnalysisUsage(AnalysisUsage &AU) const {
55664e354dSChandler Carruth     TargetTransformInfo::getAnalysisUsage(AU);
56664e354dSChandler Carruth   }
57664e354dSChandler Carruth 
58664e354dSChandler Carruth   /// Pass identification.
59664e354dSChandler Carruth   static char ID;
60664e354dSChandler Carruth 
61664e354dSChandler Carruth   /// Provide necessary pointer adjustments for the two base classes.
62664e354dSChandler Carruth   virtual void *getAdjustedAnalysisPointer(const void *ID) {
63664e354dSChandler Carruth     if (ID == &TargetTransformInfo::ID)
64664e354dSChandler Carruth       return (TargetTransformInfo*)this;
65664e354dSChandler Carruth     return this;
66664e354dSChandler Carruth   }
67664e354dSChandler Carruth 
688b1e021eSTom Stellard   virtual bool hasBranchDivergence() const;
698b1e021eSTom Stellard 
70664e354dSChandler Carruth   /// \name Scalar TTI Implementations
71664e354dSChandler Carruth   /// @{
72664e354dSChandler Carruth 
73664e354dSChandler Carruth   virtual bool isLegalAddImmediate(int64_t imm) const;
74664e354dSChandler Carruth   virtual bool isLegalICmpImmediate(int64_t imm) const;
75664e354dSChandler Carruth   virtual bool isLegalAddressingMode(Type *Ty, GlobalValue *BaseGV,
76664e354dSChandler Carruth                                      int64_t BaseOffset, bool HasBaseReg,
77664e354dSChandler Carruth                                      int64_t Scale) const;
78bf490d4aSQuentin Colombet   virtual int getScalingFactorCost(Type *Ty, GlobalValue *BaseGV,
79bf490d4aSQuentin Colombet                                    int64_t BaseOffset, bool HasBaseReg,
80bf490d4aSQuentin Colombet                                    int64_t Scale) const;
81664e354dSChandler Carruth   virtual bool isTruncateFree(Type *Ty1, Type *Ty2) const;
82664e354dSChandler Carruth   virtual bool isTypeLegal(Type *Ty) const;
83664e354dSChandler Carruth   virtual unsigned getJumpBufAlignment() const;
84664e354dSChandler Carruth   virtual unsigned getJumpBufSize() const;
85664e354dSChandler Carruth   virtual bool shouldBuildLookupTables() const;
86664e354dSChandler Carruth 
87664e354dSChandler Carruth   /// @}
88664e354dSChandler Carruth 
89664e354dSChandler Carruth   /// \name Vector TTI Implementations
90664e354dSChandler Carruth   /// @{
91664e354dSChandler Carruth 
92664e354dSChandler Carruth   virtual unsigned getNumberOfRegisters(bool Vector) const;
93b696c36fSNadav Rotem   virtual unsigned getMaximumUnrollFactor() const;
94b1791a75SNadav Rotem   virtual unsigned getRegisterBitWidth(bool Vector) const;
95b9773871SArnold Schwaighofer   virtual unsigned getArithmeticInstrCost(unsigned Opcode, Type *Ty,
96b9773871SArnold Schwaighofer                                           OperandValueKind,
97b9773871SArnold Schwaighofer                                           OperandValueKind) const;
98664e354dSChandler Carruth   virtual unsigned getShuffleCost(ShuffleKind Kind, Type *Tp,
99664e354dSChandler Carruth                                   int Index, Type *SubTp) const;
100664e354dSChandler Carruth   virtual unsigned getCastInstrCost(unsigned Opcode, Type *Dst,
101664e354dSChandler Carruth                                     Type *Src) const;
102664e354dSChandler Carruth   virtual unsigned getCFInstrCost(unsigned Opcode) const;
103664e354dSChandler Carruth   virtual unsigned getCmpSelInstrCost(unsigned Opcode, Type *ValTy,
104664e354dSChandler Carruth                                       Type *CondTy) const;
105664e354dSChandler Carruth   virtual unsigned getVectorInstrCost(unsigned Opcode, Type *Val,
106664e354dSChandler Carruth                                       unsigned Index) const;
107664e354dSChandler Carruth   virtual unsigned getMemoryOpCost(unsigned Opcode, Type *Src,
108664e354dSChandler Carruth                                    unsigned Alignment,
109664e354dSChandler Carruth                                    unsigned AddressSpace) const;
110664e354dSChandler Carruth   virtual unsigned getIntrinsicInstrCost(Intrinsic::ID, Type *RetTy,
111664e354dSChandler Carruth                                          ArrayRef<Type*> Tys) const;
112664e354dSChandler Carruth   virtual unsigned getNumberOfParts(Type *Tp) const;
1139da9a43aSArnold Schwaighofer   virtual unsigned getAddressComputationCost(Type *Ty, bool IsComplex) const;
114664e354dSChandler Carruth 
115664e354dSChandler Carruth   /// @}
116664e354dSChandler Carruth };
117664e354dSChandler Carruth 
118664e354dSChandler Carruth }
119664e354dSChandler Carruth 
120664e354dSChandler Carruth INITIALIZE_AG_PASS(BasicTTI, TargetTransformInfo, "basictti",
121664e354dSChandler Carruth                    "Target independent code generator's TTI", true, true, false)
122664e354dSChandler Carruth char BasicTTI::ID = 0;
123664e354dSChandler Carruth 
124664e354dSChandler Carruth ImmutablePass *
125afc1036fSBill Wendling llvm::createBasicTargetTransformInfoPass(const TargetMachine *TM) {
126afc1036fSBill Wendling   return new BasicTTI(TM);
127664e354dSChandler Carruth }
128664e354dSChandler Carruth 
1298b1e021eSTom Stellard bool BasicTTI::hasBranchDivergence() const { return false; }
130664e354dSChandler Carruth 
131664e354dSChandler Carruth bool BasicTTI::isLegalAddImmediate(int64_t imm) const {
132afc1036fSBill Wendling   return getTLI()->isLegalAddImmediate(imm);
133664e354dSChandler Carruth }
134664e354dSChandler Carruth 
135664e354dSChandler Carruth bool BasicTTI::isLegalICmpImmediate(int64_t imm) const {
136afc1036fSBill Wendling   return getTLI()->isLegalICmpImmediate(imm);
137664e354dSChandler Carruth }
138664e354dSChandler Carruth 
139664e354dSChandler Carruth bool BasicTTI::isLegalAddressingMode(Type *Ty, GlobalValue *BaseGV,
140664e354dSChandler Carruth                                      int64_t BaseOffset, bool HasBaseReg,
141664e354dSChandler Carruth                                      int64_t Scale) const {
14256b31bd9SBenjamin Kramer   TargetLoweringBase::AddrMode AM;
143664e354dSChandler Carruth   AM.BaseGV = BaseGV;
144664e354dSChandler Carruth   AM.BaseOffs = BaseOffset;
145664e354dSChandler Carruth   AM.HasBaseReg = HasBaseReg;
146664e354dSChandler Carruth   AM.Scale = Scale;
147afc1036fSBill Wendling   return getTLI()->isLegalAddressingMode(AM, Ty);
148664e354dSChandler Carruth }
149664e354dSChandler Carruth 
150bf490d4aSQuentin Colombet int BasicTTI::getScalingFactorCost(Type *Ty, GlobalValue *BaseGV,
151bf490d4aSQuentin Colombet                                    int64_t BaseOffset, bool HasBaseReg,
152bf490d4aSQuentin Colombet                                    int64_t Scale) const {
153bf490d4aSQuentin Colombet   TargetLoweringBase::AddrMode AM;
154bf490d4aSQuentin Colombet   AM.BaseGV = BaseGV;
155bf490d4aSQuentin Colombet   AM.BaseOffs = BaseOffset;
156bf490d4aSQuentin Colombet   AM.HasBaseReg = HasBaseReg;
157bf490d4aSQuentin Colombet   AM.Scale = Scale;
158afc1036fSBill Wendling   return getTLI()->getScalingFactorCost(AM, Ty);
159bf490d4aSQuentin Colombet }
160bf490d4aSQuentin Colombet 
161664e354dSChandler Carruth bool BasicTTI::isTruncateFree(Type *Ty1, Type *Ty2) const {
162afc1036fSBill Wendling   return getTLI()->isTruncateFree(Ty1, Ty2);
163664e354dSChandler Carruth }
164664e354dSChandler Carruth 
165664e354dSChandler Carruth bool BasicTTI::isTypeLegal(Type *Ty) const {
166afc1036fSBill Wendling   EVT T = getTLI()->getValueType(Ty);
167afc1036fSBill Wendling   return getTLI()->isTypeLegal(T);
168664e354dSChandler Carruth }
169664e354dSChandler Carruth 
170664e354dSChandler Carruth unsigned BasicTTI::getJumpBufAlignment() const {
171afc1036fSBill Wendling   return getTLI()->getJumpBufAlignment();
172664e354dSChandler Carruth }
173664e354dSChandler Carruth 
174664e354dSChandler Carruth unsigned BasicTTI::getJumpBufSize() const {
175afc1036fSBill Wendling   return getTLI()->getJumpBufSize();
176664e354dSChandler Carruth }
177664e354dSChandler Carruth 
178664e354dSChandler Carruth bool BasicTTI::shouldBuildLookupTables() const {
179afc1036fSBill Wendling   const TargetLoweringBase *TLI = getTLI();
180664e354dSChandler Carruth   return TLI->supportJumpTables() &&
181664e354dSChandler Carruth       (TLI->isOperationLegalOrCustom(ISD::BR_JT, MVT::Other) ||
182664e354dSChandler Carruth        TLI->isOperationLegalOrCustom(ISD::BRIND, MVT::Other));
183664e354dSChandler Carruth }
184664e354dSChandler Carruth 
185664e354dSChandler Carruth //===----------------------------------------------------------------------===//
186664e354dSChandler Carruth //
187664e354dSChandler Carruth // Calls used by the vectorizers.
188664e354dSChandler Carruth //
189664e354dSChandler Carruth //===----------------------------------------------------------------------===//
190664e354dSChandler Carruth 
191664e354dSChandler Carruth unsigned BasicTTI::getScalarizationOverhead(Type *Ty, bool Insert,
192664e354dSChandler Carruth                                             bool Extract) const {
193664e354dSChandler Carruth   assert (Ty->isVectorTy() && "Can only scalarize vectors");
194664e354dSChandler Carruth   unsigned Cost = 0;
195664e354dSChandler Carruth 
196664e354dSChandler Carruth   for (int i = 0, e = Ty->getVectorNumElements(); i < e; ++i) {
197664e354dSChandler Carruth     if (Insert)
198664e354dSChandler Carruth       Cost += TopTTI->getVectorInstrCost(Instruction::InsertElement, Ty, i);
199664e354dSChandler Carruth     if (Extract)
200664e354dSChandler Carruth       Cost += TopTTI->getVectorInstrCost(Instruction::ExtractElement, Ty, i);
201664e354dSChandler Carruth   }
202664e354dSChandler Carruth 
203664e354dSChandler Carruth   return Cost;
204664e354dSChandler Carruth }
205664e354dSChandler Carruth 
206664e354dSChandler Carruth unsigned BasicTTI::getNumberOfRegisters(bool Vector) const {
207664e354dSChandler Carruth   return 1;
208664e354dSChandler Carruth }
209664e354dSChandler Carruth 
210b1791a75SNadav Rotem unsigned BasicTTI::getRegisterBitWidth(bool Vector) const {
211b1791a75SNadav Rotem   return 32;
212b1791a75SNadav Rotem }
213b1791a75SNadav Rotem 
214b696c36fSNadav Rotem unsigned BasicTTI::getMaximumUnrollFactor() const {
215b696c36fSNadav Rotem   return 1;
216b696c36fSNadav Rotem }
217b696c36fSNadav Rotem 
218b9773871SArnold Schwaighofer unsigned BasicTTI::getArithmeticInstrCost(unsigned Opcode, Type *Ty,
219b9773871SArnold Schwaighofer                                           OperandValueKind,
220b9773871SArnold Schwaighofer                                           OperandValueKind) const {
221664e354dSChandler Carruth   // Check if any of the operands are vector operands.
222afc1036fSBill Wendling   const TargetLoweringBase *TLI = getTLI();
223664e354dSChandler Carruth   int ISD = TLI->InstructionOpcodeToISD(Opcode);
224664e354dSChandler Carruth   assert(ISD && "Invalid opcode");
225664e354dSChandler Carruth 
226664e354dSChandler Carruth   std::pair<unsigned, MVT> LT = TLI->getTypeLegalizationCost(Ty);
227664e354dSChandler Carruth 
22887a0af6eSNadav Rotem   bool IsFloat = Ty->getScalarType()->isFloatingPointTy();
2290db0690aSNadav Rotem   // Assume that floating point arithmetic operations cost twice as much as
2300db0690aSNadav Rotem   // integer operations.
23187a0af6eSNadav Rotem   unsigned OpCost = (IsFloat ? 2 : 1);
23287a0af6eSNadav Rotem 
233664e354dSChandler Carruth   if (TLI->isOperationLegalOrPromote(ISD, LT.second)) {
234664e354dSChandler Carruth     // The operation is legal. Assume it costs 1.
2350db0690aSNadav Rotem     // If the type is split to multiple registers, assume that there is some
236664e354dSChandler Carruth     // overhead to this.
237664e354dSChandler Carruth     // TODO: Once we have extract/insert subvector cost we need to use them.
238664e354dSChandler Carruth     if (LT.first > 1)
23987a0af6eSNadav Rotem       return LT.first * 2 * OpCost;
24087a0af6eSNadav Rotem     return LT.first * 1 * OpCost;
241664e354dSChandler Carruth   }
242664e354dSChandler Carruth 
243664e354dSChandler Carruth   if (!TLI->isOperationExpand(ISD, LT.second)) {
244664e354dSChandler Carruth     // If the operation is custom lowered then assume
245664e354dSChandler Carruth     // thare the code is twice as expensive.
24687a0af6eSNadav Rotem     return LT.first * 2 * OpCost;
247664e354dSChandler Carruth   }
248664e354dSChandler Carruth 
249664e354dSChandler Carruth   // Else, assume that we need to scalarize this op.
250664e354dSChandler Carruth   if (Ty->isVectorTy()) {
251664e354dSChandler Carruth     unsigned Num = Ty->getVectorNumElements();
252664e354dSChandler Carruth     unsigned Cost = TopTTI->getArithmeticInstrCost(Opcode, Ty->getScalarType());
253664e354dSChandler Carruth     // return the cost of multiple scalar invocation plus the cost of inserting
254664e354dSChandler Carruth     // and extracting the values.
255664e354dSChandler Carruth     return getScalarizationOverhead(Ty, true, true) + Num * Cost;
256664e354dSChandler Carruth   }
257664e354dSChandler Carruth 
258664e354dSChandler Carruth   // We don't know anything about this scalar instruction.
25987a0af6eSNadav Rotem   return OpCost;
260664e354dSChandler Carruth }
261664e354dSChandler Carruth 
262664e354dSChandler Carruth unsigned BasicTTI::getShuffleCost(ShuffleKind Kind, Type *Tp, int Index,
263664e354dSChandler Carruth                                   Type *SubTp) const {
264664e354dSChandler Carruth   return 1;
265664e354dSChandler Carruth }
266664e354dSChandler Carruth 
267664e354dSChandler Carruth unsigned BasicTTI::getCastInstrCost(unsigned Opcode, Type *Dst,
268664e354dSChandler Carruth                                     Type *Src) const {
269afc1036fSBill Wendling   const TargetLoweringBase *TLI = getTLI();
270664e354dSChandler Carruth   int ISD = TLI->InstructionOpcodeToISD(Opcode);
271664e354dSChandler Carruth   assert(ISD && "Invalid opcode");
272664e354dSChandler Carruth 
273664e354dSChandler Carruth   std::pair<unsigned, MVT> SrcLT = TLI->getTypeLegalizationCost(Src);
274664e354dSChandler Carruth   std::pair<unsigned, MVT> DstLT = TLI->getTypeLegalizationCost(Dst);
275664e354dSChandler Carruth 
276e55aa3c8SNadav Rotem   // Check for NOOP conversions.
277e55aa3c8SNadav Rotem   if (SrcLT.first == DstLT.first &&
278e55aa3c8SNadav Rotem       SrcLT.second.getSizeInBits() == DstLT.second.getSizeInBits()) {
279664e354dSChandler Carruth 
280e55aa3c8SNadav Rotem       // Bitcast between types that are legalized to the same type are free.
281e55aa3c8SNadav Rotem       if (Opcode == Instruction::BitCast || Opcode == Instruction::Trunc)
282664e354dSChandler Carruth         return 0;
283e55aa3c8SNadav Rotem   }
284664e354dSChandler Carruth 
285664e354dSChandler Carruth   if (Opcode == Instruction::Trunc &&
286664e354dSChandler Carruth       TLI->isTruncateFree(SrcLT.second, DstLT.second))
287664e354dSChandler Carruth     return 0;
288664e354dSChandler Carruth 
289664e354dSChandler Carruth   if (Opcode == Instruction::ZExt &&
290664e354dSChandler Carruth       TLI->isZExtFree(SrcLT.second, DstLT.second))
291664e354dSChandler Carruth     return 0;
292664e354dSChandler Carruth 
293e55aa3c8SNadav Rotem   // If the cast is marked as legal (or promote) then assume low cost.
294e55aa3c8SNadav Rotem   if (TLI->isOperationLegalOrPromote(ISD, DstLT.second))
295e55aa3c8SNadav Rotem     return 1;
296e55aa3c8SNadav Rotem 
297e55aa3c8SNadav Rotem   // Handle scalar conversions.
298e55aa3c8SNadav Rotem   if (!Src->isVectorTy() && !Dst->isVectorTy()) {
299e55aa3c8SNadav Rotem 
300e55aa3c8SNadav Rotem     // Scalar bitcasts are usually free.
301e55aa3c8SNadav Rotem     if (Opcode == Instruction::BitCast)
302e55aa3c8SNadav Rotem       return 0;
303e55aa3c8SNadav Rotem 
304664e354dSChandler Carruth     // Just check the op cost. If the operation is legal then assume it costs 1.
305664e354dSChandler Carruth     if (!TLI->isOperationExpand(ISD, DstLT.second))
306664e354dSChandler Carruth       return  1;
307664e354dSChandler Carruth 
308664e354dSChandler Carruth     // Assume that illegal scalar instruction are expensive.
309664e354dSChandler Carruth     return 4;
310664e354dSChandler Carruth   }
311664e354dSChandler Carruth 
312664e354dSChandler Carruth   // Check vector-to-vector casts.
313664e354dSChandler Carruth   if (Dst->isVectorTy() && Src->isVectorTy()) {
314664e354dSChandler Carruth 
315664e354dSChandler Carruth     // If the cast is between same-sized registers, then the check is simple.
316664e354dSChandler Carruth     if (SrcLT.first == DstLT.first &&
317664e354dSChandler Carruth         SrcLT.second.getSizeInBits() == DstLT.second.getSizeInBits()) {
318664e354dSChandler Carruth 
319664e354dSChandler Carruth       // Assume that Zext is done using AND.
320664e354dSChandler Carruth       if (Opcode == Instruction::ZExt)
321664e354dSChandler Carruth         return 1;
322664e354dSChandler Carruth 
323664e354dSChandler Carruth       // Assume that sext is done using SHL and SRA.
324664e354dSChandler Carruth       if (Opcode == Instruction::SExt)
325664e354dSChandler Carruth         return 2;
326664e354dSChandler Carruth 
327664e354dSChandler Carruth       // Just check the op cost. If the operation is legal then assume it costs
328664e354dSChandler Carruth       // 1 and multiply by the type-legalization overhead.
329664e354dSChandler Carruth       if (!TLI->isOperationExpand(ISD, DstLT.second))
330664e354dSChandler Carruth         return SrcLT.first * 1;
331664e354dSChandler Carruth     }
332664e354dSChandler Carruth 
333664e354dSChandler Carruth     // If we are converting vectors and the operation is illegal, or
334664e354dSChandler Carruth     // if the vectors are legalized to different types, estimate the
335664e354dSChandler Carruth     // scalarization costs.
336664e354dSChandler Carruth     unsigned Num = Dst->getVectorNumElements();
337664e354dSChandler Carruth     unsigned Cost = TopTTI->getCastInstrCost(Opcode, Dst->getScalarType(),
338664e354dSChandler Carruth                                              Src->getScalarType());
339664e354dSChandler Carruth 
340664e354dSChandler Carruth     // Return the cost of multiple scalar invocation plus the cost of
341664e354dSChandler Carruth     // inserting and extracting the values.
342664e354dSChandler Carruth     return getScalarizationOverhead(Dst, true, true) + Num * Cost;
343664e354dSChandler Carruth   }
344664e354dSChandler Carruth 
345664e354dSChandler Carruth   // We already handled vector-to-vector and scalar-to-scalar conversions. This
346664e354dSChandler Carruth   // is where we handle bitcast between vectors and scalars. We need to assume
347664e354dSChandler Carruth   //  that the conversion is scalarized in one way or another.
348664e354dSChandler Carruth   if (Opcode == Instruction::BitCast)
349664e354dSChandler Carruth     // Illegal bitcasts are done by storing and loading from a stack slot.
350664e354dSChandler Carruth     return (Src->isVectorTy()? getScalarizationOverhead(Src, false, true):0) +
351664e354dSChandler Carruth            (Dst->isVectorTy()? getScalarizationOverhead(Dst, true, false):0);
352664e354dSChandler Carruth 
353664e354dSChandler Carruth   llvm_unreachable("Unhandled cast");
354664e354dSChandler Carruth  }
355664e354dSChandler Carruth 
356664e354dSChandler Carruth unsigned BasicTTI::getCFInstrCost(unsigned Opcode) const {
357664e354dSChandler Carruth   // Branches are assumed to be predicted.
358664e354dSChandler Carruth   return 0;
359664e354dSChandler Carruth }
360664e354dSChandler Carruth 
361664e354dSChandler Carruth unsigned BasicTTI::getCmpSelInstrCost(unsigned Opcode, Type *ValTy,
362664e354dSChandler Carruth                                       Type *CondTy) const {
363afc1036fSBill Wendling   const TargetLoweringBase *TLI = getTLI();
364664e354dSChandler Carruth   int ISD = TLI->InstructionOpcodeToISD(Opcode);
365664e354dSChandler Carruth   assert(ISD && "Invalid opcode");
366664e354dSChandler Carruth 
367664e354dSChandler Carruth   // Selects on vectors are actually vector selects.
368664e354dSChandler Carruth   if (ISD == ISD::SELECT) {
369664e354dSChandler Carruth     assert(CondTy && "CondTy must exist");
370664e354dSChandler Carruth     if (CondTy->isVectorTy())
371664e354dSChandler Carruth       ISD = ISD::VSELECT;
372664e354dSChandler Carruth   }
373664e354dSChandler Carruth 
374664e354dSChandler Carruth   std::pair<unsigned, MVT> LT = TLI->getTypeLegalizationCost(ValTy);
375664e354dSChandler Carruth 
376664e354dSChandler Carruth   if (!TLI->isOperationExpand(ISD, LT.second)) {
377664e354dSChandler Carruth     // The operation is legal. Assume it costs 1. Multiply
378664e354dSChandler Carruth     // by the type-legalization overhead.
379664e354dSChandler Carruth     return LT.first * 1;
380664e354dSChandler Carruth   }
381664e354dSChandler Carruth 
382664e354dSChandler Carruth   // Otherwise, assume that the cast is scalarized.
383664e354dSChandler Carruth   if (ValTy->isVectorTy()) {
384664e354dSChandler Carruth     unsigned Num = ValTy->getVectorNumElements();
385664e354dSChandler Carruth     if (CondTy)
386664e354dSChandler Carruth       CondTy = CondTy->getScalarType();
387664e354dSChandler Carruth     unsigned Cost = TopTTI->getCmpSelInstrCost(Opcode, ValTy->getScalarType(),
388664e354dSChandler Carruth                                                CondTy);
389664e354dSChandler Carruth 
390664e354dSChandler Carruth     // Return the cost of multiple scalar invocation plus the cost of inserting
391664e354dSChandler Carruth     // and extracting the values.
392664e354dSChandler Carruth     return getScalarizationOverhead(ValTy, true, false) + Num * Cost;
393664e354dSChandler Carruth   }
394664e354dSChandler Carruth 
395664e354dSChandler Carruth   // Unknown scalar opcode.
396664e354dSChandler Carruth   return 1;
397664e354dSChandler Carruth }
398664e354dSChandler Carruth 
399664e354dSChandler Carruth unsigned BasicTTI::getVectorInstrCost(unsigned Opcode, Type *Val,
400664e354dSChandler Carruth                                       unsigned Index) const {
401664e354dSChandler Carruth   return 1;
402664e354dSChandler Carruth }
403664e354dSChandler Carruth 
404664e354dSChandler Carruth unsigned BasicTTI::getMemoryOpCost(unsigned Opcode, Type *Src,
405664e354dSChandler Carruth                                    unsigned Alignment,
406664e354dSChandler Carruth                                    unsigned AddressSpace) const {
407664e354dSChandler Carruth   assert(!Src->isVoidTy() && "Invalid type");
408afc1036fSBill Wendling   std::pair<unsigned, MVT> LT = getTLI()->getTypeLegalizationCost(Src);
409664e354dSChandler Carruth 
410664e354dSChandler Carruth   // Assume that all loads of legal types cost 1.
411664e354dSChandler Carruth   return LT.first;
412664e354dSChandler Carruth }
413664e354dSChandler Carruth 
414f7cfac7aSBenjamin Kramer unsigned BasicTTI::getIntrinsicInstrCost(Intrinsic::ID IID, Type *RetTy,
415664e354dSChandler Carruth                                          ArrayRef<Type *> Tys) const {
416f7cfac7aSBenjamin Kramer   unsigned ISD = 0;
417f7cfac7aSBenjamin Kramer   switch (IID) {
418f7cfac7aSBenjamin Kramer   default: {
419f7cfac7aSBenjamin Kramer     // Assume that we need to scalarize this intrinsic.
420664e354dSChandler Carruth     unsigned ScalarizationCost = 0;
421664e354dSChandler Carruth     unsigned ScalarCalls = 1;
422664e354dSChandler Carruth     if (RetTy->isVectorTy()) {
423664e354dSChandler Carruth       ScalarizationCost = getScalarizationOverhead(RetTy, true, false);
424664e354dSChandler Carruth       ScalarCalls = std::max(ScalarCalls, RetTy->getVectorNumElements());
425664e354dSChandler Carruth     }
426664e354dSChandler Carruth     for (unsigned i = 0, ie = Tys.size(); i != ie; ++i) {
427664e354dSChandler Carruth       if (Tys[i]->isVectorTy()) {
428664e354dSChandler Carruth         ScalarizationCost += getScalarizationOverhead(Tys[i], false, true);
429664e354dSChandler Carruth         ScalarCalls = std::max(ScalarCalls, RetTy->getVectorNumElements());
430664e354dSChandler Carruth       }
431664e354dSChandler Carruth     }
432f7cfac7aSBenjamin Kramer 
433664e354dSChandler Carruth     return ScalarCalls + ScalarizationCost;
434664e354dSChandler Carruth   }
435f7cfac7aSBenjamin Kramer   // Look for intrinsics that can be lowered directly or turned into a scalar
436f7cfac7aSBenjamin Kramer   // intrinsic call.
437f7cfac7aSBenjamin Kramer   case Intrinsic::sqrt:    ISD = ISD::FSQRT;  break;
438f7cfac7aSBenjamin Kramer   case Intrinsic::sin:     ISD = ISD::FSIN;   break;
439f7cfac7aSBenjamin Kramer   case Intrinsic::cos:     ISD = ISD::FCOS;   break;
440f7cfac7aSBenjamin Kramer   case Intrinsic::exp:     ISD = ISD::FEXP;   break;
441f7cfac7aSBenjamin Kramer   case Intrinsic::exp2:    ISD = ISD::FEXP2;  break;
442f7cfac7aSBenjamin Kramer   case Intrinsic::log:     ISD = ISD::FLOG;   break;
443f7cfac7aSBenjamin Kramer   case Intrinsic::log10:   ISD = ISD::FLOG10; break;
444f7cfac7aSBenjamin Kramer   case Intrinsic::log2:    ISD = ISD::FLOG2;  break;
445f7cfac7aSBenjamin Kramer   case Intrinsic::fabs:    ISD = ISD::FABS;   break;
446*0c5c01aaSHal Finkel   case Intrinsic::copysign: ISD = ISD::FCOPYSIGN; break;
447f7cfac7aSBenjamin Kramer   case Intrinsic::floor:   ISD = ISD::FFLOOR; break;
448f7cfac7aSBenjamin Kramer   case Intrinsic::ceil:    ISD = ISD::FCEIL;  break;
449f7cfac7aSBenjamin Kramer   case Intrinsic::trunc:   ISD = ISD::FTRUNC; break;
450ec474f28SHal Finkel   case Intrinsic::nearbyint:
451ec474f28SHal Finkel                            ISD = ISD::FNEARBYINT; break;
452f7cfac7aSBenjamin Kramer   case Intrinsic::rint:    ISD = ISD::FRINT;  break;
453171817eeSHal Finkel   case Intrinsic::round:   ISD = ISD::FROUND; break;
454f7cfac7aSBenjamin Kramer   case Intrinsic::pow:     ISD = ISD::FPOW;   break;
455f7cfac7aSBenjamin Kramer   case Intrinsic::fma:     ISD = ISD::FMA;    break;
456f7cfac7aSBenjamin Kramer   case Intrinsic::fmuladd: ISD = ISD::FMA;    break; // FIXME: mul + add?
457a7cd6bf3SArnold Schwaighofer   case Intrinsic::lifetime_start:
458a7cd6bf3SArnold Schwaighofer   case Intrinsic::lifetime_end:
459a7cd6bf3SArnold Schwaighofer     return 0;
460f7cfac7aSBenjamin Kramer   }
461f7cfac7aSBenjamin Kramer 
462afc1036fSBill Wendling   const TargetLoweringBase *TLI = getTLI();
463f7cfac7aSBenjamin Kramer   std::pair<unsigned, MVT> LT = TLI->getTypeLegalizationCost(RetTy);
464f7cfac7aSBenjamin Kramer 
465f7cfac7aSBenjamin Kramer   if (TLI->isOperationLegalOrPromote(ISD, LT.second)) {
466f7cfac7aSBenjamin Kramer     // The operation is legal. Assume it costs 1.
467f7cfac7aSBenjamin Kramer     // If the type is split to multiple registers, assume that thre is some
468f7cfac7aSBenjamin Kramer     // overhead to this.
469f7cfac7aSBenjamin Kramer     // TODO: Once we have extract/insert subvector cost we need to use them.
470f7cfac7aSBenjamin Kramer     if (LT.first > 1)
471f7cfac7aSBenjamin Kramer       return LT.first * 2;
472f7cfac7aSBenjamin Kramer     return LT.first * 1;
473f7cfac7aSBenjamin Kramer   }
474f7cfac7aSBenjamin Kramer 
475f7cfac7aSBenjamin Kramer   if (!TLI->isOperationExpand(ISD, LT.second)) {
476f7cfac7aSBenjamin Kramer     // If the operation is custom lowered then assume
477f7cfac7aSBenjamin Kramer     // thare the code is twice as expensive.
478f7cfac7aSBenjamin Kramer     return LT.first * 2;
479f7cfac7aSBenjamin Kramer   }
480f7cfac7aSBenjamin Kramer 
481f7cfac7aSBenjamin Kramer   // Else, assume that we need to scalarize this intrinsic. For math builtins
482f7cfac7aSBenjamin Kramer   // this will emit a costly libcall, adding call overhead and spills. Make it
483f7cfac7aSBenjamin Kramer   // very expensive.
484f7cfac7aSBenjamin Kramer   if (RetTy->isVectorTy()) {
485f7cfac7aSBenjamin Kramer     unsigned Num = RetTy->getVectorNumElements();
486f7cfac7aSBenjamin Kramer     unsigned Cost = TopTTI->getIntrinsicInstrCost(IID, RetTy->getScalarType(),
487f7cfac7aSBenjamin Kramer                                                   Tys);
488f7cfac7aSBenjamin Kramer     return 10 * Cost * Num;
489f7cfac7aSBenjamin Kramer   }
490f7cfac7aSBenjamin Kramer 
491f7cfac7aSBenjamin Kramer   // This is going to be turned into a library call, make it expensive.
492f7cfac7aSBenjamin Kramer   return 10;
493f7cfac7aSBenjamin Kramer }
494664e354dSChandler Carruth 
495664e354dSChandler Carruth unsigned BasicTTI::getNumberOfParts(Type *Tp) const {
496afc1036fSBill Wendling   std::pair<unsigned, MVT> LT = getTLI()->getTypeLegalizationCost(Tp);
497664e354dSChandler Carruth   return LT.first;
498664e354dSChandler Carruth }
499594fa2dcSArnold Schwaighofer 
5009da9a43aSArnold Schwaighofer unsigned BasicTTI::getAddressComputationCost(Type *Ty, bool IsComplex) const {
501594fa2dcSArnold Schwaighofer   return 0;
502594fa2dcSArnold Schwaighofer }
503