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Nadav Rotemcbd9a192012-10-18 23:22:48 +00001// llvm/Target/TargetTransformImpl.cpp - Target Loop Trans Info ---*- C++ -*-=//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9
10#include "llvm/Target/TargetTransformImpl.h"
11#include "llvm/Target/TargetLowering.h"
Nadav Rotem2652c502012-10-24 23:47:38 +000012#include <utility>
Nadav Rotemcbd9a192012-10-18 23:22:48 +000013
14using namespace llvm;
15
Nadav Rotem27048342012-10-24 17:22:41 +000016//===----------------------------------------------------------------------===//
17//
18// Calls used by scalar transformations.
19//
20//===----------------------------------------------------------------------===//
21
Nadav Rotemcbd9a192012-10-18 23:22:48 +000022bool ScalarTargetTransformImpl::isLegalAddImmediate(int64_t imm) const {
23 return TLI->isLegalAddImmediate(imm);
24}
25
26bool ScalarTargetTransformImpl::isLegalICmpImmediate(int64_t imm) const {
27 return TLI->isLegalICmpImmediate(imm);
28}
29
30bool ScalarTargetTransformImpl::isLegalAddressingMode(const AddrMode &AM,
Hans Wennborgb9051db2012-10-29 16:26:52 +000031 Type *Ty) const {
Nadav Rotemcbd9a192012-10-18 23:22:48 +000032 return TLI->isLegalAddressingMode(AM, Ty);
33}
34
35bool ScalarTargetTransformImpl::isTruncateFree(Type *Ty1, Type *Ty2) const {
36 return TLI->isTruncateFree(Ty1, Ty2);
37}
38
39bool ScalarTargetTransformImpl::isTypeLegal(Type *Ty) const {
40 EVT T = TLI->getValueType(Ty);
41 return TLI->isTypeLegal(T);
42}
43
44unsigned ScalarTargetTransformImpl::getJumpBufAlignment() const {
45 return TLI->getJumpBufAlignment();
46}
47
48unsigned ScalarTargetTransformImpl::getJumpBufSize() const {
49 return TLI->getJumpBufSize();
50}
Nadav Rotem27048342012-10-24 17:22:41 +000051
Hans Wennborg04d7d132012-10-30 11:23:25 +000052bool ScalarTargetTransformImpl::shouldBuildLookupTables() const {
53 return TLI->supportJumpTables() &&
54 (TLI->isOperationLegalOrCustom(ISD::BR_JT, MVT::Other) ||
55 TLI->isOperationLegalOrCustom(ISD::BRIND, MVT::Other));
56}
57
Nadav Rotem27048342012-10-24 17:22:41 +000058//===----------------------------------------------------------------------===//
59//
60// Calls used by the vectorizers.
61//
62//===----------------------------------------------------------------------===//
Nadav Roteme6237022012-11-05 19:32:46 +000063int VectorTargetTransformImpl::InstructionOpcodeToISD(unsigned Opcode) const {
Renato Goline5372d62012-10-26 12:24:52 +000064 enum InstructionOpcodes {
65#define HANDLE_INST(NUM, OPCODE, CLASS) OPCODE = NUM,
66#define LAST_OTHER_INST(NUM) InstructionOpcodesCount = NUM
67#include "llvm/Instruction.def"
68 };
69 switch (static_cast<InstructionOpcodes>(Opcode)) {
70 case Ret: return 0;
71 case Br: return 0;
72 case Switch: return 0;
73 case IndirectBr: return 0;
74 case Invoke: return 0;
75 case Resume: return 0;
76 case Unreachable: return 0;
77 case Add: return ISD::ADD;
78 case FAdd: return ISD::FADD;
79 case Sub: return ISD::SUB;
80 case FSub: return ISD::FSUB;
81 case Mul: return ISD::MUL;
82 case FMul: return ISD::FMUL;
83 case UDiv: return ISD::UDIV;
84 case SDiv: return ISD::UDIV;
85 case FDiv: return ISD::FDIV;
86 case URem: return ISD::UREM;
87 case SRem: return ISD::SREM;
88 case FRem: return ISD::FREM;
89 case Shl: return ISD::SHL;
90 case LShr: return ISD::SRL;
91 case AShr: return ISD::SRA;
92 case And: return ISD::AND;
93 case Or: return ISD::OR;
94 case Xor: return ISD::XOR;
95 case Alloca: return 0;
96 case Load: return ISD::LOAD;
97 case Store: return ISD::STORE;
98 case GetElementPtr: return 0;
99 case Fence: return 0;
100 case AtomicCmpXchg: return 0;
101 case AtomicRMW: return 0;
102 case Trunc: return ISD::TRUNCATE;
103 case ZExt: return ISD::ZERO_EXTEND;
Nadav Rotem2d1528b2012-11-05 22:20:53 +0000104 case SExt: return ISD::SIGN_EXTEND;
Renato Goline5372d62012-10-26 12:24:52 +0000105 case FPToUI: return ISD::FP_TO_UINT;
106 case FPToSI: return ISD::FP_TO_SINT;
107 case UIToFP: return ISD::UINT_TO_FP;
108 case SIToFP: return ISD::SINT_TO_FP;
109 case FPTrunc: return ISD::FP_ROUND;
110 case FPExt: return ISD::FP_EXTEND;
111 case PtrToInt: return ISD::BITCAST;
112 case IntToPtr: return ISD::BITCAST;
113 case BitCast: return ISD::BITCAST;
114 case ICmp: return ISD::SETCC;
115 case FCmp: return ISD::SETCC;
116 case PHI: return 0;
117 case Call: return 0;
118 case Select: return ISD::SELECT;
119 case UserOp1: return 0;
120 case UserOp2: return 0;
121 case VAArg: return 0;
122 case ExtractElement: return ISD::EXTRACT_VECTOR_ELT;
123 case InsertElement: return ISD::INSERT_VECTOR_ELT;
124 case ShuffleVector: return ISD::VECTOR_SHUFFLE;
125 case ExtractValue: return ISD::MERGE_VALUES;
126 case InsertValue: return ISD::MERGE_VALUES;
127 case LandingPad: return 0;
128 }
Nadav Rotem2652c502012-10-24 23:47:38 +0000129
Renato Goline5372d62012-10-26 12:24:52 +0000130 llvm_unreachable("Unknown instruction type encountered!");
Nadav Rotem2652c502012-10-24 23:47:38 +0000131}
132
Nadav Roteme6237022012-11-05 19:32:46 +0000133std::pair<unsigned, MVT>
Nadav Rotem2652c502012-10-24 23:47:38 +0000134VectorTargetTransformImpl::getTypeLegalizationCost(LLVMContext &C,
Nadav Rotema5a3a612012-10-26 23:49:28 +0000135 EVT Ty) const {
Nadav Rotem2652c502012-10-24 23:47:38 +0000136 unsigned Cost = 1;
137 // We keep legalizing the type until we find a legal kind. We assume that
138 // the only operation that costs anything is the split. After splitting
139 // we need to handle two types.
140 while (true) {
141 TargetLowering::LegalizeKind LK = TLI->getTypeConversion(C, Ty);
142
143 if (LK.first == TargetLowering::TypeLegal)
Nadav Roteme6237022012-11-05 19:32:46 +0000144 return std::make_pair(Cost, Ty.getSimpleVT());
Nadav Rotem2652c502012-10-24 23:47:38 +0000145
Nadav Rotem75138f52012-11-05 21:11:10 +0000146 if (LK.first == TargetLowering::TypeSplitVector ||
147 LK.first == TargetLowering::TypeExpandInteger)
Nadav Rotem2652c502012-10-24 23:47:38 +0000148 Cost *= 2;
149
150 // Keep legalizing the type.
151 Ty = LK.second;
152 }
153}
Nadav Rotem27048342012-10-24 17:22:41 +0000154
155unsigned
Nadav Rotema5a3a612012-10-26 23:49:28 +0000156VectorTargetTransformImpl::getScalarizationOverhead(Type *Ty,
157 bool Insert,
158 bool Extract) const {
159 assert (Ty->isVectorTy() && "Can only scalarize vectors");
Hans Wennborgb9051db2012-10-29 16:26:52 +0000160 unsigned Cost = 0;
Nadav Rotem2652c502012-10-24 23:47:38 +0000161
Nadav Rotema5a3a612012-10-26 23:49:28 +0000162 for (int i = 0, e = Ty->getVectorNumElements(); i < e; ++i) {
163 if (Insert)
164 Cost += getVectorInstrCost(Instruction::InsertElement, Ty, i);
165 if (Extract)
166 Cost += getVectorInstrCost(Instruction::ExtractElement, Ty, i);
Nadav Rotem1e19e462012-10-25 18:17:48 +0000167 }
168
Nadav Rotema5a3a612012-10-26 23:49:28 +0000169 return Cost;
170}
Nadav Rotem2652c502012-10-24 23:47:38 +0000171
Nadav Rotema5a3a612012-10-26 23:49:28 +0000172unsigned VectorTargetTransformImpl::getArithmeticInstrCost(unsigned Opcode,
173 Type *Ty) const {
174 // Check if any of the operands are vector operands.
175 int ISD = InstructionOpcodeToISD(Opcode);
176 assert(ISD && "Invalid opcode");
Nadav Rotem2652c502012-10-24 23:47:38 +0000177
Nadav Roteme6237022012-11-05 19:32:46 +0000178 std::pair<unsigned, MVT> LT =
Nadav Rotema5a3a612012-10-26 23:49:28 +0000179 getTypeLegalizationCost(Ty->getContext(), TLI->getValueType(Ty));
180
181 if (!TLI->isOperationExpand(ISD, LT.second)) {
Nadav Rotem2652c502012-10-24 23:47:38 +0000182 // The operation is legal. Assume it costs 1. Multiply
183 // by the type-legalization overhead.
184 return LT.first * 1;
185 }
186
Nadav Rotema5a3a612012-10-26 23:49:28 +0000187 // Else, assume that we need to scalarize this op.
188 if (Ty->isVectorTy()) {
189 unsigned Num = Ty->getVectorNumElements();
190 unsigned Cost = getArithmeticInstrCost(Opcode, Ty->getScalarType());
191 // return the cost of multiple scalar invocation plus the cost of inserting
192 // and extracting the values.
193 return getScalarizationOverhead(Ty, true, true) + Num * Cost;
194 }
Nadav Rotem2652c502012-10-24 23:47:38 +0000195
Nadav Rotema5a3a612012-10-26 23:49:28 +0000196 // We don't know anything about this scalar instruction.
197 return 1;
198}
199
200unsigned VectorTargetTransformImpl::getBroadcastCost(Type *Tp) const {
201 return 1;
202}
203
204unsigned VectorTargetTransformImpl::getCastInstrCost(unsigned Opcode, Type *Dst,
205 Type *Src) const {
Nadav Rotema5a3a612012-10-26 23:49:28 +0000206 int ISD = InstructionOpcodeToISD(Opcode);
207 assert(ISD && "Invalid opcode");
208
Nadav Roteme6237022012-11-05 19:32:46 +0000209 std::pair<unsigned, MVT> SrcLT =
Nadav Rotema5a3a612012-10-26 23:49:28 +0000210 getTypeLegalizationCost(Src->getContext(), TLI->getValueType(Src));
211
Nadav Roteme6237022012-11-05 19:32:46 +0000212 std::pair<unsigned, MVT> DstLT =
Nadav Rotema5a3a612012-10-26 23:49:28 +0000213 getTypeLegalizationCost(Dst->getContext(), TLI->getValueType(Dst));
214
Nadav Rotem0dba9a92012-10-31 20:52:26 +0000215 // Handle scalar conversions.
216 if (!Src->isVectorTy() && !Dst->isVectorTy()) {
Nadav Rotem2b0c96f2012-11-02 21:47:47 +0000217
218 // Scalar bitcasts and truncs are usually free.
219 if (Opcode == Instruction::BitCast || Opcode == Instruction::Trunc)
220 return 0;
221
Nadav Rotem0dba9a92012-10-31 20:52:26 +0000222 // Just check the op cost. If the operation is legal then assume it costs 1.
223 if (!TLI->isOperationExpand(ISD, DstLT.second))
224 return 1;
225
226 // Assume that illegal scalar instruction are expensive.
227 return 4;
228 }
229
230 // Check vector-to-vector casts.
231 if (Dst->isVectorTy() && Src->isVectorTy()) {
232
233 // If the cast is between same-sized registers, then the check is simple.
234 if (SrcLT.first == DstLT.first &&
235 SrcLT.second.getSizeInBits() == DstLT.second.getSizeInBits()) {
236
237 // Bitcast between types that are legalized to the same type are free.
Nadav Rotem2d1528b2012-11-05 22:20:53 +0000238 if (Opcode == Instruction::BitCast || Opcode == Instruction::Trunc)
Nadav Rotem0dba9a92012-10-31 20:52:26 +0000239 return 0;
240
Nadav Rotem2d1528b2012-11-05 22:20:53 +0000241 // Assume that Zext is done using AND.
242 if (Opcode == Instruction::ZExt)
243 return 1;
244
245 // Assume that sext is done using SHL and SRA.
246 if (Opcode == Instruction::SExt)
247 return 2;
248
Nadav Rotem0dba9a92012-10-31 20:52:26 +0000249 // Just check the op cost. If the operation is legal then assume it costs
250 // 1 and multiply by the type-legalization overhead.
251 if (!TLI->isOperationExpand(ISD, DstLT.second))
252 return SrcLT.first * 1;
Nadav Rotema5a3a612012-10-26 23:49:28 +0000253 }
Nadav Rotema5a3a612012-10-26 23:49:28 +0000254
Nadav Rotem0dba9a92012-10-31 20:52:26 +0000255 // If we are converting vectors and the operation is illegal, or
256 // if the vectors are legalized to different types, estimate the
257 // scalarization costs.
Nadav Rotema5a3a612012-10-26 23:49:28 +0000258 unsigned Num = Dst->getVectorNumElements();
Hal Finkelc588e0e2012-10-30 02:41:57 +0000259 unsigned Cost = getCastInstrCost(Opcode, Dst->getScalarType(),
260 Src->getScalarType());
Nadav Rotem0dba9a92012-10-31 20:52:26 +0000261
262 // Return the cost of multiple scalar invocation plus the cost of
263 // inserting and extracting the values.
264 return getScalarizationOverhead(Dst, true, true) + Num * Cost;
Hal Finkelc588e0e2012-10-30 02:41:57 +0000265 }
266
Nadav Rotem0dba9a92012-10-31 20:52:26 +0000267 // We already handled vector-to-vector and scalar-to-scalar conversions. This
268 // is where we handle bitcast between vectors and scalars. We need to assume
269 // that the conversion is scalarized in one way or another.
270 if (Opcode == Instruction::BitCast)
271 // Illegal bitcasts are done by storing and loading from a stack slot.
272 return (Src->isVectorTy()? getScalarizationOverhead(Src, false, true):0) +
273 (Dst->isVectorTy()? getScalarizationOverhead(Dst, true, false):0);
274
275 llvm_unreachable("Unhandled cast");
276 }
Nadav Rotema5a3a612012-10-26 23:49:28 +0000277
278unsigned VectorTargetTransformImpl::getCFInstrCost(unsigned Opcode) const {
279 return 1;
280}
281
282unsigned VectorTargetTransformImpl::getCmpSelInstrCost(unsigned Opcode,
283 Type *ValTy,
284 Type *CondTy) const {
285 int ISD = InstructionOpcodeToISD(Opcode);
286 assert(ISD && "Invalid opcode");
Hans Wennborgb9051db2012-10-29 16:26:52 +0000287
Nadav Rotema5a3a612012-10-26 23:49:28 +0000288 // Selects on vectors are actually vector selects.
289 if (ISD == ISD::SELECT) {
290 assert(CondTy && "CondTy must exist");
291 if (CondTy->isVectorTy())
292 ISD = ISD::VSELECT;
293 }
294
Nadav Roteme6237022012-11-05 19:32:46 +0000295 std::pair<unsigned, MVT> LT =
Nadav Rotema5a3a612012-10-26 23:49:28 +0000296 getTypeLegalizationCost(ValTy->getContext(), TLI->getValueType(ValTy));
297
298 if (!TLI->isOperationExpand(ISD, LT.second)) {
299 // The operation is legal. Assume it costs 1. Multiply
300 // by the type-legalization overhead.
301 return LT.first * 1;
302 }
303
304 // Otherwise, assume that the cast is scalarized.
305 if (ValTy->isVectorTy()) {
306 unsigned Num = ValTy->getVectorNumElements();
307 if (CondTy)
308 CondTy = CondTy->getScalarType();
309 unsigned Cost = getCmpSelInstrCost(Opcode, ValTy->getScalarType(),
310 CondTy);
311
Nadav Rotem75138f52012-11-05 21:11:10 +0000312 // Return the cost of multiple scalar invocation plus the cost of inserting
Nadav Rotema5a3a612012-10-26 23:49:28 +0000313 // and extracting the values.
314 return getScalarizationOverhead(ValTy, true, false) + Num * Cost;
315 }
316
Nadav Roteme4981602012-10-29 05:28:35 +0000317 // Unknown scalar opcode.
Nadav Rotema5a3a612012-10-26 23:49:28 +0000318 return 1;
319}
320
Nadav Rotema5a3a612012-10-26 23:49:28 +0000321unsigned VectorTargetTransformImpl::getVectorInstrCost(unsigned Opcode,
322 Type *Val,
323 unsigned Index) const {
324 return 1;
Nadav Rotem27048342012-10-24 17:22:41 +0000325}
326
327unsigned
Nadav Rotema5a3a612012-10-26 23:49:28 +0000328VectorTargetTransformImpl::getInstrCost(unsigned Opcode, Type *Ty1,
329 Type *Ty2) const {
Nadav Rotem27048342012-10-24 17:22:41 +0000330 return 1;
331}
332
333unsigned
334VectorTargetTransformImpl::getMemoryOpCost(unsigned Opcode, Type *Src,
335 unsigned Alignment,
336 unsigned AddressSpace) const {
Nadav Roteme6237022012-11-05 19:32:46 +0000337 std::pair<unsigned, MVT> LT =
Nadav Rotem2652c502012-10-24 23:47:38 +0000338 getTypeLegalizationCost(Src->getContext(), TLI->getValueType(Src));
Nadav Rotema5a3a612012-10-26 23:49:28 +0000339
Nadav Rotem2652c502012-10-24 23:47:38 +0000340 // Assume that all loads of legal types cost 1.
341 return LT.first;
Nadav Rotem27048342012-10-24 17:22:41 +0000342}
Hal Finkel102a7c02012-10-26 04:28:02 +0000343
344unsigned
345VectorTargetTransformImpl::getNumberOfParts(Type *Tp) const {
Nadav Roteme6237022012-11-05 19:32:46 +0000346 std::pair<unsigned, MVT> LT =
Nadav Roteme4981602012-10-29 05:28:35 +0000347 getTypeLegalizationCost(Tp->getContext(), TLI->getValueType(Tp));
348 return LT.first;
Hal Finkel102a7c02012-10-26 04:28:02 +0000349}