1 //===- DAGCombiner.cpp - Implement a DAG node combiner --------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This pass combines dag nodes to form fewer, simpler DAG nodes. It can be run 11 // both before and after the DAG is legalized. 12 // 13 // This pass is not a substitute for the LLVM IR instcombine pass. This pass is 14 // primarily intended to handle simplification opportunities that are implicit 15 // in the LLVM IR and exposed by the various codegen lowering phases. 16 // 17 //===----------------------------------------------------------------------===// 18 19 #include "llvm/ADT/APFloat.h" 20 #include "llvm/ADT/APInt.h" 21 #include "llvm/ADT/ArrayRef.h" 22 #include "llvm/ADT/DenseMap.h" 23 #include "llvm/ADT/None.h" 24 #include "llvm/ADT/Optional.h" 25 #include "llvm/ADT/STLExtras.h" 26 #include "llvm/ADT/SetVector.h" 27 #include "llvm/ADT/SmallBitVector.h" 28 #include "llvm/ADT/SmallPtrSet.h" 29 #include "llvm/ADT/SmallSet.h" 30 #include "llvm/ADT/SmallVector.h" 31 #include "llvm/ADT/Statistic.h" 32 #include "llvm/Analysis/AliasAnalysis.h" 33 #include "llvm/Analysis/MemoryLocation.h" 34 #include "llvm/CodeGen/DAGCombine.h" 35 #include "llvm/CodeGen/ISDOpcodes.h" 36 #include "llvm/CodeGen/MachineFrameInfo.h" 37 #include "llvm/CodeGen/MachineFunction.h" 38 #include "llvm/CodeGen/MachineMemOperand.h" 39 #include "llvm/CodeGen/MachineValueType.h" 40 #include "llvm/CodeGen/RuntimeLibcalls.h" 41 #include "llvm/CodeGen/SelectionDAG.h" 42 #include "llvm/CodeGen/SelectionDAGAddressAnalysis.h" 43 #include "llvm/CodeGen/SelectionDAGNodes.h" 44 #include "llvm/CodeGen/SelectionDAGTargetInfo.h" 45 #include "llvm/CodeGen/TargetLowering.h" 46 #include "llvm/CodeGen/TargetRegisterInfo.h" 47 #include "llvm/CodeGen/TargetSubtargetInfo.h" 48 #include "llvm/CodeGen/ValueTypes.h" 49 #include "llvm/IR/Attributes.h" 50 #include "llvm/IR/Constant.h" 51 #include "llvm/IR/DataLayout.h" 52 #include "llvm/IR/DerivedTypes.h" 53 #include "llvm/IR/Function.h" 54 #include "llvm/IR/LLVMContext.h" 55 #include "llvm/IR/Metadata.h" 56 #include "llvm/Support/Casting.h" 57 #include "llvm/Support/CodeGen.h" 58 #include "llvm/Support/CommandLine.h" 59 #include "llvm/Support/Compiler.h" 60 #include "llvm/Support/Debug.h" 61 #include "llvm/Support/ErrorHandling.h" 62 #include "llvm/Support/KnownBits.h" 63 #include "llvm/Support/MathExtras.h" 64 #include "llvm/Support/raw_ostream.h" 65 #include "llvm/Target/TargetMachine.h" 66 #include "llvm/Target/TargetOptions.h" 67 #include <algorithm> 68 #include <cassert> 69 #include <cstdint> 70 #include <functional> 71 #include <iterator> 72 #include <string> 73 #include <tuple> 74 #include <utility> 75 #include <vector> 76 77 using namespace llvm; 78 79 #define DEBUG_TYPE "dagcombine" 80 81 STATISTIC(NodesCombined , "Number of dag nodes combined"); 82 STATISTIC(PreIndexedNodes , "Number of pre-indexed nodes created"); 83 STATISTIC(PostIndexedNodes, "Number of post-indexed nodes created"); 84 STATISTIC(OpsNarrowed , "Number of load/op/store narrowed"); 85 STATISTIC(LdStFP2Int , "Number of fp load/store pairs transformed to int"); 86 STATISTIC(SlicedLoads, "Number of load sliced"); 87 88 static cl::opt<bool> 89 CombinerGlobalAA("combiner-global-alias-analysis", cl::Hidden, 90 cl::desc("Enable DAG combiner's use of IR alias analysis")); 91 92 static cl::opt<bool> 93 UseTBAA("combiner-use-tbaa", cl::Hidden, cl::init(true), 94 cl::desc("Enable DAG combiner's use of TBAA")); 95 96 #ifndef NDEBUG 97 static cl::opt<std::string> 98 CombinerAAOnlyFunc("combiner-aa-only-func", cl::Hidden, 99 cl::desc("Only use DAG-combiner alias analysis in this" 100 " function")); 101 #endif 102 103 /// Hidden option to stress test load slicing, i.e., when this option 104 /// is enabled, load slicing bypasses most of its profitability guards. 105 static cl::opt<bool> 106 StressLoadSlicing("combiner-stress-load-slicing", cl::Hidden, 107 cl::desc("Bypass the profitability model of load slicing"), 108 cl::init(false)); 109 110 static cl::opt<bool> 111 MaySplitLoadIndex("combiner-split-load-index", cl::Hidden, cl::init(true), 112 cl::desc("DAG combiner may split indexing from loads")); 113 114 namespace { 115 116 class DAGCombiner { 117 SelectionDAG &DAG; 118 const TargetLowering &TLI; 119 CombineLevel Level; 120 CodeGenOpt::Level OptLevel; 121 bool LegalOperations = false; 122 bool LegalTypes = false; 123 bool ForCodeSize; 124 125 /// \brief Worklist of all of the nodes that need to be simplified. 126 /// 127 /// This must behave as a stack -- new nodes to process are pushed onto the 128 /// back and when processing we pop off of the back. 129 /// 130 /// The worklist will not contain duplicates but may contain null entries 131 /// due to nodes being deleted from the underlying DAG. 132 SmallVector<SDNode *, 64> Worklist; 133 134 /// \brief Mapping from an SDNode to its position on the worklist. 135 /// 136 /// This is used to find and remove nodes from the worklist (by nulling 137 /// them) when they are deleted from the underlying DAG. It relies on 138 /// stable indices of nodes within the worklist. 139 DenseMap<SDNode *, unsigned> WorklistMap; 140 141 /// \brief Set of nodes which have been combined (at least once). 142 /// 143 /// This is used to allow us to reliably add any operands of a DAG node 144 /// which have not yet been combined to the worklist. 145 SmallPtrSet<SDNode *, 32> CombinedNodes; 146 147 // AA - Used for DAG load/store alias analysis. 148 AliasAnalysis *AA; 149 150 /// When an instruction is simplified, add all users of the instruction to 151 /// the work lists because they might get more simplified now. 152 void AddUsersToWorklist(SDNode *N) { 153 for (SDNode *Node : N->uses()) 154 AddToWorklist(Node); 155 } 156 157 /// Call the node-specific routine that folds each particular type of node. 158 SDValue visit(SDNode *N); 159 160 public: 161 DAGCombiner(SelectionDAG &D, AliasAnalysis *AA, CodeGenOpt::Level OL) 162 : DAG(D), TLI(D.getTargetLoweringInfo()), Level(BeforeLegalizeTypes), 163 OptLevel(OL), AA(AA) { 164 ForCodeSize = DAG.getMachineFunction().getFunction().optForSize(); 165 166 MaximumLegalStoreInBits = 0; 167 for (MVT VT : MVT::all_valuetypes()) 168 if (EVT(VT).isSimple() && VT != MVT::Other && 169 TLI.isTypeLegal(EVT(VT)) && 170 VT.getSizeInBits() >= MaximumLegalStoreInBits) 171 MaximumLegalStoreInBits = VT.getSizeInBits(); 172 } 173 174 /// Add to the worklist making sure its instance is at the back (next to be 175 /// processed.) 176 void AddToWorklist(SDNode *N) { 177 assert(N->getOpcode() != ISD::DELETED_NODE && 178 "Deleted Node added to Worklist"); 179 180 // Skip handle nodes as they can't usefully be combined and confuse the 181 // zero-use deletion strategy. 182 if (N->getOpcode() == ISD::HANDLENODE) 183 return; 184 185 if (WorklistMap.insert(std::make_pair(N, Worklist.size())).second) 186 Worklist.push_back(N); 187 } 188 189 /// Remove all instances of N from the worklist. 190 void removeFromWorklist(SDNode *N) { 191 CombinedNodes.erase(N); 192 193 auto It = WorklistMap.find(N); 194 if (It == WorklistMap.end()) 195 return; // Not in the worklist. 196 197 // Null out the entry rather than erasing it to avoid a linear operation. 198 Worklist[It->second] = nullptr; 199 WorklistMap.erase(It); 200 } 201 202 void deleteAndRecombine(SDNode *N); 203 bool recursivelyDeleteUnusedNodes(SDNode *N); 204 205 /// Replaces all uses of the results of one DAG node with new values. 206 SDValue CombineTo(SDNode *N, const SDValue *To, unsigned NumTo, 207 bool AddTo = true); 208 209 /// Replaces all uses of the results of one DAG node with new values. 210 SDValue CombineTo(SDNode *N, SDValue Res, bool AddTo = true) { 211 return CombineTo(N, &Res, 1, AddTo); 212 } 213 214 /// Replaces all uses of the results of one DAG node with new values. 215 SDValue CombineTo(SDNode *N, SDValue Res0, SDValue Res1, 216 bool AddTo = true) { 217 SDValue To[] = { Res0, Res1 }; 218 return CombineTo(N, To, 2, AddTo); 219 } 220 221 void CommitTargetLoweringOpt(const TargetLowering::TargetLoweringOpt &TLO); 222 223 private: 224 unsigned MaximumLegalStoreInBits; 225 226 /// Check the specified integer node value to see if it can be simplified or 227 /// if things it uses can be simplified by bit propagation. 228 /// If so, return true. 229 bool SimplifyDemandedBits(SDValue Op) { 230 unsigned BitWidth = Op.getScalarValueSizeInBits(); 231 APInt Demanded = APInt::getAllOnesValue(BitWidth); 232 return SimplifyDemandedBits(Op, Demanded); 233 } 234 235 bool SimplifyDemandedBits(SDValue Op, const APInt &Demanded); 236 237 bool CombineToPreIndexedLoadStore(SDNode *N); 238 bool CombineToPostIndexedLoadStore(SDNode *N); 239 SDValue SplitIndexingFromLoad(LoadSDNode *LD); 240 bool SliceUpLoad(SDNode *N); 241 242 /// \brief Replace an ISD::EXTRACT_VECTOR_ELT of a load with a narrowed 243 /// load. 244 /// 245 /// \param EVE ISD::EXTRACT_VECTOR_ELT to be replaced. 246 /// \param InVecVT type of the input vector to EVE with bitcasts resolved. 247 /// \param EltNo index of the vector element to load. 248 /// \param OriginalLoad load that EVE came from to be replaced. 249 /// \returns EVE on success SDValue() on failure. 250 SDValue ReplaceExtractVectorEltOfLoadWithNarrowedLoad( 251 SDNode *EVE, EVT InVecVT, SDValue EltNo, LoadSDNode *OriginalLoad); 252 void ReplaceLoadWithPromotedLoad(SDNode *Load, SDNode *ExtLoad); 253 SDValue PromoteOperand(SDValue Op, EVT PVT, bool &Replace); 254 SDValue SExtPromoteOperand(SDValue Op, EVT PVT); 255 SDValue ZExtPromoteOperand(SDValue Op, EVT PVT); 256 SDValue PromoteIntBinOp(SDValue Op); 257 SDValue PromoteIntShiftOp(SDValue Op); 258 SDValue PromoteExtend(SDValue Op); 259 bool PromoteLoad(SDValue Op); 260 261 void ExtendSetCCUses(const SmallVectorImpl<SDNode *> &SetCCs, SDValue Trunc, 262 SDValue ExtLoad, const SDLoc &DL, 263 ISD::NodeType ExtType); 264 265 /// Call the node-specific routine that knows how to fold each 266 /// particular type of node. If that doesn't do anything, try the 267 /// target-specific DAG combines. 268 SDValue combine(SDNode *N); 269 270 // Visitation implementation - Implement dag node combining for different 271 // node types. The semantics are as follows: 272 // Return Value: 273 // SDValue.getNode() == 0 - No change was made 274 // SDValue.getNode() == N - N was replaced, is dead and has been handled. 275 // otherwise - N should be replaced by the returned Operand. 276 // 277 SDValue visitTokenFactor(SDNode *N); 278 SDValue visitMERGE_VALUES(SDNode *N); 279 SDValue visitADD(SDNode *N); 280 SDValue visitADDLike(SDValue N0, SDValue N1, SDNode *LocReference); 281 SDValue visitSUB(SDNode *N); 282 SDValue visitADDC(SDNode *N); 283 SDValue visitUADDO(SDNode *N); 284 SDValue visitUADDOLike(SDValue N0, SDValue N1, SDNode *N); 285 SDValue visitSUBC(SDNode *N); 286 SDValue visitUSUBO(SDNode *N); 287 SDValue visitADDE(SDNode *N); 288 SDValue visitADDCARRY(SDNode *N); 289 SDValue visitADDCARRYLike(SDValue N0, SDValue N1, SDValue CarryIn, SDNode *N); 290 SDValue visitSUBE(SDNode *N); 291 SDValue visitSUBCARRY(SDNode *N); 292 SDValue visitMUL(SDNode *N); 293 SDValue useDivRem(SDNode *N); 294 SDValue visitSDIV(SDNode *N); 295 SDValue visitUDIV(SDNode *N); 296 SDValue visitREM(SDNode *N); 297 SDValue visitMULHU(SDNode *N); 298 SDValue visitMULHS(SDNode *N); 299 SDValue visitSMUL_LOHI(SDNode *N); 300 SDValue visitUMUL_LOHI(SDNode *N); 301 SDValue visitSMULO(SDNode *N); 302 SDValue visitUMULO(SDNode *N); 303 SDValue visitIMINMAX(SDNode *N); 304 SDValue visitAND(SDNode *N); 305 SDValue visitANDLike(SDValue N0, SDValue N1, SDNode *LocReference); 306 SDValue visitOR(SDNode *N); 307 SDValue visitORLike(SDValue N0, SDValue N1, SDNode *LocReference); 308 SDValue visitXOR(SDNode *N); 309 SDValue SimplifyVBinOp(SDNode *N); 310 SDValue visitSHL(SDNode *N); 311 SDValue visitSRA(SDNode *N); 312 SDValue visitSRL(SDNode *N); 313 SDValue visitRotate(SDNode *N); 314 SDValue visitABS(SDNode *N); 315 SDValue visitBSWAP(SDNode *N); 316 SDValue visitBITREVERSE(SDNode *N); 317 SDValue visitCTLZ(SDNode *N); 318 SDValue visitCTLZ_ZERO_UNDEF(SDNode *N); 319 SDValue visitCTTZ(SDNode *N); 320 SDValue visitCTTZ_ZERO_UNDEF(SDNode *N); 321 SDValue visitCTPOP(SDNode *N); 322 SDValue visitSELECT(SDNode *N); 323 SDValue visitVSELECT(SDNode *N); 324 SDValue visitSELECT_CC(SDNode *N); 325 SDValue visitSETCC(SDNode *N); 326 SDValue visitSETCCE(SDNode *N); 327 SDValue visitSETCCCARRY(SDNode *N); 328 SDValue visitSIGN_EXTEND(SDNode *N); 329 SDValue visitZERO_EXTEND(SDNode *N); 330 SDValue visitANY_EXTEND(SDNode *N); 331 SDValue visitAssertExt(SDNode *N); 332 SDValue visitSIGN_EXTEND_INREG(SDNode *N); 333 SDValue visitSIGN_EXTEND_VECTOR_INREG(SDNode *N); 334 SDValue visitZERO_EXTEND_VECTOR_INREG(SDNode *N); 335 SDValue visitTRUNCATE(SDNode *N); 336 SDValue visitBITCAST(SDNode *N); 337 SDValue visitBUILD_PAIR(SDNode *N); 338 SDValue visitFADD(SDNode *N); 339 SDValue visitFSUB(SDNode *N); 340 SDValue visitFMUL(SDNode *N); 341 SDValue visitFMA(SDNode *N); 342 SDValue visitFDIV(SDNode *N); 343 SDValue visitFREM(SDNode *N); 344 SDValue visitFSQRT(SDNode *N); 345 SDValue visitFCOPYSIGN(SDNode *N); 346 SDValue visitSINT_TO_FP(SDNode *N); 347 SDValue visitUINT_TO_FP(SDNode *N); 348 SDValue visitFP_TO_SINT(SDNode *N); 349 SDValue visitFP_TO_UINT(SDNode *N); 350 SDValue visitFP_ROUND(SDNode *N); 351 SDValue visitFP_ROUND_INREG(SDNode *N); 352 SDValue visitFP_EXTEND(SDNode *N); 353 SDValue visitFNEG(SDNode *N); 354 SDValue visitFABS(SDNode *N); 355 SDValue visitFCEIL(SDNode *N); 356 SDValue visitFTRUNC(SDNode *N); 357 SDValue visitFFLOOR(SDNode *N); 358 SDValue visitFMINNUM(SDNode *N); 359 SDValue visitFMAXNUM(SDNode *N); 360 SDValue visitBRCOND(SDNode *N); 361 SDValue visitBR_CC(SDNode *N); 362 SDValue visitLOAD(SDNode *N); 363 364 SDValue replaceStoreChain(StoreSDNode *ST, SDValue BetterChain); 365 SDValue replaceStoreOfFPConstant(StoreSDNode *ST); 366 367 SDValue visitSTORE(SDNode *N); 368 SDValue visitINSERT_VECTOR_ELT(SDNode *N); 369 SDValue visitEXTRACT_VECTOR_ELT(SDNode *N); 370 SDValue visitBUILD_VECTOR(SDNode *N); 371 SDValue visitCONCAT_VECTORS(SDNode *N); 372 SDValue visitEXTRACT_SUBVECTOR(SDNode *N); 373 SDValue visitVECTOR_SHUFFLE(SDNode *N); 374 SDValue visitSCALAR_TO_VECTOR(SDNode *N); 375 SDValue visitINSERT_SUBVECTOR(SDNode *N); 376 SDValue visitMLOAD(SDNode *N); 377 SDValue visitMSTORE(SDNode *N); 378 SDValue visitMGATHER(SDNode *N); 379 SDValue visitMSCATTER(SDNode *N); 380 SDValue visitFP_TO_FP16(SDNode *N); 381 SDValue visitFP16_TO_FP(SDNode *N); 382 383 SDValue visitFADDForFMACombine(SDNode *N); 384 SDValue visitFSUBForFMACombine(SDNode *N); 385 SDValue visitFMULForFMADistributiveCombine(SDNode *N); 386 387 SDValue XformToShuffleWithZero(SDNode *N); 388 SDValue ReassociateOps(unsigned Opc, const SDLoc &DL, SDValue LHS, 389 SDValue RHS); 390 391 SDValue visitShiftByConstant(SDNode *N, ConstantSDNode *Amt); 392 393 SDValue foldSelectOfConstants(SDNode *N); 394 SDValue foldVSelectOfConstants(SDNode *N); 395 SDValue foldBinOpIntoSelect(SDNode *BO); 396 bool SimplifySelectOps(SDNode *SELECT, SDValue LHS, SDValue RHS); 397 SDValue SimplifyBinOpWithSameOpcodeHands(SDNode *N); 398 SDValue SimplifySelect(const SDLoc &DL, SDValue N0, SDValue N1, SDValue N2); 399 SDValue SimplifySelectCC(const SDLoc &DL, SDValue N0, SDValue N1, 400 SDValue N2, SDValue N3, ISD::CondCode CC, 401 bool NotExtCompare = false); 402 SDValue foldSelectCCToShiftAnd(const SDLoc &DL, SDValue N0, SDValue N1, 403 SDValue N2, SDValue N3, ISD::CondCode CC); 404 SDValue foldLogicOfSetCCs(bool IsAnd, SDValue N0, SDValue N1, 405 const SDLoc &DL); 406 SDValue SimplifySetCC(EVT VT, SDValue N0, SDValue N1, ISD::CondCode Cond, 407 const SDLoc &DL, bool foldBooleans = true); 408 409 bool isSetCCEquivalent(SDValue N, SDValue &LHS, SDValue &RHS, 410 SDValue &CC) const; 411 bool isOneUseSetCC(SDValue N) const; 412 413 SDValue SimplifyNodeWithTwoResults(SDNode *N, unsigned LoOp, 414 unsigned HiOp); 415 SDValue CombineConsecutiveLoads(SDNode *N, EVT VT); 416 SDValue CombineExtLoad(SDNode *N); 417 SDValue combineRepeatedFPDivisors(SDNode *N); 418 SDValue combineInsertEltToShuffle(SDNode *N, unsigned InsIndex); 419 SDValue ConstantFoldBITCASTofBUILD_VECTOR(SDNode *, EVT); 420 SDValue BuildSDIV(SDNode *N); 421 SDValue BuildSDIVPow2(SDNode *N); 422 SDValue BuildUDIV(SDNode *N); 423 SDValue BuildLogBase2(SDValue Op, const SDLoc &DL); 424 SDValue BuildReciprocalEstimate(SDValue Op, SDNodeFlags Flags); 425 SDValue buildRsqrtEstimate(SDValue Op, SDNodeFlags Flags); 426 SDValue buildSqrtEstimate(SDValue Op, SDNodeFlags Flags); 427 SDValue buildSqrtEstimateImpl(SDValue Op, SDNodeFlags Flags, bool Recip); 428 SDValue buildSqrtNROneConst(SDValue Op, SDValue Est, unsigned Iterations, 429 SDNodeFlags Flags, bool Reciprocal); 430 SDValue buildSqrtNRTwoConst(SDValue Op, SDValue Est, unsigned Iterations, 431 SDNodeFlags Flags, bool Reciprocal); 432 SDValue MatchBSwapHWordLow(SDNode *N, SDValue N0, SDValue N1, 433 bool DemandHighBits = true); 434 SDValue MatchBSwapHWord(SDNode *N, SDValue N0, SDValue N1); 435 SDNode *MatchRotatePosNeg(SDValue Shifted, SDValue Pos, SDValue Neg, 436 SDValue InnerPos, SDValue InnerNeg, 437 unsigned PosOpcode, unsigned NegOpcode, 438 const SDLoc &DL); 439 SDNode *MatchRotate(SDValue LHS, SDValue RHS, const SDLoc &DL); 440 SDValue MatchLoadCombine(SDNode *N); 441 SDValue ReduceLoadWidth(SDNode *N); 442 SDValue ReduceLoadOpStoreWidth(SDNode *N); 443 SDValue splitMergedValStore(StoreSDNode *ST); 444 SDValue TransformFPLoadStorePair(SDNode *N); 445 SDValue reduceBuildVecExtToExtBuildVec(SDNode *N); 446 SDValue reduceBuildVecConvertToConvertBuildVec(SDNode *N); 447 SDValue reduceBuildVecToShuffle(SDNode *N); 448 SDValue createBuildVecShuffle(const SDLoc &DL, SDNode *N, 449 ArrayRef<int> VectorMask, SDValue VecIn1, 450 SDValue VecIn2, unsigned LeftIdx); 451 SDValue matchVSelectOpSizesWithSetCC(SDNode *N); 452 453 /// Walk up chain skipping non-aliasing memory nodes, 454 /// looking for aliasing nodes and adding them to the Aliases vector. 455 void GatherAllAliases(SDNode *N, SDValue OriginalChain, 456 SmallVectorImpl<SDValue> &Aliases); 457 458 /// Return true if there is any possibility that the two addresses overlap. 459 bool isAlias(LSBaseSDNode *Op0, LSBaseSDNode *Op1) const; 460 461 /// Walk up chain skipping non-aliasing memory nodes, looking for a better 462 /// chain (aliasing node.) 463 SDValue FindBetterChain(SDNode *N, SDValue Chain); 464 465 /// Try to replace a store and any possibly adjacent stores on 466 /// consecutive chains with better chains. Return true only if St is 467 /// replaced. 468 /// 469 /// Notice that other chains may still be replaced even if the function 470 /// returns false. 471 bool findBetterNeighborChains(StoreSDNode *St); 472 473 /// Match "(X shl/srl V1) & V2" where V2 may not be present. 474 bool MatchRotateHalf(SDValue Op, SDValue &Shift, SDValue &Mask); 475 476 /// Holds a pointer to an LSBaseSDNode as well as information on where it 477 /// is located in a sequence of memory operations connected by a chain. 478 struct MemOpLink { 479 // Ptr to the mem node. 480 LSBaseSDNode *MemNode; 481 482 // Offset from the base ptr. 483 int64_t OffsetFromBase; 484 485 MemOpLink(LSBaseSDNode *N, int64_t Offset) 486 : MemNode(N), OffsetFromBase(Offset) {} 487 }; 488 489 /// This is a helper function for visitMUL to check the profitability 490 /// of folding (mul (add x, c1), c2) -> (add (mul x, c2), c1*c2). 491 /// MulNode is the original multiply, AddNode is (add x, c1), 492 /// and ConstNode is c2. 493 bool isMulAddWithConstProfitable(SDNode *MulNode, 494 SDValue &AddNode, 495 SDValue &ConstNode); 496 497 /// This is a helper function for visitAND and visitZERO_EXTEND. Returns 498 /// true if the (and (load x) c) pattern matches an extload. ExtVT returns 499 /// the type of the loaded value to be extended. 500 bool isAndLoadExtLoad(ConstantSDNode *AndC, LoadSDNode *LoadN, 501 EVT LoadResultTy, EVT &ExtVT); 502 503 /// Helper function to calculate whether the given Load can have its 504 /// width reduced to ExtVT. 505 bool isLegalNarrowLoad(LoadSDNode *LoadN, ISD::LoadExtType ExtType, 506 EVT &ExtVT, unsigned ShAmt = 0); 507 508 /// Used by BackwardsPropagateMask to find suitable loads. 509 bool SearchForAndLoads(SDNode *N, SmallPtrSetImpl<LoadSDNode*> &Loads, 510 SmallPtrSetImpl<SDNode*> &NodeWithConsts, 511 ConstantSDNode *Mask, SDNode *&UncombinedNode); 512 /// Attempt to propagate a given AND node back to load leaves so that they 513 /// can be combined into narrow loads. 514 bool BackwardsPropagateMask(SDNode *N, SelectionDAG &DAG); 515 516 /// Helper function for MergeConsecutiveStores which merges the 517 /// component store chains. 518 SDValue getMergeStoreChains(SmallVectorImpl<MemOpLink> &StoreNodes, 519 unsigned NumStores); 520 521 /// This is a helper function for MergeConsecutiveStores. When the 522 /// source elements of the consecutive stores are all constants or 523 /// all extracted vector elements, try to merge them into one 524 /// larger store introducing bitcasts if necessary. \return True 525 /// if a merged store was created. 526 bool MergeStoresOfConstantsOrVecElts(SmallVectorImpl<MemOpLink> &StoreNodes, 527 EVT MemVT, unsigned NumStores, 528 bool IsConstantSrc, bool UseVector, 529 bool UseTrunc); 530 531 /// This is a helper function for MergeConsecutiveStores. Stores 532 /// that potentially may be merged with St are placed in 533 /// StoreNodes. 534 void getStoreMergeCandidates(StoreSDNode *St, 535 SmallVectorImpl<MemOpLink> &StoreNodes); 536 537 /// Helper function for MergeConsecutiveStores. Checks if 538 /// candidate stores have indirect dependency through their 539 /// operands. \return True if safe to merge. 540 bool checkMergeStoreCandidatesForDependencies( 541 SmallVectorImpl<MemOpLink> &StoreNodes, unsigned NumStores); 542 543 /// Merge consecutive store operations into a wide store. 544 /// This optimization uses wide integers or vectors when possible. 545 /// \return number of stores that were merged into a merged store (the 546 /// affected nodes are stored as a prefix in \p StoreNodes). 547 bool MergeConsecutiveStores(StoreSDNode *N); 548 549 /// \brief Try to transform a truncation where C is a constant: 550 /// (trunc (and X, C)) -> (and (trunc X), (trunc C)) 551 /// 552 /// \p N needs to be a truncation and its first operand an AND. Other 553 /// requirements are checked by the function (e.g. that trunc is 554 /// single-use) and if missed an empty SDValue is returned. 555 SDValue distributeTruncateThroughAnd(SDNode *N); 556 557 public: 558 /// Runs the dag combiner on all nodes in the work list 559 void Run(CombineLevel AtLevel); 560 561 SelectionDAG &getDAG() const { return DAG; } 562 563 /// Returns a type large enough to hold any valid shift amount - before type 564 /// legalization these can be huge. 565 EVT getShiftAmountTy(EVT LHSTy) { 566 assert(LHSTy.isInteger() && "Shift amount is not an integer type!"); 567 if (LHSTy.isVector()) 568 return LHSTy; 569 auto &DL = DAG.getDataLayout(); 570 return LegalTypes ? TLI.getScalarShiftAmountTy(DL, LHSTy) 571 : TLI.getPointerTy(DL); 572 } 573 574 /// This method returns true if we are running before type legalization or 575 /// if the specified VT is legal. 576 bool isTypeLegal(const EVT &VT) { 577 if (!LegalTypes) return true; 578 return TLI.isTypeLegal(VT); 579 } 580 581 /// Convenience wrapper around TargetLowering::getSetCCResultType 582 EVT getSetCCResultType(EVT VT) const { 583 return TLI.getSetCCResultType(DAG.getDataLayout(), *DAG.getContext(), VT); 584 } 585 }; 586 587 /// This class is a DAGUpdateListener that removes any deleted 588 /// nodes from the worklist. 589 class WorklistRemover : public SelectionDAG::DAGUpdateListener { 590 DAGCombiner &DC; 591 592 public: 593 explicit WorklistRemover(DAGCombiner &dc) 594 : SelectionDAG::DAGUpdateListener(dc.getDAG()), DC(dc) {} 595 596 void NodeDeleted(SDNode *N, SDNode *E) override { 597 DC.removeFromWorklist(N); 598 } 599 }; 600 601 } // end anonymous namespace 602 603 //===----------------------------------------------------------------------===// 604 // TargetLowering::DAGCombinerInfo implementation 605 //===----------------------------------------------------------------------===// 606 607 void TargetLowering::DAGCombinerInfo::AddToWorklist(SDNode *N) { 608 ((DAGCombiner*)DC)->AddToWorklist(N); 609 } 610 611 SDValue TargetLowering::DAGCombinerInfo:: 612 CombineTo(SDNode *N, ArrayRef<SDValue> To, bool AddTo) { 613 return ((DAGCombiner*)DC)->CombineTo(N, &To[0], To.size(), AddTo); 614 } 615 616 SDValue TargetLowering::DAGCombinerInfo:: 617 CombineTo(SDNode *N, SDValue Res, bool AddTo) { 618 return ((DAGCombiner*)DC)->CombineTo(N, Res, AddTo); 619 } 620 621 SDValue TargetLowering::DAGCombinerInfo:: 622 CombineTo(SDNode *N, SDValue Res0, SDValue Res1, bool AddTo) { 623 return ((DAGCombiner*)DC)->CombineTo(N, Res0, Res1, AddTo); 624 } 625 626 void TargetLowering::DAGCombinerInfo:: 627 CommitTargetLoweringOpt(const TargetLowering::TargetLoweringOpt &TLO) { 628 return ((DAGCombiner*)DC)->CommitTargetLoweringOpt(TLO); 629 } 630 631 //===----------------------------------------------------------------------===// 632 // Helper Functions 633 //===----------------------------------------------------------------------===// 634 635 void DAGCombiner::deleteAndRecombine(SDNode *N) { 636 removeFromWorklist(N); 637 638 // If the operands of this node are only used by the node, they will now be 639 // dead. Make sure to re-visit them and recursively delete dead nodes. 640 for (const SDValue &Op : N->ops()) 641 // For an operand generating multiple values, one of the values may 642 // become dead allowing further simplification (e.g. split index 643 // arithmetic from an indexed load). 644 if (Op->hasOneUse() || Op->getNumValues() > 1) 645 AddToWorklist(Op.getNode()); 646 647 DAG.DeleteNode(N); 648 } 649 650 /// Return 1 if we can compute the negated form of the specified expression for 651 /// the same cost as the expression itself, or 2 if we can compute the negated 652 /// form more cheaply than the expression itself. 653 static char isNegatibleForFree(SDValue Op, bool LegalOperations, 654 const TargetLowering &TLI, 655 const TargetOptions *Options, 656 unsigned Depth = 0) { 657 // fneg is removable even if it has multiple uses. 658 if (Op.getOpcode() == ISD::FNEG) return 2; 659 660 // Don't allow anything with multiple uses. 661 if (!Op.hasOneUse()) return 0; 662 663 // Don't recurse exponentially. 664 if (Depth > 6) return 0; 665 666 switch (Op.getOpcode()) { 667 default: return false; 668 case ISD::ConstantFP: { 669 if (!LegalOperations) 670 return 1; 671 672 // Don't invert constant FP values after legalization unless the target says 673 // the negated constant is legal. 674 EVT VT = Op.getValueType(); 675 return TLI.isOperationLegal(ISD::ConstantFP, VT) || 676 TLI.isFPImmLegal(neg(cast<ConstantFPSDNode>(Op)->getValueAPF()), VT); 677 } 678 case ISD::FADD: 679 // FIXME: determine better conditions for this xform. 680 if (!Options->UnsafeFPMath) return 0; 681 682 // After operation legalization, it might not be legal to create new FSUBs. 683 if (LegalOperations && 684 !TLI.isOperationLegalOrCustom(ISD::FSUB, Op.getValueType())) 685 return 0; 686 687 // fold (fneg (fadd A, B)) -> (fsub (fneg A), B) 688 if (char V = isNegatibleForFree(Op.getOperand(0), LegalOperations, TLI, 689 Options, Depth + 1)) 690 return V; 691 // fold (fneg (fadd A, B)) -> (fsub (fneg B), A) 692 return isNegatibleForFree(Op.getOperand(1), LegalOperations, TLI, Options, 693 Depth + 1); 694 case ISD::FSUB: 695 // We can't turn -(A-B) into B-A when we honor signed zeros. 696 if (!Options->NoSignedZerosFPMath && 697 !Op.getNode()->getFlags().hasNoSignedZeros()) 698 return 0; 699 700 // fold (fneg (fsub A, B)) -> (fsub B, A) 701 return 1; 702 703 case ISD::FMUL: 704 case ISD::FDIV: 705 if (Options->HonorSignDependentRoundingFPMath()) return 0; 706 707 // fold (fneg (fmul X, Y)) -> (fmul (fneg X), Y) or (fmul X, (fneg Y)) 708 if (char V = isNegatibleForFree(Op.getOperand(0), LegalOperations, TLI, 709 Options, Depth + 1)) 710 return V; 711 712 return isNegatibleForFree(Op.getOperand(1), LegalOperations, TLI, Options, 713 Depth + 1); 714 715 case ISD::FP_EXTEND: 716 case ISD::FP_ROUND: 717 case ISD::FSIN: 718 return isNegatibleForFree(Op.getOperand(0), LegalOperations, TLI, Options, 719 Depth + 1); 720 } 721 } 722 723 /// If isNegatibleForFree returns true, return the newly negated expression. 724 static SDValue GetNegatedExpression(SDValue Op, SelectionDAG &DAG, 725 bool LegalOperations, unsigned Depth = 0) { 726 const TargetOptions &Options = DAG.getTarget().Options; 727 // fneg is removable even if it has multiple uses. 728 if (Op.getOpcode() == ISD::FNEG) return Op.getOperand(0); 729 730 // Don't allow anything with multiple uses. 731 assert(Op.hasOneUse() && "Unknown reuse!"); 732 733 assert(Depth <= 6 && "GetNegatedExpression doesn't match isNegatibleForFree"); 734 735 const SDNodeFlags Flags = Op.getNode()->getFlags(); 736 737 switch (Op.getOpcode()) { 738 default: llvm_unreachable("Unknown code"); 739 case ISD::ConstantFP: { 740 APFloat V = cast<ConstantFPSDNode>(Op)->getValueAPF(); 741 V.changeSign(); 742 return DAG.getConstantFP(V, SDLoc(Op), Op.getValueType()); 743 } 744 case ISD::FADD: 745 // FIXME: determine better conditions for this xform. 746 assert(Options.UnsafeFPMath); 747 748 // fold (fneg (fadd A, B)) -> (fsub (fneg A), B) 749 if (isNegatibleForFree(Op.getOperand(0), LegalOperations, 750 DAG.getTargetLoweringInfo(), &Options, Depth+1)) 751 return DAG.getNode(ISD::FSUB, SDLoc(Op), Op.getValueType(), 752 GetNegatedExpression(Op.getOperand(0), DAG, 753 LegalOperations, Depth+1), 754 Op.getOperand(1), Flags); 755 // fold (fneg (fadd A, B)) -> (fsub (fneg B), A) 756 return DAG.getNode(ISD::FSUB, SDLoc(Op), Op.getValueType(), 757 GetNegatedExpression(Op.getOperand(1), DAG, 758 LegalOperations, Depth+1), 759 Op.getOperand(0), Flags); 760 case ISD::FSUB: 761 // fold (fneg (fsub 0, B)) -> B 762 if (ConstantFPSDNode *N0CFP = dyn_cast<ConstantFPSDNode>(Op.getOperand(0))) 763 if (N0CFP->isZero()) 764 return Op.getOperand(1); 765 766 // fold (fneg (fsub A, B)) -> (fsub B, A) 767 return DAG.getNode(ISD::FSUB, SDLoc(Op), Op.getValueType(), 768 Op.getOperand(1), Op.getOperand(0), Flags); 769 770 case ISD::FMUL: 771 case ISD::FDIV: 772 assert(!Options.HonorSignDependentRoundingFPMath()); 773 774 // fold (fneg (fmul X, Y)) -> (fmul (fneg X), Y) 775 if (isNegatibleForFree(Op.getOperand(0), LegalOperations, 776 DAG.getTargetLoweringInfo(), &Options, Depth+1)) 777 return DAG.getNode(Op.getOpcode(), SDLoc(Op), Op.getValueType(), 778 GetNegatedExpression(Op.getOperand(0), DAG, 779 LegalOperations, Depth+1), 780 Op.getOperand(1), Flags); 781 782 // fold (fneg (fmul X, Y)) -> (fmul X, (fneg Y)) 783 return DAG.getNode(Op.getOpcode(), SDLoc(Op), Op.getValueType(), 784 Op.getOperand(0), 785 GetNegatedExpression(Op.getOperand(1), DAG, 786 LegalOperations, Depth+1), Flags); 787 788 case ISD::FP_EXTEND: 789 case ISD::FSIN: 790 return DAG.getNode(Op.getOpcode(), SDLoc(Op), Op.getValueType(), 791 GetNegatedExpression(Op.getOperand(0), DAG, 792 LegalOperations, Depth+1)); 793 case ISD::FP_ROUND: 794 return DAG.getNode(ISD::FP_ROUND, SDLoc(Op), Op.getValueType(), 795 GetNegatedExpression(Op.getOperand(0), DAG, 796 LegalOperations, Depth+1), 797 Op.getOperand(1)); 798 } 799 } 800 801 // APInts must be the same size for most operations, this helper 802 // function zero extends the shorter of the pair so that they match. 803 // We provide an Offset so that we can create bitwidths that won't overflow. 804 static void zeroExtendToMatch(APInt &LHS, APInt &RHS, unsigned Offset = 0) { 805 unsigned Bits = Offset + std::max(LHS.getBitWidth(), RHS.getBitWidth()); 806 LHS = LHS.zextOrSelf(Bits); 807 RHS = RHS.zextOrSelf(Bits); 808 } 809 810 // Return true if this node is a setcc, or is a select_cc 811 // that selects between the target values used for true and false, making it 812 // equivalent to a setcc. Also, set the incoming LHS, RHS, and CC references to 813 // the appropriate nodes based on the type of node we are checking. This 814 // simplifies life a bit for the callers. 815 bool DAGCombiner::isSetCCEquivalent(SDValue N, SDValue &LHS, SDValue &RHS, 816 SDValue &CC) const { 817 if (N.getOpcode() == ISD::SETCC) { 818 LHS = N.getOperand(0); 819 RHS = N.getOperand(1); 820 CC = N.getOperand(2); 821 return true; 822 } 823 824 if (N.getOpcode() != ISD::SELECT_CC || 825 !TLI.isConstTrueVal(N.getOperand(2).getNode()) || 826 !TLI.isConstFalseVal(N.getOperand(3).getNode())) 827 return false; 828 829 if (TLI.getBooleanContents(N.getValueType()) == 830 TargetLowering::UndefinedBooleanContent) 831 return false; 832 833 LHS = N.getOperand(0); 834 RHS = N.getOperand(1); 835 CC = N.getOperand(4); 836 return true; 837 } 838 839 /// Return true if this is a SetCC-equivalent operation with only one use. 840 /// If this is true, it allows the users to invert the operation for free when 841 /// it is profitable to do so. 842 bool DAGCombiner::isOneUseSetCC(SDValue N) const { 843 SDValue N0, N1, N2; 844 if (isSetCCEquivalent(N, N0, N1, N2) && N.getNode()->hasOneUse()) 845 return true; 846 return false; 847 } 848 849 // \brief Returns the SDNode if it is a constant float BuildVector 850 // or constant float. 851 static SDNode *isConstantFPBuildVectorOrConstantFP(SDValue N) { 852 if (isa<ConstantFPSDNode>(N)) 853 return N.getNode(); 854 if (ISD::isBuildVectorOfConstantFPSDNodes(N.getNode())) 855 return N.getNode(); 856 return nullptr; 857 } 858 859 // Determines if it is a constant integer or a build vector of constant 860 // integers (and undefs). 861 // Do not permit build vector implicit truncation. 862 static bool isConstantOrConstantVector(SDValue N, bool NoOpaques = false) { 863 if (ConstantSDNode *Const = dyn_cast<ConstantSDNode>(N)) 864 return !(Const->isOpaque() && NoOpaques); 865 if (N.getOpcode() != ISD::BUILD_VECTOR) 866 return false; 867 unsigned BitWidth = N.getScalarValueSizeInBits(); 868 for (const SDValue &Op : N->op_values()) { 869 if (Op.isUndef()) 870 continue; 871 ConstantSDNode *Const = dyn_cast<ConstantSDNode>(Op); 872 if (!Const || Const->getAPIntValue().getBitWidth() != BitWidth || 873 (Const->isOpaque() && NoOpaques)) 874 return false; 875 } 876 return true; 877 } 878 879 // Determines if it is a constant null integer or a splatted vector of a 880 // constant null integer (with no undefs). 881 // Build vector implicit truncation is not an issue for null values. 882 static bool isNullConstantOrNullSplatConstant(SDValue N) { 883 if (ConstantSDNode *Splat = isConstOrConstSplat(N)) 884 return Splat->isNullValue(); 885 return false; 886 } 887 888 // Determines if it is a constant integer of one or a splatted vector of a 889 // constant integer of one (with no undefs). 890 // Do not permit build vector implicit truncation. 891 static bool isOneConstantOrOneSplatConstant(SDValue N) { 892 unsigned BitWidth = N.getScalarValueSizeInBits(); 893 if (ConstantSDNode *Splat = isConstOrConstSplat(N)) 894 return Splat->isOne() && Splat->getAPIntValue().getBitWidth() == BitWidth; 895 return false; 896 } 897 898 // Determines if it is a constant integer of all ones or a splatted vector of a 899 // constant integer of all ones (with no undefs). 900 // Do not permit build vector implicit truncation. 901 static bool isAllOnesConstantOrAllOnesSplatConstant(SDValue N) { 902 unsigned BitWidth = N.getScalarValueSizeInBits(); 903 if (ConstantSDNode *Splat = isConstOrConstSplat(N)) 904 return Splat->isAllOnesValue() && 905 Splat->getAPIntValue().getBitWidth() == BitWidth; 906 return false; 907 } 908 909 // Determines if a BUILD_VECTOR is composed of all-constants possibly mixed with 910 // undef's. 911 static bool isAnyConstantBuildVector(const SDNode *N) { 912 return ISD::isBuildVectorOfConstantSDNodes(N) || 913 ISD::isBuildVectorOfConstantFPSDNodes(N); 914 } 915 916 // Attempt to match a unary predicate against a scalar/splat constant or 917 // every element of a constant BUILD_VECTOR. 918 static bool matchUnaryPredicate(SDValue Op, 919 std::function<bool(ConstantSDNode *)> Match) { 920 if (auto *Cst = dyn_cast<ConstantSDNode>(Op)) 921 return Match(Cst); 922 923 if (ISD::BUILD_VECTOR != Op.getOpcode()) 924 return false; 925 926 EVT SVT = Op.getValueType().getScalarType(); 927 for (unsigned i = 0, e = Op.getNumOperands(); i != e; ++i) { 928 auto *Cst = dyn_cast<ConstantSDNode>(Op.getOperand(i)); 929 if (!Cst || Cst->getValueType(0) != SVT || !Match(Cst)) 930 return false; 931 } 932 return true; 933 } 934 935 // Attempt to match a binary predicate against a pair of scalar/splat constants 936 // or every element of a pair of constant BUILD_VECTORs. 937 static bool matchBinaryPredicate( 938 SDValue LHS, SDValue RHS, 939 std::function<bool(ConstantSDNode *, ConstantSDNode *)> Match) { 940 if (LHS.getValueType() != RHS.getValueType()) 941 return false; 942 943 if (auto *LHSCst = dyn_cast<ConstantSDNode>(LHS)) 944 if (auto *RHSCst = dyn_cast<ConstantSDNode>(RHS)) 945 return Match(LHSCst, RHSCst); 946 947 if (ISD::BUILD_VECTOR != LHS.getOpcode() || 948 ISD::BUILD_VECTOR != RHS.getOpcode()) 949 return false; 950 951 EVT SVT = LHS.getValueType().getScalarType(); 952 for (unsigned i = 0, e = LHS.getNumOperands(); i != e; ++i) { 953 auto *LHSCst = dyn_cast<ConstantSDNode>(LHS.getOperand(i)); 954 auto *RHSCst = dyn_cast<ConstantSDNode>(RHS.getOperand(i)); 955 if (!LHSCst || !RHSCst) 956 return false; 957 if (LHSCst->getValueType(0) != SVT || 958 LHSCst->getValueType(0) != RHSCst->getValueType(0)) 959 return false; 960 if (!Match(LHSCst, RHSCst)) 961 return false; 962 } 963 return true; 964 } 965 966 SDValue DAGCombiner::ReassociateOps(unsigned Opc, const SDLoc &DL, SDValue N0, 967 SDValue N1) { 968 EVT VT = N0.getValueType(); 969 if (N0.getOpcode() == Opc) { 970 if (SDNode *L = DAG.isConstantIntBuildVectorOrConstantInt(N0.getOperand(1))) { 971 if (SDNode *R = DAG.isConstantIntBuildVectorOrConstantInt(N1)) { 972 // reassoc. (op (op x, c1), c2) -> (op x, (op c1, c2)) 973 if (SDValue OpNode = DAG.FoldConstantArithmetic(Opc, DL, VT, L, R)) 974 return DAG.getNode(Opc, DL, VT, N0.getOperand(0), OpNode); 975 return SDValue(); 976 } 977 if (N0.hasOneUse()) { 978 // reassoc. (op (op x, c1), y) -> (op (op x, y), c1) iff x+c1 has one 979 // use 980 SDValue OpNode = DAG.getNode(Opc, SDLoc(N0), VT, N0.getOperand(0), N1); 981 if (!OpNode.getNode()) 982 return SDValue(); 983 AddToWorklist(OpNode.getNode()); 984 return DAG.getNode(Opc, DL, VT, OpNode, N0.getOperand(1)); 985 } 986 } 987 } 988 989 if (N1.getOpcode() == Opc) { 990 if (SDNode *R = DAG.isConstantIntBuildVectorOrConstantInt(N1.getOperand(1))) { 991 if (SDNode *L = DAG.isConstantIntBuildVectorOrConstantInt(N0)) { 992 // reassoc. (op c2, (op x, c1)) -> (op x, (op c1, c2)) 993 if (SDValue OpNode = DAG.FoldConstantArithmetic(Opc, DL, VT, R, L)) 994 return DAG.getNode(Opc, DL, VT, N1.getOperand(0), OpNode); 995 return SDValue(); 996 } 997 if (N1.hasOneUse()) { 998 // reassoc. (op x, (op y, c1)) -> (op (op x, y), c1) iff x+c1 has one 999 // use 1000 SDValue OpNode = DAG.getNode(Opc, SDLoc(N0), VT, N0, N1.getOperand(0)); 1001 if (!OpNode.getNode()) 1002 return SDValue(); 1003 AddToWorklist(OpNode.getNode()); 1004 return DAG.getNode(Opc, DL, VT, OpNode, N1.getOperand(1)); 1005 } 1006 } 1007 } 1008 1009 return SDValue(); 1010 } 1011 1012 SDValue DAGCombiner::CombineTo(SDNode *N, const SDValue *To, unsigned NumTo, 1013 bool AddTo) { 1014 assert(N->getNumValues() == NumTo && "Broken CombineTo call!"); 1015 ++NodesCombined; 1016 DEBUG(dbgs() << "\nReplacing.1 "; 1017 N->dump(&DAG); 1018 dbgs() << "\nWith: "; 1019 To[0].getNode()->dump(&DAG); 1020 dbgs() << " and " << NumTo-1 << " other values\n"); 1021 for (unsigned i = 0, e = NumTo; i != e; ++i) 1022 assert((!To[i].getNode() || 1023 N->getValueType(i) == To[i].getValueType()) && 1024 "Cannot combine value to value of different type!"); 1025 1026 WorklistRemover DeadNodes(*this); 1027 DAG.ReplaceAllUsesWith(N, To); 1028 if (AddTo) { 1029 // Push the new nodes and any users onto the worklist 1030 for (unsigned i = 0, e = NumTo; i != e; ++i) { 1031 if (To[i].getNode()) { 1032 AddToWorklist(To[i].getNode()); 1033 AddUsersToWorklist(To[i].getNode()); 1034 } 1035 } 1036 } 1037 1038 // Finally, if the node is now dead, remove it from the graph. The node 1039 // may not be dead if the replacement process recursively simplified to 1040 // something else needing this node. 1041 if (N->use_empty()) 1042 deleteAndRecombine(N); 1043 return SDValue(N, 0); 1044 } 1045 1046 void DAGCombiner:: 1047 CommitTargetLoweringOpt(const TargetLowering::TargetLoweringOpt &TLO) { 1048 // Replace all uses. If any nodes become isomorphic to other nodes and 1049 // are deleted, make sure to remove them from our worklist. 1050 WorklistRemover DeadNodes(*this); 1051 DAG.ReplaceAllUsesOfValueWith(TLO.Old, TLO.New); 1052 1053 // Push the new node and any (possibly new) users onto the worklist. 1054 AddToWorklist(TLO.New.getNode()); 1055 AddUsersToWorklist(TLO.New.getNode()); 1056 1057 // Finally, if the node is now dead, remove it from the graph. The node 1058 // may not be dead if the replacement process recursively simplified to 1059 // something else needing this node. 1060 if (TLO.Old.getNode()->use_empty()) 1061 deleteAndRecombine(TLO.Old.getNode()); 1062 } 1063 1064 /// Check the specified integer node value to see if it can be simplified or if 1065 /// things it uses can be simplified by bit propagation. If so, return true. 1066 bool DAGCombiner::SimplifyDemandedBits(SDValue Op, const APInt &Demanded) { 1067 TargetLowering::TargetLoweringOpt TLO(DAG, LegalTypes, LegalOperations); 1068 KnownBits Known; 1069 if (!TLI.SimplifyDemandedBits(Op, Demanded, Known, TLO)) 1070 return false; 1071 1072 // Revisit the node. 1073 AddToWorklist(Op.getNode()); 1074 1075 // Replace the old value with the new one. 1076 ++NodesCombined; 1077 DEBUG(dbgs() << "\nReplacing.2 "; 1078 TLO.Old.getNode()->dump(&DAG); 1079 dbgs() << "\nWith: "; 1080 TLO.New.getNode()->dump(&DAG); 1081 dbgs() << '\n'); 1082 1083 CommitTargetLoweringOpt(TLO); 1084 return true; 1085 } 1086 1087 void DAGCombiner::ReplaceLoadWithPromotedLoad(SDNode *Load, SDNode *ExtLoad) { 1088 SDLoc DL(Load); 1089 EVT VT = Load->getValueType(0); 1090 SDValue Trunc = DAG.getNode(ISD::TRUNCATE, DL, VT, SDValue(ExtLoad, 0)); 1091 1092 DEBUG(dbgs() << "\nReplacing.9 "; 1093 Load->dump(&DAG); 1094 dbgs() << "\nWith: "; 1095 Trunc.getNode()->dump(&DAG); 1096 dbgs() << '\n'); 1097 WorklistRemover DeadNodes(*this); 1098 DAG.ReplaceAllUsesOfValueWith(SDValue(Load, 0), Trunc); 1099 DAG.ReplaceAllUsesOfValueWith(SDValue(Load, 1), SDValue(ExtLoad, 1)); 1100 deleteAndRecombine(Load); 1101 AddToWorklist(Trunc.getNode()); 1102 } 1103 1104 SDValue DAGCombiner::PromoteOperand(SDValue Op, EVT PVT, bool &Replace) { 1105 Replace = false; 1106 SDLoc DL(Op); 1107 if (ISD::isUNINDEXEDLoad(Op.getNode())) { 1108 LoadSDNode *LD = cast<LoadSDNode>(Op); 1109 EVT MemVT = LD->getMemoryVT(); 1110 ISD::LoadExtType ExtType = ISD::isNON_EXTLoad(LD) 1111 ? (TLI.isLoadExtLegal(ISD::ZEXTLOAD, PVT, MemVT) ? ISD::ZEXTLOAD 1112 : ISD::EXTLOAD) 1113 : LD->getExtensionType(); 1114 Replace = true; 1115 return DAG.getExtLoad(ExtType, DL, PVT, 1116 LD->getChain(), LD->getBasePtr(), 1117 MemVT, LD->getMemOperand()); 1118 } 1119 1120 unsigned Opc = Op.getOpcode(); 1121 switch (Opc) { 1122 default: break; 1123 case ISD::AssertSext: 1124 if (SDValue Op0 = SExtPromoteOperand(Op.getOperand(0), PVT)) 1125 return DAG.getNode(ISD::AssertSext, DL, PVT, Op0, Op.getOperand(1)); 1126 break; 1127 case ISD::AssertZext: 1128 if (SDValue Op0 = ZExtPromoteOperand(Op.getOperand(0), PVT)) 1129 return DAG.getNode(ISD::AssertZext, DL, PVT, Op0, Op.getOperand(1)); 1130 break; 1131 case ISD::Constant: { 1132 unsigned ExtOpc = 1133 Op.getValueType().isByteSized() ? ISD::SIGN_EXTEND : ISD::ZERO_EXTEND; 1134 return DAG.getNode(ExtOpc, DL, PVT, Op); 1135 } 1136 } 1137 1138 if (!TLI.isOperationLegal(ISD::ANY_EXTEND, PVT)) 1139 return SDValue(); 1140 return DAG.getNode(ISD::ANY_EXTEND, DL, PVT, Op); 1141 } 1142 1143 SDValue DAGCombiner::SExtPromoteOperand(SDValue Op, EVT PVT) { 1144 if (!TLI.isOperationLegal(ISD::SIGN_EXTEND_INREG, PVT)) 1145 return SDValue(); 1146 EVT OldVT = Op.getValueType(); 1147 SDLoc DL(Op); 1148 bool Replace = false; 1149 SDValue NewOp = PromoteOperand(Op, PVT, Replace); 1150 if (!NewOp.getNode()) 1151 return SDValue(); 1152 AddToWorklist(NewOp.getNode()); 1153 1154 if (Replace) 1155 ReplaceLoadWithPromotedLoad(Op.getNode(), NewOp.getNode()); 1156 return DAG.getNode(ISD::SIGN_EXTEND_INREG, DL, NewOp.getValueType(), NewOp, 1157 DAG.getValueType(OldVT)); 1158 } 1159 1160 SDValue DAGCombiner::ZExtPromoteOperand(SDValue Op, EVT PVT) { 1161 EVT OldVT = Op.getValueType(); 1162 SDLoc DL(Op); 1163 bool Replace = false; 1164 SDValue NewOp = PromoteOperand(Op, PVT, Replace); 1165 if (!NewOp.getNode()) 1166 return SDValue(); 1167 AddToWorklist(NewOp.getNode()); 1168 1169 if (Replace) 1170 ReplaceLoadWithPromotedLoad(Op.getNode(), NewOp.getNode()); 1171 return DAG.getZeroExtendInReg(NewOp, DL, OldVT); 1172 } 1173 1174 /// Promote the specified integer binary operation if the target indicates it is 1175 /// beneficial. e.g. On x86, it's usually better to promote i16 operations to 1176 /// i32 since i16 instructions are longer. 1177 SDValue DAGCombiner::PromoteIntBinOp(SDValue Op) { 1178 if (!LegalOperations) 1179 return SDValue(); 1180 1181 EVT VT = Op.getValueType(); 1182 if (VT.isVector() || !VT.isInteger()) 1183 return SDValue(); 1184 1185 // If operation type is 'undesirable', e.g. i16 on x86, consider 1186 // promoting it. 1187 unsigned Opc = Op.getOpcode(); 1188 if (TLI.isTypeDesirableForOp(Opc, VT)) 1189 return SDValue(); 1190 1191 EVT PVT = VT; 1192 // Consult target whether it is a good idea to promote this operation and 1193 // what's the right type to promote it to. 1194 if (TLI.IsDesirableToPromoteOp(Op, PVT)) { 1195 assert(PVT != VT && "Don't know what type to promote to!"); 1196 1197 DEBUG(dbgs() << "\nPromoting "; Op.getNode()->dump(&DAG)); 1198 1199 bool Replace0 = false; 1200 SDValue N0 = Op.getOperand(0); 1201 SDValue NN0 = PromoteOperand(N0, PVT, Replace0); 1202 1203 bool Replace1 = false; 1204 SDValue N1 = Op.getOperand(1); 1205 SDValue NN1 = PromoteOperand(N1, PVT, Replace1); 1206 SDLoc DL(Op); 1207 1208 SDValue RV = 1209 DAG.getNode(ISD::TRUNCATE, DL, VT, DAG.getNode(Opc, DL, PVT, NN0, NN1)); 1210 1211 // We are always replacing N0/N1's use in N and only need 1212 // additional replacements if there are additional uses. 1213 Replace0 &= !N0->hasOneUse(); 1214 Replace1 &= (N0 != N1) && !N1->hasOneUse(); 1215 1216 // Combine Op here so it is preserved past replacements. 1217 CombineTo(Op.getNode(), RV); 1218 1219 // If operands have a use ordering, make sure we deal with 1220 // predecessor first. 1221 if (Replace0 && Replace1 && N0.getNode()->isPredecessorOf(N1.getNode())) { 1222 std::swap(N0, N1); 1223 std::swap(NN0, NN1); 1224 } 1225 1226 if (Replace0) { 1227 AddToWorklist(NN0.getNode()); 1228 ReplaceLoadWithPromotedLoad(N0.getNode(), NN0.getNode()); 1229 } 1230 if (Replace1) { 1231 AddToWorklist(NN1.getNode()); 1232 ReplaceLoadWithPromotedLoad(N1.getNode(), NN1.getNode()); 1233 } 1234 return Op; 1235 } 1236 return SDValue(); 1237 } 1238 1239 /// Promote the specified integer shift operation if the target indicates it is 1240 /// beneficial. e.g. On x86, it's usually better to promote i16 operations to 1241 /// i32 since i16 instructions are longer. 1242 SDValue DAGCombiner::PromoteIntShiftOp(SDValue Op) { 1243 if (!LegalOperations) 1244 return SDValue(); 1245 1246 EVT VT = Op.getValueType(); 1247 if (VT.isVector() || !VT.isInteger()) 1248 return SDValue(); 1249 1250 // If operation type is 'undesirable', e.g. i16 on x86, consider 1251 // promoting it. 1252 unsigned Opc = Op.getOpcode(); 1253 if (TLI.isTypeDesirableForOp(Opc, VT)) 1254 return SDValue(); 1255 1256 EVT PVT = VT; 1257 // Consult target whether it is a good idea to promote this operation and 1258 // what's the right type to promote it to. 1259 if (TLI.IsDesirableToPromoteOp(Op, PVT)) { 1260 assert(PVT != VT && "Don't know what type to promote to!"); 1261 1262 DEBUG(dbgs() << "\nPromoting "; Op.getNode()->dump(&DAG)); 1263 1264 bool Replace = false; 1265 SDValue N0 = Op.getOperand(0); 1266 SDValue N1 = Op.getOperand(1); 1267 if (Opc == ISD::SRA) 1268 N0 = SExtPromoteOperand(N0, PVT); 1269 else if (Opc == ISD::SRL) 1270 N0 = ZExtPromoteOperand(N0, PVT); 1271 else 1272 N0 = PromoteOperand(N0, PVT, Replace); 1273 1274 if (!N0.getNode()) 1275 return SDValue(); 1276 1277 SDLoc DL(Op); 1278 SDValue RV = 1279 DAG.getNode(ISD::TRUNCATE, DL, VT, DAG.getNode(Opc, DL, PVT, N0, N1)); 1280 1281 AddToWorklist(N0.getNode()); 1282 if (Replace) 1283 ReplaceLoadWithPromotedLoad(Op.getOperand(0).getNode(), N0.getNode()); 1284 1285 // Deal with Op being deleted. 1286 if (Op && Op.getOpcode() != ISD::DELETED_NODE) 1287 return RV; 1288 } 1289 return SDValue(); 1290 } 1291 1292 SDValue DAGCombiner::PromoteExtend(SDValue Op) { 1293 if (!LegalOperations) 1294 return SDValue(); 1295 1296 EVT VT = Op.getValueType(); 1297 if (VT.isVector() || !VT.isInteger()) 1298 return SDValue(); 1299 1300 // If operation type is 'undesirable', e.g. i16 on x86, consider 1301 // promoting it. 1302 unsigned Opc = Op.getOpcode(); 1303 if (TLI.isTypeDesirableForOp(Opc, VT)) 1304 return SDValue(); 1305 1306 EVT PVT = VT; 1307 // Consult target whether it is a good idea to promote this operation and 1308 // what's the right type to promote it to. 1309 if (TLI.IsDesirableToPromoteOp(Op, PVT)) { 1310 assert(PVT != VT && "Don't know what type to promote to!"); 1311 // fold (aext (aext x)) -> (aext x) 1312 // fold (aext (zext x)) -> (zext x) 1313 // fold (aext (sext x)) -> (sext x) 1314 DEBUG(dbgs() << "\nPromoting "; 1315 Op.getNode()->dump(&DAG)); 1316 return DAG.getNode(Op.getOpcode(), SDLoc(Op), VT, Op.getOperand(0)); 1317 } 1318 return SDValue(); 1319 } 1320 1321 bool DAGCombiner::PromoteLoad(SDValue Op) { 1322 if (!LegalOperations) 1323 return false; 1324 1325 if (!ISD::isUNINDEXEDLoad(Op.getNode())) 1326 return false; 1327 1328 EVT VT = Op.getValueType(); 1329 if (VT.isVector() || !VT.isInteger()) 1330 return false; 1331 1332 // If operation type is 'undesirable', e.g. i16 on x86, consider 1333 // promoting it. 1334 unsigned Opc = Op.getOpcode(); 1335 if (TLI.isTypeDesirableForOp(Opc, VT)) 1336 return false; 1337 1338 EVT PVT = VT; 1339 // Consult target whether it is a good idea to promote this operation and 1340 // what's the right type to promote it to. 1341 if (TLI.IsDesirableToPromoteOp(Op, PVT)) { 1342 assert(PVT != VT && "Don't know what type to promote to!"); 1343 1344 SDLoc DL(Op); 1345 SDNode *N = Op.getNode(); 1346 LoadSDNode *LD = cast<LoadSDNode>(N); 1347 EVT MemVT = LD->getMemoryVT(); 1348 ISD::LoadExtType ExtType = ISD::isNON_EXTLoad(LD) 1349 ? (TLI.isLoadExtLegal(ISD::ZEXTLOAD, PVT, MemVT) ? ISD::ZEXTLOAD 1350 : ISD::EXTLOAD) 1351 : LD->getExtensionType(); 1352 SDValue NewLD = DAG.getExtLoad(ExtType, DL, PVT, 1353 LD->getChain(), LD->getBasePtr(), 1354 MemVT, LD->getMemOperand()); 1355 SDValue Result = DAG.getNode(ISD::TRUNCATE, DL, VT, NewLD); 1356 1357 DEBUG(dbgs() << "\nPromoting "; 1358 N->dump(&DAG); 1359 dbgs() << "\nTo: "; 1360 Result.getNode()->dump(&DAG); 1361 dbgs() << '\n'); 1362 WorklistRemover DeadNodes(*this); 1363 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 0), Result); 1364 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 1), NewLD.getValue(1)); 1365 deleteAndRecombine(N); 1366 AddToWorklist(Result.getNode()); 1367 return true; 1368 } 1369 return false; 1370 } 1371 1372 /// \brief Recursively delete a node which has no uses and any operands for 1373 /// which it is the only use. 1374 /// 1375 /// Note that this both deletes the nodes and removes them from the worklist. 1376 /// It also adds any nodes who have had a user deleted to the worklist as they 1377 /// may now have only one use and subject to other combines. 1378 bool DAGCombiner::recursivelyDeleteUnusedNodes(SDNode *N) { 1379 if (!N->use_empty()) 1380 return false; 1381 1382 SmallSetVector<SDNode *, 16> Nodes; 1383 Nodes.insert(N); 1384 do { 1385 N = Nodes.pop_back_val(); 1386 if (!N) 1387 continue; 1388 1389 if (N->use_empty()) { 1390 for (const SDValue &ChildN : N->op_values()) 1391 Nodes.insert(ChildN.getNode()); 1392 1393 removeFromWorklist(N); 1394 DAG.DeleteNode(N); 1395 } else { 1396 AddToWorklist(N); 1397 } 1398 } while (!Nodes.empty()); 1399 return true; 1400 } 1401 1402 //===----------------------------------------------------------------------===// 1403 // Main DAG Combiner implementation 1404 //===----------------------------------------------------------------------===// 1405 1406 void DAGCombiner::Run(CombineLevel AtLevel) { 1407 // set the instance variables, so that the various visit routines may use it. 1408 Level = AtLevel; 1409 LegalOperations = Level >= AfterLegalizeVectorOps; 1410 LegalTypes = Level >= AfterLegalizeTypes; 1411 1412 // Add all the dag nodes to the worklist. 1413 for (SDNode &Node : DAG.allnodes()) 1414 AddToWorklist(&Node); 1415 1416 // Create a dummy node (which is not added to allnodes), that adds a reference 1417 // to the root node, preventing it from being deleted, and tracking any 1418 // changes of the root. 1419 HandleSDNode Dummy(DAG.getRoot()); 1420 1421 // While the worklist isn't empty, find a node and try to combine it. 1422 while (!WorklistMap.empty()) { 1423 SDNode *N; 1424 // The Worklist holds the SDNodes in order, but it may contain null entries. 1425 do { 1426 N = Worklist.pop_back_val(); 1427 } while (!N); 1428 1429 bool GoodWorklistEntry = WorklistMap.erase(N); 1430 (void)GoodWorklistEntry; 1431 assert(GoodWorklistEntry && 1432 "Found a worklist entry without a corresponding map entry!"); 1433 1434 // If N has no uses, it is dead. Make sure to revisit all N's operands once 1435 // N is deleted from the DAG, since they too may now be dead or may have a 1436 // reduced number of uses, allowing other xforms. 1437 if (recursivelyDeleteUnusedNodes(N)) 1438 continue; 1439 1440 WorklistRemover DeadNodes(*this); 1441 1442 // If this combine is running after legalizing the DAG, re-legalize any 1443 // nodes pulled off the worklist. 1444 if (Level == AfterLegalizeDAG) { 1445 SmallSetVector<SDNode *, 16> UpdatedNodes; 1446 bool NIsValid = DAG.LegalizeOp(N, UpdatedNodes); 1447 1448 for (SDNode *LN : UpdatedNodes) { 1449 AddToWorklist(LN); 1450 AddUsersToWorklist(LN); 1451 } 1452 if (!NIsValid) 1453 continue; 1454 } 1455 1456 DEBUG(dbgs() << "\nCombining: "; N->dump(&DAG)); 1457 1458 // Add any operands of the new node which have not yet been combined to the 1459 // worklist as well. Because the worklist uniques things already, this 1460 // won't repeatedly process the same operand. 1461 CombinedNodes.insert(N); 1462 for (const SDValue &ChildN : N->op_values()) 1463 if (!CombinedNodes.count(ChildN.getNode())) 1464 AddToWorklist(ChildN.getNode()); 1465 1466 SDValue RV = combine(N); 1467 1468 if (!RV.getNode()) 1469 continue; 1470 1471 ++NodesCombined; 1472 1473 // If we get back the same node we passed in, rather than a new node or 1474 // zero, we know that the node must have defined multiple values and 1475 // CombineTo was used. Since CombineTo takes care of the worklist 1476 // mechanics for us, we have no work to do in this case. 1477 if (RV.getNode() == N) 1478 continue; 1479 1480 assert(N->getOpcode() != ISD::DELETED_NODE && 1481 RV.getOpcode() != ISD::DELETED_NODE && 1482 "Node was deleted but visit returned new node!"); 1483 1484 DEBUG(dbgs() << " ... into: "; 1485 RV.getNode()->dump(&DAG)); 1486 1487 if (N->getNumValues() == RV.getNode()->getNumValues()) 1488 DAG.ReplaceAllUsesWith(N, RV.getNode()); 1489 else { 1490 assert(N->getValueType(0) == RV.getValueType() && 1491 N->getNumValues() == 1 && "Type mismatch"); 1492 DAG.ReplaceAllUsesWith(N, &RV); 1493 } 1494 1495 // Push the new node and any users onto the worklist 1496 AddToWorklist(RV.getNode()); 1497 AddUsersToWorklist(RV.getNode()); 1498 1499 // Finally, if the node is now dead, remove it from the graph. The node 1500 // may not be dead if the replacement process recursively simplified to 1501 // something else needing this node. This will also take care of adding any 1502 // operands which have lost a user to the worklist. 1503 recursivelyDeleteUnusedNodes(N); 1504 } 1505 1506 // If the root changed (e.g. it was a dead load, update the root). 1507 DAG.setRoot(Dummy.getValue()); 1508 DAG.RemoveDeadNodes(); 1509 } 1510 1511 SDValue DAGCombiner::visit(SDNode *N) { 1512 switch (N->getOpcode()) { 1513 default: break; 1514 case ISD::TokenFactor: return visitTokenFactor(N); 1515 case ISD::MERGE_VALUES: return visitMERGE_VALUES(N); 1516 case ISD::ADD: return visitADD(N); 1517 case ISD::SUB: return visitSUB(N); 1518 case ISD::ADDC: return visitADDC(N); 1519 case ISD::UADDO: return visitUADDO(N); 1520 case ISD::SUBC: return visitSUBC(N); 1521 case ISD::USUBO: return visitUSUBO(N); 1522 case ISD::ADDE: return visitADDE(N); 1523 case ISD::ADDCARRY: return visitADDCARRY(N); 1524 case ISD::SUBE: return visitSUBE(N); 1525 case ISD::SUBCARRY: return visitSUBCARRY(N); 1526 case ISD::MUL: return visitMUL(N); 1527 case ISD::SDIV: return visitSDIV(N); 1528 case ISD::UDIV: return visitUDIV(N); 1529 case ISD::SREM: 1530 case ISD::UREM: return visitREM(N); 1531 case ISD::MULHU: return visitMULHU(N); 1532 case ISD::MULHS: return visitMULHS(N); 1533 case ISD::SMUL_LOHI: return visitSMUL_LOHI(N); 1534 case ISD::UMUL_LOHI: return visitUMUL_LOHI(N); 1535 case ISD::SMULO: return visitSMULO(N); 1536 case ISD::UMULO: return visitUMULO(N); 1537 case ISD::SMIN: 1538 case ISD::SMAX: 1539 case ISD::UMIN: 1540 case ISD::UMAX: return visitIMINMAX(N); 1541 case ISD::AND: return visitAND(N); 1542 case ISD::OR: return visitOR(N); 1543 case ISD::XOR: return visitXOR(N); 1544 case ISD::SHL: return visitSHL(N); 1545 case ISD::SRA: return visitSRA(N); 1546 case ISD::SRL: return visitSRL(N); 1547 case ISD::ROTR: 1548 case ISD::ROTL: return visitRotate(N); 1549 case ISD::ABS: return visitABS(N); 1550 case ISD::BSWAP: return visitBSWAP(N); 1551 case ISD::BITREVERSE: return visitBITREVERSE(N); 1552 case ISD::CTLZ: return visitCTLZ(N); 1553 case ISD::CTLZ_ZERO_UNDEF: return visitCTLZ_ZERO_UNDEF(N); 1554 case ISD::CTTZ: return visitCTTZ(N); 1555 case ISD::CTTZ_ZERO_UNDEF: return visitCTTZ_ZERO_UNDEF(N); 1556 case ISD::CTPOP: return visitCTPOP(N); 1557 case ISD::SELECT: return visitSELECT(N); 1558 case ISD::VSELECT: return visitVSELECT(N); 1559 case ISD::SELECT_CC: return visitSELECT_CC(N); 1560 case ISD::SETCC: return visitSETCC(N); 1561 case ISD::SETCCE: return visitSETCCE(N); 1562 case ISD::SETCCCARRY: return visitSETCCCARRY(N); 1563 case ISD::SIGN_EXTEND: return visitSIGN_EXTEND(N); 1564 case ISD::ZERO_EXTEND: return visitZERO_EXTEND(N); 1565 case ISD::ANY_EXTEND: return visitANY_EXTEND(N); 1566 case ISD::AssertSext: 1567 case ISD::AssertZext: return visitAssertExt(N); 1568 case ISD::SIGN_EXTEND_INREG: return visitSIGN_EXTEND_INREG(N); 1569 case ISD::SIGN_EXTEND_VECTOR_INREG: return visitSIGN_EXTEND_VECTOR_INREG(N); 1570 case ISD::ZERO_EXTEND_VECTOR_INREG: return visitZERO_EXTEND_VECTOR_INREG(N); 1571 case ISD::TRUNCATE: return visitTRUNCATE(N); 1572 case ISD::BITCAST: return visitBITCAST(N); 1573 case ISD::BUILD_PAIR: return visitBUILD_PAIR(N); 1574 case ISD::FADD: return visitFADD(N); 1575 case ISD::FSUB: return visitFSUB(N); 1576 case ISD::FMUL: return visitFMUL(N); 1577 case ISD::FMA: return visitFMA(N); 1578 case ISD::FDIV: return visitFDIV(N); 1579 case ISD::FREM: return visitFREM(N); 1580 case ISD::FSQRT: return visitFSQRT(N); 1581 case ISD::FCOPYSIGN: return visitFCOPYSIGN(N); 1582 case ISD::SINT_TO_FP: return visitSINT_TO_FP(N); 1583 case ISD::UINT_TO_FP: return visitUINT_TO_FP(N); 1584 case ISD::FP_TO_SINT: return visitFP_TO_SINT(N); 1585 case ISD::FP_TO_UINT: return visitFP_TO_UINT(N); 1586 case ISD::FP_ROUND: return visitFP_ROUND(N); 1587 case ISD::FP_ROUND_INREG: return visitFP_ROUND_INREG(N); 1588 case ISD::FP_EXTEND: return visitFP_EXTEND(N); 1589 case ISD::FNEG: return visitFNEG(N); 1590 case ISD::FABS: return visitFABS(N); 1591 case ISD::FFLOOR: return visitFFLOOR(N); 1592 case ISD::FMINNUM: return visitFMINNUM(N); 1593 case ISD::FMAXNUM: return visitFMAXNUM(N); 1594 case ISD::FCEIL: return visitFCEIL(N); 1595 case ISD::FTRUNC: return visitFTRUNC(N); 1596 case ISD::BRCOND: return visitBRCOND(N); 1597 case ISD::BR_CC: return visitBR_CC(N); 1598 case ISD::LOAD: return visitLOAD(N); 1599 case ISD::STORE: return visitSTORE(N); 1600 case ISD::INSERT_VECTOR_ELT: return visitINSERT_VECTOR_ELT(N); 1601 case ISD::EXTRACT_VECTOR_ELT: return visitEXTRACT_VECTOR_ELT(N); 1602 case ISD::BUILD_VECTOR: return visitBUILD_VECTOR(N); 1603 case ISD::CONCAT_VECTORS: return visitCONCAT_VECTORS(N); 1604 case ISD::EXTRACT_SUBVECTOR: return visitEXTRACT_SUBVECTOR(N); 1605 case ISD::VECTOR_SHUFFLE: return visitVECTOR_SHUFFLE(N); 1606 case ISD::SCALAR_TO_VECTOR: return visitSCALAR_TO_VECTOR(N); 1607 case ISD::INSERT_SUBVECTOR: return visitINSERT_SUBVECTOR(N); 1608 case ISD::MGATHER: return visitMGATHER(N); 1609 case ISD::MLOAD: return visitMLOAD(N); 1610 case ISD::MSCATTER: return visitMSCATTER(N); 1611 case ISD::MSTORE: return visitMSTORE(N); 1612 case ISD::FP_TO_FP16: return visitFP_TO_FP16(N); 1613 case ISD::FP16_TO_FP: return visitFP16_TO_FP(N); 1614 } 1615 return SDValue(); 1616 } 1617 1618 SDValue DAGCombiner::combine(SDNode *N) { 1619 SDValue RV = visit(N); 1620 1621 // If nothing happened, try a target-specific DAG combine. 1622 if (!RV.getNode()) { 1623 assert(N->getOpcode() != ISD::DELETED_NODE && 1624 "Node was deleted but visit returned NULL!"); 1625 1626 if (N->getOpcode() >= ISD::BUILTIN_OP_END || 1627 TLI.hasTargetDAGCombine((ISD::NodeType)N->getOpcode())) { 1628 1629 // Expose the DAG combiner to the target combiner impls. 1630 TargetLowering::DAGCombinerInfo 1631 DagCombineInfo(DAG, Level, false, this); 1632 1633 RV = TLI.PerformDAGCombine(N, DagCombineInfo); 1634 } 1635 } 1636 1637 // If nothing happened still, try promoting the operation. 1638 if (!RV.getNode()) { 1639 switch (N->getOpcode()) { 1640 default: break; 1641 case ISD::ADD: 1642 case ISD::SUB: 1643 case ISD::MUL: 1644 case ISD::AND: 1645 case ISD::OR: 1646 case ISD::XOR: 1647 RV = PromoteIntBinOp(SDValue(N, 0)); 1648 break; 1649 case ISD::SHL: 1650 case ISD::SRA: 1651 case ISD::SRL: 1652 RV = PromoteIntShiftOp(SDValue(N, 0)); 1653 break; 1654 case ISD::SIGN_EXTEND: 1655 case ISD::ZERO_EXTEND: 1656 case ISD::ANY_EXTEND: 1657 RV = PromoteExtend(SDValue(N, 0)); 1658 break; 1659 case ISD::LOAD: 1660 if (PromoteLoad(SDValue(N, 0))) 1661 RV = SDValue(N, 0); 1662 break; 1663 } 1664 } 1665 1666 // If N is a commutative binary node, try eliminate it if the commuted 1667 // version is already present in the DAG. 1668 if (!RV.getNode() && TLI.isCommutativeBinOp(N->getOpcode()) && 1669 N->getNumValues() == 1) { 1670 SDValue N0 = N->getOperand(0); 1671 SDValue N1 = N->getOperand(1); 1672 1673 // Constant operands are canonicalized to RHS. 1674 if (N0 != N1 && (isa<ConstantSDNode>(N0) || !isa<ConstantSDNode>(N1))) { 1675 SDValue Ops[] = {N1, N0}; 1676 SDNode *CSENode = DAG.getNodeIfExists(N->getOpcode(), N->getVTList(), Ops, 1677 N->getFlags()); 1678 if (CSENode) 1679 return SDValue(CSENode, 0); 1680 } 1681 } 1682 1683 return RV; 1684 } 1685 1686 /// Given a node, return its input chain if it has one, otherwise return a null 1687 /// sd operand. 1688 static SDValue getInputChainForNode(SDNode *N) { 1689 if (unsigned NumOps = N->getNumOperands()) { 1690 if (N->getOperand(0).getValueType() == MVT::Other) 1691 return N->getOperand(0); 1692 if (N->getOperand(NumOps-1).getValueType() == MVT::Other) 1693 return N->getOperand(NumOps-1); 1694 for (unsigned i = 1; i < NumOps-1; ++i) 1695 if (N->getOperand(i).getValueType() == MVT::Other) 1696 return N->getOperand(i); 1697 } 1698 return SDValue(); 1699 } 1700 1701 SDValue DAGCombiner::visitTokenFactor(SDNode *N) { 1702 // If N has two operands, where one has an input chain equal to the other, 1703 // the 'other' chain is redundant. 1704 if (N->getNumOperands() == 2) { 1705 if (getInputChainForNode(N->getOperand(0).getNode()) == N->getOperand(1)) 1706 return N->getOperand(0); 1707 if (getInputChainForNode(N->getOperand(1).getNode()) == N->getOperand(0)) 1708 return N->getOperand(1); 1709 } 1710 1711 SmallVector<SDNode *, 8> TFs; // List of token factors to visit. 1712 SmallVector<SDValue, 8> Ops; // Ops for replacing token factor. 1713 SmallPtrSet<SDNode*, 16> SeenOps; 1714 bool Changed = false; // If we should replace this token factor. 1715 1716 // Start out with this token factor. 1717 TFs.push_back(N); 1718 1719 // Iterate through token factors. The TFs grows when new token factors are 1720 // encountered. 1721 for (unsigned i = 0; i < TFs.size(); ++i) { 1722 SDNode *TF = TFs[i]; 1723 1724 // Check each of the operands. 1725 for (const SDValue &Op : TF->op_values()) { 1726 switch (Op.getOpcode()) { 1727 case ISD::EntryToken: 1728 // Entry tokens don't need to be added to the list. They are 1729 // redundant. 1730 Changed = true; 1731 break; 1732 1733 case ISD::TokenFactor: 1734 if (Op.hasOneUse() && !is_contained(TFs, Op.getNode())) { 1735 // Queue up for processing. 1736 TFs.push_back(Op.getNode()); 1737 // Clean up in case the token factor is removed. 1738 AddToWorklist(Op.getNode()); 1739 Changed = true; 1740 break; 1741 } 1742 LLVM_FALLTHROUGH; 1743 1744 default: 1745 // Only add if it isn't already in the list. 1746 if (SeenOps.insert(Op.getNode()).second) 1747 Ops.push_back(Op); 1748 else 1749 Changed = true; 1750 break; 1751 } 1752 } 1753 } 1754 1755 // Remove Nodes that are chained to another node in the list. Do so 1756 // by walking up chains breath-first stopping when we've seen 1757 // another operand. In general we must climb to the EntryNode, but we can exit 1758 // early if we find all remaining work is associated with just one operand as 1759 // no further pruning is possible. 1760 1761 // List of nodes to search through and original Ops from which they originate. 1762 SmallVector<std::pair<SDNode *, unsigned>, 8> Worklist; 1763 SmallVector<unsigned, 8> OpWorkCount; // Count of work for each Op. 1764 SmallPtrSet<SDNode *, 16> SeenChains; 1765 bool DidPruneOps = false; 1766 1767 unsigned NumLeftToConsider = 0; 1768 for (const SDValue &Op : Ops) { 1769 Worklist.push_back(std::make_pair(Op.getNode(), NumLeftToConsider++)); 1770 OpWorkCount.push_back(1); 1771 } 1772 1773 auto AddToWorklist = [&](unsigned CurIdx, SDNode *Op, unsigned OpNumber) { 1774 // If this is an Op, we can remove the op from the list. Remark any 1775 // search associated with it as from the current OpNumber. 1776 if (SeenOps.count(Op) != 0) { 1777 Changed = true; 1778 DidPruneOps = true; 1779 unsigned OrigOpNumber = 0; 1780 while (OrigOpNumber < Ops.size() && Ops[OrigOpNumber].getNode() != Op) 1781 OrigOpNumber++; 1782 assert((OrigOpNumber != Ops.size()) && 1783 "expected to find TokenFactor Operand"); 1784 // Re-mark worklist from OrigOpNumber to OpNumber 1785 for (unsigned i = CurIdx + 1; i < Worklist.size(); ++i) { 1786 if (Worklist[i].second == OrigOpNumber) { 1787 Worklist[i].second = OpNumber; 1788 } 1789 } 1790 OpWorkCount[OpNumber] += OpWorkCount[OrigOpNumber]; 1791 OpWorkCount[OrigOpNumber] = 0; 1792 NumLeftToConsider--; 1793 } 1794 // Add if it's a new chain 1795 if (SeenChains.insert(Op).second) { 1796 OpWorkCount[OpNumber]++; 1797 Worklist.push_back(std::make_pair(Op, OpNumber)); 1798 } 1799 }; 1800 1801 for (unsigned i = 0; i < Worklist.size() && i < 1024; ++i) { 1802 // We need at least be consider at least 2 Ops to prune. 1803 if (NumLeftToConsider <= 1) 1804 break; 1805 auto CurNode = Worklist[i].first; 1806 auto CurOpNumber = Worklist[i].second; 1807 assert((OpWorkCount[CurOpNumber] > 0) && 1808 "Node should not appear in worklist"); 1809 switch (CurNode->getOpcode()) { 1810 case ISD::EntryToken: 1811 // Hitting EntryToken is the only way for the search to terminate without 1812 // hitting 1813 // another operand's search. Prevent us from marking this operand 1814 // considered. 1815 NumLeftToConsider++; 1816 break; 1817 case ISD::TokenFactor: 1818 for (const SDValue &Op : CurNode->op_values()) 1819 AddToWorklist(i, Op.getNode(), CurOpNumber); 1820 break; 1821 case ISD::CopyFromReg: 1822 case ISD::CopyToReg: 1823 AddToWorklist(i, CurNode->getOperand(0).getNode(), CurOpNumber); 1824 break; 1825 default: 1826 if (auto *MemNode = dyn_cast<MemSDNode>(CurNode)) 1827 AddToWorklist(i, MemNode->getChain().getNode(), CurOpNumber); 1828 break; 1829 } 1830 OpWorkCount[CurOpNumber]--; 1831 if (OpWorkCount[CurOpNumber] == 0) 1832 NumLeftToConsider--; 1833 } 1834 1835 // If we've changed things around then replace token factor. 1836 if (Changed) { 1837 SDValue Result; 1838 if (Ops.empty()) { 1839 // The entry token is the only possible outcome. 1840 Result = DAG.getEntryNode(); 1841 } else { 1842 if (DidPruneOps) { 1843 SmallVector<SDValue, 8> PrunedOps; 1844 // 1845 for (const SDValue &Op : Ops) { 1846 if (SeenChains.count(Op.getNode()) == 0) 1847 PrunedOps.push_back(Op); 1848 } 1849 Result = DAG.getNode(ISD::TokenFactor, SDLoc(N), MVT::Other, PrunedOps); 1850 } else { 1851 Result = DAG.getNode(ISD::TokenFactor, SDLoc(N), MVT::Other, Ops); 1852 } 1853 } 1854 return Result; 1855 } 1856 return SDValue(); 1857 } 1858 1859 /// MERGE_VALUES can always be eliminated. 1860 SDValue DAGCombiner::visitMERGE_VALUES(SDNode *N) { 1861 WorklistRemover DeadNodes(*this); 1862 // Replacing results may cause a different MERGE_VALUES to suddenly 1863 // be CSE'd with N, and carry its uses with it. Iterate until no 1864 // uses remain, to ensure that the node can be safely deleted. 1865 // First add the users of this node to the work list so that they 1866 // can be tried again once they have new operands. 1867 AddUsersToWorklist(N); 1868 do { 1869 for (unsigned i = 0, e = N->getNumOperands(); i != e; ++i) 1870 DAG.ReplaceAllUsesOfValueWith(SDValue(N, i), N->getOperand(i)); 1871 } while (!N->use_empty()); 1872 deleteAndRecombine(N); 1873 return SDValue(N, 0); // Return N so it doesn't get rechecked! 1874 } 1875 1876 /// If \p N is a ConstantSDNode with isOpaque() == false return it casted to a 1877 /// ConstantSDNode pointer else nullptr. 1878 static ConstantSDNode *getAsNonOpaqueConstant(SDValue N) { 1879 ConstantSDNode *Const = dyn_cast<ConstantSDNode>(N); 1880 return Const != nullptr && !Const->isOpaque() ? Const : nullptr; 1881 } 1882 1883 SDValue DAGCombiner::foldBinOpIntoSelect(SDNode *BO) { 1884 auto BinOpcode = BO->getOpcode(); 1885 assert((BinOpcode == ISD::ADD || BinOpcode == ISD::SUB || 1886 BinOpcode == ISD::MUL || BinOpcode == ISD::SDIV || 1887 BinOpcode == ISD::UDIV || BinOpcode == ISD::SREM || 1888 BinOpcode == ISD::UREM || BinOpcode == ISD::AND || 1889 BinOpcode == ISD::OR || BinOpcode == ISD::XOR || 1890 BinOpcode == ISD::SHL || BinOpcode == ISD::SRL || 1891 BinOpcode == ISD::SRA || BinOpcode == ISD::FADD || 1892 BinOpcode == ISD::FSUB || BinOpcode == ISD::FMUL || 1893 BinOpcode == ISD::FDIV || BinOpcode == ISD::FREM) && 1894 "Unexpected binary operator"); 1895 1896 // Bail out if any constants are opaque because we can't constant fold those. 1897 SDValue C1 = BO->getOperand(1); 1898 if (!isConstantOrConstantVector(C1, true) && 1899 !isConstantFPBuildVectorOrConstantFP(C1)) 1900 return SDValue(); 1901 1902 // Don't do this unless the old select is going away. We want to eliminate the 1903 // binary operator, not replace a binop with a select. 1904 // TODO: Handle ISD::SELECT_CC. 1905 SDValue Sel = BO->getOperand(0); 1906 if (Sel.getOpcode() != ISD::SELECT || !Sel.hasOneUse()) 1907 return SDValue(); 1908 1909 SDValue CT = Sel.getOperand(1); 1910 if (!isConstantOrConstantVector(CT, true) && 1911 !isConstantFPBuildVectorOrConstantFP(CT)) 1912 return SDValue(); 1913 1914 SDValue CF = Sel.getOperand(2); 1915 if (!isConstantOrConstantVector(CF, true) && 1916 !isConstantFPBuildVectorOrConstantFP(CF)) 1917 return SDValue(); 1918 1919 // We have a select-of-constants followed by a binary operator with a 1920 // constant. Eliminate the binop by pulling the constant math into the select. 1921 // Example: add (select Cond, CT, CF), C1 --> select Cond, CT + C1, CF + C1 1922 EVT VT = Sel.getValueType(); 1923 SDLoc DL(Sel); 1924 SDValue NewCT = DAG.getNode(BinOpcode, DL, VT, CT, C1); 1925 assert((NewCT.isUndef() || isConstantOrConstantVector(NewCT) || 1926 isConstantFPBuildVectorOrConstantFP(NewCT)) && 1927 "Failed to constant fold a binop with constant operands"); 1928 1929 SDValue NewCF = DAG.getNode(BinOpcode, DL, VT, CF, C1); 1930 assert((NewCF.isUndef() || isConstantOrConstantVector(NewCF) || 1931 isConstantFPBuildVectorOrConstantFP(NewCF)) && 1932 "Failed to constant fold a binop with constant operands"); 1933 1934 return DAG.getSelect(DL, VT, Sel.getOperand(0), NewCT, NewCF); 1935 } 1936 1937 SDValue DAGCombiner::visitADD(SDNode *N) { 1938 SDValue N0 = N->getOperand(0); 1939 SDValue N1 = N->getOperand(1); 1940 EVT VT = N0.getValueType(); 1941 SDLoc DL(N); 1942 1943 // fold vector ops 1944 if (VT.isVector()) { 1945 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 1946 return FoldedVOp; 1947 1948 // fold (add x, 0) -> x, vector edition 1949 if (ISD::isBuildVectorAllZeros(N1.getNode())) 1950 return N0; 1951 if (ISD::isBuildVectorAllZeros(N0.getNode())) 1952 return N1; 1953 } 1954 1955 // fold (add x, undef) -> undef 1956 if (N0.isUndef()) 1957 return N0; 1958 1959 if (N1.isUndef()) 1960 return N1; 1961 1962 if (DAG.isConstantIntBuildVectorOrConstantInt(N0)) { 1963 // canonicalize constant to RHS 1964 if (!DAG.isConstantIntBuildVectorOrConstantInt(N1)) 1965 return DAG.getNode(ISD::ADD, DL, VT, N1, N0); 1966 // fold (add c1, c2) -> c1+c2 1967 return DAG.FoldConstantArithmetic(ISD::ADD, DL, VT, N0.getNode(), 1968 N1.getNode()); 1969 } 1970 1971 // fold (add x, 0) -> x 1972 if (isNullConstant(N1)) 1973 return N0; 1974 1975 if (isConstantOrConstantVector(N1, /* NoOpaque */ true)) { 1976 // fold ((c1-A)+c2) -> (c1+c2)-A 1977 if (N0.getOpcode() == ISD::SUB && 1978 isConstantOrConstantVector(N0.getOperand(0), /* NoOpaque */ true)) { 1979 // FIXME: Adding 2 constants should be handled by FoldConstantArithmetic. 1980 return DAG.getNode(ISD::SUB, DL, VT, 1981 DAG.getNode(ISD::ADD, DL, VT, N1, N0.getOperand(0)), 1982 N0.getOperand(1)); 1983 } 1984 1985 // add (sext i1 X), 1 -> zext (not i1 X) 1986 // We don't transform this pattern: 1987 // add (zext i1 X), -1 -> sext (not i1 X) 1988 // because most (?) targets generate better code for the zext form. 1989 if (N0.getOpcode() == ISD::SIGN_EXTEND && N0.hasOneUse() && 1990 isOneConstantOrOneSplatConstant(N1)) { 1991 SDValue X = N0.getOperand(0); 1992 if ((!LegalOperations || 1993 (TLI.isOperationLegal(ISD::XOR, X.getValueType()) && 1994 TLI.isOperationLegal(ISD::ZERO_EXTEND, VT))) && 1995 X.getScalarValueSizeInBits() == 1) { 1996 SDValue Not = DAG.getNOT(DL, X, X.getValueType()); 1997 return DAG.getNode(ISD::ZERO_EXTEND, DL, VT, Not); 1998 } 1999 } 2000 2001 // Undo the add -> or combine to merge constant offsets from a frame index. 2002 if (N0.getOpcode() == ISD::OR && 2003 isa<FrameIndexSDNode>(N0.getOperand(0)) && 2004 isa<ConstantSDNode>(N0.getOperand(1)) && 2005 DAG.haveNoCommonBitsSet(N0.getOperand(0), N0.getOperand(1))) { 2006 SDValue Add0 = DAG.getNode(ISD::ADD, DL, VT, N1, N0.getOperand(1)); 2007 return DAG.getNode(ISD::ADD, DL, VT, N0.getOperand(0), Add0); 2008 } 2009 } 2010 2011 if (SDValue NewSel = foldBinOpIntoSelect(N)) 2012 return NewSel; 2013 2014 // reassociate add 2015 if (SDValue RADD = ReassociateOps(ISD::ADD, DL, N0, N1)) 2016 return RADD; 2017 2018 // fold ((0-A) + B) -> B-A 2019 if (N0.getOpcode() == ISD::SUB && 2020 isNullConstantOrNullSplatConstant(N0.getOperand(0))) 2021 return DAG.getNode(ISD::SUB, DL, VT, N1, N0.getOperand(1)); 2022 2023 // fold (A + (0-B)) -> A-B 2024 if (N1.getOpcode() == ISD::SUB && 2025 isNullConstantOrNullSplatConstant(N1.getOperand(0))) 2026 return DAG.getNode(ISD::SUB, DL, VT, N0, N1.getOperand(1)); 2027 2028 // fold (A+(B-A)) -> B 2029 if (N1.getOpcode() == ISD::SUB && N0 == N1.getOperand(1)) 2030 return N1.getOperand(0); 2031 2032 // fold ((B-A)+A) -> B 2033 if (N0.getOpcode() == ISD::SUB && N1 == N0.getOperand(1)) 2034 return N0.getOperand(0); 2035 2036 // fold (A+(B-(A+C))) to (B-C) 2037 if (N1.getOpcode() == ISD::SUB && N1.getOperand(1).getOpcode() == ISD::ADD && 2038 N0 == N1.getOperand(1).getOperand(0)) 2039 return DAG.getNode(ISD::SUB, DL, VT, N1.getOperand(0), 2040 N1.getOperand(1).getOperand(1)); 2041 2042 // fold (A+(B-(C+A))) to (B-C) 2043 if (N1.getOpcode() == ISD::SUB && N1.getOperand(1).getOpcode() == ISD::ADD && 2044 N0 == N1.getOperand(1).getOperand(1)) 2045 return DAG.getNode(ISD::SUB, DL, VT, N1.getOperand(0), 2046 N1.getOperand(1).getOperand(0)); 2047 2048 // fold (A+((B-A)+or-C)) to (B+or-C) 2049 if ((N1.getOpcode() == ISD::SUB || N1.getOpcode() == ISD::ADD) && 2050 N1.getOperand(0).getOpcode() == ISD::SUB && 2051 N0 == N1.getOperand(0).getOperand(1)) 2052 return DAG.getNode(N1.getOpcode(), DL, VT, N1.getOperand(0).getOperand(0), 2053 N1.getOperand(1)); 2054 2055 // fold (A-B)+(C-D) to (A+C)-(B+D) when A or C is constant 2056 if (N0.getOpcode() == ISD::SUB && N1.getOpcode() == ISD::SUB) { 2057 SDValue N00 = N0.getOperand(0); 2058 SDValue N01 = N0.getOperand(1); 2059 SDValue N10 = N1.getOperand(0); 2060 SDValue N11 = N1.getOperand(1); 2061 2062 if (isConstantOrConstantVector(N00) || isConstantOrConstantVector(N10)) 2063 return DAG.getNode(ISD::SUB, DL, VT, 2064 DAG.getNode(ISD::ADD, SDLoc(N0), VT, N00, N10), 2065 DAG.getNode(ISD::ADD, SDLoc(N1), VT, N01, N11)); 2066 } 2067 2068 if (SimplifyDemandedBits(SDValue(N, 0))) 2069 return SDValue(N, 0); 2070 2071 // fold (a+b) -> (a|b) iff a and b share no bits. 2072 if ((!LegalOperations || TLI.isOperationLegal(ISD::OR, VT)) && 2073 DAG.haveNoCommonBitsSet(N0, N1)) 2074 return DAG.getNode(ISD::OR, DL, VT, N0, N1); 2075 2076 if (SDValue Combined = visitADDLike(N0, N1, N)) 2077 return Combined; 2078 2079 if (SDValue Combined = visitADDLike(N1, N0, N)) 2080 return Combined; 2081 2082 return SDValue(); 2083 } 2084 2085 static SDValue getAsCarry(const TargetLowering &TLI, SDValue V) { 2086 bool Masked = false; 2087 2088 // First, peel away TRUNCATE/ZERO_EXTEND/AND nodes due to legalization. 2089 while (true) { 2090 if (V.getOpcode() == ISD::TRUNCATE || V.getOpcode() == ISD::ZERO_EXTEND) { 2091 V = V.getOperand(0); 2092 continue; 2093 } 2094 2095 if (V.getOpcode() == ISD::AND && isOneConstant(V.getOperand(1))) { 2096 Masked = true; 2097 V = V.getOperand(0); 2098 continue; 2099 } 2100 2101 break; 2102 } 2103 2104 // If this is not a carry, return. 2105 if (V.getResNo() != 1) 2106 return SDValue(); 2107 2108 if (V.getOpcode() != ISD::ADDCARRY && V.getOpcode() != ISD::SUBCARRY && 2109 V.getOpcode() != ISD::UADDO && V.getOpcode() != ISD::USUBO) 2110 return SDValue(); 2111 2112 // If the result is masked, then no matter what kind of bool it is we can 2113 // return. If it isn't, then we need to make sure the bool type is either 0 or 2114 // 1 and not other values. 2115 if (Masked || 2116 TLI.getBooleanContents(V.getValueType()) == 2117 TargetLoweringBase::ZeroOrOneBooleanContent) 2118 return V; 2119 2120 return SDValue(); 2121 } 2122 2123 SDValue DAGCombiner::visitADDLike(SDValue N0, SDValue N1, SDNode *LocReference) { 2124 EVT VT = N0.getValueType(); 2125 SDLoc DL(LocReference); 2126 2127 // fold (add x, shl(0 - y, n)) -> sub(x, shl(y, n)) 2128 if (N1.getOpcode() == ISD::SHL && N1.getOperand(0).getOpcode() == ISD::SUB && 2129 isNullConstantOrNullSplatConstant(N1.getOperand(0).getOperand(0))) 2130 return DAG.getNode(ISD::SUB, DL, VT, N0, 2131 DAG.getNode(ISD::SHL, DL, VT, 2132 N1.getOperand(0).getOperand(1), 2133 N1.getOperand(1))); 2134 2135 if (N1.getOpcode() == ISD::AND) { 2136 SDValue AndOp0 = N1.getOperand(0); 2137 unsigned NumSignBits = DAG.ComputeNumSignBits(AndOp0); 2138 unsigned DestBits = VT.getScalarSizeInBits(); 2139 2140 // (add z, (and (sbbl x, x), 1)) -> (sub z, (sbbl x, x)) 2141 // and similar xforms where the inner op is either ~0 or 0. 2142 if (NumSignBits == DestBits && 2143 isOneConstantOrOneSplatConstant(N1->getOperand(1))) 2144 return DAG.getNode(ISD::SUB, DL, VT, N0, AndOp0); 2145 } 2146 2147 // add (sext i1), X -> sub X, (zext i1) 2148 if (N0.getOpcode() == ISD::SIGN_EXTEND && 2149 N0.getOperand(0).getValueType() == MVT::i1 && 2150 !TLI.isOperationLegal(ISD::SIGN_EXTEND, MVT::i1)) { 2151 SDValue ZExt = DAG.getNode(ISD::ZERO_EXTEND, DL, VT, N0.getOperand(0)); 2152 return DAG.getNode(ISD::SUB, DL, VT, N1, ZExt); 2153 } 2154 2155 // add X, (sextinreg Y i1) -> sub X, (and Y 1) 2156 if (N1.getOpcode() == ISD::SIGN_EXTEND_INREG) { 2157 VTSDNode *TN = cast<VTSDNode>(N1.getOperand(1)); 2158 if (TN->getVT() == MVT::i1) { 2159 SDValue ZExt = DAG.getNode(ISD::AND, DL, VT, N1.getOperand(0), 2160 DAG.getConstant(1, DL, VT)); 2161 return DAG.getNode(ISD::SUB, DL, VT, N0, ZExt); 2162 } 2163 } 2164 2165 // (add X, (addcarry Y, 0, Carry)) -> (addcarry X, Y, Carry) 2166 if (N1.getOpcode() == ISD::ADDCARRY && isNullConstant(N1.getOperand(1)) && 2167 N1.getResNo() == 0) 2168 return DAG.getNode(ISD::ADDCARRY, DL, N1->getVTList(), 2169 N0, N1.getOperand(0), N1.getOperand(2)); 2170 2171 // (add X, Carry) -> (addcarry X, 0, Carry) 2172 if (TLI.isOperationLegalOrCustom(ISD::ADDCARRY, VT)) 2173 if (SDValue Carry = getAsCarry(TLI, N1)) 2174 return DAG.getNode(ISD::ADDCARRY, DL, 2175 DAG.getVTList(VT, Carry.getValueType()), N0, 2176 DAG.getConstant(0, DL, VT), Carry); 2177 2178 return SDValue(); 2179 } 2180 2181 SDValue DAGCombiner::visitADDC(SDNode *N) { 2182 SDValue N0 = N->getOperand(0); 2183 SDValue N1 = N->getOperand(1); 2184 EVT VT = N0.getValueType(); 2185 SDLoc DL(N); 2186 2187 // If the flag result is dead, turn this into an ADD. 2188 if (!N->hasAnyUseOfValue(1)) 2189 return CombineTo(N, DAG.getNode(ISD::ADD, DL, VT, N0, N1), 2190 DAG.getNode(ISD::CARRY_FALSE, DL, MVT::Glue)); 2191 2192 // canonicalize constant to RHS. 2193 ConstantSDNode *N0C = dyn_cast<ConstantSDNode>(N0); 2194 ConstantSDNode *N1C = dyn_cast<ConstantSDNode>(N1); 2195 if (N0C && !N1C) 2196 return DAG.getNode(ISD::ADDC, DL, N->getVTList(), N1, N0); 2197 2198 // fold (addc x, 0) -> x + no carry out 2199 if (isNullConstant(N1)) 2200 return CombineTo(N, N0, DAG.getNode(ISD::CARRY_FALSE, 2201 DL, MVT::Glue)); 2202 2203 // If it cannot overflow, transform into an add. 2204 if (DAG.computeOverflowKind(N0, N1) == SelectionDAG::OFK_Never) 2205 return CombineTo(N, DAG.getNode(ISD::ADD, DL, VT, N0, N1), 2206 DAG.getNode(ISD::CARRY_FALSE, DL, MVT::Glue)); 2207 2208 return SDValue(); 2209 } 2210 2211 SDValue DAGCombiner::visitUADDO(SDNode *N) { 2212 SDValue N0 = N->getOperand(0); 2213 SDValue N1 = N->getOperand(1); 2214 EVT VT = N0.getValueType(); 2215 if (VT.isVector()) 2216 return SDValue(); 2217 2218 EVT CarryVT = N->getValueType(1); 2219 SDLoc DL(N); 2220 2221 // If the flag result is dead, turn this into an ADD. 2222 if (!N->hasAnyUseOfValue(1)) 2223 return CombineTo(N, DAG.getNode(ISD::ADD, DL, VT, N0, N1), 2224 DAG.getUNDEF(CarryVT)); 2225 2226 // canonicalize constant to RHS. 2227 ConstantSDNode *N0C = dyn_cast<ConstantSDNode>(N0); 2228 ConstantSDNode *N1C = dyn_cast<ConstantSDNode>(N1); 2229 if (N0C && !N1C) 2230 return DAG.getNode(ISD::UADDO, DL, N->getVTList(), N1, N0); 2231 2232 // fold (uaddo x, 0) -> x + no carry out 2233 if (isNullConstant(N1)) 2234 return CombineTo(N, N0, DAG.getConstant(0, DL, CarryVT)); 2235 2236 // If it cannot overflow, transform into an add. 2237 if (DAG.computeOverflowKind(N0, N1) == SelectionDAG::OFK_Never) 2238 return CombineTo(N, DAG.getNode(ISD::ADD, DL, VT, N0, N1), 2239 DAG.getConstant(0, DL, CarryVT)); 2240 2241 if (SDValue Combined = visitUADDOLike(N0, N1, N)) 2242 return Combined; 2243 2244 if (SDValue Combined = visitUADDOLike(N1, N0, N)) 2245 return Combined; 2246 2247 return SDValue(); 2248 } 2249 2250 SDValue DAGCombiner::visitUADDOLike(SDValue N0, SDValue N1, SDNode *N) { 2251 auto VT = N0.getValueType(); 2252 2253 // (uaddo X, (addcarry Y, 0, Carry)) -> (addcarry X, Y, Carry) 2254 // If Y + 1 cannot overflow. 2255 if (N1.getOpcode() == ISD::ADDCARRY && isNullConstant(N1.getOperand(1))) { 2256 SDValue Y = N1.getOperand(0); 2257 SDValue One = DAG.getConstant(1, SDLoc(N), Y.getValueType()); 2258 if (DAG.computeOverflowKind(Y, One) == SelectionDAG::OFK_Never) 2259 return DAG.getNode(ISD::ADDCARRY, SDLoc(N), N->getVTList(), N0, Y, 2260 N1.getOperand(2)); 2261 } 2262 2263 // (uaddo X, Carry) -> (addcarry X, 0, Carry) 2264 if (TLI.isOperationLegalOrCustom(ISD::ADDCARRY, VT)) 2265 if (SDValue Carry = getAsCarry(TLI, N1)) 2266 return DAG.getNode(ISD::ADDCARRY, SDLoc(N), N->getVTList(), N0, 2267 DAG.getConstant(0, SDLoc(N), VT), Carry); 2268 2269 return SDValue(); 2270 } 2271 2272 SDValue DAGCombiner::visitADDE(SDNode *N) { 2273 SDValue N0 = N->getOperand(0); 2274 SDValue N1 = N->getOperand(1); 2275 SDValue CarryIn = N->getOperand(2); 2276 2277 // canonicalize constant to RHS 2278 ConstantSDNode *N0C = dyn_cast<ConstantSDNode>(N0); 2279 ConstantSDNode *N1C = dyn_cast<ConstantSDNode>(N1); 2280 if (N0C && !N1C) 2281 return DAG.getNode(ISD::ADDE, SDLoc(N), N->getVTList(), 2282 N1, N0, CarryIn); 2283 2284 // fold (adde x, y, false) -> (addc x, y) 2285 if (CarryIn.getOpcode() == ISD::CARRY_FALSE) 2286 return DAG.getNode(ISD::ADDC, SDLoc(N), N->getVTList(), N0, N1); 2287 2288 return SDValue(); 2289 } 2290 2291 SDValue DAGCombiner::visitADDCARRY(SDNode *N) { 2292 SDValue N0 = N->getOperand(0); 2293 SDValue N1 = N->getOperand(1); 2294 SDValue CarryIn = N->getOperand(2); 2295 SDLoc DL(N); 2296 2297 // canonicalize constant to RHS 2298 ConstantSDNode *N0C = dyn_cast<ConstantSDNode>(N0); 2299 ConstantSDNode *N1C = dyn_cast<ConstantSDNode>(N1); 2300 if (N0C && !N1C) 2301 return DAG.getNode(ISD::ADDCARRY, DL, N->getVTList(), N1, N0, CarryIn); 2302 2303 // fold (addcarry x, y, false) -> (uaddo x, y) 2304 if (isNullConstant(CarryIn)) 2305 return DAG.getNode(ISD::UADDO, DL, N->getVTList(), N0, N1); 2306 2307 // fold (addcarry 0, 0, X) -> (and (ext/trunc X), 1) and no carry. 2308 if (isNullConstant(N0) && isNullConstant(N1)) { 2309 EVT VT = N0.getValueType(); 2310 EVT CarryVT = CarryIn.getValueType(); 2311 SDValue CarryExt = DAG.getBoolExtOrTrunc(CarryIn, DL, VT, CarryVT); 2312 AddToWorklist(CarryExt.getNode()); 2313 return CombineTo(N, DAG.getNode(ISD::AND, DL, VT, CarryExt, 2314 DAG.getConstant(1, DL, VT)), 2315 DAG.getConstant(0, DL, CarryVT)); 2316 } 2317 2318 if (SDValue Combined = visitADDCARRYLike(N0, N1, CarryIn, N)) 2319 return Combined; 2320 2321 if (SDValue Combined = visitADDCARRYLike(N1, N0, CarryIn, N)) 2322 return Combined; 2323 2324 return SDValue(); 2325 } 2326 2327 SDValue DAGCombiner::visitADDCARRYLike(SDValue N0, SDValue N1, SDValue CarryIn, 2328 SDNode *N) { 2329 // Iff the flag result is dead: 2330 // (addcarry (add|uaddo X, Y), 0, Carry) -> (addcarry X, Y, Carry) 2331 if ((N0.getOpcode() == ISD::ADD || 2332 (N0.getOpcode() == ISD::UADDO && N0.getResNo() == 0)) && 2333 isNullConstant(N1) && !N->hasAnyUseOfValue(1)) 2334 return DAG.getNode(ISD::ADDCARRY, SDLoc(N), N->getVTList(), 2335 N0.getOperand(0), N0.getOperand(1), CarryIn); 2336 2337 /** 2338 * When one of the addcarry argument is itself a carry, we may be facing 2339 * a diamond carry propagation. In which case we try to transform the DAG 2340 * to ensure linear carry propagation if that is possible. 2341 * 2342 * We are trying to get: 2343 * (addcarry X, 0, (addcarry A, B, Z):Carry) 2344 */ 2345 if (auto Y = getAsCarry(TLI, N1)) { 2346 /** 2347 * (uaddo A, B) 2348 * / \ 2349 * Carry Sum 2350 * | \ 2351 * | (addcarry *, 0, Z) 2352 * | / 2353 * \ Carry 2354 * | / 2355 * (addcarry X, *, *) 2356 */ 2357 if (Y.getOpcode() == ISD::UADDO && 2358 CarryIn.getResNo() == 1 && 2359 CarryIn.getOpcode() == ISD::ADDCARRY && 2360 isNullConstant(CarryIn.getOperand(1)) && 2361 CarryIn.getOperand(0) == Y.getValue(0)) { 2362 auto NewY = DAG.getNode(ISD::ADDCARRY, SDLoc(N), Y->getVTList(), 2363 Y.getOperand(0), Y.getOperand(1), 2364 CarryIn.getOperand(2)); 2365 AddToWorklist(NewY.getNode()); 2366 return DAG.getNode(ISD::ADDCARRY, SDLoc(N), N->getVTList(), N0, 2367 DAG.getConstant(0, SDLoc(N), N0.getValueType()), 2368 NewY.getValue(1)); 2369 } 2370 } 2371 2372 return SDValue(); 2373 } 2374 2375 // Since it may not be valid to emit a fold to zero for vector initializers 2376 // check if we can before folding. 2377 static SDValue tryFoldToZero(const SDLoc &DL, const TargetLowering &TLI, EVT VT, 2378 SelectionDAG &DAG, bool LegalOperations, 2379 bool LegalTypes) { 2380 if (!VT.isVector()) 2381 return DAG.getConstant(0, DL, VT); 2382 if (!LegalOperations || TLI.isOperationLegal(ISD::BUILD_VECTOR, VT)) 2383 return DAG.getConstant(0, DL, VT); 2384 return SDValue(); 2385 } 2386 2387 SDValue DAGCombiner::visitSUB(SDNode *N) { 2388 SDValue N0 = N->getOperand(0); 2389 SDValue N1 = N->getOperand(1); 2390 EVT VT = N0.getValueType(); 2391 SDLoc DL(N); 2392 2393 // fold vector ops 2394 if (VT.isVector()) { 2395 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 2396 return FoldedVOp; 2397 2398 // fold (sub x, 0) -> x, vector edition 2399 if (ISD::isBuildVectorAllZeros(N1.getNode())) 2400 return N0; 2401 } 2402 2403 // fold (sub x, x) -> 0 2404 // FIXME: Refactor this and xor and other similar operations together. 2405 if (N0 == N1) 2406 return tryFoldToZero(DL, TLI, VT, DAG, LegalOperations, LegalTypes); 2407 if (DAG.isConstantIntBuildVectorOrConstantInt(N0) && 2408 DAG.isConstantIntBuildVectorOrConstantInt(N1)) { 2409 // fold (sub c1, c2) -> c1-c2 2410 return DAG.FoldConstantArithmetic(ISD::SUB, DL, VT, N0.getNode(), 2411 N1.getNode()); 2412 } 2413 2414 if (SDValue NewSel = foldBinOpIntoSelect(N)) 2415 return NewSel; 2416 2417 ConstantSDNode *N1C = getAsNonOpaqueConstant(N1); 2418 2419 // fold (sub x, c) -> (add x, -c) 2420 if (N1C) { 2421 return DAG.getNode(ISD::ADD, DL, VT, N0, 2422 DAG.getConstant(-N1C->getAPIntValue(), DL, VT)); 2423 } 2424 2425 if (isNullConstantOrNullSplatConstant(N0)) { 2426 unsigned BitWidth = VT.getScalarSizeInBits(); 2427 // Right-shifting everything out but the sign bit followed by negation is 2428 // the same as flipping arithmetic/logical shift type without the negation: 2429 // -(X >>u 31) -> (X >>s 31) 2430 // -(X >>s 31) -> (X >>u 31) 2431 if (N1->getOpcode() == ISD::SRA || N1->getOpcode() == ISD::SRL) { 2432 ConstantSDNode *ShiftAmt = isConstOrConstSplat(N1.getOperand(1)); 2433 if (ShiftAmt && ShiftAmt->getZExtValue() == BitWidth - 1) { 2434 auto NewSh = N1->getOpcode() == ISD::SRA ? ISD::SRL : ISD::SRA; 2435 if (!LegalOperations || TLI.isOperationLegal(NewSh, VT)) 2436 return DAG.getNode(NewSh, DL, VT, N1.getOperand(0), N1.getOperand(1)); 2437 } 2438 } 2439 2440 // 0 - X --> 0 if the sub is NUW. 2441 if (N->getFlags().hasNoUnsignedWrap()) 2442 return N0; 2443 2444 if (DAG.MaskedValueIsZero(N1, ~APInt::getSignMask(BitWidth))) { 2445 // N1 is either 0 or the minimum signed value. If the sub is NSW, then 2446 // N1 must be 0 because negating the minimum signed value is undefined. 2447 if (N->getFlags().hasNoSignedWrap()) 2448 return N0; 2449 2450 // 0 - X --> X if X is 0 or the minimum signed value. 2451 return N1; 2452 } 2453 } 2454 2455 // Canonicalize (sub -1, x) -> ~x, i.e. (xor x, -1) 2456 if (isAllOnesConstantOrAllOnesSplatConstant(N0)) 2457 return DAG.getNode(ISD::XOR, DL, VT, N1, N0); 2458 2459 // fold A-(A-B) -> B 2460 if (N1.getOpcode() == ISD::SUB && N0 == N1.getOperand(0)) 2461 return N1.getOperand(1); 2462 2463 // fold (A+B)-A -> B 2464 if (N0.getOpcode() == ISD::ADD && N0.getOperand(0) == N1) 2465 return N0.getOperand(1); 2466 2467 // fold (A+B)-B -> A 2468 if (N0.getOpcode() == ISD::ADD && N0.getOperand(1) == N1) 2469 return N0.getOperand(0); 2470 2471 // fold C2-(A+C1) -> (C2-C1)-A 2472 if (N1.getOpcode() == ISD::ADD) { 2473 SDValue N11 = N1.getOperand(1); 2474 if (isConstantOrConstantVector(N0, /* NoOpaques */ true) && 2475 isConstantOrConstantVector(N11, /* NoOpaques */ true)) { 2476 SDValue NewC = DAG.getNode(ISD::SUB, DL, VT, N0, N11); 2477 return DAG.getNode(ISD::SUB, DL, VT, NewC, N1.getOperand(0)); 2478 } 2479 } 2480 2481 // fold ((A+(B+or-C))-B) -> A+or-C 2482 if (N0.getOpcode() == ISD::ADD && 2483 (N0.getOperand(1).getOpcode() == ISD::SUB || 2484 N0.getOperand(1).getOpcode() == ISD::ADD) && 2485 N0.getOperand(1).getOperand(0) == N1) 2486 return DAG.getNode(N0.getOperand(1).getOpcode(), DL, VT, N0.getOperand(0), 2487 N0.getOperand(1).getOperand(1)); 2488 2489 // fold ((A+(C+B))-B) -> A+C 2490 if (N0.getOpcode() == ISD::ADD && N0.getOperand(1).getOpcode() == ISD::ADD && 2491 N0.getOperand(1).getOperand(1) == N1) 2492 return DAG.getNode(ISD::ADD, DL, VT, N0.getOperand(0), 2493 N0.getOperand(1).getOperand(0)); 2494 2495 // fold ((A-(B-C))-C) -> A-B 2496 if (N0.getOpcode() == ISD::SUB && N0.getOperand(1).getOpcode() == ISD::SUB && 2497 N0.getOperand(1).getOperand(1) == N1) 2498 return DAG.getNode(ISD::SUB, DL, VT, N0.getOperand(0), 2499 N0.getOperand(1).getOperand(0)); 2500 2501 // If either operand of a sub is undef, the result is undef 2502 if (N0.isUndef()) 2503 return N0; 2504 if (N1.isUndef()) 2505 return N1; 2506 2507 // If the relocation model supports it, consider symbol offsets. 2508 if (GlobalAddressSDNode *GA = dyn_cast<GlobalAddressSDNode>(N0)) 2509 if (!LegalOperations && TLI.isOffsetFoldingLegal(GA)) { 2510 // fold (sub Sym, c) -> Sym-c 2511 if (N1C && GA->getOpcode() == ISD::GlobalAddress) 2512 return DAG.getGlobalAddress(GA->getGlobal(), SDLoc(N1C), VT, 2513 GA->getOffset() - 2514 (uint64_t)N1C->getSExtValue()); 2515 // fold (sub Sym+c1, Sym+c2) -> c1-c2 2516 if (GlobalAddressSDNode *GB = dyn_cast<GlobalAddressSDNode>(N1)) 2517 if (GA->getGlobal() == GB->getGlobal()) 2518 return DAG.getConstant((uint64_t)GA->getOffset() - GB->getOffset(), 2519 DL, VT); 2520 } 2521 2522 // sub X, (sextinreg Y i1) -> add X, (and Y 1) 2523 if (N1.getOpcode() == ISD::SIGN_EXTEND_INREG) { 2524 VTSDNode *TN = cast<VTSDNode>(N1.getOperand(1)); 2525 if (TN->getVT() == MVT::i1) { 2526 SDValue ZExt = DAG.getNode(ISD::AND, DL, VT, N1.getOperand(0), 2527 DAG.getConstant(1, DL, VT)); 2528 return DAG.getNode(ISD::ADD, DL, VT, N0, ZExt); 2529 } 2530 } 2531 2532 return SDValue(); 2533 } 2534 2535 SDValue DAGCombiner::visitSUBC(SDNode *N) { 2536 SDValue N0 = N->getOperand(0); 2537 SDValue N1 = N->getOperand(1); 2538 EVT VT = N0.getValueType(); 2539 SDLoc DL(N); 2540 2541 // If the flag result is dead, turn this into an SUB. 2542 if (!N->hasAnyUseOfValue(1)) 2543 return CombineTo(N, DAG.getNode(ISD::SUB, DL, VT, N0, N1), 2544 DAG.getNode(ISD::CARRY_FALSE, DL, MVT::Glue)); 2545 2546 // fold (subc x, x) -> 0 + no borrow 2547 if (N0 == N1) 2548 return CombineTo(N, DAG.getConstant(0, DL, VT), 2549 DAG.getNode(ISD::CARRY_FALSE, DL, MVT::Glue)); 2550 2551 // fold (subc x, 0) -> x + no borrow 2552 if (isNullConstant(N1)) 2553 return CombineTo(N, N0, DAG.getNode(ISD::CARRY_FALSE, DL, MVT::Glue)); 2554 2555 // Canonicalize (sub -1, x) -> ~x, i.e. (xor x, -1) + no borrow 2556 if (isAllOnesConstant(N0)) 2557 return CombineTo(N, DAG.getNode(ISD::XOR, DL, VT, N1, N0), 2558 DAG.getNode(ISD::CARRY_FALSE, DL, MVT::Glue)); 2559 2560 return SDValue(); 2561 } 2562 2563 SDValue DAGCombiner::visitUSUBO(SDNode *N) { 2564 SDValue N0 = N->getOperand(0); 2565 SDValue N1 = N->getOperand(1); 2566 EVT VT = N0.getValueType(); 2567 if (VT.isVector()) 2568 return SDValue(); 2569 2570 EVT CarryVT = N->getValueType(1); 2571 SDLoc DL(N); 2572 2573 // If the flag result is dead, turn this into an SUB. 2574 if (!N->hasAnyUseOfValue(1)) 2575 return CombineTo(N, DAG.getNode(ISD::SUB, DL, VT, N0, N1), 2576 DAG.getUNDEF(CarryVT)); 2577 2578 // fold (usubo x, x) -> 0 + no borrow 2579 if (N0 == N1) 2580 return CombineTo(N, DAG.getConstant(0, DL, VT), 2581 DAG.getConstant(0, DL, CarryVT)); 2582 2583 // fold (usubo x, 0) -> x + no borrow 2584 if (isNullConstant(N1)) 2585 return CombineTo(N, N0, DAG.getConstant(0, DL, CarryVT)); 2586 2587 // Canonicalize (usubo -1, x) -> ~x, i.e. (xor x, -1) + no borrow 2588 if (isAllOnesConstant(N0)) 2589 return CombineTo(N, DAG.getNode(ISD::XOR, DL, VT, N1, N0), 2590 DAG.getConstant(0, DL, CarryVT)); 2591 2592 return SDValue(); 2593 } 2594 2595 SDValue DAGCombiner::visitSUBE(SDNode *N) { 2596 SDValue N0 = N->getOperand(0); 2597 SDValue N1 = N->getOperand(1); 2598 SDValue CarryIn = N->getOperand(2); 2599 2600 // fold (sube x, y, false) -> (subc x, y) 2601 if (CarryIn.getOpcode() == ISD::CARRY_FALSE) 2602 return DAG.getNode(ISD::SUBC, SDLoc(N), N->getVTList(), N0, N1); 2603 2604 return SDValue(); 2605 } 2606 2607 SDValue DAGCombiner::visitSUBCARRY(SDNode *N) { 2608 SDValue N0 = N->getOperand(0); 2609 SDValue N1 = N->getOperand(1); 2610 SDValue CarryIn = N->getOperand(2); 2611 2612 // fold (subcarry x, y, false) -> (usubo x, y) 2613 if (isNullConstant(CarryIn)) 2614 return DAG.getNode(ISD::USUBO, SDLoc(N), N->getVTList(), N0, N1); 2615 2616 return SDValue(); 2617 } 2618 2619 SDValue DAGCombiner::visitMUL(SDNode *N) { 2620 SDValue N0 = N->getOperand(0); 2621 SDValue N1 = N->getOperand(1); 2622 EVT VT = N0.getValueType(); 2623 2624 // fold (mul x, undef) -> 0 2625 if (N0.isUndef() || N1.isUndef()) 2626 return DAG.getConstant(0, SDLoc(N), VT); 2627 2628 bool N0IsConst = false; 2629 bool N1IsConst = false; 2630 bool N1IsOpaqueConst = false; 2631 bool N0IsOpaqueConst = false; 2632 APInt ConstValue0, ConstValue1; 2633 // fold vector ops 2634 if (VT.isVector()) { 2635 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 2636 return FoldedVOp; 2637 2638 N0IsConst = ISD::isConstantSplatVector(N0.getNode(), ConstValue0); 2639 N1IsConst = ISD::isConstantSplatVector(N1.getNode(), ConstValue1); 2640 assert((!N0IsConst || 2641 ConstValue0.getBitWidth() == VT.getScalarSizeInBits()) && 2642 "Splat APInt should be element width"); 2643 assert((!N1IsConst || 2644 ConstValue1.getBitWidth() == VT.getScalarSizeInBits()) && 2645 "Splat APInt should be element width"); 2646 } else { 2647 N0IsConst = isa<ConstantSDNode>(N0); 2648 if (N0IsConst) { 2649 ConstValue0 = cast<ConstantSDNode>(N0)->getAPIntValue(); 2650 N0IsOpaqueConst = cast<ConstantSDNode>(N0)->isOpaque(); 2651 } 2652 N1IsConst = isa<ConstantSDNode>(N1); 2653 if (N1IsConst) { 2654 ConstValue1 = cast<ConstantSDNode>(N1)->getAPIntValue(); 2655 N1IsOpaqueConst = cast<ConstantSDNode>(N1)->isOpaque(); 2656 } 2657 } 2658 2659 // fold (mul c1, c2) -> c1*c2 2660 if (N0IsConst && N1IsConst && !N0IsOpaqueConst && !N1IsOpaqueConst) 2661 return DAG.FoldConstantArithmetic(ISD::MUL, SDLoc(N), VT, 2662 N0.getNode(), N1.getNode()); 2663 2664 // canonicalize constant to RHS (vector doesn't have to splat) 2665 if (DAG.isConstantIntBuildVectorOrConstantInt(N0) && 2666 !DAG.isConstantIntBuildVectorOrConstantInt(N1)) 2667 return DAG.getNode(ISD::MUL, SDLoc(N), VT, N1, N0); 2668 // fold (mul x, 0) -> 0 2669 if (N1IsConst && ConstValue1.isNullValue()) 2670 return N1; 2671 // fold (mul x, 1) -> x 2672 if (N1IsConst && ConstValue1.isOneValue()) 2673 return N0; 2674 2675 if (SDValue NewSel = foldBinOpIntoSelect(N)) 2676 return NewSel; 2677 2678 // fold (mul x, -1) -> 0-x 2679 if (N1IsConst && ConstValue1.isAllOnesValue()) { 2680 SDLoc DL(N); 2681 return DAG.getNode(ISD::SUB, DL, VT, 2682 DAG.getConstant(0, DL, VT), N0); 2683 } 2684 // fold (mul x, (1 << c)) -> x << c 2685 if (isConstantOrConstantVector(N1, /*NoOpaques*/ true) && 2686 DAG.isKnownToBeAPowerOfTwo(N1) && 2687 (!VT.isVector() || Level <= AfterLegalizeVectorOps)) { 2688 SDLoc DL(N); 2689 SDValue LogBase2 = BuildLogBase2(N1, DL); 2690 AddToWorklist(LogBase2.getNode()); 2691 2692 EVT ShiftVT = getShiftAmountTy(N0.getValueType()); 2693 SDValue Trunc = DAG.getZExtOrTrunc(LogBase2, DL, ShiftVT); 2694 AddToWorklist(Trunc.getNode()); 2695 return DAG.getNode(ISD::SHL, DL, VT, N0, Trunc); 2696 } 2697 // fold (mul x, -(1 << c)) -> -(x << c) or (-x) << c 2698 if (N1IsConst && !N1IsOpaqueConst && (-ConstValue1).isPowerOf2()) { 2699 unsigned Log2Val = (-ConstValue1).logBase2(); 2700 SDLoc DL(N); 2701 // FIXME: If the input is something that is easily negated (e.g. a 2702 // single-use add), we should put the negate there. 2703 return DAG.getNode(ISD::SUB, DL, VT, 2704 DAG.getConstant(0, DL, VT), 2705 DAG.getNode(ISD::SHL, DL, VT, N0, 2706 DAG.getConstant(Log2Val, DL, 2707 getShiftAmountTy(N0.getValueType())))); 2708 } 2709 2710 // (mul (shl X, c1), c2) -> (mul X, c2 << c1) 2711 if (N0.getOpcode() == ISD::SHL && 2712 isConstantOrConstantVector(N1, /* NoOpaques */ true) && 2713 isConstantOrConstantVector(N0.getOperand(1), /* NoOpaques */ true)) { 2714 SDValue C3 = DAG.getNode(ISD::SHL, SDLoc(N), VT, N1, N0.getOperand(1)); 2715 if (isConstantOrConstantVector(C3)) 2716 return DAG.getNode(ISD::MUL, SDLoc(N), VT, N0.getOperand(0), C3); 2717 } 2718 2719 // Change (mul (shl X, C), Y) -> (shl (mul X, Y), C) when the shift has one 2720 // use. 2721 { 2722 SDValue Sh(nullptr, 0), Y(nullptr, 0); 2723 2724 // Check for both (mul (shl X, C), Y) and (mul Y, (shl X, C)). 2725 if (N0.getOpcode() == ISD::SHL && 2726 isConstantOrConstantVector(N0.getOperand(1)) && 2727 N0.getNode()->hasOneUse()) { 2728 Sh = N0; Y = N1; 2729 } else if (N1.getOpcode() == ISD::SHL && 2730 isConstantOrConstantVector(N1.getOperand(1)) && 2731 N1.getNode()->hasOneUse()) { 2732 Sh = N1; Y = N0; 2733 } 2734 2735 if (Sh.getNode()) { 2736 SDValue Mul = DAG.getNode(ISD::MUL, SDLoc(N), VT, Sh.getOperand(0), Y); 2737 return DAG.getNode(ISD::SHL, SDLoc(N), VT, Mul, Sh.getOperand(1)); 2738 } 2739 } 2740 2741 // fold (mul (add x, c1), c2) -> (add (mul x, c2), c1*c2) 2742 if (DAG.isConstantIntBuildVectorOrConstantInt(N1) && 2743 N0.getOpcode() == ISD::ADD && 2744 DAG.isConstantIntBuildVectorOrConstantInt(N0.getOperand(1)) && 2745 isMulAddWithConstProfitable(N, N0, N1)) 2746 return DAG.getNode(ISD::ADD, SDLoc(N), VT, 2747 DAG.getNode(ISD::MUL, SDLoc(N0), VT, 2748 N0.getOperand(0), N1), 2749 DAG.getNode(ISD::MUL, SDLoc(N1), VT, 2750 N0.getOperand(1), N1)); 2751 2752 // reassociate mul 2753 if (SDValue RMUL = ReassociateOps(ISD::MUL, SDLoc(N), N0, N1)) 2754 return RMUL; 2755 2756 return SDValue(); 2757 } 2758 2759 /// Return true if divmod libcall is available. 2760 static bool isDivRemLibcallAvailable(SDNode *Node, bool isSigned, 2761 const TargetLowering &TLI) { 2762 RTLIB::Libcall LC; 2763 EVT NodeType = Node->getValueType(0); 2764 if (!NodeType.isSimple()) 2765 return false; 2766 switch (NodeType.getSimpleVT().SimpleTy) { 2767 default: return false; // No libcall for vector types. 2768 case MVT::i8: LC= isSigned ? RTLIB::SDIVREM_I8 : RTLIB::UDIVREM_I8; break; 2769 case MVT::i16: LC= isSigned ? RTLIB::SDIVREM_I16 : RTLIB::UDIVREM_I16; break; 2770 case MVT::i32: LC= isSigned ? RTLIB::SDIVREM_I32 : RTLIB::UDIVREM_I32; break; 2771 case MVT::i64: LC= isSigned ? RTLIB::SDIVREM_I64 : RTLIB::UDIVREM_I64; break; 2772 case MVT::i128: LC= isSigned ? RTLIB::SDIVREM_I128:RTLIB::UDIVREM_I128; break; 2773 } 2774 2775 return TLI.getLibcallName(LC) != nullptr; 2776 } 2777 2778 /// Issue divrem if both quotient and remainder are needed. 2779 SDValue DAGCombiner::useDivRem(SDNode *Node) { 2780 if (Node->use_empty()) 2781 return SDValue(); // This is a dead node, leave it alone. 2782 2783 unsigned Opcode = Node->getOpcode(); 2784 bool isSigned = (Opcode == ISD::SDIV) || (Opcode == ISD::SREM); 2785 unsigned DivRemOpc = isSigned ? ISD::SDIVREM : ISD::UDIVREM; 2786 2787 // DivMod lib calls can still work on non-legal types if using lib-calls. 2788 EVT VT = Node->getValueType(0); 2789 if (VT.isVector() || !VT.isInteger()) 2790 return SDValue(); 2791 2792 if (!TLI.isTypeLegal(VT) && !TLI.isOperationCustom(DivRemOpc, VT)) 2793 return SDValue(); 2794 2795 // If DIVREM is going to get expanded into a libcall, 2796 // but there is no libcall available, then don't combine. 2797 if (!TLI.isOperationLegalOrCustom(DivRemOpc, VT) && 2798 !isDivRemLibcallAvailable(Node, isSigned, TLI)) 2799 return SDValue(); 2800 2801 // If div is legal, it's better to do the normal expansion 2802 unsigned OtherOpcode = 0; 2803 if ((Opcode == ISD::SDIV) || (Opcode == ISD::UDIV)) { 2804 OtherOpcode = isSigned ? ISD::SREM : ISD::UREM; 2805 if (TLI.isOperationLegalOrCustom(Opcode, VT)) 2806 return SDValue(); 2807 } else { 2808 OtherOpcode = isSigned ? ISD::SDIV : ISD::UDIV; 2809 if (TLI.isOperationLegalOrCustom(OtherOpcode, VT)) 2810 return SDValue(); 2811 } 2812 2813 SDValue Op0 = Node->getOperand(0); 2814 SDValue Op1 = Node->getOperand(1); 2815 SDValue combined; 2816 for (SDNode::use_iterator UI = Op0.getNode()->use_begin(), 2817 UE = Op0.getNode()->use_end(); UI != UE;) { 2818 SDNode *User = *UI++; 2819 if (User == Node || User->use_empty()) 2820 continue; 2821 // Convert the other matching node(s), too; 2822 // otherwise, the DIVREM may get target-legalized into something 2823 // target-specific that we won't be able to recognize. 2824 unsigned UserOpc = User->getOpcode(); 2825 if ((UserOpc == Opcode || UserOpc == OtherOpcode || UserOpc == DivRemOpc) && 2826 User->getOperand(0) == Op0 && 2827 User->getOperand(1) == Op1) { 2828 if (!combined) { 2829 if (UserOpc == OtherOpcode) { 2830 SDVTList VTs = DAG.getVTList(VT, VT); 2831 combined = DAG.getNode(DivRemOpc, SDLoc(Node), VTs, Op0, Op1); 2832 } else if (UserOpc == DivRemOpc) { 2833 combined = SDValue(User, 0); 2834 } else { 2835 assert(UserOpc == Opcode); 2836 continue; 2837 } 2838 } 2839 if (UserOpc == ISD::SDIV || UserOpc == ISD::UDIV) 2840 CombineTo(User, combined); 2841 else if (UserOpc == ISD::SREM || UserOpc == ISD::UREM) 2842 CombineTo(User, combined.getValue(1)); 2843 } 2844 } 2845 return combined; 2846 } 2847 2848 static SDValue simplifyDivRem(SDNode *N, SelectionDAG &DAG) { 2849 SDValue N0 = N->getOperand(0); 2850 SDValue N1 = N->getOperand(1); 2851 EVT VT = N->getValueType(0); 2852 SDLoc DL(N); 2853 2854 if (DAG.isUndef(N->getOpcode(), {N0, N1})) 2855 return DAG.getUNDEF(VT); 2856 2857 // undef / X -> 0 2858 // undef % X -> 0 2859 if (N0.isUndef()) 2860 return DAG.getConstant(0, DL, VT); 2861 2862 return SDValue(); 2863 } 2864 2865 SDValue DAGCombiner::visitSDIV(SDNode *N) { 2866 SDValue N0 = N->getOperand(0); 2867 SDValue N1 = N->getOperand(1); 2868 EVT VT = N->getValueType(0); 2869 2870 // fold vector ops 2871 if (VT.isVector()) 2872 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 2873 return FoldedVOp; 2874 2875 SDLoc DL(N); 2876 2877 // fold (sdiv c1, c2) -> c1/c2 2878 ConstantSDNode *N0C = isConstOrConstSplat(N0); 2879 ConstantSDNode *N1C = isConstOrConstSplat(N1); 2880 if (N0C && N1C && !N0C->isOpaque() && !N1C->isOpaque()) 2881 return DAG.FoldConstantArithmetic(ISD::SDIV, DL, VT, N0C, N1C); 2882 // fold (sdiv X, 1) -> X 2883 if (N1C && N1C->isOne()) 2884 return N0; 2885 // fold (sdiv X, -1) -> 0-X 2886 if (N1C && N1C->isAllOnesValue()) 2887 return DAG.getNode(ISD::SUB, DL, VT, DAG.getConstant(0, DL, VT), N0); 2888 2889 if (SDValue V = simplifyDivRem(N, DAG)) 2890 return V; 2891 2892 if (SDValue NewSel = foldBinOpIntoSelect(N)) 2893 return NewSel; 2894 2895 // If we know the sign bits of both operands are zero, strength reduce to a 2896 // udiv instead. Handles (X&15) /s 4 -> X&15 >> 2 2897 if (DAG.SignBitIsZero(N1) && DAG.SignBitIsZero(N0)) 2898 return DAG.getNode(ISD::UDIV, DL, N1.getValueType(), N0, N1); 2899 2900 // fold (sdiv X, pow2) -> simple ops after legalize 2901 // FIXME: We check for the exact bit here because the generic lowering gives 2902 // better results in that case. The target-specific lowering should learn how 2903 // to handle exact sdivs efficiently. 2904 if (N1C && !N1C->isNullValue() && !N1C->isOpaque() && 2905 !N->getFlags().hasExact() && (N1C->getAPIntValue().isPowerOf2() || 2906 (-N1C->getAPIntValue()).isPowerOf2())) { 2907 // Target-specific implementation of sdiv x, pow2. 2908 if (SDValue Res = BuildSDIVPow2(N)) 2909 return Res; 2910 2911 unsigned lg2 = N1C->getAPIntValue().countTrailingZeros(); 2912 2913 // Splat the sign bit into the register 2914 SDValue SGN = 2915 DAG.getNode(ISD::SRA, DL, VT, N0, 2916 DAG.getConstant(VT.getScalarSizeInBits() - 1, DL, 2917 getShiftAmountTy(N0.getValueType()))); 2918 AddToWorklist(SGN.getNode()); 2919 2920 // Add (N0 < 0) ? abs2 - 1 : 0; 2921 SDValue SRL = 2922 DAG.getNode(ISD::SRL, DL, VT, SGN, 2923 DAG.getConstant(VT.getScalarSizeInBits() - lg2, DL, 2924 getShiftAmountTy(SGN.getValueType()))); 2925 SDValue ADD = DAG.getNode(ISD::ADD, DL, VT, N0, SRL); 2926 AddToWorklist(SRL.getNode()); 2927 AddToWorklist(ADD.getNode()); // Divide by pow2 2928 SDValue SRA = DAG.getNode(ISD::SRA, DL, VT, ADD, 2929 DAG.getConstant(lg2, DL, 2930 getShiftAmountTy(ADD.getValueType()))); 2931 2932 // If we're dividing by a positive value, we're done. Otherwise, we must 2933 // negate the result. 2934 if (N1C->getAPIntValue().isNonNegative()) 2935 return SRA; 2936 2937 AddToWorklist(SRA.getNode()); 2938 return DAG.getNode(ISD::SUB, DL, VT, DAG.getConstant(0, DL, VT), SRA); 2939 } 2940 2941 // If integer divide is expensive and we satisfy the requirements, emit an 2942 // alternate sequence. Targets may check function attributes for size/speed 2943 // trade-offs. 2944 AttributeList Attr = DAG.getMachineFunction().getFunction().getAttributes(); 2945 if (N1C && !TLI.isIntDivCheap(N->getValueType(0), Attr)) 2946 if (SDValue Op = BuildSDIV(N)) 2947 return Op; 2948 2949 // sdiv, srem -> sdivrem 2950 // If the divisor is constant, then return DIVREM only if isIntDivCheap() is 2951 // true. Otherwise, we break the simplification logic in visitREM(). 2952 if (!N1C || TLI.isIntDivCheap(N->getValueType(0), Attr)) 2953 if (SDValue DivRem = useDivRem(N)) 2954 return DivRem; 2955 2956 return SDValue(); 2957 } 2958 2959 SDValue DAGCombiner::visitUDIV(SDNode *N) { 2960 SDValue N0 = N->getOperand(0); 2961 SDValue N1 = N->getOperand(1); 2962 EVT VT = N->getValueType(0); 2963 2964 // fold vector ops 2965 if (VT.isVector()) 2966 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 2967 return FoldedVOp; 2968 2969 SDLoc DL(N); 2970 2971 // fold (udiv c1, c2) -> c1/c2 2972 ConstantSDNode *N0C = isConstOrConstSplat(N0); 2973 ConstantSDNode *N1C = isConstOrConstSplat(N1); 2974 if (N0C && N1C) 2975 if (SDValue Folded = DAG.FoldConstantArithmetic(ISD::UDIV, DL, VT, 2976 N0C, N1C)) 2977 return Folded; 2978 2979 if (SDValue V = simplifyDivRem(N, DAG)) 2980 return V; 2981 2982 if (SDValue NewSel = foldBinOpIntoSelect(N)) 2983 return NewSel; 2984 2985 // fold (udiv x, (1 << c)) -> x >>u c 2986 if (isConstantOrConstantVector(N1, /*NoOpaques*/ true) && 2987 DAG.isKnownToBeAPowerOfTwo(N1)) { 2988 SDValue LogBase2 = BuildLogBase2(N1, DL); 2989 AddToWorklist(LogBase2.getNode()); 2990 2991 EVT ShiftVT = getShiftAmountTy(N0.getValueType()); 2992 SDValue Trunc = DAG.getZExtOrTrunc(LogBase2, DL, ShiftVT); 2993 AddToWorklist(Trunc.getNode()); 2994 return DAG.getNode(ISD::SRL, DL, VT, N0, Trunc); 2995 } 2996 2997 // fold (udiv x, (shl c, y)) -> x >>u (log2(c)+y) iff c is power of 2 2998 if (N1.getOpcode() == ISD::SHL) { 2999 SDValue N10 = N1.getOperand(0); 3000 if (isConstantOrConstantVector(N10, /*NoOpaques*/ true) && 3001 DAG.isKnownToBeAPowerOfTwo(N10)) { 3002 SDValue LogBase2 = BuildLogBase2(N10, DL); 3003 AddToWorklist(LogBase2.getNode()); 3004 3005 EVT ADDVT = N1.getOperand(1).getValueType(); 3006 SDValue Trunc = DAG.getZExtOrTrunc(LogBase2, DL, ADDVT); 3007 AddToWorklist(Trunc.getNode()); 3008 SDValue Add = DAG.getNode(ISD::ADD, DL, ADDVT, N1.getOperand(1), Trunc); 3009 AddToWorklist(Add.getNode()); 3010 return DAG.getNode(ISD::SRL, DL, VT, N0, Add); 3011 } 3012 } 3013 3014 // fold (udiv x, c) -> alternate 3015 AttributeList Attr = DAG.getMachineFunction().getFunction().getAttributes(); 3016 if (N1C && !TLI.isIntDivCheap(N->getValueType(0), Attr)) 3017 if (SDValue Op = BuildUDIV(N)) 3018 return Op; 3019 3020 // sdiv, srem -> sdivrem 3021 // If the divisor is constant, then return DIVREM only if isIntDivCheap() is 3022 // true. Otherwise, we break the simplification logic in visitREM(). 3023 if (!N1C || TLI.isIntDivCheap(N->getValueType(0), Attr)) 3024 if (SDValue DivRem = useDivRem(N)) 3025 return DivRem; 3026 3027 return SDValue(); 3028 } 3029 3030 // handles ISD::SREM and ISD::UREM 3031 SDValue DAGCombiner::visitREM(SDNode *N) { 3032 unsigned Opcode = N->getOpcode(); 3033 SDValue N0 = N->getOperand(0); 3034 SDValue N1 = N->getOperand(1); 3035 EVT VT = N->getValueType(0); 3036 bool isSigned = (Opcode == ISD::SREM); 3037 SDLoc DL(N); 3038 3039 // fold (rem c1, c2) -> c1%c2 3040 ConstantSDNode *N0C = isConstOrConstSplat(N0); 3041 ConstantSDNode *N1C = isConstOrConstSplat(N1); 3042 if (N0C && N1C) 3043 if (SDValue Folded = DAG.FoldConstantArithmetic(Opcode, DL, VT, N0C, N1C)) 3044 return Folded; 3045 3046 if (SDValue V = simplifyDivRem(N, DAG)) 3047 return V; 3048 3049 if (SDValue NewSel = foldBinOpIntoSelect(N)) 3050 return NewSel; 3051 3052 if (isSigned) { 3053 // If we know the sign bits of both operands are zero, strength reduce to a 3054 // urem instead. Handles (X & 0x0FFFFFFF) %s 16 -> X&15 3055 if (DAG.SignBitIsZero(N1) && DAG.SignBitIsZero(N0)) 3056 return DAG.getNode(ISD::UREM, DL, VT, N0, N1); 3057 } else { 3058 SDValue NegOne = DAG.getAllOnesConstant(DL, VT); 3059 if (DAG.isKnownToBeAPowerOfTwo(N1)) { 3060 // fold (urem x, pow2) -> (and x, pow2-1) 3061 SDValue Add = DAG.getNode(ISD::ADD, DL, VT, N1, NegOne); 3062 AddToWorklist(Add.getNode()); 3063 return DAG.getNode(ISD::AND, DL, VT, N0, Add); 3064 } 3065 if (N1.getOpcode() == ISD::SHL && 3066 DAG.isKnownToBeAPowerOfTwo(N1.getOperand(0))) { 3067 // fold (urem x, (shl pow2, y)) -> (and x, (add (shl pow2, y), -1)) 3068 SDValue Add = DAG.getNode(ISD::ADD, DL, VT, N1, NegOne); 3069 AddToWorklist(Add.getNode()); 3070 return DAG.getNode(ISD::AND, DL, VT, N0, Add); 3071 } 3072 } 3073 3074 AttributeList Attr = DAG.getMachineFunction().getFunction().getAttributes(); 3075 3076 // If X/C can be simplified by the division-by-constant logic, lower 3077 // X%C to the equivalent of X-X/C*C. 3078 // To avoid mangling nodes, this simplification requires that the combine() 3079 // call for the speculative DIV must not cause a DIVREM conversion. We guard 3080 // against this by skipping the simplification if isIntDivCheap(). When 3081 // div is not cheap, combine will not return a DIVREM. Regardless, 3082 // checking cheapness here makes sense since the simplification results in 3083 // fatter code. 3084 if (N1C && !N1C->isNullValue() && !TLI.isIntDivCheap(VT, Attr)) { 3085 unsigned DivOpcode = isSigned ? ISD::SDIV : ISD::UDIV; 3086 SDValue Div = DAG.getNode(DivOpcode, DL, VT, N0, N1); 3087 AddToWorklist(Div.getNode()); 3088 SDValue OptimizedDiv = combine(Div.getNode()); 3089 if (OptimizedDiv.getNode() && OptimizedDiv.getNode() != Div.getNode()) { 3090 assert((OptimizedDiv.getOpcode() != ISD::UDIVREM) && 3091 (OptimizedDiv.getOpcode() != ISD::SDIVREM)); 3092 SDValue Mul = DAG.getNode(ISD::MUL, DL, VT, OptimizedDiv, N1); 3093 SDValue Sub = DAG.getNode(ISD::SUB, DL, VT, N0, Mul); 3094 AddToWorklist(Mul.getNode()); 3095 return Sub; 3096 } 3097 } 3098 3099 // sdiv, srem -> sdivrem 3100 if (SDValue DivRem = useDivRem(N)) 3101 return DivRem.getValue(1); 3102 3103 return SDValue(); 3104 } 3105 3106 SDValue DAGCombiner::visitMULHS(SDNode *N) { 3107 SDValue N0 = N->getOperand(0); 3108 SDValue N1 = N->getOperand(1); 3109 EVT VT = N->getValueType(0); 3110 SDLoc DL(N); 3111 3112 if (VT.isVector()) { 3113 // fold (mulhs x, 0) -> 0 3114 if (ISD::isBuildVectorAllZeros(N1.getNode())) 3115 return N1; 3116 if (ISD::isBuildVectorAllZeros(N0.getNode())) 3117 return N0; 3118 } 3119 3120 // fold (mulhs x, 0) -> 0 3121 if (isNullConstant(N1)) 3122 return N1; 3123 // fold (mulhs x, 1) -> (sra x, size(x)-1) 3124 if (isOneConstant(N1)) 3125 return DAG.getNode(ISD::SRA, DL, N0.getValueType(), N0, 3126 DAG.getConstant(N0.getValueSizeInBits() - 1, DL, 3127 getShiftAmountTy(N0.getValueType()))); 3128 3129 // fold (mulhs x, undef) -> 0 3130 if (N0.isUndef() || N1.isUndef()) 3131 return DAG.getConstant(0, DL, VT); 3132 3133 // If the type twice as wide is legal, transform the mulhs to a wider multiply 3134 // plus a shift. 3135 if (VT.isSimple() && !VT.isVector()) { 3136 MVT Simple = VT.getSimpleVT(); 3137 unsigned SimpleSize = Simple.getSizeInBits(); 3138 EVT NewVT = EVT::getIntegerVT(*DAG.getContext(), SimpleSize*2); 3139 if (TLI.isOperationLegal(ISD::MUL, NewVT)) { 3140 N0 = DAG.getNode(ISD::SIGN_EXTEND, DL, NewVT, N0); 3141 N1 = DAG.getNode(ISD::SIGN_EXTEND, DL, NewVT, N1); 3142 N1 = DAG.getNode(ISD::MUL, DL, NewVT, N0, N1); 3143 N1 = DAG.getNode(ISD::SRL, DL, NewVT, N1, 3144 DAG.getConstant(SimpleSize, DL, 3145 getShiftAmountTy(N1.getValueType()))); 3146 return DAG.getNode(ISD::TRUNCATE, DL, VT, N1); 3147 } 3148 } 3149 3150 return SDValue(); 3151 } 3152 3153 SDValue DAGCombiner::visitMULHU(SDNode *N) { 3154 SDValue N0 = N->getOperand(0); 3155 SDValue N1 = N->getOperand(1); 3156 EVT VT = N->getValueType(0); 3157 SDLoc DL(N); 3158 3159 if (VT.isVector()) { 3160 // fold (mulhu x, 0) -> 0 3161 if (ISD::isBuildVectorAllZeros(N1.getNode())) 3162 return N1; 3163 if (ISD::isBuildVectorAllZeros(N0.getNode())) 3164 return N0; 3165 } 3166 3167 // fold (mulhu x, 0) -> 0 3168 if (isNullConstant(N1)) 3169 return N1; 3170 // fold (mulhu x, 1) -> 0 3171 if (isOneConstant(N1)) 3172 return DAG.getConstant(0, DL, N0.getValueType()); 3173 // fold (mulhu x, undef) -> 0 3174 if (N0.isUndef() || N1.isUndef()) 3175 return DAG.getConstant(0, DL, VT); 3176 3177 // If the type twice as wide is legal, transform the mulhu to a wider multiply 3178 // plus a shift. 3179 if (VT.isSimple() && !VT.isVector()) { 3180 MVT Simple = VT.getSimpleVT(); 3181 unsigned SimpleSize = Simple.getSizeInBits(); 3182 EVT NewVT = EVT::getIntegerVT(*DAG.getContext(), SimpleSize*2); 3183 if (TLI.isOperationLegal(ISD::MUL, NewVT)) { 3184 N0 = DAG.getNode(ISD::ZERO_EXTEND, DL, NewVT, N0); 3185 N1 = DAG.getNode(ISD::ZERO_EXTEND, DL, NewVT, N1); 3186 N1 = DAG.getNode(ISD::MUL, DL, NewVT, N0, N1); 3187 N1 = DAG.getNode(ISD::SRL, DL, NewVT, N1, 3188 DAG.getConstant(SimpleSize, DL, 3189 getShiftAmountTy(N1.getValueType()))); 3190 return DAG.getNode(ISD::TRUNCATE, DL, VT, N1); 3191 } 3192 } 3193 3194 return SDValue(); 3195 } 3196 3197 /// Perform optimizations common to nodes that compute two values. LoOp and HiOp 3198 /// give the opcodes for the two computations that are being performed. Return 3199 /// true if a simplification was made. 3200 SDValue DAGCombiner::SimplifyNodeWithTwoResults(SDNode *N, unsigned LoOp, 3201 unsigned HiOp) { 3202 // If the high half is not needed, just compute the low half. 3203 bool HiExists = N->hasAnyUseOfValue(1); 3204 if (!HiExists && 3205 (!LegalOperations || 3206 TLI.isOperationLegalOrCustom(LoOp, N->getValueType(0)))) { 3207 SDValue Res = DAG.getNode(LoOp, SDLoc(N), N->getValueType(0), N->ops()); 3208 return CombineTo(N, Res, Res); 3209 } 3210 3211 // If the low half is not needed, just compute the high half. 3212 bool LoExists = N->hasAnyUseOfValue(0); 3213 if (!LoExists && 3214 (!LegalOperations || 3215 TLI.isOperationLegal(HiOp, N->getValueType(1)))) { 3216 SDValue Res = DAG.getNode(HiOp, SDLoc(N), N->getValueType(1), N->ops()); 3217 return CombineTo(N, Res, Res); 3218 } 3219 3220 // If both halves are used, return as it is. 3221 if (LoExists && HiExists) 3222 return SDValue(); 3223 3224 // If the two computed results can be simplified separately, separate them. 3225 if (LoExists) { 3226 SDValue Lo = DAG.getNode(LoOp, SDLoc(N), N->getValueType(0), N->ops()); 3227 AddToWorklist(Lo.getNode()); 3228 SDValue LoOpt = combine(Lo.getNode()); 3229 if (LoOpt.getNode() && LoOpt.getNode() != Lo.getNode() && 3230 (!LegalOperations || 3231 TLI.isOperationLegal(LoOpt.getOpcode(), LoOpt.getValueType()))) 3232 return CombineTo(N, LoOpt, LoOpt); 3233 } 3234 3235 if (HiExists) { 3236 SDValue Hi = DAG.getNode(HiOp, SDLoc(N), N->getValueType(1), N->ops()); 3237 AddToWorklist(Hi.getNode()); 3238 SDValue HiOpt = combine(Hi.getNode()); 3239 if (HiOpt.getNode() && HiOpt != Hi && 3240 (!LegalOperations || 3241 TLI.isOperationLegal(HiOpt.getOpcode(), HiOpt.getValueType()))) 3242 return CombineTo(N, HiOpt, HiOpt); 3243 } 3244 3245 return SDValue(); 3246 } 3247 3248 SDValue DAGCombiner::visitSMUL_LOHI(SDNode *N) { 3249 if (SDValue Res = SimplifyNodeWithTwoResults(N, ISD::MUL, ISD::MULHS)) 3250 return Res; 3251 3252 EVT VT = N->getValueType(0); 3253 SDLoc DL(N); 3254 3255 // If the type is twice as wide is legal, transform the mulhu to a wider 3256 // multiply plus a shift. 3257 if (VT.isSimple() && !VT.isVector()) { 3258 MVT Simple = VT.getSimpleVT(); 3259 unsigned SimpleSize = Simple.getSizeInBits(); 3260 EVT NewVT = EVT::getIntegerVT(*DAG.getContext(), SimpleSize*2); 3261 if (TLI.isOperationLegal(ISD::MUL, NewVT)) { 3262 SDValue Lo = DAG.getNode(ISD::SIGN_EXTEND, DL, NewVT, N->getOperand(0)); 3263 SDValue Hi = DAG.getNode(ISD::SIGN_EXTEND, DL, NewVT, N->getOperand(1)); 3264 Lo = DAG.getNode(ISD::MUL, DL, NewVT, Lo, Hi); 3265 // Compute the high part as N1. 3266 Hi = DAG.getNode(ISD::SRL, DL, NewVT, Lo, 3267 DAG.getConstant(SimpleSize, DL, 3268 getShiftAmountTy(Lo.getValueType()))); 3269 Hi = DAG.getNode(ISD::TRUNCATE, DL, VT, Hi); 3270 // Compute the low part as N0. 3271 Lo = DAG.getNode(ISD::TRUNCATE, DL, VT, Lo); 3272 return CombineTo(N, Lo, Hi); 3273 } 3274 } 3275 3276 return SDValue(); 3277 } 3278 3279 SDValue DAGCombiner::visitUMUL_LOHI(SDNode *N) { 3280 if (SDValue Res = SimplifyNodeWithTwoResults(N, ISD::MUL, ISD::MULHU)) 3281 return Res; 3282 3283 EVT VT = N->getValueType(0); 3284 SDLoc DL(N); 3285 3286 // If the type is twice as wide is legal, transform the mulhu to a wider 3287 // multiply plus a shift. 3288 if (VT.isSimple() && !VT.isVector()) { 3289 MVT Simple = VT.getSimpleVT(); 3290 unsigned SimpleSize = Simple.getSizeInBits(); 3291 EVT NewVT = EVT::getIntegerVT(*DAG.getContext(), SimpleSize*2); 3292 if (TLI.isOperationLegal(ISD::MUL, NewVT)) { 3293 SDValue Lo = DAG.getNode(ISD::ZERO_EXTEND, DL, NewVT, N->getOperand(0)); 3294 SDValue Hi = DAG.getNode(ISD::ZERO_EXTEND, DL, NewVT, N->getOperand(1)); 3295 Lo = DAG.getNode(ISD::MUL, DL, NewVT, Lo, Hi); 3296 // Compute the high part as N1. 3297 Hi = DAG.getNode(ISD::SRL, DL, NewVT, Lo, 3298 DAG.getConstant(SimpleSize, DL, 3299 getShiftAmountTy(Lo.getValueType()))); 3300 Hi = DAG.getNode(ISD::TRUNCATE, DL, VT, Hi); 3301 // Compute the low part as N0. 3302 Lo = DAG.getNode(ISD::TRUNCATE, DL, VT, Lo); 3303 return CombineTo(N, Lo, Hi); 3304 } 3305 } 3306 3307 return SDValue(); 3308 } 3309 3310 SDValue DAGCombiner::visitSMULO(SDNode *N) { 3311 // (smulo x, 2) -> (saddo x, x) 3312 if (ConstantSDNode *C2 = dyn_cast<ConstantSDNode>(N->getOperand(1))) 3313 if (C2->getAPIntValue() == 2) 3314 return DAG.getNode(ISD::SADDO, SDLoc(N), N->getVTList(), 3315 N->getOperand(0), N->getOperand(0)); 3316 3317 return SDValue(); 3318 } 3319 3320 SDValue DAGCombiner::visitUMULO(SDNode *N) { 3321 // (umulo x, 2) -> (uaddo x, x) 3322 if (ConstantSDNode *C2 = dyn_cast<ConstantSDNode>(N->getOperand(1))) 3323 if (C2->getAPIntValue() == 2) 3324 return DAG.getNode(ISD::UADDO, SDLoc(N), N->getVTList(), 3325 N->getOperand(0), N->getOperand(0)); 3326 3327 return SDValue(); 3328 } 3329 3330 SDValue DAGCombiner::visitIMINMAX(SDNode *N) { 3331 SDValue N0 = N->getOperand(0); 3332 SDValue N1 = N->getOperand(1); 3333 EVT VT = N0.getValueType(); 3334 3335 // fold vector ops 3336 if (VT.isVector()) 3337 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 3338 return FoldedVOp; 3339 3340 // fold operation with constant operands. 3341 ConstantSDNode *N0C = getAsNonOpaqueConstant(N0); 3342 ConstantSDNode *N1C = getAsNonOpaqueConstant(N1); 3343 if (N0C && N1C) 3344 return DAG.FoldConstantArithmetic(N->getOpcode(), SDLoc(N), VT, N0C, N1C); 3345 3346 // canonicalize constant to RHS 3347 if (DAG.isConstantIntBuildVectorOrConstantInt(N0) && 3348 !DAG.isConstantIntBuildVectorOrConstantInt(N1)) 3349 return DAG.getNode(N->getOpcode(), SDLoc(N), VT, N1, N0); 3350 3351 return SDValue(); 3352 } 3353 3354 /// If this is a binary operator with two operands of the same opcode, try to 3355 /// simplify it. 3356 SDValue DAGCombiner::SimplifyBinOpWithSameOpcodeHands(SDNode *N) { 3357 SDValue N0 = N->getOperand(0), N1 = N->getOperand(1); 3358 EVT VT = N0.getValueType(); 3359 assert(N0.getOpcode() == N1.getOpcode() && "Bad input!"); 3360 3361 // Bail early if none of these transforms apply. 3362 if (N0.getNumOperands() == 0) return SDValue(); 3363 3364 // For each of OP in AND/OR/XOR: 3365 // fold (OP (zext x), (zext y)) -> (zext (OP x, y)) 3366 // fold (OP (sext x), (sext y)) -> (sext (OP x, y)) 3367 // fold (OP (aext x), (aext y)) -> (aext (OP x, y)) 3368 // fold (OP (bswap x), (bswap y)) -> (bswap (OP x, y)) 3369 // fold (OP (trunc x), (trunc y)) -> (trunc (OP x, y)) (if trunc isn't free) 3370 // 3371 // do not sink logical op inside of a vector extend, since it may combine 3372 // into a vsetcc. 3373 EVT Op0VT = N0.getOperand(0).getValueType(); 3374 if ((N0.getOpcode() == ISD::ZERO_EXTEND || 3375 N0.getOpcode() == ISD::SIGN_EXTEND || 3376 N0.getOpcode() == ISD::BSWAP || 3377 // Avoid infinite looping with PromoteIntBinOp. 3378 (N0.getOpcode() == ISD::ANY_EXTEND && 3379 (!LegalTypes || TLI.isTypeDesirableForOp(N->getOpcode(), Op0VT))) || 3380 (N0.getOpcode() == ISD::TRUNCATE && 3381 (!TLI.isZExtFree(VT, Op0VT) || 3382 !TLI.isTruncateFree(Op0VT, VT)) && 3383 TLI.isTypeLegal(Op0VT))) && 3384 !VT.isVector() && 3385 Op0VT == N1.getOperand(0).getValueType() && 3386 (!LegalOperations || TLI.isOperationLegal(N->getOpcode(), Op0VT))) { 3387 SDValue ORNode = DAG.getNode(N->getOpcode(), SDLoc(N0), 3388 N0.getOperand(0).getValueType(), 3389 N0.getOperand(0), N1.getOperand(0)); 3390 AddToWorklist(ORNode.getNode()); 3391 return DAG.getNode(N0.getOpcode(), SDLoc(N), VT, ORNode); 3392 } 3393 3394 // For each of OP in SHL/SRL/SRA/AND... 3395 // fold (and (OP x, z), (OP y, z)) -> (OP (and x, y), z) 3396 // fold (or (OP x, z), (OP y, z)) -> (OP (or x, y), z) 3397 // fold (xor (OP x, z), (OP y, z)) -> (OP (xor x, y), z) 3398 if ((N0.getOpcode() == ISD::SHL || N0.getOpcode() == ISD::SRL || 3399 N0.getOpcode() == ISD::SRA || N0.getOpcode() == ISD::AND) && 3400 N0.getOperand(1) == N1.getOperand(1)) { 3401 SDValue ORNode = DAG.getNode(N->getOpcode(), SDLoc(N0), 3402 N0.getOperand(0).getValueType(), 3403 N0.getOperand(0), N1.getOperand(0)); 3404 AddToWorklist(ORNode.getNode()); 3405 return DAG.getNode(N0.getOpcode(), SDLoc(N), VT, 3406 ORNode, N0.getOperand(1)); 3407 } 3408 3409 // Simplify xor/and/or (bitcast(A), bitcast(B)) -> bitcast(op (A,B)) 3410 // Only perform this optimization up until type legalization, before 3411 // LegalizeVectorOprs. LegalizeVectorOprs promotes vector operations by 3412 // adding bitcasts. For example (xor v4i32) is promoted to (v2i64), and 3413 // we don't want to undo this promotion. 3414 // We also handle SCALAR_TO_VECTOR because xor/or/and operations are cheaper 3415 // on scalars. 3416 if ((N0.getOpcode() == ISD::BITCAST || 3417 N0.getOpcode() == ISD::SCALAR_TO_VECTOR) && 3418 Level <= AfterLegalizeTypes) { 3419 SDValue In0 = N0.getOperand(0); 3420 SDValue In1 = N1.getOperand(0); 3421 EVT In0Ty = In0.getValueType(); 3422 EVT In1Ty = In1.getValueType(); 3423 SDLoc DL(N); 3424 // If both incoming values are integers, and the original types are the 3425 // same. 3426 if (In0Ty.isInteger() && In1Ty.isInteger() && In0Ty == In1Ty) { 3427 SDValue Op = DAG.getNode(N->getOpcode(), DL, In0Ty, In0, In1); 3428 SDValue BC = DAG.getNode(N0.getOpcode(), DL, VT, Op); 3429 AddToWorklist(Op.getNode()); 3430 return BC; 3431 } 3432 } 3433 3434 // Xor/and/or are indifferent to the swizzle operation (shuffle of one value). 3435 // Simplify xor/and/or (shuff(A), shuff(B)) -> shuff(op (A,B)) 3436 // If both shuffles use the same mask, and both shuffle within a single 3437 // vector, then it is worthwhile to move the swizzle after the operation. 3438 // The type-legalizer generates this pattern when loading illegal 3439 // vector types from memory. In many cases this allows additional shuffle 3440 // optimizations. 3441 // There are other cases where moving the shuffle after the xor/and/or 3442 // is profitable even if shuffles don't perform a swizzle. 3443 // If both shuffles use the same mask, and both shuffles have the same first 3444 // or second operand, then it might still be profitable to move the shuffle 3445 // after the xor/and/or operation. 3446 if (N0.getOpcode() == ISD::VECTOR_SHUFFLE && Level < AfterLegalizeDAG) { 3447 ShuffleVectorSDNode *SVN0 = cast<ShuffleVectorSDNode>(N0); 3448 ShuffleVectorSDNode *SVN1 = cast<ShuffleVectorSDNode>(N1); 3449 3450 assert(N0.getOperand(0).getValueType() == N1.getOperand(0).getValueType() && 3451 "Inputs to shuffles are not the same type"); 3452 3453 // Check that both shuffles use the same mask. The masks are known to be of 3454 // the same length because the result vector type is the same. 3455 // Check also that shuffles have only one use to avoid introducing extra 3456 // instructions. 3457 if (SVN0->hasOneUse() && SVN1->hasOneUse() && 3458 SVN0->getMask().equals(SVN1->getMask())) { 3459 SDValue ShOp = N0->getOperand(1); 3460 3461 // Don't try to fold this node if it requires introducing a 3462 // build vector of all zeros that might be illegal at this stage. 3463 if (N->getOpcode() == ISD::XOR && !ShOp.isUndef()) { 3464 if (!LegalTypes) 3465 ShOp = DAG.getConstant(0, SDLoc(N), VT); 3466 else 3467 ShOp = SDValue(); 3468 } 3469 3470 // (AND (shuf (A, C), shuf (B, C)) -> shuf (AND (A, B), C) 3471 // (OR (shuf (A, C), shuf (B, C)) -> shuf (OR (A, B), C) 3472 // (XOR (shuf (A, C), shuf (B, C)) -> shuf (XOR (A, B), V_0) 3473 if (N0.getOperand(1) == N1.getOperand(1) && ShOp.getNode()) { 3474 SDValue NewNode = DAG.getNode(N->getOpcode(), SDLoc(N), VT, 3475 N0->getOperand(0), N1->getOperand(0)); 3476 AddToWorklist(NewNode.getNode()); 3477 return DAG.getVectorShuffle(VT, SDLoc(N), NewNode, ShOp, 3478 SVN0->getMask()); 3479 } 3480 3481 // Don't try to fold this node if it requires introducing a 3482 // build vector of all zeros that might be illegal at this stage. 3483 ShOp = N0->getOperand(0); 3484 if (N->getOpcode() == ISD::XOR && !ShOp.isUndef()) { 3485 if (!LegalTypes) 3486 ShOp = DAG.getConstant(0, SDLoc(N), VT); 3487 else 3488 ShOp = SDValue(); 3489 } 3490 3491 // (AND (shuf (C, A), shuf (C, B)) -> shuf (C, AND (A, B)) 3492 // (OR (shuf (C, A), shuf (C, B)) -> shuf (C, OR (A, B)) 3493 // (XOR (shuf (C, A), shuf (C, B)) -> shuf (V_0, XOR (A, B)) 3494 if (N0->getOperand(0) == N1->getOperand(0) && ShOp.getNode()) { 3495 SDValue NewNode = DAG.getNode(N->getOpcode(), SDLoc(N), VT, 3496 N0->getOperand(1), N1->getOperand(1)); 3497 AddToWorklist(NewNode.getNode()); 3498 return DAG.getVectorShuffle(VT, SDLoc(N), ShOp, NewNode, 3499 SVN0->getMask()); 3500 } 3501 } 3502 } 3503 3504 return SDValue(); 3505 } 3506 3507 /// Try to make (and/or setcc (LL, LR), setcc (RL, RR)) more efficient. 3508 SDValue DAGCombiner::foldLogicOfSetCCs(bool IsAnd, SDValue N0, SDValue N1, 3509 const SDLoc &DL) { 3510 SDValue LL, LR, RL, RR, N0CC, N1CC; 3511 if (!isSetCCEquivalent(N0, LL, LR, N0CC) || 3512 !isSetCCEquivalent(N1, RL, RR, N1CC)) 3513 return SDValue(); 3514 3515 assert(N0.getValueType() == N1.getValueType() && 3516 "Unexpected operand types for bitwise logic op"); 3517 assert(LL.getValueType() == LR.getValueType() && 3518 RL.getValueType() == RR.getValueType() && 3519 "Unexpected operand types for setcc"); 3520 3521 // If we're here post-legalization or the logic op type is not i1, the logic 3522 // op type must match a setcc result type. Also, all folds require new 3523 // operations on the left and right operands, so those types must match. 3524 EVT VT = N0.getValueType(); 3525 EVT OpVT = LL.getValueType(); 3526 if (LegalOperations || VT != MVT::i1) 3527 if (VT != getSetCCResultType(OpVT)) 3528 return SDValue(); 3529 if (OpVT != RL.getValueType()) 3530 return SDValue(); 3531 3532 ISD::CondCode CC0 = cast<CondCodeSDNode>(N0CC)->get(); 3533 ISD::CondCode CC1 = cast<CondCodeSDNode>(N1CC)->get(); 3534 bool IsInteger = OpVT.isInteger(); 3535 if (LR == RR && CC0 == CC1 && IsInteger) { 3536 bool IsZero = isNullConstantOrNullSplatConstant(LR); 3537 bool IsNeg1 = isAllOnesConstantOrAllOnesSplatConstant(LR); 3538 3539 // All bits clear? 3540 bool AndEqZero = IsAnd && CC1 == ISD::SETEQ && IsZero; 3541 // All sign bits clear? 3542 bool AndGtNeg1 = IsAnd && CC1 == ISD::SETGT && IsNeg1; 3543 // Any bits set? 3544 bool OrNeZero = !IsAnd && CC1 == ISD::SETNE && IsZero; 3545 // Any sign bits set? 3546 bool OrLtZero = !IsAnd && CC1 == ISD::SETLT && IsZero; 3547 3548 // (and (seteq X, 0), (seteq Y, 0)) --> (seteq (or X, Y), 0) 3549 // (and (setgt X, -1), (setgt Y, -1)) --> (setgt (or X, Y), -1) 3550 // (or (setne X, 0), (setne Y, 0)) --> (setne (or X, Y), 0) 3551 // (or (setlt X, 0), (setlt Y, 0)) --> (setlt (or X, Y), 0) 3552 if (AndEqZero || AndGtNeg1 || OrNeZero || OrLtZero) { 3553 SDValue Or = DAG.getNode(ISD::OR, SDLoc(N0), OpVT, LL, RL); 3554 AddToWorklist(Or.getNode()); 3555 return DAG.getSetCC(DL, VT, Or, LR, CC1); 3556 } 3557 3558 // All bits set? 3559 bool AndEqNeg1 = IsAnd && CC1 == ISD::SETEQ && IsNeg1; 3560 // All sign bits set? 3561 bool AndLtZero = IsAnd && CC1 == ISD::SETLT && IsZero; 3562 // Any bits clear? 3563 bool OrNeNeg1 = !IsAnd && CC1 == ISD::SETNE && IsNeg1; 3564 // Any sign bits clear? 3565 bool OrGtNeg1 = !IsAnd && CC1 == ISD::SETGT && IsNeg1; 3566 3567 // (and (seteq X, -1), (seteq Y, -1)) --> (seteq (and X, Y), -1) 3568 // (and (setlt X, 0), (setlt Y, 0)) --> (setlt (and X, Y), 0) 3569 // (or (setne X, -1), (setne Y, -1)) --> (setne (and X, Y), -1) 3570 // (or (setgt X, -1), (setgt Y -1)) --> (setgt (and X, Y), -1) 3571 if (AndEqNeg1 || AndLtZero || OrNeNeg1 || OrGtNeg1) { 3572 SDValue And = DAG.getNode(ISD::AND, SDLoc(N0), OpVT, LL, RL); 3573 AddToWorklist(And.getNode()); 3574 return DAG.getSetCC(DL, VT, And, LR, CC1); 3575 } 3576 } 3577 3578 // TODO: What is the 'or' equivalent of this fold? 3579 // (and (setne X, 0), (setne X, -1)) --> (setuge (add X, 1), 2) 3580 if (IsAnd && LL == RL && CC0 == CC1 && IsInteger && CC0 == ISD::SETNE && 3581 ((isNullConstant(LR) && isAllOnesConstant(RR)) || 3582 (isAllOnesConstant(LR) && isNullConstant(RR)))) { 3583 SDValue One = DAG.getConstant(1, DL, OpVT); 3584 SDValue Two = DAG.getConstant(2, DL, OpVT); 3585 SDValue Add = DAG.getNode(ISD::ADD, SDLoc(N0), OpVT, LL, One); 3586 AddToWorklist(Add.getNode()); 3587 return DAG.getSetCC(DL, VT, Add, Two, ISD::SETUGE); 3588 } 3589 3590 // Try more general transforms if the predicates match and the only user of 3591 // the compares is the 'and' or 'or'. 3592 if (IsInteger && TLI.convertSetCCLogicToBitwiseLogic(OpVT) && CC0 == CC1 && 3593 N0.hasOneUse() && N1.hasOneUse()) { 3594 // and (seteq A, B), (seteq C, D) --> seteq (or (xor A, B), (xor C, D)), 0 3595 // or (setne A, B), (setne C, D) --> setne (or (xor A, B), (xor C, D)), 0 3596 if ((IsAnd && CC1 == ISD::SETEQ) || (!IsAnd && CC1 == ISD::SETNE)) { 3597 SDValue XorL = DAG.getNode(ISD::XOR, SDLoc(N0), OpVT, LL, LR); 3598 SDValue XorR = DAG.getNode(ISD::XOR, SDLoc(N1), OpVT, RL, RR); 3599 SDValue Or = DAG.getNode(ISD::OR, DL, OpVT, XorL, XorR); 3600 SDValue Zero = DAG.getConstant(0, DL, OpVT); 3601 return DAG.getSetCC(DL, VT, Or, Zero, CC1); 3602 } 3603 } 3604 3605 // Canonicalize equivalent operands to LL == RL. 3606 if (LL == RR && LR == RL) { 3607 CC1 = ISD::getSetCCSwappedOperands(CC1); 3608 std::swap(RL, RR); 3609 } 3610 3611 // (and (setcc X, Y, CC0), (setcc X, Y, CC1)) --> (setcc X, Y, NewCC) 3612 // (or (setcc X, Y, CC0), (setcc X, Y, CC1)) --> (setcc X, Y, NewCC) 3613 if (LL == RL && LR == RR) { 3614 ISD::CondCode NewCC = IsAnd ? ISD::getSetCCAndOperation(CC0, CC1, IsInteger) 3615 : ISD::getSetCCOrOperation(CC0, CC1, IsInteger); 3616 if (NewCC != ISD::SETCC_INVALID && 3617 (!LegalOperations || 3618 (TLI.isCondCodeLegal(NewCC, LL.getSimpleValueType()) && 3619 TLI.isOperationLegal(ISD::SETCC, OpVT)))) 3620 return DAG.getSetCC(DL, VT, LL, LR, NewCC); 3621 } 3622 3623 return SDValue(); 3624 } 3625 3626 /// This contains all DAGCombine rules which reduce two values combined by 3627 /// an And operation to a single value. This makes them reusable in the context 3628 /// of visitSELECT(). Rules involving constants are not included as 3629 /// visitSELECT() already handles those cases. 3630 SDValue DAGCombiner::visitANDLike(SDValue N0, SDValue N1, SDNode *N) { 3631 EVT VT = N1.getValueType(); 3632 SDLoc DL(N); 3633 3634 // fold (and x, undef) -> 0 3635 if (N0.isUndef() || N1.isUndef()) 3636 return DAG.getConstant(0, DL, VT); 3637 3638 if (SDValue V = foldLogicOfSetCCs(true, N0, N1, DL)) 3639 return V; 3640 3641 if (N0.getOpcode() == ISD::ADD && N1.getOpcode() == ISD::SRL && 3642 VT.getSizeInBits() <= 64) { 3643 if (ConstantSDNode *ADDI = dyn_cast<ConstantSDNode>(N0.getOperand(1))) { 3644 APInt ADDC = ADDI->getAPIntValue(); 3645 if (!TLI.isLegalAddImmediate(ADDC.getSExtValue())) { 3646 // Look for (and (add x, c1), (lshr y, c2)). If C1 wasn't a legal 3647 // immediate for an add, but it is legal if its top c2 bits are set, 3648 // transform the ADD so the immediate doesn't need to be materialized 3649 // in a register. 3650 if (ConstantSDNode *SRLI = dyn_cast<ConstantSDNode>(N1.getOperand(1))) { 3651 APInt Mask = APInt::getHighBitsSet(VT.getSizeInBits(), 3652 SRLI->getZExtValue()); 3653 if (DAG.MaskedValueIsZero(N0.getOperand(1), Mask)) { 3654 ADDC |= Mask; 3655 if (TLI.isLegalAddImmediate(ADDC.getSExtValue())) { 3656 SDLoc DL0(N0); 3657 SDValue NewAdd = 3658 DAG.getNode(ISD::ADD, DL0, VT, 3659 N0.getOperand(0), DAG.getConstant(ADDC, DL, VT)); 3660 CombineTo(N0.getNode(), NewAdd); 3661 // Return N so it doesn't get rechecked! 3662 return SDValue(N, 0); 3663 } 3664 } 3665 } 3666 } 3667 } 3668 } 3669 3670 // Reduce bit extract of low half of an integer to the narrower type. 3671 // (and (srl i64:x, K), KMask) -> 3672 // (i64 zero_extend (and (srl (i32 (trunc i64:x)), K)), KMask) 3673 if (N0.getOpcode() == ISD::SRL && N0.hasOneUse()) { 3674 if (ConstantSDNode *CAnd = dyn_cast<ConstantSDNode>(N1)) { 3675 if (ConstantSDNode *CShift = dyn_cast<ConstantSDNode>(N0.getOperand(1))) { 3676 unsigned Size = VT.getSizeInBits(); 3677 const APInt &AndMask = CAnd->getAPIntValue(); 3678 unsigned ShiftBits = CShift->getZExtValue(); 3679 3680 // Bail out, this node will probably disappear anyway. 3681 if (ShiftBits == 0) 3682 return SDValue(); 3683 3684 unsigned MaskBits = AndMask.countTrailingOnes(); 3685 EVT HalfVT = EVT::getIntegerVT(*DAG.getContext(), Size / 2); 3686 3687 if (AndMask.isMask() && 3688 // Required bits must not span the two halves of the integer and 3689 // must fit in the half size type. 3690 (ShiftBits + MaskBits <= Size / 2) && 3691 TLI.isNarrowingProfitable(VT, HalfVT) && 3692 TLI.isTypeDesirableForOp(ISD::AND, HalfVT) && 3693 TLI.isTypeDesirableForOp(ISD::SRL, HalfVT) && 3694 TLI.isTruncateFree(VT, HalfVT) && 3695 TLI.isZExtFree(HalfVT, VT)) { 3696 // The isNarrowingProfitable is to avoid regressions on PPC and 3697 // AArch64 which match a few 64-bit bit insert / bit extract patterns 3698 // on downstream users of this. Those patterns could probably be 3699 // extended to handle extensions mixed in. 3700 3701 SDValue SL(N0); 3702 assert(MaskBits <= Size); 3703 3704 // Extracting the highest bit of the low half. 3705 EVT ShiftVT = TLI.getShiftAmountTy(HalfVT, DAG.getDataLayout()); 3706 SDValue Trunc = DAG.getNode(ISD::TRUNCATE, SL, HalfVT, 3707 N0.getOperand(0)); 3708 3709 SDValue NewMask = DAG.getConstant(AndMask.trunc(Size / 2), SL, HalfVT); 3710 SDValue ShiftK = DAG.getConstant(ShiftBits, SL, ShiftVT); 3711 SDValue Shift = DAG.getNode(ISD::SRL, SL, HalfVT, Trunc, ShiftK); 3712 SDValue And = DAG.getNode(ISD::AND, SL, HalfVT, Shift, NewMask); 3713 return DAG.getNode(ISD::ZERO_EXTEND, SL, VT, And); 3714 } 3715 } 3716 } 3717 } 3718 3719 return SDValue(); 3720 } 3721 3722 bool DAGCombiner::isAndLoadExtLoad(ConstantSDNode *AndC, LoadSDNode *LoadN, 3723 EVT LoadResultTy, EVT &ExtVT) { 3724 if (!AndC->getAPIntValue().isMask()) 3725 return false; 3726 3727 unsigned ActiveBits = AndC->getAPIntValue().countTrailingOnes(); 3728 3729 ExtVT = EVT::getIntegerVT(*DAG.getContext(), ActiveBits); 3730 EVT LoadedVT = LoadN->getMemoryVT(); 3731 3732 if (ExtVT == LoadedVT && 3733 (!LegalOperations || 3734 TLI.isLoadExtLegal(ISD::ZEXTLOAD, LoadResultTy, ExtVT))) { 3735 // ZEXTLOAD will match without needing to change the size of the value being 3736 // loaded. 3737 return true; 3738 } 3739 3740 // Do not change the width of a volatile load. 3741 if (LoadN->isVolatile()) 3742 return false; 3743 3744 // Do not generate loads of non-round integer types since these can 3745 // be expensive (and would be wrong if the type is not byte sized). 3746 if (!LoadedVT.bitsGT(ExtVT) || !ExtVT.isRound()) 3747 return false; 3748 3749 if (LegalOperations && 3750 !TLI.isLoadExtLegal(ISD::ZEXTLOAD, LoadResultTy, ExtVT)) 3751 return false; 3752 3753 if (!TLI.shouldReduceLoadWidth(LoadN, ISD::ZEXTLOAD, ExtVT)) 3754 return false; 3755 3756 return true; 3757 } 3758 3759 bool DAGCombiner::isLegalNarrowLoad(LoadSDNode *LoadN, ISD::LoadExtType ExtType, 3760 EVT &ExtVT, unsigned ShAmt) { 3761 // Don't transform one with multiple uses, this would require adding a new 3762 // load. 3763 if (!SDValue(LoadN, 0).hasOneUse()) 3764 return false; 3765 3766 if (LegalOperations && 3767 !TLI.isLoadExtLegal(ExtType, LoadN->getValueType(0), ExtVT)) 3768 return false; 3769 3770 // Do not generate loads of non-round integer types since these can 3771 // be expensive (and would be wrong if the type is not byte sized). 3772 if (!ExtVT.isRound()) 3773 return false; 3774 3775 // Don't change the width of a volatile load. 3776 if (LoadN->isVolatile()) 3777 return false; 3778 3779 // Verify that we are actually reducing a load width here. 3780 if (LoadN->getMemoryVT().getSizeInBits() < ExtVT.getSizeInBits()) 3781 return false; 3782 3783 // For the transform to be legal, the load must produce only two values 3784 // (the value loaded and the chain). Don't transform a pre-increment 3785 // load, for example, which produces an extra value. Otherwise the 3786 // transformation is not equivalent, and the downstream logic to replace 3787 // uses gets things wrong. 3788 if (LoadN->getNumValues() > 2) 3789 return false; 3790 3791 // If the load that we're shrinking is an extload and we're not just 3792 // discarding the extension we can't simply shrink the load. Bail. 3793 // TODO: It would be possible to merge the extensions in some cases. 3794 if (LoadN->getExtensionType() != ISD::NON_EXTLOAD && 3795 LoadN->getMemoryVT().getSizeInBits() < ExtVT.getSizeInBits() + ShAmt) 3796 return false; 3797 3798 if (!TLI.shouldReduceLoadWidth(LoadN, ExtType, ExtVT)) 3799 return false; 3800 3801 // It's not possible to generate a constant of extended or untyped type. 3802 EVT PtrType = LoadN->getOperand(1).getValueType(); 3803 if (PtrType == MVT::Untyped || PtrType.isExtended()) 3804 return false; 3805 3806 return true; 3807 } 3808 3809 bool DAGCombiner::SearchForAndLoads(SDNode *N, 3810 SmallPtrSetImpl<LoadSDNode*> &Loads, 3811 SmallPtrSetImpl<SDNode*> &NodesWithConsts, 3812 ConstantSDNode *Mask, 3813 SDNode *&NodeToMask) { 3814 // Recursively search for the operands, looking for loads which can be 3815 // narrowed. 3816 for (unsigned i = 0, e = N->getNumOperands(); i < e; ++i) { 3817 SDValue Op = N->getOperand(i); 3818 3819 if (Op.getValueType().isVector()) 3820 return false; 3821 3822 // Some constants may need fixing up later if they are too large. 3823 if (auto *C = dyn_cast<ConstantSDNode>(Op)) { 3824 if ((N->getOpcode() == ISD::OR || N->getOpcode() == ISD::XOR) && 3825 (Mask->getAPIntValue() & C->getAPIntValue()) != C->getAPIntValue()) 3826 NodesWithConsts.insert(N); 3827 continue; 3828 } 3829 3830 if (!Op.hasOneUse()) 3831 return false; 3832 3833 switch(Op.getOpcode()) { 3834 case ISD::LOAD: { 3835 auto *Load = cast<LoadSDNode>(Op); 3836 EVT ExtVT; 3837 if (isAndLoadExtLoad(Mask, Load, Load->getValueType(0), ExtVT) && 3838 isLegalNarrowLoad(Load, ISD::ZEXTLOAD, ExtVT)) { 3839 // Only add this load if we can make it more narrow. 3840 if (ExtVT.bitsLT(Load->getMemoryVT())) 3841 Loads.insert(Load); 3842 continue; 3843 } 3844 return false; 3845 } 3846 case ISD::ZERO_EXTEND: 3847 case ISD::ANY_EXTEND: 3848 case ISD::AssertZext: { 3849 unsigned ActiveBits = Mask->getAPIntValue().countTrailingOnes(); 3850 EVT ExtVT = EVT::getIntegerVT(*DAG.getContext(), ActiveBits); 3851 EVT VT = Op.getOpcode() == ISD::AssertZext ? 3852 cast<VTSDNode>(Op.getOperand(1))->getVT() : 3853 Op.getOperand(0).getValueType(); 3854 3855 // We can accept extending nodes if the mask is wider or an equal 3856 // width to the original type. 3857 if (ExtVT.bitsGE(VT)) 3858 continue; 3859 break; 3860 } 3861 case ISD::OR: 3862 case ISD::XOR: 3863 case ISD::AND: 3864 if (!SearchForAndLoads(Op.getNode(), Loads, NodesWithConsts, Mask, 3865 NodeToMask)) 3866 return false; 3867 continue; 3868 } 3869 3870 // Allow one node which will masked along with any loads found. 3871 if (NodeToMask) 3872 return false; 3873 NodeToMask = Op.getNode(); 3874 } 3875 return true; 3876 } 3877 3878 bool DAGCombiner::BackwardsPropagateMask(SDNode *N, SelectionDAG &DAG) { 3879 auto *Mask = dyn_cast<ConstantSDNode>(N->getOperand(1)); 3880 if (!Mask) 3881 return false; 3882 3883 if (!Mask->getAPIntValue().isMask()) 3884 return false; 3885 3886 // No need to do anything if the and directly uses a load. 3887 if (isa<LoadSDNode>(N->getOperand(0))) 3888 return false; 3889 3890 SmallPtrSet<LoadSDNode*, 8> Loads; 3891 SmallPtrSet<SDNode*, 2> NodesWithConsts; 3892 SDNode *FixupNode = nullptr; 3893 if (SearchForAndLoads(N, Loads, NodesWithConsts, Mask, FixupNode)) { 3894 if (Loads.size() == 0) 3895 return false; 3896 3897 SDValue MaskOp = N->getOperand(1); 3898 3899 // If it exists, fixup the single node we allow in the tree that needs 3900 // masking. 3901 if (FixupNode) { 3902 SDValue And = DAG.getNode(ISD::AND, SDLoc(FixupNode), 3903 FixupNode->getValueType(0), 3904 SDValue(FixupNode, 0), MaskOp); 3905 DAG.ReplaceAllUsesOfValueWith(SDValue(FixupNode, 0), And); 3906 DAG.UpdateNodeOperands(And.getNode(), SDValue(FixupNode, 0), 3907 MaskOp); 3908 } 3909 3910 // Narrow any constants that need it. 3911 for (auto *LogicN : NodesWithConsts) { 3912 auto *C = cast<ConstantSDNode>(LogicN->getOperand(1)); 3913 SDValue And = DAG.getNode(ISD::AND, SDLoc(C), C->getValueType(0), 3914 SDValue(C, 0), MaskOp); 3915 DAG.UpdateNodeOperands(LogicN, LogicN->getOperand(0), And); 3916 } 3917 3918 // Create narrow loads. 3919 for (auto *Load : Loads) { 3920 SDValue And = DAG.getNode(ISD::AND, SDLoc(Load), Load->getValueType(0), 3921 SDValue(Load, 0), MaskOp); 3922 DAG.ReplaceAllUsesOfValueWith(SDValue(Load, 0), And); 3923 DAG.UpdateNodeOperands(And.getNode(), SDValue(Load, 0), MaskOp); 3924 SDValue NewLoad = ReduceLoadWidth(And.getNode()); 3925 assert(NewLoad && 3926 "Shouldn't be masking the load if it can't be narrowed"); 3927 CombineTo(Load, NewLoad, NewLoad.getValue(1)); 3928 } 3929 DAG.ReplaceAllUsesWith(N, N->getOperand(0).getNode()); 3930 return true; 3931 } 3932 return false; 3933 } 3934 3935 SDValue DAGCombiner::visitAND(SDNode *N) { 3936 SDValue N0 = N->getOperand(0); 3937 SDValue N1 = N->getOperand(1); 3938 EVT VT = N1.getValueType(); 3939 3940 // x & x --> x 3941 if (N0 == N1) 3942 return N0; 3943 3944 // fold vector ops 3945 if (VT.isVector()) { 3946 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 3947 return FoldedVOp; 3948 3949 // fold (and x, 0) -> 0, vector edition 3950 if (ISD::isBuildVectorAllZeros(N0.getNode())) 3951 // do not return N0, because undef node may exist in N0 3952 return DAG.getConstant(APInt::getNullValue(N0.getScalarValueSizeInBits()), 3953 SDLoc(N), N0.getValueType()); 3954 if (ISD::isBuildVectorAllZeros(N1.getNode())) 3955 // do not return N1, because undef node may exist in N1 3956 return DAG.getConstant(APInt::getNullValue(N1.getScalarValueSizeInBits()), 3957 SDLoc(N), N1.getValueType()); 3958 3959 // fold (and x, -1) -> x, vector edition 3960 if (ISD::isBuildVectorAllOnes(N0.getNode())) 3961 return N1; 3962 if (ISD::isBuildVectorAllOnes(N1.getNode())) 3963 return N0; 3964 } 3965 3966 // fold (and c1, c2) -> c1&c2 3967 ConstantSDNode *N0C = getAsNonOpaqueConstant(N0); 3968 ConstantSDNode *N1C = isConstOrConstSplat(N1); 3969 if (N0C && N1C && !N1C->isOpaque()) 3970 return DAG.FoldConstantArithmetic(ISD::AND, SDLoc(N), VT, N0C, N1C); 3971 // canonicalize constant to RHS 3972 if (DAG.isConstantIntBuildVectorOrConstantInt(N0) && 3973 !DAG.isConstantIntBuildVectorOrConstantInt(N1)) 3974 return DAG.getNode(ISD::AND, SDLoc(N), VT, N1, N0); 3975 // fold (and x, -1) -> x 3976 if (isAllOnesConstant(N1)) 3977 return N0; 3978 // if (and x, c) is known to be zero, return 0 3979 unsigned BitWidth = VT.getScalarSizeInBits(); 3980 if (N1C && DAG.MaskedValueIsZero(SDValue(N, 0), 3981 APInt::getAllOnesValue(BitWidth))) 3982 return DAG.getConstant(0, SDLoc(N), VT); 3983 3984 if (SDValue NewSel = foldBinOpIntoSelect(N)) 3985 return NewSel; 3986 3987 // reassociate and 3988 if (SDValue RAND = ReassociateOps(ISD::AND, SDLoc(N), N0, N1)) 3989 return RAND; 3990 // fold (and (or x, C), D) -> D if (C & D) == D 3991 if (N1C && N0.getOpcode() == ISD::OR) 3992 if (ConstantSDNode *ORI = isConstOrConstSplat(N0.getOperand(1))) 3993 if (N1C->getAPIntValue().isSubsetOf(ORI->getAPIntValue())) 3994 return N1; 3995 // fold (and (any_ext V), c) -> (zero_ext V) if 'and' only clears top bits. 3996 if (N1C && N0.getOpcode() == ISD::ANY_EXTEND) { 3997 SDValue N0Op0 = N0.getOperand(0); 3998 APInt Mask = ~N1C->getAPIntValue(); 3999 Mask = Mask.trunc(N0Op0.getScalarValueSizeInBits()); 4000 if (DAG.MaskedValueIsZero(N0Op0, Mask)) { 4001 SDValue Zext = DAG.getNode(ISD::ZERO_EXTEND, SDLoc(N), 4002 N0.getValueType(), N0Op0); 4003 4004 // Replace uses of the AND with uses of the Zero extend node. 4005 CombineTo(N, Zext); 4006 4007 // We actually want to replace all uses of the any_extend with the 4008 // zero_extend, to avoid duplicating things. This will later cause this 4009 // AND to be folded. 4010 CombineTo(N0.getNode(), Zext); 4011 return SDValue(N, 0); // Return N so it doesn't get rechecked! 4012 } 4013 } 4014 // similarly fold (and (X (load ([non_ext|any_ext|zero_ext] V))), c) -> 4015 // (X (load ([non_ext|zero_ext] V))) if 'and' only clears top bits which must 4016 // already be zero by virtue of the width of the base type of the load. 4017 // 4018 // the 'X' node here can either be nothing or an extract_vector_elt to catch 4019 // more cases. 4020 if ((N0.getOpcode() == ISD::EXTRACT_VECTOR_ELT && 4021 N0.getValueSizeInBits() == N0.getOperand(0).getScalarValueSizeInBits() && 4022 N0.getOperand(0).getOpcode() == ISD::LOAD && 4023 N0.getOperand(0).getResNo() == 0) || 4024 (N0.getOpcode() == ISD::LOAD && N0.getResNo() == 0)) { 4025 LoadSDNode *Load = cast<LoadSDNode>( (N0.getOpcode() == ISD::LOAD) ? 4026 N0 : N0.getOperand(0) ); 4027 4028 // Get the constant (if applicable) the zero'th operand is being ANDed with. 4029 // This can be a pure constant or a vector splat, in which case we treat the 4030 // vector as a scalar and use the splat value. 4031 APInt Constant = APInt::getNullValue(1); 4032 if (const ConstantSDNode *C = dyn_cast<ConstantSDNode>(N1)) { 4033 Constant = C->getAPIntValue(); 4034 } else if (BuildVectorSDNode *Vector = dyn_cast<BuildVectorSDNode>(N1)) { 4035 APInt SplatValue, SplatUndef; 4036 unsigned SplatBitSize; 4037 bool HasAnyUndefs; 4038 bool IsSplat = Vector->isConstantSplat(SplatValue, SplatUndef, 4039 SplatBitSize, HasAnyUndefs); 4040 if (IsSplat) { 4041 // Undef bits can contribute to a possible optimisation if set, so 4042 // set them. 4043 SplatValue |= SplatUndef; 4044 4045 // The splat value may be something like "0x00FFFFFF", which means 0 for 4046 // the first vector value and FF for the rest, repeating. We need a mask 4047 // that will apply equally to all members of the vector, so AND all the 4048 // lanes of the constant together. 4049 EVT VT = Vector->getValueType(0); 4050 unsigned BitWidth = VT.getScalarSizeInBits(); 4051 4052 // If the splat value has been compressed to a bitlength lower 4053 // than the size of the vector lane, we need to re-expand it to 4054 // the lane size. 4055 if (BitWidth > SplatBitSize) 4056 for (SplatValue = SplatValue.zextOrTrunc(BitWidth); 4057 SplatBitSize < BitWidth; 4058 SplatBitSize = SplatBitSize * 2) 4059 SplatValue |= SplatValue.shl(SplatBitSize); 4060 4061 // Make sure that variable 'Constant' is only set if 'SplatBitSize' is a 4062 // multiple of 'BitWidth'. Otherwise, we could propagate a wrong value. 4063 if (SplatBitSize % BitWidth == 0) { 4064 Constant = APInt::getAllOnesValue(BitWidth); 4065 for (unsigned i = 0, n = SplatBitSize/BitWidth; i < n; ++i) 4066 Constant &= SplatValue.lshr(i*BitWidth).zextOrTrunc(BitWidth); 4067 } 4068 } 4069 } 4070 4071 // If we want to change an EXTLOAD to a ZEXTLOAD, ensure a ZEXTLOAD is 4072 // actually legal and isn't going to get expanded, else this is a false 4073 // optimisation. 4074 bool CanZextLoadProfitably = TLI.isLoadExtLegal(ISD::ZEXTLOAD, 4075 Load->getValueType(0), 4076 Load->getMemoryVT()); 4077 4078 // Resize the constant to the same size as the original memory access before 4079 // extension. If it is still the AllOnesValue then this AND is completely 4080 // unneeded. 4081 Constant = Constant.zextOrTrunc(Load->getMemoryVT().getScalarSizeInBits()); 4082 4083 bool B; 4084 switch (Load->getExtensionType()) { 4085 default: B = false; break; 4086 case ISD::EXTLOAD: B = CanZextLoadProfitably; break; 4087 case ISD::ZEXTLOAD: 4088 case ISD::NON_EXTLOAD: B = true; break; 4089 } 4090 4091 if (B && Constant.isAllOnesValue()) { 4092 // If the load type was an EXTLOAD, convert to ZEXTLOAD in order to 4093 // preserve semantics once we get rid of the AND. 4094 SDValue NewLoad(Load, 0); 4095 4096 // Fold the AND away. NewLoad may get replaced immediately. 4097 CombineTo(N, (N0.getNode() == Load) ? NewLoad : N0); 4098 4099 if (Load->getExtensionType() == ISD::EXTLOAD) { 4100 NewLoad = DAG.getLoad(Load->getAddressingMode(), ISD::ZEXTLOAD, 4101 Load->getValueType(0), SDLoc(Load), 4102 Load->getChain(), Load->getBasePtr(), 4103 Load->getOffset(), Load->getMemoryVT(), 4104 Load->getMemOperand()); 4105 // Replace uses of the EXTLOAD with the new ZEXTLOAD. 4106 if (Load->getNumValues() == 3) { 4107 // PRE/POST_INC loads have 3 values. 4108 SDValue To[] = { NewLoad.getValue(0), NewLoad.getValue(1), 4109 NewLoad.getValue(2) }; 4110 CombineTo(Load, To, 3, true); 4111 } else { 4112 CombineTo(Load, NewLoad.getValue(0), NewLoad.getValue(1)); 4113 } 4114 } 4115 4116 return SDValue(N, 0); // Return N so it doesn't get rechecked! 4117 } 4118 } 4119 4120 // fold (and (load x), 255) -> (zextload x, i8) 4121 // fold (and (extload x, i16), 255) -> (zextload x, i8) 4122 // fold (and (any_ext (extload x, i16)), 255) -> (zextload x, i8) 4123 if (!VT.isVector() && N1C && (N0.getOpcode() == ISD::LOAD || 4124 (N0.getOpcode() == ISD::ANY_EXTEND && 4125 N0.getOperand(0).getOpcode() == ISD::LOAD))) { 4126 if (SDValue Res = ReduceLoadWidth(N)) { 4127 LoadSDNode *LN0 = N0->getOpcode() == ISD::ANY_EXTEND 4128 ? cast<LoadSDNode>(N0.getOperand(0)) : cast<LoadSDNode>(N0); 4129 4130 AddToWorklist(N); 4131 CombineTo(LN0, Res, Res.getValue(1)); 4132 return SDValue(N, 0); 4133 } 4134 } 4135 4136 if (Level >= AfterLegalizeTypes) { 4137 // Attempt to propagate the AND back up to the leaves which, if they're 4138 // loads, can be combined to narrow loads and the AND node can be removed. 4139 // Perform after legalization so that extend nodes will already be 4140 // combined into the loads. 4141 if (BackwardsPropagateMask(N, DAG)) { 4142 return SDValue(N, 0); 4143 } 4144 } 4145 4146 if (SDValue Combined = visitANDLike(N0, N1, N)) 4147 return Combined; 4148 4149 // Simplify: (and (op x...), (op y...)) -> (op (and x, y)) 4150 if (N0.getOpcode() == N1.getOpcode()) 4151 if (SDValue Tmp = SimplifyBinOpWithSameOpcodeHands(N)) 4152 return Tmp; 4153 4154 // Masking the negated extension of a boolean is just the zero-extended 4155 // boolean: 4156 // and (sub 0, zext(bool X)), 1 --> zext(bool X) 4157 // and (sub 0, sext(bool X)), 1 --> zext(bool X) 4158 // 4159 // Note: the SimplifyDemandedBits fold below can make an information-losing 4160 // transform, and then we have no way to find this better fold. 4161 if (N1C && N1C->isOne() && N0.getOpcode() == ISD::SUB) { 4162 if (isNullConstantOrNullSplatConstant(N0.getOperand(0))) { 4163 SDValue SubRHS = N0.getOperand(1); 4164 if (SubRHS.getOpcode() == ISD::ZERO_EXTEND && 4165 SubRHS.getOperand(0).getScalarValueSizeInBits() == 1) 4166 return SubRHS; 4167 if (SubRHS.getOpcode() == ISD::SIGN_EXTEND && 4168 SubRHS.getOperand(0).getScalarValueSizeInBits() == 1) 4169 return DAG.getNode(ISD::ZERO_EXTEND, SDLoc(N), VT, SubRHS.getOperand(0)); 4170 } 4171 } 4172 4173 // fold (and (sign_extend_inreg x, i16 to i32), 1) -> (and x, 1) 4174 // fold (and (sra)) -> (and (srl)) when possible. 4175 if (SimplifyDemandedBits(SDValue(N, 0))) 4176 return SDValue(N, 0); 4177 4178 // fold (zext_inreg (extload x)) -> (zextload x) 4179 if (ISD::isEXTLoad(N0.getNode()) && ISD::isUNINDEXEDLoad(N0.getNode())) { 4180 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 4181 EVT MemVT = LN0->getMemoryVT(); 4182 // If we zero all the possible extended bits, then we can turn this into 4183 // a zextload if we are running before legalize or the operation is legal. 4184 unsigned BitWidth = N1.getScalarValueSizeInBits(); 4185 if (DAG.MaskedValueIsZero(N1, APInt::getHighBitsSet(BitWidth, 4186 BitWidth - MemVT.getScalarSizeInBits())) && 4187 ((!LegalOperations && !LN0->isVolatile()) || 4188 TLI.isLoadExtLegal(ISD::ZEXTLOAD, VT, MemVT))) { 4189 SDValue ExtLoad = DAG.getExtLoad(ISD::ZEXTLOAD, SDLoc(N0), VT, 4190 LN0->getChain(), LN0->getBasePtr(), 4191 MemVT, LN0->getMemOperand()); 4192 AddToWorklist(N); 4193 CombineTo(N0.getNode(), ExtLoad, ExtLoad.getValue(1)); 4194 return SDValue(N, 0); // Return N so it doesn't get rechecked! 4195 } 4196 } 4197 // fold (zext_inreg (sextload x)) -> (zextload x) iff load has one use 4198 if (ISD::isSEXTLoad(N0.getNode()) && ISD::isUNINDEXEDLoad(N0.getNode()) && 4199 N0.hasOneUse()) { 4200 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 4201 EVT MemVT = LN0->getMemoryVT(); 4202 // If we zero all the possible extended bits, then we can turn this into 4203 // a zextload if we are running before legalize or the operation is legal. 4204 unsigned BitWidth = N1.getScalarValueSizeInBits(); 4205 if (DAG.MaskedValueIsZero(N1, APInt::getHighBitsSet(BitWidth, 4206 BitWidth - MemVT.getScalarSizeInBits())) && 4207 ((!LegalOperations && !LN0->isVolatile()) || 4208 TLI.isLoadExtLegal(ISD::ZEXTLOAD, VT, MemVT))) { 4209 SDValue ExtLoad = DAG.getExtLoad(ISD::ZEXTLOAD, SDLoc(N0), VT, 4210 LN0->getChain(), LN0->getBasePtr(), 4211 MemVT, LN0->getMemOperand()); 4212 AddToWorklist(N); 4213 CombineTo(N0.getNode(), ExtLoad, ExtLoad.getValue(1)); 4214 return SDValue(N, 0); // Return N so it doesn't get rechecked! 4215 } 4216 } 4217 // fold (and (or (srl N, 8), (shl N, 8)), 0xffff) -> (srl (bswap N), const) 4218 if (N1C && N1C->getAPIntValue() == 0xffff && N0.getOpcode() == ISD::OR) { 4219 if (SDValue BSwap = MatchBSwapHWordLow(N0.getNode(), N0.getOperand(0), 4220 N0.getOperand(1), false)) 4221 return BSwap; 4222 } 4223 4224 return SDValue(); 4225 } 4226 4227 /// Match (a >> 8) | (a << 8) as (bswap a) >> 16. 4228 SDValue DAGCombiner::MatchBSwapHWordLow(SDNode *N, SDValue N0, SDValue N1, 4229 bool DemandHighBits) { 4230 if (!LegalOperations) 4231 return SDValue(); 4232 4233 EVT VT = N->getValueType(0); 4234 if (VT != MVT::i64 && VT != MVT::i32 && VT != MVT::i16) 4235 return SDValue(); 4236 if (!TLI.isOperationLegalOrCustom(ISD::BSWAP, VT)) 4237 return SDValue(); 4238 4239 // Recognize (and (shl a, 8), 0xff00), (and (srl a, 8), 0xff) 4240 bool LookPassAnd0 = false; 4241 bool LookPassAnd1 = false; 4242 if (N0.getOpcode() == ISD::AND && N0.getOperand(0).getOpcode() == ISD::SRL) 4243 std::swap(N0, N1); 4244 if (N1.getOpcode() == ISD::AND && N1.getOperand(0).getOpcode() == ISD::SHL) 4245 std::swap(N0, N1); 4246 if (N0.getOpcode() == ISD::AND) { 4247 if (!N0.getNode()->hasOneUse()) 4248 return SDValue(); 4249 ConstantSDNode *N01C = dyn_cast<ConstantSDNode>(N0.getOperand(1)); 4250 if (!N01C || N01C->getZExtValue() != 0xFF00) 4251 return SDValue(); 4252 N0 = N0.getOperand(0); 4253 LookPassAnd0 = true; 4254 } 4255 4256 if (N1.getOpcode() == ISD::AND) { 4257 if (!N1.getNode()->hasOneUse()) 4258 return SDValue(); 4259 ConstantSDNode *N11C = dyn_cast<ConstantSDNode>(N1.getOperand(1)); 4260 if (!N11C || N11C->getZExtValue() != 0xFF) 4261 return SDValue(); 4262 N1 = N1.getOperand(0); 4263 LookPassAnd1 = true; 4264 } 4265 4266 if (N0.getOpcode() == ISD::SRL && N1.getOpcode() == ISD::SHL) 4267 std::swap(N0, N1); 4268 if (N0.getOpcode() != ISD::SHL || N1.getOpcode() != ISD::SRL) 4269 return SDValue(); 4270 if (!N0.getNode()->hasOneUse() || !N1.getNode()->hasOneUse()) 4271 return SDValue(); 4272 4273 ConstantSDNode *N01C = dyn_cast<ConstantSDNode>(N0.getOperand(1)); 4274 ConstantSDNode *N11C = dyn_cast<ConstantSDNode>(N1.getOperand(1)); 4275 if (!N01C || !N11C) 4276 return SDValue(); 4277 if (N01C->getZExtValue() != 8 || N11C->getZExtValue() != 8) 4278 return SDValue(); 4279 4280 // Look for (shl (and a, 0xff), 8), (srl (and a, 0xff00), 8) 4281 SDValue N00 = N0->getOperand(0); 4282 if (!LookPassAnd0 && N00.getOpcode() == ISD::AND) { 4283 if (!N00.getNode()->hasOneUse()) 4284 return SDValue(); 4285 ConstantSDNode *N001C = dyn_cast<ConstantSDNode>(N00.getOperand(1)); 4286 if (!N001C || N001C->getZExtValue() != 0xFF) 4287 return SDValue(); 4288 N00 = N00.getOperand(0); 4289 LookPassAnd0 = true; 4290 } 4291 4292 SDValue N10 = N1->getOperand(0); 4293 if (!LookPassAnd1 && N10.getOpcode() == ISD::AND) { 4294 if (!N10.getNode()->hasOneUse()) 4295 return SDValue(); 4296 ConstantSDNode *N101C = dyn_cast<ConstantSDNode>(N10.getOperand(1)); 4297 if (!N101C || N101C->getZExtValue() != 0xFF00) 4298 return SDValue(); 4299 N10 = N10.getOperand(0); 4300 LookPassAnd1 = true; 4301 } 4302 4303 if (N00 != N10) 4304 return SDValue(); 4305 4306 // Make sure everything beyond the low halfword gets set to zero since the SRL 4307 // 16 will clear the top bits. 4308 unsigned OpSizeInBits = VT.getSizeInBits(); 4309 if (DemandHighBits && OpSizeInBits > 16) { 4310 // If the left-shift isn't masked out then the only way this is a bswap is 4311 // if all bits beyond the low 8 are 0. In that case the entire pattern 4312 // reduces to a left shift anyway: leave it for other parts of the combiner. 4313 if (!LookPassAnd0) 4314 return SDValue(); 4315 4316 // However, if the right shift isn't masked out then it might be because 4317 // it's not needed. See if we can spot that too. 4318 if (!LookPassAnd1 && 4319 !DAG.MaskedValueIsZero( 4320 N10, APInt::getHighBitsSet(OpSizeInBits, OpSizeInBits - 16))) 4321 return SDValue(); 4322 } 4323 4324 SDValue Res = DAG.getNode(ISD::BSWAP, SDLoc(N), VT, N00); 4325 if (OpSizeInBits > 16) { 4326 SDLoc DL(N); 4327 Res = DAG.getNode(ISD::SRL, DL, VT, Res, 4328 DAG.getConstant(OpSizeInBits - 16, DL, 4329 getShiftAmountTy(VT))); 4330 } 4331 return Res; 4332 } 4333 4334 /// Return true if the specified node is an element that makes up a 32-bit 4335 /// packed halfword byteswap. 4336 /// ((x & 0x000000ff) << 8) | 4337 /// ((x & 0x0000ff00) >> 8) | 4338 /// ((x & 0x00ff0000) << 8) | 4339 /// ((x & 0xff000000) >> 8) 4340 static bool isBSwapHWordElement(SDValue N, MutableArrayRef<SDNode *> Parts) { 4341 if (!N.getNode()->hasOneUse()) 4342 return false; 4343 4344 unsigned Opc = N.getOpcode(); 4345 if (Opc != ISD::AND && Opc != ISD::SHL && Opc != ISD::SRL) 4346 return false; 4347 4348 SDValue N0 = N.getOperand(0); 4349 unsigned Opc0 = N0.getOpcode(); 4350 if (Opc0 != ISD::AND && Opc0 != ISD::SHL && Opc0 != ISD::SRL) 4351 return false; 4352 4353 ConstantSDNode *N1C = nullptr; 4354 // SHL or SRL: look upstream for AND mask operand 4355 if (Opc == ISD::AND) 4356 N1C = dyn_cast<ConstantSDNode>(N.getOperand(1)); 4357 else if (Opc0 == ISD::AND) 4358 N1C = dyn_cast<ConstantSDNode>(N0.getOperand(1)); 4359 if (!N1C) 4360 return false; 4361 4362 unsigned MaskByteOffset; 4363 switch (N1C->getZExtValue()) { 4364 default: 4365 return false; 4366 case 0xFF: MaskByteOffset = 0; break; 4367 case 0xFF00: MaskByteOffset = 1; break; 4368 case 0xFF0000: MaskByteOffset = 2; break; 4369 case 0xFF000000: MaskByteOffset = 3; break; 4370 } 4371 4372 // Look for (x & 0xff) << 8 as well as ((x << 8) & 0xff00). 4373 if (Opc == ISD::AND) { 4374 if (MaskByteOffset == 0 || MaskByteOffset == 2) { 4375 // (x >> 8) & 0xff 4376 // (x >> 8) & 0xff0000 4377 if (Opc0 != ISD::SRL) 4378 return false; 4379 ConstantSDNode *C = dyn_cast<ConstantSDNode>(N0.getOperand(1)); 4380 if (!C || C->getZExtValue() != 8) 4381 return false; 4382 } else { 4383 // (x << 8) & 0xff00 4384 // (x << 8) & 0xff000000 4385 if (Opc0 != ISD::SHL) 4386 return false; 4387 ConstantSDNode *C = dyn_cast<ConstantSDNode>(N0.getOperand(1)); 4388 if (!C || C->getZExtValue() != 8) 4389 return false; 4390 } 4391 } else if (Opc == ISD::SHL) { 4392 // (x & 0xff) << 8 4393 // (x & 0xff0000) << 8 4394 if (MaskByteOffset != 0 && MaskByteOffset != 2) 4395 return false; 4396 ConstantSDNode *C = dyn_cast<ConstantSDNode>(N.getOperand(1)); 4397 if (!C || C->getZExtValue() != 8) 4398 return false; 4399 } else { // Opc == ISD::SRL 4400 // (x & 0xff00) >> 8 4401 // (x & 0xff000000) >> 8 4402 if (MaskByteOffset != 1 && MaskByteOffset != 3) 4403 return false; 4404 ConstantSDNode *C = dyn_cast<ConstantSDNode>(N.getOperand(1)); 4405 if (!C || C->getZExtValue() != 8) 4406 return false; 4407 } 4408 4409 if (Parts[MaskByteOffset]) 4410 return false; 4411 4412 Parts[MaskByteOffset] = N0.getOperand(0).getNode(); 4413 return true; 4414 } 4415 4416 /// Match a 32-bit packed halfword bswap. That is 4417 /// ((x & 0x000000ff) << 8) | 4418 /// ((x & 0x0000ff00) >> 8) | 4419 /// ((x & 0x00ff0000) << 8) | 4420 /// ((x & 0xff000000) >> 8) 4421 /// => (rotl (bswap x), 16) 4422 SDValue DAGCombiner::MatchBSwapHWord(SDNode *N, SDValue N0, SDValue N1) { 4423 if (!LegalOperations) 4424 return SDValue(); 4425 4426 EVT VT = N->getValueType(0); 4427 if (VT != MVT::i32) 4428 return SDValue(); 4429 if (!TLI.isOperationLegalOrCustom(ISD::BSWAP, VT)) 4430 return SDValue(); 4431 4432 // Look for either 4433 // (or (or (and), (and)), (or (and), (and))) 4434 // (or (or (or (and), (and)), (and)), (and)) 4435 if (N0.getOpcode() != ISD::OR) 4436 return SDValue(); 4437 SDValue N00 = N0.getOperand(0); 4438 SDValue N01 = N0.getOperand(1); 4439 SDNode *Parts[4] = {}; 4440 4441 if (N1.getOpcode() == ISD::OR && 4442 N00.getNumOperands() == 2 && N01.getNumOperands() == 2) { 4443 // (or (or (and), (and)), (or (and), (and))) 4444 if (!isBSwapHWordElement(N00, Parts)) 4445 return SDValue(); 4446 4447 if (!isBSwapHWordElement(N01, Parts)) 4448 return SDValue(); 4449 SDValue N10 = N1.getOperand(0); 4450 if (!isBSwapHWordElement(N10, Parts)) 4451 return SDValue(); 4452 SDValue N11 = N1.getOperand(1); 4453 if (!isBSwapHWordElement(N11, Parts)) 4454 return SDValue(); 4455 } else { 4456 // (or (or (or (and), (and)), (and)), (and)) 4457 if (!isBSwapHWordElement(N1, Parts)) 4458 return SDValue(); 4459 if (!isBSwapHWordElement(N01, Parts)) 4460 return SDValue(); 4461 if (N00.getOpcode() != ISD::OR) 4462 return SDValue(); 4463 SDValue N000 = N00.getOperand(0); 4464 if (!isBSwapHWordElement(N000, Parts)) 4465 return SDValue(); 4466 SDValue N001 = N00.getOperand(1); 4467 if (!isBSwapHWordElement(N001, Parts)) 4468 return SDValue(); 4469 } 4470 4471 // Make sure the parts are all coming from the same node. 4472 if (Parts[0] != Parts[1] || Parts[0] != Parts[2] || Parts[0] != Parts[3]) 4473 return SDValue(); 4474 4475 SDLoc DL(N); 4476 SDValue BSwap = DAG.getNode(ISD::BSWAP, DL, VT, 4477 SDValue(Parts[0], 0)); 4478 4479 // Result of the bswap should be rotated by 16. If it's not legal, then 4480 // do (x << 16) | (x >> 16). 4481 SDValue ShAmt = DAG.getConstant(16, DL, getShiftAmountTy(VT)); 4482 if (TLI.isOperationLegalOrCustom(ISD::ROTL, VT)) 4483 return DAG.getNode(ISD::ROTL, DL, VT, BSwap, ShAmt); 4484 if (TLI.isOperationLegalOrCustom(ISD::ROTR, VT)) 4485 return DAG.getNode(ISD::ROTR, DL, VT, BSwap, ShAmt); 4486 return DAG.getNode(ISD::OR, DL, VT, 4487 DAG.getNode(ISD::SHL, DL, VT, BSwap, ShAmt), 4488 DAG.getNode(ISD::SRL, DL, VT, BSwap, ShAmt)); 4489 } 4490 4491 /// This contains all DAGCombine rules which reduce two values combined by 4492 /// an Or operation to a single value \see visitANDLike(). 4493 SDValue DAGCombiner::visitORLike(SDValue N0, SDValue N1, SDNode *N) { 4494 EVT VT = N1.getValueType(); 4495 SDLoc DL(N); 4496 4497 // fold (or x, undef) -> -1 4498 if (!LegalOperations && (N0.isUndef() || N1.isUndef())) 4499 return DAG.getAllOnesConstant(DL, VT); 4500 4501 if (SDValue V = foldLogicOfSetCCs(false, N0, N1, DL)) 4502 return V; 4503 4504 // (or (and X, C1), (and Y, C2)) -> (and (or X, Y), C3) if possible. 4505 if (N0.getOpcode() == ISD::AND && N1.getOpcode() == ISD::AND && 4506 // Don't increase # computations. 4507 (N0.getNode()->hasOneUse() || N1.getNode()->hasOneUse())) { 4508 // We can only do this xform if we know that bits from X that are set in C2 4509 // but not in C1 are already zero. Likewise for Y. 4510 if (const ConstantSDNode *N0O1C = 4511 getAsNonOpaqueConstant(N0.getOperand(1))) { 4512 if (const ConstantSDNode *N1O1C = 4513 getAsNonOpaqueConstant(N1.getOperand(1))) { 4514 // We can only do this xform if we know that bits from X that are set in 4515 // C2 but not in C1 are already zero. Likewise for Y. 4516 const APInt &LHSMask = N0O1C->getAPIntValue(); 4517 const APInt &RHSMask = N1O1C->getAPIntValue(); 4518 4519 if (DAG.MaskedValueIsZero(N0.getOperand(0), RHSMask&~LHSMask) && 4520 DAG.MaskedValueIsZero(N1.getOperand(0), LHSMask&~RHSMask)) { 4521 SDValue X = DAG.getNode(ISD::OR, SDLoc(N0), VT, 4522 N0.getOperand(0), N1.getOperand(0)); 4523 return DAG.getNode(ISD::AND, DL, VT, X, 4524 DAG.getConstant(LHSMask | RHSMask, DL, VT)); 4525 } 4526 } 4527 } 4528 } 4529 4530 // (or (and X, M), (and X, N)) -> (and X, (or M, N)) 4531 if (N0.getOpcode() == ISD::AND && 4532 N1.getOpcode() == ISD::AND && 4533 N0.getOperand(0) == N1.getOperand(0) && 4534 // Don't increase # computations. 4535 (N0.getNode()->hasOneUse() || N1.getNode()->hasOneUse())) { 4536 SDValue X = DAG.getNode(ISD::OR, SDLoc(N0), VT, 4537 N0.getOperand(1), N1.getOperand(1)); 4538 return DAG.getNode(ISD::AND, DL, VT, N0.getOperand(0), X); 4539 } 4540 4541 return SDValue(); 4542 } 4543 4544 SDValue DAGCombiner::visitOR(SDNode *N) { 4545 SDValue N0 = N->getOperand(0); 4546 SDValue N1 = N->getOperand(1); 4547 EVT VT = N1.getValueType(); 4548 4549 // x | x --> x 4550 if (N0 == N1) 4551 return N0; 4552 4553 // fold vector ops 4554 if (VT.isVector()) { 4555 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 4556 return FoldedVOp; 4557 4558 // fold (or x, 0) -> x, vector edition 4559 if (ISD::isBuildVectorAllZeros(N0.getNode())) 4560 return N1; 4561 if (ISD::isBuildVectorAllZeros(N1.getNode())) 4562 return N0; 4563 4564 // fold (or x, -1) -> -1, vector edition 4565 if (ISD::isBuildVectorAllOnes(N0.getNode())) 4566 // do not return N0, because undef node may exist in N0 4567 return DAG.getAllOnesConstant(SDLoc(N), N0.getValueType()); 4568 if (ISD::isBuildVectorAllOnes(N1.getNode())) 4569 // do not return N1, because undef node may exist in N1 4570 return DAG.getAllOnesConstant(SDLoc(N), N1.getValueType()); 4571 4572 // fold (or (shuf A, V_0, MA), (shuf B, V_0, MB)) -> (shuf A, B, Mask) 4573 // Do this only if the resulting shuffle is legal. 4574 if (isa<ShuffleVectorSDNode>(N0) && 4575 isa<ShuffleVectorSDNode>(N1) && 4576 // Avoid folding a node with illegal type. 4577 TLI.isTypeLegal(VT)) { 4578 bool ZeroN00 = ISD::isBuildVectorAllZeros(N0.getOperand(0).getNode()); 4579 bool ZeroN01 = ISD::isBuildVectorAllZeros(N0.getOperand(1).getNode()); 4580 bool ZeroN10 = ISD::isBuildVectorAllZeros(N1.getOperand(0).getNode()); 4581 bool ZeroN11 = ISD::isBuildVectorAllZeros(N1.getOperand(1).getNode()); 4582 // Ensure both shuffles have a zero input. 4583 if ((ZeroN00 != ZeroN01) && (ZeroN10 != ZeroN11)) { 4584 assert((!ZeroN00 || !ZeroN01) && "Both inputs zero!"); 4585 assert((!ZeroN10 || !ZeroN11) && "Both inputs zero!"); 4586 const ShuffleVectorSDNode *SV0 = cast<ShuffleVectorSDNode>(N0); 4587 const ShuffleVectorSDNode *SV1 = cast<ShuffleVectorSDNode>(N1); 4588 bool CanFold = true; 4589 int NumElts = VT.getVectorNumElements(); 4590 SmallVector<int, 4> Mask(NumElts); 4591 4592 for (int i = 0; i != NumElts; ++i) { 4593 int M0 = SV0->getMaskElt(i); 4594 int M1 = SV1->getMaskElt(i); 4595 4596 // Determine if either index is pointing to a zero vector. 4597 bool M0Zero = M0 < 0 || (ZeroN00 == (M0 < NumElts)); 4598 bool M1Zero = M1 < 0 || (ZeroN10 == (M1 < NumElts)); 4599 4600 // If one element is zero and the otherside is undef, keep undef. 4601 // This also handles the case that both are undef. 4602 if ((M0Zero && M1 < 0) || (M1Zero && M0 < 0)) { 4603 Mask[i] = -1; 4604 continue; 4605 } 4606 4607 // Make sure only one of the elements is zero. 4608 if (M0Zero == M1Zero) { 4609 CanFold = false; 4610 break; 4611 } 4612 4613 assert((M0 >= 0 || M1 >= 0) && "Undef index!"); 4614 4615 // We have a zero and non-zero element. If the non-zero came from 4616 // SV0 make the index a LHS index. If it came from SV1, make it 4617 // a RHS index. We need to mod by NumElts because we don't care 4618 // which operand it came from in the original shuffles. 4619 Mask[i] = M1Zero ? M0 % NumElts : (M1 % NumElts) + NumElts; 4620 } 4621 4622 if (CanFold) { 4623 SDValue NewLHS = ZeroN00 ? N0.getOperand(1) : N0.getOperand(0); 4624 SDValue NewRHS = ZeroN10 ? N1.getOperand(1) : N1.getOperand(0); 4625 4626 bool LegalMask = TLI.isShuffleMaskLegal(Mask, VT); 4627 if (!LegalMask) { 4628 std::swap(NewLHS, NewRHS); 4629 ShuffleVectorSDNode::commuteMask(Mask); 4630 LegalMask = TLI.isShuffleMaskLegal(Mask, VT); 4631 } 4632 4633 if (LegalMask) 4634 return DAG.getVectorShuffle(VT, SDLoc(N), NewLHS, NewRHS, Mask); 4635 } 4636 } 4637 } 4638 } 4639 4640 // fold (or c1, c2) -> c1|c2 4641 ConstantSDNode *N0C = getAsNonOpaqueConstant(N0); 4642 ConstantSDNode *N1C = dyn_cast<ConstantSDNode>(N1); 4643 if (N0C && N1C && !N1C->isOpaque()) 4644 return DAG.FoldConstantArithmetic(ISD::OR, SDLoc(N), VT, N0C, N1C); 4645 // canonicalize constant to RHS 4646 if (DAG.isConstantIntBuildVectorOrConstantInt(N0) && 4647 !DAG.isConstantIntBuildVectorOrConstantInt(N1)) 4648 return DAG.getNode(ISD::OR, SDLoc(N), VT, N1, N0); 4649 // fold (or x, 0) -> x 4650 if (isNullConstant(N1)) 4651 return N0; 4652 // fold (or x, -1) -> -1 4653 if (isAllOnesConstant(N1)) 4654 return N1; 4655 4656 if (SDValue NewSel = foldBinOpIntoSelect(N)) 4657 return NewSel; 4658 4659 // fold (or x, c) -> c iff (x & ~c) == 0 4660 if (N1C && DAG.MaskedValueIsZero(N0, ~N1C->getAPIntValue())) 4661 return N1; 4662 4663 if (SDValue Combined = visitORLike(N0, N1, N)) 4664 return Combined; 4665 4666 // Recognize halfword bswaps as (bswap + rotl 16) or (bswap + shl 16) 4667 if (SDValue BSwap = MatchBSwapHWord(N, N0, N1)) 4668 return BSwap; 4669 if (SDValue BSwap = MatchBSwapHWordLow(N, N0, N1)) 4670 return BSwap; 4671 4672 // reassociate or 4673 if (SDValue ROR = ReassociateOps(ISD::OR, SDLoc(N), N0, N1)) 4674 return ROR; 4675 4676 // Canonicalize (or (and X, c1), c2) -> (and (or X, c2), c1|c2) 4677 // iff (c1 & c2) != 0. 4678 if (N1C && N0.getOpcode() == ISD::AND && N0.getNode()->hasOneUse()) { 4679 if (ConstantSDNode *C1 = dyn_cast<ConstantSDNode>(N0.getOperand(1))) { 4680 if (C1->getAPIntValue().intersects(N1C->getAPIntValue())) { 4681 if (SDValue COR = 4682 DAG.FoldConstantArithmetic(ISD::OR, SDLoc(N1), VT, N1C, C1)) 4683 return DAG.getNode( 4684 ISD::AND, SDLoc(N), VT, 4685 DAG.getNode(ISD::OR, SDLoc(N0), VT, N0.getOperand(0), N1), COR); 4686 return SDValue(); 4687 } 4688 } 4689 } 4690 4691 // Simplify: (or (op x...), (op y...)) -> (op (or x, y)) 4692 if (N0.getOpcode() == N1.getOpcode()) 4693 if (SDValue Tmp = SimplifyBinOpWithSameOpcodeHands(N)) 4694 return Tmp; 4695 4696 // See if this is some rotate idiom. 4697 if (SDNode *Rot = MatchRotate(N0, N1, SDLoc(N))) 4698 return SDValue(Rot, 0); 4699 4700 if (SDValue Load = MatchLoadCombine(N)) 4701 return Load; 4702 4703 // Simplify the operands using demanded-bits information. 4704 if (SimplifyDemandedBits(SDValue(N, 0))) 4705 return SDValue(N, 0); 4706 4707 return SDValue(); 4708 } 4709 4710 /// Match "(X shl/srl V1) & V2" where V2 may not be present. 4711 bool DAGCombiner::MatchRotateHalf(SDValue Op, SDValue &Shift, SDValue &Mask) { 4712 if (Op.getOpcode() == ISD::AND) { 4713 if (DAG.isConstantIntBuildVectorOrConstantInt(Op.getOperand(1))) { 4714 Mask = Op.getOperand(1); 4715 Op = Op.getOperand(0); 4716 } else { 4717 return false; 4718 } 4719 } 4720 4721 if (Op.getOpcode() == ISD::SRL || Op.getOpcode() == ISD::SHL) { 4722 Shift = Op; 4723 return true; 4724 } 4725 4726 return false; 4727 } 4728 4729 // Return true if we can prove that, whenever Neg and Pos are both in the 4730 // range [0, EltSize), Neg == (Pos == 0 ? 0 : EltSize - Pos). This means that 4731 // for two opposing shifts shift1 and shift2 and a value X with OpBits bits: 4732 // 4733 // (or (shift1 X, Neg), (shift2 X, Pos)) 4734 // 4735 // reduces to a rotate in direction shift2 by Pos or (equivalently) a rotate 4736 // in direction shift1 by Neg. The range [0, EltSize) means that we only need 4737 // to consider shift amounts with defined behavior. 4738 static bool matchRotateSub(SDValue Pos, SDValue Neg, unsigned EltSize) { 4739 // If EltSize is a power of 2 then: 4740 // 4741 // (a) (Pos == 0 ? 0 : EltSize - Pos) == (EltSize - Pos) & (EltSize - 1) 4742 // (b) Neg == Neg & (EltSize - 1) whenever Neg is in [0, EltSize). 4743 // 4744 // So if EltSize is a power of 2 and Neg is (and Neg', EltSize-1), we check 4745 // for the stronger condition: 4746 // 4747 // Neg & (EltSize - 1) == (EltSize - Pos) & (EltSize - 1) [A] 4748 // 4749 // for all Neg and Pos. Since Neg & (EltSize - 1) == Neg' & (EltSize - 1) 4750 // we can just replace Neg with Neg' for the rest of the function. 4751 // 4752 // In other cases we check for the even stronger condition: 4753 // 4754 // Neg == EltSize - Pos [B] 4755 // 4756 // for all Neg and Pos. Note that the (or ...) then invokes undefined 4757 // behavior if Pos == 0 (and consequently Neg == EltSize). 4758 // 4759 // We could actually use [A] whenever EltSize is a power of 2, but the 4760 // only extra cases that it would match are those uninteresting ones 4761 // where Neg and Pos are never in range at the same time. E.g. for 4762 // EltSize == 32, using [A] would allow a Neg of the form (sub 64, Pos) 4763 // as well as (sub 32, Pos), but: 4764 // 4765 // (or (shift1 X, (sub 64, Pos)), (shift2 X, Pos)) 4766 // 4767 // always invokes undefined behavior for 32-bit X. 4768 // 4769 // Below, Mask == EltSize - 1 when using [A] and is all-ones otherwise. 4770 unsigned MaskLoBits = 0; 4771 if (Neg.getOpcode() == ISD::AND && isPowerOf2_64(EltSize)) { 4772 if (ConstantSDNode *NegC = isConstOrConstSplat(Neg.getOperand(1))) { 4773 if (NegC->getAPIntValue() == EltSize - 1) { 4774 Neg = Neg.getOperand(0); 4775 MaskLoBits = Log2_64(EltSize); 4776 } 4777 } 4778 } 4779 4780 // Check whether Neg has the form (sub NegC, NegOp1) for some NegC and NegOp1. 4781 if (Neg.getOpcode() != ISD::SUB) 4782 return false; 4783 ConstantSDNode *NegC = isConstOrConstSplat(Neg.getOperand(0)); 4784 if (!NegC) 4785 return false; 4786 SDValue NegOp1 = Neg.getOperand(1); 4787 4788 // On the RHS of [A], if Pos is Pos' & (EltSize - 1), just replace Pos with 4789 // Pos'. The truncation is redundant for the purpose of the equality. 4790 if (MaskLoBits && Pos.getOpcode() == ISD::AND) 4791 if (ConstantSDNode *PosC = isConstOrConstSplat(Pos.getOperand(1))) 4792 if (PosC->getAPIntValue() == EltSize - 1) 4793 Pos = Pos.getOperand(0); 4794 4795 // The condition we need is now: 4796 // 4797 // (NegC - NegOp1) & Mask == (EltSize - Pos) & Mask 4798 // 4799 // If NegOp1 == Pos then we need: 4800 // 4801 // EltSize & Mask == NegC & Mask 4802 // 4803 // (because "x & Mask" is a truncation and distributes through subtraction). 4804 APInt Width; 4805 if (Pos == NegOp1) 4806 Width = NegC->getAPIntValue(); 4807 4808 // Check for cases where Pos has the form (add NegOp1, PosC) for some PosC. 4809 // Then the condition we want to prove becomes: 4810 // 4811 // (NegC - NegOp1) & Mask == (EltSize - (NegOp1 + PosC)) & Mask 4812 // 4813 // which, again because "x & Mask" is a truncation, becomes: 4814 // 4815 // NegC & Mask == (EltSize - PosC) & Mask 4816 // EltSize & Mask == (NegC + PosC) & Mask 4817 else if (Pos.getOpcode() == ISD::ADD && Pos.getOperand(0) == NegOp1) { 4818 if (ConstantSDNode *PosC = isConstOrConstSplat(Pos.getOperand(1))) 4819 Width = PosC->getAPIntValue() + NegC->getAPIntValue(); 4820 else 4821 return false; 4822 } else 4823 return false; 4824 4825 // Now we just need to check that EltSize & Mask == Width & Mask. 4826 if (MaskLoBits) 4827 // EltSize & Mask is 0 since Mask is EltSize - 1. 4828 return Width.getLoBits(MaskLoBits) == 0; 4829 return Width == EltSize; 4830 } 4831 4832 // A subroutine of MatchRotate used once we have found an OR of two opposite 4833 // shifts of Shifted. If Neg == <operand size> - Pos then the OR reduces 4834 // to both (PosOpcode Shifted, Pos) and (NegOpcode Shifted, Neg), with the 4835 // former being preferred if supported. InnerPos and InnerNeg are Pos and 4836 // Neg with outer conversions stripped away. 4837 SDNode *DAGCombiner::MatchRotatePosNeg(SDValue Shifted, SDValue Pos, 4838 SDValue Neg, SDValue InnerPos, 4839 SDValue InnerNeg, unsigned PosOpcode, 4840 unsigned NegOpcode, const SDLoc &DL) { 4841 // fold (or (shl x, (*ext y)), 4842 // (srl x, (*ext (sub 32, y)))) -> 4843 // (rotl x, y) or (rotr x, (sub 32, y)) 4844 // 4845 // fold (or (shl x, (*ext (sub 32, y))), 4846 // (srl x, (*ext y))) -> 4847 // (rotr x, y) or (rotl x, (sub 32, y)) 4848 EVT VT = Shifted.getValueType(); 4849 if (matchRotateSub(InnerPos, InnerNeg, VT.getScalarSizeInBits())) { 4850 bool HasPos = TLI.isOperationLegalOrCustom(PosOpcode, VT); 4851 return DAG.getNode(HasPos ? PosOpcode : NegOpcode, DL, VT, Shifted, 4852 HasPos ? Pos : Neg).getNode(); 4853 } 4854 4855 return nullptr; 4856 } 4857 4858 // MatchRotate - Handle an 'or' of two operands. If this is one of the many 4859 // idioms for rotate, and if the target supports rotation instructions, generate 4860 // a rot[lr]. 4861 SDNode *DAGCombiner::MatchRotate(SDValue LHS, SDValue RHS, const SDLoc &DL) { 4862 // Must be a legal type. Expanded 'n promoted things won't work with rotates. 4863 EVT VT = LHS.getValueType(); 4864 if (!TLI.isTypeLegal(VT)) return nullptr; 4865 4866 // The target must have at least one rotate flavor. 4867 bool HasROTL = TLI.isOperationLegalOrCustom(ISD::ROTL, VT); 4868 bool HasROTR = TLI.isOperationLegalOrCustom(ISD::ROTR, VT); 4869 if (!HasROTL && !HasROTR) return nullptr; 4870 4871 // Check for truncated rotate. 4872 if (LHS.getOpcode() == ISD::TRUNCATE && RHS.getOpcode() == ISD::TRUNCATE && 4873 LHS.getOperand(0).getValueType() == RHS.getOperand(0).getValueType()) { 4874 assert(LHS.getValueType() == RHS.getValueType()); 4875 if (SDNode *Rot = MatchRotate(LHS.getOperand(0), RHS.getOperand(0), DL)) { 4876 return DAG.getNode(ISD::TRUNCATE, SDLoc(LHS), LHS.getValueType(), 4877 SDValue(Rot, 0)).getNode(); 4878 } 4879 } 4880 4881 // Match "(X shl/srl V1) & V2" where V2 may not be present. 4882 SDValue LHSShift; // The shift. 4883 SDValue LHSMask; // AND value if any. 4884 if (!MatchRotateHalf(LHS, LHSShift, LHSMask)) 4885 return nullptr; // Not part of a rotate. 4886 4887 SDValue RHSShift; // The shift. 4888 SDValue RHSMask; // AND value if any. 4889 if (!MatchRotateHalf(RHS, RHSShift, RHSMask)) 4890 return nullptr; // Not part of a rotate. 4891 4892 if (LHSShift.getOperand(0) != RHSShift.getOperand(0)) 4893 return nullptr; // Not shifting the same value. 4894 4895 if (LHSShift.getOpcode() == RHSShift.getOpcode()) 4896 return nullptr; // Shifts must disagree. 4897 4898 // Canonicalize shl to left side in a shl/srl pair. 4899 if (RHSShift.getOpcode() == ISD::SHL) { 4900 std::swap(LHS, RHS); 4901 std::swap(LHSShift, RHSShift); 4902 std::swap(LHSMask, RHSMask); 4903 } 4904 4905 unsigned EltSizeInBits = VT.getScalarSizeInBits(); 4906 SDValue LHSShiftArg = LHSShift.getOperand(0); 4907 SDValue LHSShiftAmt = LHSShift.getOperand(1); 4908 SDValue RHSShiftArg = RHSShift.getOperand(0); 4909 SDValue RHSShiftAmt = RHSShift.getOperand(1); 4910 4911 // fold (or (shl x, C1), (srl x, C2)) -> (rotl x, C1) 4912 // fold (or (shl x, C1), (srl x, C2)) -> (rotr x, C2) 4913 auto MatchRotateSum = [EltSizeInBits](ConstantSDNode *LHS, 4914 ConstantSDNode *RHS) { 4915 return (LHS->getAPIntValue() + RHS->getAPIntValue()) == EltSizeInBits; 4916 }; 4917 if (matchBinaryPredicate(LHSShiftAmt, RHSShiftAmt, MatchRotateSum)) { 4918 SDValue Rot = DAG.getNode(HasROTL ? ISD::ROTL : ISD::ROTR, DL, VT, 4919 LHSShiftArg, HasROTL ? LHSShiftAmt : RHSShiftAmt); 4920 4921 // If there is an AND of either shifted operand, apply it to the result. 4922 if (LHSMask.getNode() || RHSMask.getNode()) { 4923 SDValue AllOnes = DAG.getAllOnesConstant(DL, VT); 4924 SDValue Mask = AllOnes; 4925 4926 if (LHSMask.getNode()) { 4927 SDValue RHSBits = DAG.getNode(ISD::SRL, DL, VT, AllOnes, RHSShiftAmt); 4928 Mask = DAG.getNode(ISD::AND, DL, VT, Mask, 4929 DAG.getNode(ISD::OR, DL, VT, LHSMask, RHSBits)); 4930 } 4931 if (RHSMask.getNode()) { 4932 SDValue LHSBits = DAG.getNode(ISD::SHL, DL, VT, AllOnes, LHSShiftAmt); 4933 Mask = DAG.getNode(ISD::AND, DL, VT, Mask, 4934 DAG.getNode(ISD::OR, DL, VT, RHSMask, LHSBits)); 4935 } 4936 4937 Rot = DAG.getNode(ISD::AND, DL, VT, Rot, Mask); 4938 } 4939 4940 return Rot.getNode(); 4941 } 4942 4943 // If there is a mask here, and we have a variable shift, we can't be sure 4944 // that we're masking out the right stuff. 4945 if (LHSMask.getNode() || RHSMask.getNode()) 4946 return nullptr; 4947 4948 // If the shift amount is sign/zext/any-extended just peel it off. 4949 SDValue LExtOp0 = LHSShiftAmt; 4950 SDValue RExtOp0 = RHSShiftAmt; 4951 if ((LHSShiftAmt.getOpcode() == ISD::SIGN_EXTEND || 4952 LHSShiftAmt.getOpcode() == ISD::ZERO_EXTEND || 4953 LHSShiftAmt.getOpcode() == ISD::ANY_EXTEND || 4954 LHSShiftAmt.getOpcode() == ISD::TRUNCATE) && 4955 (RHSShiftAmt.getOpcode() == ISD::SIGN_EXTEND || 4956 RHSShiftAmt.getOpcode() == ISD::ZERO_EXTEND || 4957 RHSShiftAmt.getOpcode() == ISD::ANY_EXTEND || 4958 RHSShiftAmt.getOpcode() == ISD::TRUNCATE)) { 4959 LExtOp0 = LHSShiftAmt.getOperand(0); 4960 RExtOp0 = RHSShiftAmt.getOperand(0); 4961 } 4962 4963 SDNode *TryL = MatchRotatePosNeg(LHSShiftArg, LHSShiftAmt, RHSShiftAmt, 4964 LExtOp0, RExtOp0, ISD::ROTL, ISD::ROTR, DL); 4965 if (TryL) 4966 return TryL; 4967 4968 SDNode *TryR = MatchRotatePosNeg(RHSShiftArg, RHSShiftAmt, LHSShiftAmt, 4969 RExtOp0, LExtOp0, ISD::ROTR, ISD::ROTL, DL); 4970 if (TryR) 4971 return TryR; 4972 4973 return nullptr; 4974 } 4975 4976 namespace { 4977 4978 /// Represents known origin of an individual byte in load combine pattern. The 4979 /// value of the byte is either constant zero or comes from memory. 4980 struct ByteProvider { 4981 // For constant zero providers Load is set to nullptr. For memory providers 4982 // Load represents the node which loads the byte from memory. 4983 // ByteOffset is the offset of the byte in the value produced by the load. 4984 LoadSDNode *Load = nullptr; 4985 unsigned ByteOffset = 0; 4986 4987 ByteProvider() = default; 4988 4989 static ByteProvider getMemory(LoadSDNode *Load, unsigned ByteOffset) { 4990 return ByteProvider(Load, ByteOffset); 4991 } 4992 4993 static ByteProvider getConstantZero() { return ByteProvider(nullptr, 0); } 4994 4995 bool isConstantZero() const { return !Load; } 4996 bool isMemory() const { return Load; } 4997 4998 bool operator==(const ByteProvider &Other) const { 4999 return Other.Load == Load && Other.ByteOffset == ByteOffset; 5000 } 5001 5002 private: 5003 ByteProvider(LoadSDNode *Load, unsigned ByteOffset) 5004 : Load(Load), ByteOffset(ByteOffset) {} 5005 }; 5006 5007 } // end anonymous namespace 5008 5009 /// Recursively traverses the expression calculating the origin of the requested 5010 /// byte of the given value. Returns None if the provider can't be calculated. 5011 /// 5012 /// For all the values except the root of the expression verifies that the value 5013 /// has exactly one use and if it's not true return None. This way if the origin 5014 /// of the byte is returned it's guaranteed that the values which contribute to 5015 /// the byte are not used outside of this expression. 5016 /// 5017 /// Because the parts of the expression are not allowed to have more than one 5018 /// use this function iterates over trees, not DAGs. So it never visits the same 5019 /// node more than once. 5020 static const Optional<ByteProvider> 5021 calculateByteProvider(SDValue Op, unsigned Index, unsigned Depth, 5022 bool Root = false) { 5023 // Typical i64 by i8 pattern requires recursion up to 8 calls depth 5024 if (Depth == 10) 5025 return None; 5026 5027 if (!Root && !Op.hasOneUse()) 5028 return None; 5029 5030 assert(Op.getValueType().isScalarInteger() && "can't handle other types"); 5031 unsigned BitWidth = Op.getValueSizeInBits(); 5032 if (BitWidth % 8 != 0) 5033 return None; 5034 unsigned ByteWidth = BitWidth / 8; 5035 assert(Index < ByteWidth && "invalid index requested"); 5036 (void) ByteWidth; 5037 5038 switch (Op.getOpcode()) { 5039 case ISD::OR: { 5040 auto LHS = calculateByteProvider(Op->getOperand(0), Index, Depth + 1); 5041 if (!LHS) 5042 return None; 5043 auto RHS = calculateByteProvider(Op->getOperand(1), Index, Depth + 1); 5044 if (!RHS) 5045 return None; 5046 5047 if (LHS->isConstantZero()) 5048 return RHS; 5049 if (RHS->isConstantZero()) 5050 return LHS; 5051 return None; 5052 } 5053 case ISD::SHL: { 5054 auto ShiftOp = dyn_cast<ConstantSDNode>(Op->getOperand(1)); 5055 if (!ShiftOp) 5056 return None; 5057 5058 uint64_t BitShift = ShiftOp->getZExtValue(); 5059 if (BitShift % 8 != 0) 5060 return None; 5061 uint64_t ByteShift = BitShift / 8; 5062 5063 return Index < ByteShift 5064 ? ByteProvider::getConstantZero() 5065 : calculateByteProvider(Op->getOperand(0), Index - ByteShift, 5066 Depth + 1); 5067 } 5068 case ISD::ANY_EXTEND: 5069 case ISD::SIGN_EXTEND: 5070 case ISD::ZERO_EXTEND: { 5071 SDValue NarrowOp = Op->getOperand(0); 5072 unsigned NarrowBitWidth = NarrowOp.getScalarValueSizeInBits(); 5073 if (NarrowBitWidth % 8 != 0) 5074 return None; 5075 uint64_t NarrowByteWidth = NarrowBitWidth / 8; 5076 5077 if (Index >= NarrowByteWidth) 5078 return Op.getOpcode() == ISD::ZERO_EXTEND 5079 ? Optional<ByteProvider>(ByteProvider::getConstantZero()) 5080 : None; 5081 return calculateByteProvider(NarrowOp, Index, Depth + 1); 5082 } 5083 case ISD::BSWAP: 5084 return calculateByteProvider(Op->getOperand(0), ByteWidth - Index - 1, 5085 Depth + 1); 5086 case ISD::LOAD: { 5087 auto L = cast<LoadSDNode>(Op.getNode()); 5088 if (L->isVolatile() || L->isIndexed()) 5089 return None; 5090 5091 unsigned NarrowBitWidth = L->getMemoryVT().getSizeInBits(); 5092 if (NarrowBitWidth % 8 != 0) 5093 return None; 5094 uint64_t NarrowByteWidth = NarrowBitWidth / 8; 5095 5096 if (Index >= NarrowByteWidth) 5097 return L->getExtensionType() == ISD::ZEXTLOAD 5098 ? Optional<ByteProvider>(ByteProvider::getConstantZero()) 5099 : None; 5100 return ByteProvider::getMemory(L, Index); 5101 } 5102 } 5103 5104 return None; 5105 } 5106 5107 /// Match a pattern where a wide type scalar value is loaded by several narrow 5108 /// loads and combined by shifts and ors. Fold it into a single load or a load 5109 /// and a BSWAP if the targets supports it. 5110 /// 5111 /// Assuming little endian target: 5112 /// i8 *a = ... 5113 /// i32 val = a[0] | (a[1] << 8) | (a[2] << 16) | (a[3] << 24) 5114 /// => 5115 /// i32 val = *((i32)a) 5116 /// 5117 /// i8 *a = ... 5118 /// i32 val = (a[0] << 24) | (a[1] << 16) | (a[2] << 8) | a[3] 5119 /// => 5120 /// i32 val = BSWAP(*((i32)a)) 5121 /// 5122 /// TODO: This rule matches complex patterns with OR node roots and doesn't 5123 /// interact well with the worklist mechanism. When a part of the pattern is 5124 /// updated (e.g. one of the loads) its direct users are put into the worklist, 5125 /// but the root node of the pattern which triggers the load combine is not 5126 /// necessarily a direct user of the changed node. For example, once the address 5127 /// of t28 load is reassociated load combine won't be triggered: 5128 /// t25: i32 = add t4, Constant:i32<2> 5129 /// t26: i64 = sign_extend t25 5130 /// t27: i64 = add t2, t26 5131 /// t28: i8,ch = load<LD1[%tmp9]> t0, t27, undef:i64 5132 /// t29: i32 = zero_extend t28 5133 /// t32: i32 = shl t29, Constant:i8<8> 5134 /// t33: i32 = or t23, t32 5135 /// As a possible fix visitLoad can check if the load can be a part of a load 5136 /// combine pattern and add corresponding OR roots to the worklist. 5137 SDValue DAGCombiner::MatchLoadCombine(SDNode *N) { 5138 assert(N->getOpcode() == ISD::OR && 5139 "Can only match load combining against OR nodes"); 5140 5141 // Handles simple types only 5142 EVT VT = N->getValueType(0); 5143 if (VT != MVT::i16 && VT != MVT::i32 && VT != MVT::i64) 5144 return SDValue(); 5145 unsigned ByteWidth = VT.getSizeInBits() / 8; 5146 5147 const TargetLowering &TLI = DAG.getTargetLoweringInfo(); 5148 // Before legalize we can introduce too wide illegal loads which will be later 5149 // split into legal sized loads. This enables us to combine i64 load by i8 5150 // patterns to a couple of i32 loads on 32 bit targets. 5151 if (LegalOperations && !TLI.isOperationLegal(ISD::LOAD, VT)) 5152 return SDValue(); 5153 5154 std::function<unsigned(unsigned, unsigned)> LittleEndianByteAt = []( 5155 unsigned BW, unsigned i) { return i; }; 5156 std::function<unsigned(unsigned, unsigned)> BigEndianByteAt = []( 5157 unsigned BW, unsigned i) { return BW - i - 1; }; 5158 5159 bool IsBigEndianTarget = DAG.getDataLayout().isBigEndian(); 5160 auto MemoryByteOffset = [&] (ByteProvider P) { 5161 assert(P.isMemory() && "Must be a memory byte provider"); 5162 unsigned LoadBitWidth = P.Load->getMemoryVT().getSizeInBits(); 5163 assert(LoadBitWidth % 8 == 0 && 5164 "can only analyze providers for individual bytes not bit"); 5165 unsigned LoadByteWidth = LoadBitWidth / 8; 5166 return IsBigEndianTarget 5167 ? BigEndianByteAt(LoadByteWidth, P.ByteOffset) 5168 : LittleEndianByteAt(LoadByteWidth, P.ByteOffset); 5169 }; 5170 5171 Optional<BaseIndexOffset> Base; 5172 SDValue Chain; 5173 5174 SmallSet<LoadSDNode *, 8> Loads; 5175 Optional<ByteProvider> FirstByteProvider; 5176 int64_t FirstOffset = INT64_MAX; 5177 5178 // Check if all the bytes of the OR we are looking at are loaded from the same 5179 // base address. Collect bytes offsets from Base address in ByteOffsets. 5180 SmallVector<int64_t, 4> ByteOffsets(ByteWidth); 5181 for (unsigned i = 0; i < ByteWidth; i++) { 5182 auto P = calculateByteProvider(SDValue(N, 0), i, 0, /*Root=*/true); 5183 if (!P || !P->isMemory()) // All the bytes must be loaded from memory 5184 return SDValue(); 5185 5186 LoadSDNode *L = P->Load; 5187 assert(L->hasNUsesOfValue(1, 0) && !L->isVolatile() && !L->isIndexed() && 5188 "Must be enforced by calculateByteProvider"); 5189 assert(L->getOffset().isUndef() && "Unindexed load must have undef offset"); 5190 5191 // All loads must share the same chain 5192 SDValue LChain = L->getChain(); 5193 if (!Chain) 5194 Chain = LChain; 5195 else if (Chain != LChain) 5196 return SDValue(); 5197 5198 // Loads must share the same base address 5199 BaseIndexOffset Ptr = BaseIndexOffset::match(L->getBasePtr(), DAG); 5200 int64_t ByteOffsetFromBase = 0; 5201 if (!Base) 5202 Base = Ptr; 5203 else if (!Base->equalBaseIndex(Ptr, DAG, ByteOffsetFromBase)) 5204 return SDValue(); 5205 5206 // Calculate the offset of the current byte from the base address 5207 ByteOffsetFromBase += MemoryByteOffset(*P); 5208 ByteOffsets[i] = ByteOffsetFromBase; 5209 5210 // Remember the first byte load 5211 if (ByteOffsetFromBase < FirstOffset) { 5212 FirstByteProvider = P; 5213 FirstOffset = ByteOffsetFromBase; 5214 } 5215 5216 Loads.insert(L); 5217 } 5218 assert(!Loads.empty() && "All the bytes of the value must be loaded from " 5219 "memory, so there must be at least one load which produces the value"); 5220 assert(Base && "Base address of the accessed memory location must be set"); 5221 assert(FirstOffset != INT64_MAX && "First byte offset must be set"); 5222 5223 // Check if the bytes of the OR we are looking at match with either big or 5224 // little endian value load 5225 bool BigEndian = true, LittleEndian = true; 5226 for (unsigned i = 0; i < ByteWidth; i++) { 5227 int64_t CurrentByteOffset = ByteOffsets[i] - FirstOffset; 5228 LittleEndian &= CurrentByteOffset == LittleEndianByteAt(ByteWidth, i); 5229 BigEndian &= CurrentByteOffset == BigEndianByteAt(ByteWidth, i); 5230 if (!BigEndian && !LittleEndian) 5231 return SDValue(); 5232 } 5233 assert((BigEndian != LittleEndian) && "should be either or"); 5234 assert(FirstByteProvider && "must be set"); 5235 5236 // Ensure that the first byte is loaded from zero offset of the first load. 5237 // So the combined value can be loaded from the first load address. 5238 if (MemoryByteOffset(*FirstByteProvider) != 0) 5239 return SDValue(); 5240 LoadSDNode *FirstLoad = FirstByteProvider->Load; 5241 5242 // The node we are looking at matches with the pattern, check if we can 5243 // replace it with a single load and bswap if needed. 5244 5245 // If the load needs byte swap check if the target supports it 5246 bool NeedsBswap = IsBigEndianTarget != BigEndian; 5247 5248 // Before legalize we can introduce illegal bswaps which will be later 5249 // converted to an explicit bswap sequence. This way we end up with a single 5250 // load and byte shuffling instead of several loads and byte shuffling. 5251 if (NeedsBswap && LegalOperations && !TLI.isOperationLegal(ISD::BSWAP, VT)) 5252 return SDValue(); 5253 5254 // Check that a load of the wide type is both allowed and fast on the target 5255 bool Fast = false; 5256 bool Allowed = TLI.allowsMemoryAccess(*DAG.getContext(), DAG.getDataLayout(), 5257 VT, FirstLoad->getAddressSpace(), 5258 FirstLoad->getAlignment(), &Fast); 5259 if (!Allowed || !Fast) 5260 return SDValue(); 5261 5262 SDValue NewLoad = 5263 DAG.getLoad(VT, SDLoc(N), Chain, FirstLoad->getBasePtr(), 5264 FirstLoad->getPointerInfo(), FirstLoad->getAlignment()); 5265 5266 // Transfer chain users from old loads to the new load. 5267 for (LoadSDNode *L : Loads) 5268 DAG.ReplaceAllUsesOfValueWith(SDValue(L, 1), SDValue(NewLoad.getNode(), 1)); 5269 5270 return NeedsBswap ? DAG.getNode(ISD::BSWAP, SDLoc(N), VT, NewLoad) : NewLoad; 5271 } 5272 5273 SDValue DAGCombiner::visitXOR(SDNode *N) { 5274 SDValue N0 = N->getOperand(0); 5275 SDValue N1 = N->getOperand(1); 5276 EVT VT = N0.getValueType(); 5277 5278 // fold vector ops 5279 if (VT.isVector()) { 5280 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 5281 return FoldedVOp; 5282 5283 // fold (xor x, 0) -> x, vector edition 5284 if (ISD::isBuildVectorAllZeros(N0.getNode())) 5285 return N1; 5286 if (ISD::isBuildVectorAllZeros(N1.getNode())) 5287 return N0; 5288 } 5289 5290 // fold (xor undef, undef) -> 0. This is a common idiom (misuse). 5291 if (N0.isUndef() && N1.isUndef()) 5292 return DAG.getConstant(0, SDLoc(N), VT); 5293 // fold (xor x, undef) -> undef 5294 if (N0.isUndef()) 5295 return N0; 5296 if (N1.isUndef()) 5297 return N1; 5298 // fold (xor c1, c2) -> c1^c2 5299 ConstantSDNode *N0C = getAsNonOpaqueConstant(N0); 5300 ConstantSDNode *N1C = getAsNonOpaqueConstant(N1); 5301 if (N0C && N1C) 5302 return DAG.FoldConstantArithmetic(ISD::XOR, SDLoc(N), VT, N0C, N1C); 5303 // canonicalize constant to RHS 5304 if (DAG.isConstantIntBuildVectorOrConstantInt(N0) && 5305 !DAG.isConstantIntBuildVectorOrConstantInt(N1)) 5306 return DAG.getNode(ISD::XOR, SDLoc(N), VT, N1, N0); 5307 // fold (xor x, 0) -> x 5308 if (isNullConstant(N1)) 5309 return N0; 5310 5311 if (SDValue NewSel = foldBinOpIntoSelect(N)) 5312 return NewSel; 5313 5314 // reassociate xor 5315 if (SDValue RXOR = ReassociateOps(ISD::XOR, SDLoc(N), N0, N1)) 5316 return RXOR; 5317 5318 // fold !(x cc y) -> (x !cc y) 5319 SDValue LHS, RHS, CC; 5320 if (TLI.isConstTrueVal(N1.getNode()) && isSetCCEquivalent(N0, LHS, RHS, CC)) { 5321 bool isInt = LHS.getValueType().isInteger(); 5322 ISD::CondCode NotCC = ISD::getSetCCInverse(cast<CondCodeSDNode>(CC)->get(), 5323 isInt); 5324 5325 if (!LegalOperations || 5326 TLI.isCondCodeLegal(NotCC, LHS.getSimpleValueType())) { 5327 switch (N0.getOpcode()) { 5328 default: 5329 llvm_unreachable("Unhandled SetCC Equivalent!"); 5330 case ISD::SETCC: 5331 return DAG.getSetCC(SDLoc(N0), VT, LHS, RHS, NotCC); 5332 case ISD::SELECT_CC: 5333 return DAG.getSelectCC(SDLoc(N0), LHS, RHS, N0.getOperand(2), 5334 N0.getOperand(3), NotCC); 5335 } 5336 } 5337 } 5338 5339 // fold (not (zext (setcc x, y))) -> (zext (not (setcc x, y))) 5340 if (isOneConstant(N1) && N0.getOpcode() == ISD::ZERO_EXTEND && 5341 N0.getNode()->hasOneUse() && 5342 isSetCCEquivalent(N0.getOperand(0), LHS, RHS, CC)){ 5343 SDValue V = N0.getOperand(0); 5344 SDLoc DL(N0); 5345 V = DAG.getNode(ISD::XOR, DL, V.getValueType(), V, 5346 DAG.getConstant(1, DL, V.getValueType())); 5347 AddToWorklist(V.getNode()); 5348 return DAG.getNode(ISD::ZERO_EXTEND, SDLoc(N), VT, V); 5349 } 5350 5351 // fold (not (or x, y)) -> (and (not x), (not y)) iff x or y are setcc 5352 if (isOneConstant(N1) && VT == MVT::i1 && 5353 (N0.getOpcode() == ISD::OR || N0.getOpcode() == ISD::AND)) { 5354 SDValue LHS = N0.getOperand(0), RHS = N0.getOperand(1); 5355 if (isOneUseSetCC(RHS) || isOneUseSetCC(LHS)) { 5356 unsigned NewOpcode = N0.getOpcode() == ISD::AND ? ISD::OR : ISD::AND; 5357 LHS = DAG.getNode(ISD::XOR, SDLoc(LHS), VT, LHS, N1); // LHS = ~LHS 5358 RHS = DAG.getNode(ISD::XOR, SDLoc(RHS), VT, RHS, N1); // RHS = ~RHS 5359 AddToWorklist(LHS.getNode()); AddToWorklist(RHS.getNode()); 5360 return DAG.getNode(NewOpcode, SDLoc(N), VT, LHS, RHS); 5361 } 5362 } 5363 // fold (not (or x, y)) -> (and (not x), (not y)) iff x or y are constants 5364 if (isAllOnesConstant(N1) && 5365 (N0.getOpcode() == ISD::OR || N0.getOpcode() == ISD::AND)) { 5366 SDValue LHS = N0.getOperand(0), RHS = N0.getOperand(1); 5367 if (isa<ConstantSDNode>(RHS) || isa<ConstantSDNode>(LHS)) { 5368 unsigned NewOpcode = N0.getOpcode() == ISD::AND ? ISD::OR : ISD::AND; 5369 LHS = DAG.getNode(ISD::XOR, SDLoc(LHS), VT, LHS, N1); // LHS = ~LHS 5370 RHS = DAG.getNode(ISD::XOR, SDLoc(RHS), VT, RHS, N1); // RHS = ~RHS 5371 AddToWorklist(LHS.getNode()); AddToWorklist(RHS.getNode()); 5372 return DAG.getNode(NewOpcode, SDLoc(N), VT, LHS, RHS); 5373 } 5374 } 5375 // fold (xor (and x, y), y) -> (and (not x), y) 5376 if (N0.getOpcode() == ISD::AND && N0.getNode()->hasOneUse() && 5377 N0->getOperand(1) == N1) { 5378 SDValue X = N0->getOperand(0); 5379 SDValue NotX = DAG.getNOT(SDLoc(X), X, VT); 5380 AddToWorklist(NotX.getNode()); 5381 return DAG.getNode(ISD::AND, SDLoc(N), VT, NotX, N1); 5382 } 5383 // fold (xor (xor x, c1), c2) -> (xor x, (xor c1, c2)) 5384 if (N1C && N0.getOpcode() == ISD::XOR) { 5385 if (const ConstantSDNode *N00C = getAsNonOpaqueConstant(N0.getOperand(0))) { 5386 SDLoc DL(N); 5387 return DAG.getNode(ISD::XOR, DL, VT, N0.getOperand(1), 5388 DAG.getConstant(N1C->getAPIntValue() ^ 5389 N00C->getAPIntValue(), DL, VT)); 5390 } 5391 if (const ConstantSDNode *N01C = getAsNonOpaqueConstant(N0.getOperand(1))) { 5392 SDLoc DL(N); 5393 return DAG.getNode(ISD::XOR, DL, VT, N0.getOperand(0), 5394 DAG.getConstant(N1C->getAPIntValue() ^ 5395 N01C->getAPIntValue(), DL, VT)); 5396 } 5397 } 5398 5399 // fold Y = sra (X, size(X)-1); xor (add (X, Y), Y) -> (abs X) 5400 unsigned OpSizeInBits = VT.getScalarSizeInBits(); 5401 if (N0.getOpcode() == ISD::ADD && N0.getOperand(1) == N1 && 5402 N1.getOpcode() == ISD::SRA && N1.getOperand(0) == N0.getOperand(0) && 5403 TLI.isOperationLegalOrCustom(ISD::ABS, VT)) { 5404 if (ConstantSDNode *C = isConstOrConstSplat(N1.getOperand(1))) 5405 if (C->getAPIntValue() == (OpSizeInBits - 1)) 5406 return DAG.getNode(ISD::ABS, SDLoc(N), VT, N0.getOperand(0)); 5407 } 5408 5409 // fold (xor x, x) -> 0 5410 if (N0 == N1) 5411 return tryFoldToZero(SDLoc(N), TLI, VT, DAG, LegalOperations, LegalTypes); 5412 5413 // fold (xor (shl 1, x), -1) -> (rotl ~1, x) 5414 // Here is a concrete example of this equivalence: 5415 // i16 x == 14 5416 // i16 shl == 1 << 14 == 16384 == 0b0100000000000000 5417 // i16 xor == ~(1 << 14) == 49151 == 0b1011111111111111 5418 // 5419 // => 5420 // 5421 // i16 ~1 == 0b1111111111111110 5422 // i16 rol(~1, 14) == 0b1011111111111111 5423 // 5424 // Some additional tips to help conceptualize this transform: 5425 // - Try to see the operation as placing a single zero in a value of all ones. 5426 // - There exists no value for x which would allow the result to contain zero. 5427 // - Values of x larger than the bitwidth are undefined and do not require a 5428 // consistent result. 5429 // - Pushing the zero left requires shifting one bits in from the right. 5430 // A rotate left of ~1 is a nice way of achieving the desired result. 5431 if (TLI.isOperationLegalOrCustom(ISD::ROTL, VT) && N0.getOpcode() == ISD::SHL 5432 && isAllOnesConstant(N1) && isOneConstant(N0.getOperand(0))) { 5433 SDLoc DL(N); 5434 return DAG.getNode(ISD::ROTL, DL, VT, DAG.getConstant(~1, DL, VT), 5435 N0.getOperand(1)); 5436 } 5437 5438 // Simplify: xor (op x...), (op y...) -> (op (xor x, y)) 5439 if (N0.getOpcode() == N1.getOpcode()) 5440 if (SDValue Tmp = SimplifyBinOpWithSameOpcodeHands(N)) 5441 return Tmp; 5442 5443 // Simplify the expression using non-local knowledge. 5444 if (SimplifyDemandedBits(SDValue(N, 0))) 5445 return SDValue(N, 0); 5446 5447 return SDValue(); 5448 } 5449 5450 /// Handle transforms common to the three shifts, when the shift amount is a 5451 /// constant. 5452 SDValue DAGCombiner::visitShiftByConstant(SDNode *N, ConstantSDNode *Amt) { 5453 SDNode *LHS = N->getOperand(0).getNode(); 5454 if (!LHS->hasOneUse()) return SDValue(); 5455 5456 // We want to pull some binops through shifts, so that we have (and (shift)) 5457 // instead of (shift (and)), likewise for add, or, xor, etc. This sort of 5458 // thing happens with address calculations, so it's important to canonicalize 5459 // it. 5460 bool HighBitSet = false; // Can we transform this if the high bit is set? 5461 5462 switch (LHS->getOpcode()) { 5463 default: return SDValue(); 5464 case ISD::OR: 5465 case ISD::XOR: 5466 HighBitSet = false; // We can only transform sra if the high bit is clear. 5467 break; 5468 case ISD::AND: 5469 HighBitSet = true; // We can only transform sra if the high bit is set. 5470 break; 5471 case ISD::ADD: 5472 if (N->getOpcode() != ISD::SHL) 5473 return SDValue(); // only shl(add) not sr[al](add). 5474 HighBitSet = false; // We can only transform sra if the high bit is clear. 5475 break; 5476 } 5477 5478 // We require the RHS of the binop to be a constant and not opaque as well. 5479 ConstantSDNode *BinOpCst = getAsNonOpaqueConstant(LHS->getOperand(1)); 5480 if (!BinOpCst) return SDValue(); 5481 5482 // FIXME: disable this unless the input to the binop is a shift by a constant 5483 // or is copy/select.Enable this in other cases when figure out it's exactly profitable. 5484 SDNode *BinOpLHSVal = LHS->getOperand(0).getNode(); 5485 bool isShift = BinOpLHSVal->getOpcode() == ISD::SHL || 5486 BinOpLHSVal->getOpcode() == ISD::SRA || 5487 BinOpLHSVal->getOpcode() == ISD::SRL; 5488 bool isCopyOrSelect = BinOpLHSVal->getOpcode() == ISD::CopyFromReg || 5489 BinOpLHSVal->getOpcode() == ISD::SELECT; 5490 5491 if ((!isShift || !isa<ConstantSDNode>(BinOpLHSVal->getOperand(1))) && 5492 !isCopyOrSelect) 5493 return SDValue(); 5494 5495 if (isCopyOrSelect && N->hasOneUse()) 5496 return SDValue(); 5497 5498 EVT VT = N->getValueType(0); 5499 5500 // If this is a signed shift right, and the high bit is modified by the 5501 // logical operation, do not perform the transformation. The highBitSet 5502 // boolean indicates the value of the high bit of the constant which would 5503 // cause it to be modified for this operation. 5504 if (N->getOpcode() == ISD::SRA) { 5505 bool BinOpRHSSignSet = BinOpCst->getAPIntValue().isNegative(); 5506 if (BinOpRHSSignSet != HighBitSet) 5507 return SDValue(); 5508 } 5509 5510 if (!TLI.isDesirableToCommuteWithShift(LHS)) 5511 return SDValue(); 5512 5513 // Fold the constants, shifting the binop RHS by the shift amount. 5514 SDValue NewRHS = DAG.getNode(N->getOpcode(), SDLoc(LHS->getOperand(1)), 5515 N->getValueType(0), 5516 LHS->getOperand(1), N->getOperand(1)); 5517 assert(isa<ConstantSDNode>(NewRHS) && "Folding was not successful!"); 5518 5519 // Create the new shift. 5520 SDValue NewShift = DAG.getNode(N->getOpcode(), 5521 SDLoc(LHS->getOperand(0)), 5522 VT, LHS->getOperand(0), N->getOperand(1)); 5523 5524 // Create the new binop. 5525 return DAG.getNode(LHS->getOpcode(), SDLoc(N), VT, NewShift, NewRHS); 5526 } 5527 5528 SDValue DAGCombiner::distributeTruncateThroughAnd(SDNode *N) { 5529 assert(N->getOpcode() == ISD::TRUNCATE); 5530 assert(N->getOperand(0).getOpcode() == ISD::AND); 5531 5532 // (truncate:TruncVT (and N00, N01C)) -> (and (truncate:TruncVT N00), TruncC) 5533 if (N->hasOneUse() && N->getOperand(0).hasOneUse()) { 5534 SDValue N01 = N->getOperand(0).getOperand(1); 5535 if (isConstantOrConstantVector(N01, /* NoOpaques */ true)) { 5536 SDLoc DL(N); 5537 EVT TruncVT = N->getValueType(0); 5538 SDValue N00 = N->getOperand(0).getOperand(0); 5539 SDValue Trunc00 = DAG.getNode(ISD::TRUNCATE, DL, TruncVT, N00); 5540 SDValue Trunc01 = DAG.getNode(ISD::TRUNCATE, DL, TruncVT, N01); 5541 AddToWorklist(Trunc00.getNode()); 5542 AddToWorklist(Trunc01.getNode()); 5543 return DAG.getNode(ISD::AND, DL, TruncVT, Trunc00, Trunc01); 5544 } 5545 } 5546 5547 return SDValue(); 5548 } 5549 5550 SDValue DAGCombiner::visitRotate(SDNode *N) { 5551 SDLoc dl(N); 5552 SDValue N0 = N->getOperand(0); 5553 SDValue N1 = N->getOperand(1); 5554 EVT VT = N->getValueType(0); 5555 unsigned Bitsize = VT.getScalarSizeInBits(); 5556 5557 // fold (rot x, 0) -> x 5558 if (isNullConstantOrNullSplatConstant(N1)) 5559 return N0; 5560 5561 // fold (rot x, c) -> (rot x, c % BitSize) 5562 if (ConstantSDNode *Cst = isConstOrConstSplat(N1)) { 5563 if (Cst->getAPIntValue().uge(Bitsize)) { 5564 uint64_t RotAmt = Cst->getAPIntValue().urem(Bitsize); 5565 return DAG.getNode(N->getOpcode(), dl, VT, N0, 5566 DAG.getConstant(RotAmt, dl, N1.getValueType())); 5567 } 5568 } 5569 5570 // fold (rot* x, (trunc (and y, c))) -> (rot* x, (and (trunc y), (trunc c))). 5571 if (N1.getOpcode() == ISD::TRUNCATE && 5572 N1.getOperand(0).getOpcode() == ISD::AND) { 5573 if (SDValue NewOp1 = distributeTruncateThroughAnd(N1.getNode())) 5574 return DAG.getNode(N->getOpcode(), dl, VT, N0, NewOp1); 5575 } 5576 5577 unsigned NextOp = N0.getOpcode(); 5578 // fold (rot* (rot* x, c2), c1) -> (rot* x, c1 +- c2 % bitsize) 5579 if (NextOp == ISD::ROTL || NextOp == ISD::ROTR) { 5580 SDNode *C1 = DAG.isConstantIntBuildVectorOrConstantInt(N1); 5581 SDNode *C2 = DAG.isConstantIntBuildVectorOrConstantInt(N0.getOperand(1)); 5582 if (C1 && C2 && C1->getValueType(0) == C2->getValueType(0)) { 5583 EVT ShiftVT = C1->getValueType(0); 5584 bool SameSide = (N->getOpcode() == NextOp); 5585 unsigned CombineOp = SameSide ? ISD::ADD : ISD::SUB; 5586 if (SDValue CombinedShift = 5587 DAG.FoldConstantArithmetic(CombineOp, dl, ShiftVT, C1, C2)) { 5588 SDValue BitsizeC = DAG.getConstant(Bitsize, dl, ShiftVT); 5589 SDValue CombinedShiftNorm = DAG.FoldConstantArithmetic( 5590 ISD::SREM, dl, ShiftVT, CombinedShift.getNode(), 5591 BitsizeC.getNode()); 5592 return DAG.getNode(N->getOpcode(), dl, VT, N0->getOperand(0), 5593 CombinedShiftNorm); 5594 } 5595 } 5596 } 5597 return SDValue(); 5598 } 5599 5600 SDValue DAGCombiner::visitSHL(SDNode *N) { 5601 SDValue N0 = N->getOperand(0); 5602 SDValue N1 = N->getOperand(1); 5603 EVT VT = N0.getValueType(); 5604 unsigned OpSizeInBits = VT.getScalarSizeInBits(); 5605 5606 // fold vector ops 5607 if (VT.isVector()) { 5608 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 5609 return FoldedVOp; 5610 5611 BuildVectorSDNode *N1CV = dyn_cast<BuildVectorSDNode>(N1); 5612 // If setcc produces all-one true value then: 5613 // (shl (and (setcc) N01CV) N1CV) -> (and (setcc) N01CV<<N1CV) 5614 if (N1CV && N1CV->isConstant()) { 5615 if (N0.getOpcode() == ISD::AND) { 5616 SDValue N00 = N0->getOperand(0); 5617 SDValue N01 = N0->getOperand(1); 5618 BuildVectorSDNode *N01CV = dyn_cast<BuildVectorSDNode>(N01); 5619 5620 if (N01CV && N01CV->isConstant() && N00.getOpcode() == ISD::SETCC && 5621 TLI.getBooleanContents(N00.getOperand(0).getValueType()) == 5622 TargetLowering::ZeroOrNegativeOneBooleanContent) { 5623 if (SDValue C = DAG.FoldConstantArithmetic(ISD::SHL, SDLoc(N), VT, 5624 N01CV, N1CV)) 5625 return DAG.getNode(ISD::AND, SDLoc(N), VT, N00, C); 5626 } 5627 } 5628 } 5629 } 5630 5631 ConstantSDNode *N1C = isConstOrConstSplat(N1); 5632 5633 // fold (shl c1, c2) -> c1<<c2 5634 ConstantSDNode *N0C = getAsNonOpaqueConstant(N0); 5635 if (N0C && N1C && !N1C->isOpaque()) 5636 return DAG.FoldConstantArithmetic(ISD::SHL, SDLoc(N), VT, N0C, N1C); 5637 // fold (shl 0, x) -> 0 5638 if (isNullConstantOrNullSplatConstant(N0)) 5639 return N0; 5640 // fold (shl x, c >= size(x)) -> undef 5641 // NOTE: ALL vector elements must be too big to avoid partial UNDEFs. 5642 auto MatchShiftTooBig = [OpSizeInBits](ConstantSDNode *Val) { 5643 return Val->getAPIntValue().uge(OpSizeInBits); 5644 }; 5645 if (matchUnaryPredicate(N1, MatchShiftTooBig)) 5646 return DAG.getUNDEF(VT); 5647 // fold (shl x, 0) -> x 5648 if (N1C && N1C->isNullValue()) 5649 return N0; 5650 // fold (shl undef, x) -> 0 5651 if (N0.isUndef()) 5652 return DAG.getConstant(0, SDLoc(N), VT); 5653 5654 if (SDValue NewSel = foldBinOpIntoSelect(N)) 5655 return NewSel; 5656 5657 // if (shl x, c) is known to be zero, return 0 5658 if (DAG.MaskedValueIsZero(SDValue(N, 0), 5659 APInt::getAllOnesValue(OpSizeInBits))) 5660 return DAG.getConstant(0, SDLoc(N), VT); 5661 // fold (shl x, (trunc (and y, c))) -> (shl x, (and (trunc y), (trunc c))). 5662 if (N1.getOpcode() == ISD::TRUNCATE && 5663 N1.getOperand(0).getOpcode() == ISD::AND) { 5664 if (SDValue NewOp1 = distributeTruncateThroughAnd(N1.getNode())) 5665 return DAG.getNode(ISD::SHL, SDLoc(N), VT, N0, NewOp1); 5666 } 5667 5668 if (N1C && SimplifyDemandedBits(SDValue(N, 0))) 5669 return SDValue(N, 0); 5670 5671 // fold (shl (shl x, c1), c2) -> 0 or (shl x, (add c1, c2)) 5672 if (N0.getOpcode() == ISD::SHL) { 5673 auto MatchOutOfRange = [OpSizeInBits](ConstantSDNode *LHS, 5674 ConstantSDNode *RHS) { 5675 APInt c1 = LHS->getAPIntValue(); 5676 APInt c2 = RHS->getAPIntValue(); 5677 zeroExtendToMatch(c1, c2, 1 /* Overflow Bit */); 5678 return (c1 + c2).uge(OpSizeInBits); 5679 }; 5680 if (matchBinaryPredicate(N1, N0.getOperand(1), MatchOutOfRange)) 5681 return DAG.getConstant(0, SDLoc(N), VT); 5682 5683 auto MatchInRange = [OpSizeInBits](ConstantSDNode *LHS, 5684 ConstantSDNode *RHS) { 5685 APInt c1 = LHS->getAPIntValue(); 5686 APInt c2 = RHS->getAPIntValue(); 5687 zeroExtendToMatch(c1, c2, 1 /* Overflow Bit */); 5688 return (c1 + c2).ult(OpSizeInBits); 5689 }; 5690 if (matchBinaryPredicate(N1, N0.getOperand(1), MatchInRange)) { 5691 SDLoc DL(N); 5692 EVT ShiftVT = N1.getValueType(); 5693 SDValue Sum = DAG.getNode(ISD::ADD, DL, ShiftVT, N1, N0.getOperand(1)); 5694 return DAG.getNode(ISD::SHL, DL, VT, N0.getOperand(0), Sum); 5695 } 5696 } 5697 5698 // fold (shl (ext (shl x, c1)), c2) -> (ext (shl x, (add c1, c2))) 5699 // For this to be valid, the second form must not preserve any of the bits 5700 // that are shifted out by the inner shift in the first form. This means 5701 // the outer shift size must be >= the number of bits added by the ext. 5702 // As a corollary, we don't care what kind of ext it is. 5703 if (N1C && (N0.getOpcode() == ISD::ZERO_EXTEND || 5704 N0.getOpcode() == ISD::ANY_EXTEND || 5705 N0.getOpcode() == ISD::SIGN_EXTEND) && 5706 N0.getOperand(0).getOpcode() == ISD::SHL) { 5707 SDValue N0Op0 = N0.getOperand(0); 5708 if (ConstantSDNode *N0Op0C1 = isConstOrConstSplat(N0Op0.getOperand(1))) { 5709 APInt c1 = N0Op0C1->getAPIntValue(); 5710 APInt c2 = N1C->getAPIntValue(); 5711 zeroExtendToMatch(c1, c2, 1 /* Overflow Bit */); 5712 5713 EVT InnerShiftVT = N0Op0.getValueType(); 5714 uint64_t InnerShiftSize = InnerShiftVT.getScalarSizeInBits(); 5715 if (c2.uge(OpSizeInBits - InnerShiftSize)) { 5716 SDLoc DL(N0); 5717 APInt Sum = c1 + c2; 5718 if (Sum.uge(OpSizeInBits)) 5719 return DAG.getConstant(0, DL, VT); 5720 5721 return DAG.getNode( 5722 ISD::SHL, DL, VT, 5723 DAG.getNode(N0.getOpcode(), DL, VT, N0Op0->getOperand(0)), 5724 DAG.getConstant(Sum.getZExtValue(), DL, N1.getValueType())); 5725 } 5726 } 5727 } 5728 5729 // fold (shl (zext (srl x, C)), C) -> (zext (shl (srl x, C), C)) 5730 // Only fold this if the inner zext has no other uses to avoid increasing 5731 // the total number of instructions. 5732 if (N1C && N0.getOpcode() == ISD::ZERO_EXTEND && N0.hasOneUse() && 5733 N0.getOperand(0).getOpcode() == ISD::SRL) { 5734 SDValue N0Op0 = N0.getOperand(0); 5735 if (ConstantSDNode *N0Op0C1 = isConstOrConstSplat(N0Op0.getOperand(1))) { 5736 if (N0Op0C1->getAPIntValue().ult(VT.getScalarSizeInBits())) { 5737 uint64_t c1 = N0Op0C1->getZExtValue(); 5738 uint64_t c2 = N1C->getZExtValue(); 5739 if (c1 == c2) { 5740 SDValue NewOp0 = N0.getOperand(0); 5741 EVT CountVT = NewOp0.getOperand(1).getValueType(); 5742 SDLoc DL(N); 5743 SDValue NewSHL = DAG.getNode(ISD::SHL, DL, NewOp0.getValueType(), 5744 NewOp0, 5745 DAG.getConstant(c2, DL, CountVT)); 5746 AddToWorklist(NewSHL.getNode()); 5747 return DAG.getNode(ISD::ZERO_EXTEND, SDLoc(N0), VT, NewSHL); 5748 } 5749 } 5750 } 5751 } 5752 5753 // fold (shl (sr[la] exact X, C1), C2) -> (shl X, (C2-C1)) if C1 <= C2 5754 // fold (shl (sr[la] exact X, C1), C2) -> (sr[la] X, (C2-C1)) if C1 > C2 5755 if (N1C && (N0.getOpcode() == ISD::SRL || N0.getOpcode() == ISD::SRA) && 5756 N0->getFlags().hasExact()) { 5757 if (ConstantSDNode *N0C1 = isConstOrConstSplat(N0.getOperand(1))) { 5758 uint64_t C1 = N0C1->getZExtValue(); 5759 uint64_t C2 = N1C->getZExtValue(); 5760 SDLoc DL(N); 5761 if (C1 <= C2) 5762 return DAG.getNode(ISD::SHL, DL, VT, N0.getOperand(0), 5763 DAG.getConstant(C2 - C1, DL, N1.getValueType())); 5764 return DAG.getNode(N0.getOpcode(), DL, VT, N0.getOperand(0), 5765 DAG.getConstant(C1 - C2, DL, N1.getValueType())); 5766 } 5767 } 5768 5769 // fold (shl (srl x, c1), c2) -> (and (shl x, (sub c2, c1), MASK) or 5770 // (and (srl x, (sub c1, c2), MASK) 5771 // Only fold this if the inner shift has no other uses -- if it does, folding 5772 // this will increase the total number of instructions. 5773 if (N1C && N0.getOpcode() == ISD::SRL && N0.hasOneUse()) { 5774 if (ConstantSDNode *N0C1 = isConstOrConstSplat(N0.getOperand(1))) { 5775 uint64_t c1 = N0C1->getZExtValue(); 5776 if (c1 < OpSizeInBits) { 5777 uint64_t c2 = N1C->getZExtValue(); 5778 APInt Mask = APInt::getHighBitsSet(OpSizeInBits, OpSizeInBits - c1); 5779 SDValue Shift; 5780 if (c2 > c1) { 5781 Mask <<= c2 - c1; 5782 SDLoc DL(N); 5783 Shift = DAG.getNode(ISD::SHL, DL, VT, N0.getOperand(0), 5784 DAG.getConstant(c2 - c1, DL, N1.getValueType())); 5785 } else { 5786 Mask.lshrInPlace(c1 - c2); 5787 SDLoc DL(N); 5788 Shift = DAG.getNode(ISD::SRL, DL, VT, N0.getOperand(0), 5789 DAG.getConstant(c1 - c2, DL, N1.getValueType())); 5790 } 5791 SDLoc DL(N0); 5792 return DAG.getNode(ISD::AND, DL, VT, Shift, 5793 DAG.getConstant(Mask, DL, VT)); 5794 } 5795 } 5796 } 5797 5798 // fold (shl (sra x, c1), c1) -> (and x, (shl -1, c1)) 5799 if (N0.getOpcode() == ISD::SRA && N1 == N0.getOperand(1) && 5800 isConstantOrConstantVector(N1, /* No Opaques */ true)) { 5801 SDLoc DL(N); 5802 SDValue AllBits = DAG.getAllOnesConstant(DL, VT); 5803 SDValue HiBitsMask = DAG.getNode(ISD::SHL, DL, VT, AllBits, N1); 5804 return DAG.getNode(ISD::AND, DL, VT, N0.getOperand(0), HiBitsMask); 5805 } 5806 5807 // fold (shl (add x, c1), c2) -> (add (shl x, c2), c1 << c2) 5808 // fold (shl (or x, c1), c2) -> (or (shl x, c2), c1 << c2) 5809 // Variant of version done on multiply, except mul by a power of 2 is turned 5810 // into a shift. 5811 if ((N0.getOpcode() == ISD::ADD || N0.getOpcode() == ISD::OR) && 5812 N0.getNode()->hasOneUse() && 5813 isConstantOrConstantVector(N1, /* No Opaques */ true) && 5814 isConstantOrConstantVector(N0.getOperand(1), /* No Opaques */ true)) { 5815 SDValue Shl0 = DAG.getNode(ISD::SHL, SDLoc(N0), VT, N0.getOperand(0), N1); 5816 SDValue Shl1 = DAG.getNode(ISD::SHL, SDLoc(N1), VT, N0.getOperand(1), N1); 5817 AddToWorklist(Shl0.getNode()); 5818 AddToWorklist(Shl1.getNode()); 5819 return DAG.getNode(N0.getOpcode(), SDLoc(N), VT, Shl0, Shl1); 5820 } 5821 5822 // fold (shl (mul x, c1), c2) -> (mul x, c1 << c2) 5823 if (N0.getOpcode() == ISD::MUL && N0.getNode()->hasOneUse() && 5824 isConstantOrConstantVector(N1, /* No Opaques */ true) && 5825 isConstantOrConstantVector(N0.getOperand(1), /* No Opaques */ true)) { 5826 SDValue Shl = DAG.getNode(ISD::SHL, SDLoc(N1), VT, N0.getOperand(1), N1); 5827 if (isConstantOrConstantVector(Shl)) 5828 return DAG.getNode(ISD::MUL, SDLoc(N), VT, N0.getOperand(0), Shl); 5829 } 5830 5831 if (N1C && !N1C->isOpaque()) 5832 if (SDValue NewSHL = visitShiftByConstant(N, N1C)) 5833 return NewSHL; 5834 5835 return SDValue(); 5836 } 5837 5838 SDValue DAGCombiner::visitSRA(SDNode *N) { 5839 SDValue N0 = N->getOperand(0); 5840 SDValue N1 = N->getOperand(1); 5841 EVT VT = N0.getValueType(); 5842 unsigned OpSizeInBits = VT.getScalarSizeInBits(); 5843 5844 // Arithmetic shifting an all-sign-bit value is a no-op. 5845 // fold (sra 0, x) -> 0 5846 // fold (sra -1, x) -> -1 5847 if (DAG.ComputeNumSignBits(N0) == OpSizeInBits) 5848 return N0; 5849 5850 // fold vector ops 5851 if (VT.isVector()) 5852 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 5853 return FoldedVOp; 5854 5855 ConstantSDNode *N1C = isConstOrConstSplat(N1); 5856 5857 // fold (sra c1, c2) -> (sra c1, c2) 5858 ConstantSDNode *N0C = getAsNonOpaqueConstant(N0); 5859 if (N0C && N1C && !N1C->isOpaque()) 5860 return DAG.FoldConstantArithmetic(ISD::SRA, SDLoc(N), VT, N0C, N1C); 5861 // fold (sra x, c >= size(x)) -> undef 5862 // NOTE: ALL vector elements must be too big to avoid partial UNDEFs. 5863 auto MatchShiftTooBig = [OpSizeInBits](ConstantSDNode *Val) { 5864 return Val->getAPIntValue().uge(OpSizeInBits); 5865 }; 5866 if (matchUnaryPredicate(N1, MatchShiftTooBig)) 5867 return DAG.getUNDEF(VT); 5868 // fold (sra x, 0) -> x 5869 if (N1C && N1C->isNullValue()) 5870 return N0; 5871 5872 if (SDValue NewSel = foldBinOpIntoSelect(N)) 5873 return NewSel; 5874 5875 // fold (sra (shl x, c1), c1) -> sext_inreg for some c1 and target supports 5876 // sext_inreg. 5877 if (N1C && N0.getOpcode() == ISD::SHL && N1 == N0.getOperand(1)) { 5878 unsigned LowBits = OpSizeInBits - (unsigned)N1C->getZExtValue(); 5879 EVT ExtVT = EVT::getIntegerVT(*DAG.getContext(), LowBits); 5880 if (VT.isVector()) 5881 ExtVT = EVT::getVectorVT(*DAG.getContext(), 5882 ExtVT, VT.getVectorNumElements()); 5883 if ((!LegalOperations || 5884 TLI.isOperationLegal(ISD::SIGN_EXTEND_INREG, ExtVT))) 5885 return DAG.getNode(ISD::SIGN_EXTEND_INREG, SDLoc(N), VT, 5886 N0.getOperand(0), DAG.getValueType(ExtVT)); 5887 } 5888 5889 // fold (sra (sra x, c1), c2) -> (sra x, (add c1, c2)) 5890 if (N0.getOpcode() == ISD::SRA) { 5891 SDLoc DL(N); 5892 EVT ShiftVT = N1.getValueType(); 5893 5894 auto MatchOutOfRange = [OpSizeInBits](ConstantSDNode *LHS, 5895 ConstantSDNode *RHS) { 5896 APInt c1 = LHS->getAPIntValue(); 5897 APInt c2 = RHS->getAPIntValue(); 5898 zeroExtendToMatch(c1, c2, 1 /* Overflow Bit */); 5899 return (c1 + c2).uge(OpSizeInBits); 5900 }; 5901 if (matchBinaryPredicate(N1, N0.getOperand(1), MatchOutOfRange)) 5902 return DAG.getNode(ISD::SRA, DL, VT, N0.getOperand(0), 5903 DAG.getConstant(OpSizeInBits - 1, DL, ShiftVT)); 5904 5905 auto MatchInRange = [OpSizeInBits](ConstantSDNode *LHS, 5906 ConstantSDNode *RHS) { 5907 APInt c1 = LHS->getAPIntValue(); 5908 APInt c2 = RHS->getAPIntValue(); 5909 zeroExtendToMatch(c1, c2, 1 /* Overflow Bit */); 5910 return (c1 + c2).ult(OpSizeInBits); 5911 }; 5912 if (matchBinaryPredicate(N1, N0.getOperand(1), MatchInRange)) { 5913 SDValue Sum = DAG.getNode(ISD::ADD, DL, ShiftVT, N1, N0.getOperand(1)); 5914 return DAG.getNode(ISD::SRA, DL, VT, N0.getOperand(0), Sum); 5915 } 5916 } 5917 5918 // fold (sra (shl X, m), (sub result_size, n)) 5919 // -> (sign_extend (trunc (shl X, (sub (sub result_size, n), m)))) for 5920 // result_size - n != m. 5921 // If truncate is free for the target sext(shl) is likely to result in better 5922 // code. 5923 if (N0.getOpcode() == ISD::SHL && N1C) { 5924 // Get the two constanst of the shifts, CN0 = m, CN = n. 5925 const ConstantSDNode *N01C = isConstOrConstSplat(N0.getOperand(1)); 5926 if (N01C) { 5927 LLVMContext &Ctx = *DAG.getContext(); 5928 // Determine what the truncate's result bitsize and type would be. 5929 EVT TruncVT = EVT::getIntegerVT(Ctx, OpSizeInBits - N1C->getZExtValue()); 5930 5931 if (VT.isVector()) 5932 TruncVT = EVT::getVectorVT(Ctx, TruncVT, VT.getVectorNumElements()); 5933 5934 // Determine the residual right-shift amount. 5935 int ShiftAmt = N1C->getZExtValue() - N01C->getZExtValue(); 5936 5937 // If the shift is not a no-op (in which case this should be just a sign 5938 // extend already), the truncated to type is legal, sign_extend is legal 5939 // on that type, and the truncate to that type is both legal and free, 5940 // perform the transform. 5941 if ((ShiftAmt > 0) && 5942 TLI.isOperationLegalOrCustom(ISD::SIGN_EXTEND, TruncVT) && 5943 TLI.isOperationLegalOrCustom(ISD::TRUNCATE, VT) && 5944 TLI.isTruncateFree(VT, TruncVT)) { 5945 SDLoc DL(N); 5946 SDValue Amt = DAG.getConstant(ShiftAmt, DL, 5947 getShiftAmountTy(N0.getOperand(0).getValueType())); 5948 SDValue Shift = DAG.getNode(ISD::SRL, DL, VT, 5949 N0.getOperand(0), Amt); 5950 SDValue Trunc = DAG.getNode(ISD::TRUNCATE, DL, TruncVT, 5951 Shift); 5952 return DAG.getNode(ISD::SIGN_EXTEND, DL, 5953 N->getValueType(0), Trunc); 5954 } 5955 } 5956 } 5957 5958 // fold (sra x, (trunc (and y, c))) -> (sra x, (and (trunc y), (trunc c))). 5959 if (N1.getOpcode() == ISD::TRUNCATE && 5960 N1.getOperand(0).getOpcode() == ISD::AND) { 5961 if (SDValue NewOp1 = distributeTruncateThroughAnd(N1.getNode())) 5962 return DAG.getNode(ISD::SRA, SDLoc(N), VT, N0, NewOp1); 5963 } 5964 5965 // fold (sra (trunc (srl x, c1)), c2) -> (trunc (sra x, c1 + c2)) 5966 // if c1 is equal to the number of bits the trunc removes 5967 if (N0.getOpcode() == ISD::TRUNCATE && 5968 (N0.getOperand(0).getOpcode() == ISD::SRL || 5969 N0.getOperand(0).getOpcode() == ISD::SRA) && 5970 N0.getOperand(0).hasOneUse() && 5971 N0.getOperand(0).getOperand(1).hasOneUse() && 5972 N1C) { 5973 SDValue N0Op0 = N0.getOperand(0); 5974 if (ConstantSDNode *LargeShift = isConstOrConstSplat(N0Op0.getOperand(1))) { 5975 unsigned LargeShiftVal = LargeShift->getZExtValue(); 5976 EVT LargeVT = N0Op0.getValueType(); 5977 5978 if (LargeVT.getScalarSizeInBits() - OpSizeInBits == LargeShiftVal) { 5979 SDLoc DL(N); 5980 SDValue Amt = 5981 DAG.getConstant(LargeShiftVal + N1C->getZExtValue(), DL, 5982 getShiftAmountTy(N0Op0.getOperand(0).getValueType())); 5983 SDValue SRA = DAG.getNode(ISD::SRA, DL, LargeVT, 5984 N0Op0.getOperand(0), Amt); 5985 return DAG.getNode(ISD::TRUNCATE, DL, VT, SRA); 5986 } 5987 } 5988 } 5989 5990 // Simplify, based on bits shifted out of the LHS. 5991 if (N1C && SimplifyDemandedBits(SDValue(N, 0))) 5992 return SDValue(N, 0); 5993 5994 // If the sign bit is known to be zero, switch this to a SRL. 5995 if (DAG.SignBitIsZero(N0)) 5996 return DAG.getNode(ISD::SRL, SDLoc(N), VT, N0, N1); 5997 5998 if (N1C && !N1C->isOpaque()) 5999 if (SDValue NewSRA = visitShiftByConstant(N, N1C)) 6000 return NewSRA; 6001 6002 return SDValue(); 6003 } 6004 6005 SDValue DAGCombiner::visitSRL(SDNode *N) { 6006 SDValue N0 = N->getOperand(0); 6007 SDValue N1 = N->getOperand(1); 6008 EVT VT = N0.getValueType(); 6009 unsigned OpSizeInBits = VT.getScalarSizeInBits(); 6010 6011 // fold vector ops 6012 if (VT.isVector()) 6013 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 6014 return FoldedVOp; 6015 6016 ConstantSDNode *N1C = isConstOrConstSplat(N1); 6017 6018 // fold (srl c1, c2) -> c1 >>u c2 6019 ConstantSDNode *N0C = getAsNonOpaqueConstant(N0); 6020 if (N0C && N1C && !N1C->isOpaque()) 6021 return DAG.FoldConstantArithmetic(ISD::SRL, SDLoc(N), VT, N0C, N1C); 6022 // fold (srl 0, x) -> 0 6023 if (isNullConstantOrNullSplatConstant(N0)) 6024 return N0; 6025 // fold (srl x, c >= size(x)) -> undef 6026 // NOTE: ALL vector elements must be too big to avoid partial UNDEFs. 6027 auto MatchShiftTooBig = [OpSizeInBits](ConstantSDNode *Val) { 6028 return Val->getAPIntValue().uge(OpSizeInBits); 6029 }; 6030 if (matchUnaryPredicate(N1, MatchShiftTooBig)) 6031 return DAG.getUNDEF(VT); 6032 // fold (srl x, 0) -> x 6033 if (N1C && N1C->isNullValue()) 6034 return N0; 6035 6036 if (SDValue NewSel = foldBinOpIntoSelect(N)) 6037 return NewSel; 6038 6039 // if (srl x, c) is known to be zero, return 0 6040 if (N1C && DAG.MaskedValueIsZero(SDValue(N, 0), 6041 APInt::getAllOnesValue(OpSizeInBits))) 6042 return DAG.getConstant(0, SDLoc(N), VT); 6043 6044 // fold (srl (srl x, c1), c2) -> 0 or (srl x, (add c1, c2)) 6045 if (N0.getOpcode() == ISD::SRL) { 6046 auto MatchOutOfRange = [OpSizeInBits](ConstantSDNode *LHS, 6047 ConstantSDNode *RHS) { 6048 APInt c1 = LHS->getAPIntValue(); 6049 APInt c2 = RHS->getAPIntValue(); 6050 zeroExtendToMatch(c1, c2, 1 /* Overflow Bit */); 6051 return (c1 + c2).uge(OpSizeInBits); 6052 }; 6053 if (matchBinaryPredicate(N1, N0.getOperand(1), MatchOutOfRange)) 6054 return DAG.getConstant(0, SDLoc(N), VT); 6055 6056 auto MatchInRange = [OpSizeInBits](ConstantSDNode *LHS, 6057 ConstantSDNode *RHS) { 6058 APInt c1 = LHS->getAPIntValue(); 6059 APInt c2 = RHS->getAPIntValue(); 6060 zeroExtendToMatch(c1, c2, 1 /* Overflow Bit */); 6061 return (c1 + c2).ult(OpSizeInBits); 6062 }; 6063 if (matchBinaryPredicate(N1, N0.getOperand(1), MatchInRange)) { 6064 SDLoc DL(N); 6065 EVT ShiftVT = N1.getValueType(); 6066 SDValue Sum = DAG.getNode(ISD::ADD, DL, ShiftVT, N1, N0.getOperand(1)); 6067 return DAG.getNode(ISD::SRL, DL, VT, N0.getOperand(0), Sum); 6068 } 6069 } 6070 6071 // fold (srl (trunc (srl x, c1)), c2) -> 0 or (trunc (srl x, (add c1, c2))) 6072 if (N1C && N0.getOpcode() == ISD::TRUNCATE && 6073 N0.getOperand(0).getOpcode() == ISD::SRL) { 6074 if (auto N001C = isConstOrConstSplat(N0.getOperand(0).getOperand(1))) { 6075 uint64_t c1 = N001C->getZExtValue(); 6076 uint64_t c2 = N1C->getZExtValue(); 6077 EVT InnerShiftVT = N0.getOperand(0).getValueType(); 6078 EVT ShiftCountVT = N0.getOperand(0).getOperand(1).getValueType(); 6079 uint64_t InnerShiftSize = InnerShiftVT.getScalarSizeInBits(); 6080 // This is only valid if the OpSizeInBits + c1 = size of inner shift. 6081 if (c1 + OpSizeInBits == InnerShiftSize) { 6082 SDLoc DL(N0); 6083 if (c1 + c2 >= InnerShiftSize) 6084 return DAG.getConstant(0, DL, VT); 6085 return DAG.getNode(ISD::TRUNCATE, DL, VT, 6086 DAG.getNode(ISD::SRL, DL, InnerShiftVT, 6087 N0.getOperand(0).getOperand(0), 6088 DAG.getConstant(c1 + c2, DL, 6089 ShiftCountVT))); 6090 } 6091 } 6092 } 6093 6094 // fold (srl (shl x, c), c) -> (and x, cst2) 6095 if (N0.getOpcode() == ISD::SHL && N0.getOperand(1) == N1 && 6096 isConstantOrConstantVector(N1, /* NoOpaques */ true)) { 6097 SDLoc DL(N); 6098 SDValue Mask = 6099 DAG.getNode(ISD::SRL, DL, VT, DAG.getAllOnesConstant(DL, VT), N1); 6100 AddToWorklist(Mask.getNode()); 6101 return DAG.getNode(ISD::AND, DL, VT, N0.getOperand(0), Mask); 6102 } 6103 6104 // fold (srl (anyextend x), c) -> (and (anyextend (srl x, c)), mask) 6105 if (N1C && N0.getOpcode() == ISD::ANY_EXTEND) { 6106 // Shifting in all undef bits? 6107 EVT SmallVT = N0.getOperand(0).getValueType(); 6108 unsigned BitSize = SmallVT.getScalarSizeInBits(); 6109 if (N1C->getZExtValue() >= BitSize) 6110 return DAG.getUNDEF(VT); 6111 6112 if (!LegalTypes || TLI.isTypeDesirableForOp(ISD::SRL, SmallVT)) { 6113 uint64_t ShiftAmt = N1C->getZExtValue(); 6114 SDLoc DL0(N0); 6115 SDValue SmallShift = DAG.getNode(ISD::SRL, DL0, SmallVT, 6116 N0.getOperand(0), 6117 DAG.getConstant(ShiftAmt, DL0, 6118 getShiftAmountTy(SmallVT))); 6119 AddToWorklist(SmallShift.getNode()); 6120 APInt Mask = APInt::getLowBitsSet(OpSizeInBits, OpSizeInBits - ShiftAmt); 6121 SDLoc DL(N); 6122 return DAG.getNode(ISD::AND, DL, VT, 6123 DAG.getNode(ISD::ANY_EXTEND, DL, VT, SmallShift), 6124 DAG.getConstant(Mask, DL, VT)); 6125 } 6126 } 6127 6128 // fold (srl (sra X, Y), 31) -> (srl X, 31). This srl only looks at the sign 6129 // bit, which is unmodified by sra. 6130 if (N1C && N1C->getZExtValue() + 1 == OpSizeInBits) { 6131 if (N0.getOpcode() == ISD::SRA) 6132 return DAG.getNode(ISD::SRL, SDLoc(N), VT, N0.getOperand(0), N1); 6133 } 6134 6135 // fold (srl (ctlz x), "5") -> x iff x has one bit set (the low bit). 6136 if (N1C && N0.getOpcode() == ISD::CTLZ && 6137 N1C->getAPIntValue() == Log2_32(OpSizeInBits)) { 6138 KnownBits Known; 6139 DAG.computeKnownBits(N0.getOperand(0), Known); 6140 6141 // If any of the input bits are KnownOne, then the input couldn't be all 6142 // zeros, thus the result of the srl will always be zero. 6143 if (Known.One.getBoolValue()) return DAG.getConstant(0, SDLoc(N0), VT); 6144 6145 // If all of the bits input the to ctlz node are known to be zero, then 6146 // the result of the ctlz is "32" and the result of the shift is one. 6147 APInt UnknownBits = ~Known.Zero; 6148 if (UnknownBits == 0) return DAG.getConstant(1, SDLoc(N0), VT); 6149 6150 // Otherwise, check to see if there is exactly one bit input to the ctlz. 6151 if (UnknownBits.isPowerOf2()) { 6152 // Okay, we know that only that the single bit specified by UnknownBits 6153 // could be set on input to the CTLZ node. If this bit is set, the SRL 6154 // will return 0, if it is clear, it returns 1. Change the CTLZ/SRL pair 6155 // to an SRL/XOR pair, which is likely to simplify more. 6156 unsigned ShAmt = UnknownBits.countTrailingZeros(); 6157 SDValue Op = N0.getOperand(0); 6158 6159 if (ShAmt) { 6160 SDLoc DL(N0); 6161 Op = DAG.getNode(ISD::SRL, DL, VT, Op, 6162 DAG.getConstant(ShAmt, DL, 6163 getShiftAmountTy(Op.getValueType()))); 6164 AddToWorklist(Op.getNode()); 6165 } 6166 6167 SDLoc DL(N); 6168 return DAG.getNode(ISD::XOR, DL, VT, 6169 Op, DAG.getConstant(1, DL, VT)); 6170 } 6171 } 6172 6173 // fold (srl x, (trunc (and y, c))) -> (srl x, (and (trunc y), (trunc c))). 6174 if (N1.getOpcode() == ISD::TRUNCATE && 6175 N1.getOperand(0).getOpcode() == ISD::AND) { 6176 if (SDValue NewOp1 = distributeTruncateThroughAnd(N1.getNode())) 6177 return DAG.getNode(ISD::SRL, SDLoc(N), VT, N0, NewOp1); 6178 } 6179 6180 // fold operands of srl based on knowledge that the low bits are not 6181 // demanded. 6182 if (N1C && SimplifyDemandedBits(SDValue(N, 0))) 6183 return SDValue(N, 0); 6184 6185 if (N1C && !N1C->isOpaque()) 6186 if (SDValue NewSRL = visitShiftByConstant(N, N1C)) 6187 return NewSRL; 6188 6189 // Attempt to convert a srl of a load into a narrower zero-extending load. 6190 if (SDValue NarrowLoad = ReduceLoadWidth(N)) 6191 return NarrowLoad; 6192 6193 // Here is a common situation. We want to optimize: 6194 // 6195 // %a = ... 6196 // %b = and i32 %a, 2 6197 // %c = srl i32 %b, 1 6198 // brcond i32 %c ... 6199 // 6200 // into 6201 // 6202 // %a = ... 6203 // %b = and %a, 2 6204 // %c = setcc eq %b, 0 6205 // brcond %c ... 6206 // 6207 // However when after the source operand of SRL is optimized into AND, the SRL 6208 // itself may not be optimized further. Look for it and add the BRCOND into 6209 // the worklist. 6210 if (N->hasOneUse()) { 6211 SDNode *Use = *N->use_begin(); 6212 if (Use->getOpcode() == ISD::BRCOND) 6213 AddToWorklist(Use); 6214 else if (Use->getOpcode() == ISD::TRUNCATE && Use->hasOneUse()) { 6215 // Also look pass the truncate. 6216 Use = *Use->use_begin(); 6217 if (Use->getOpcode() == ISD::BRCOND) 6218 AddToWorklist(Use); 6219 } 6220 } 6221 6222 return SDValue(); 6223 } 6224 6225 SDValue DAGCombiner::visitABS(SDNode *N) { 6226 SDValue N0 = N->getOperand(0); 6227 EVT VT = N->getValueType(0); 6228 6229 // fold (abs c1) -> c2 6230 if (DAG.isConstantIntBuildVectorOrConstantInt(N0)) 6231 return DAG.getNode(ISD::ABS, SDLoc(N), VT, N0); 6232 // fold (abs (abs x)) -> (abs x) 6233 if (N0.getOpcode() == ISD::ABS) 6234 return N0; 6235 // fold (abs x) -> x iff not-negative 6236 if (DAG.SignBitIsZero(N0)) 6237 return N0; 6238 return SDValue(); 6239 } 6240 6241 SDValue DAGCombiner::visitBSWAP(SDNode *N) { 6242 SDValue N0 = N->getOperand(0); 6243 EVT VT = N->getValueType(0); 6244 6245 // fold (bswap c1) -> c2 6246 if (DAG.isConstantIntBuildVectorOrConstantInt(N0)) 6247 return DAG.getNode(ISD::BSWAP, SDLoc(N), VT, N0); 6248 // fold (bswap (bswap x)) -> x 6249 if (N0.getOpcode() == ISD::BSWAP) 6250 return N0->getOperand(0); 6251 return SDValue(); 6252 } 6253 6254 SDValue DAGCombiner::visitBITREVERSE(SDNode *N) { 6255 SDValue N0 = N->getOperand(0); 6256 EVT VT = N->getValueType(0); 6257 6258 // fold (bitreverse c1) -> c2 6259 if (DAG.isConstantIntBuildVectorOrConstantInt(N0)) 6260 return DAG.getNode(ISD::BITREVERSE, SDLoc(N), VT, N0); 6261 // fold (bitreverse (bitreverse x)) -> x 6262 if (N0.getOpcode() == ISD::BITREVERSE) 6263 return N0.getOperand(0); 6264 return SDValue(); 6265 } 6266 6267 SDValue DAGCombiner::visitCTLZ(SDNode *N) { 6268 SDValue N0 = N->getOperand(0); 6269 EVT VT = N->getValueType(0); 6270 6271 // fold (ctlz c1) -> c2 6272 if (DAG.isConstantIntBuildVectorOrConstantInt(N0)) 6273 return DAG.getNode(ISD::CTLZ, SDLoc(N), VT, N0); 6274 return SDValue(); 6275 } 6276 6277 SDValue DAGCombiner::visitCTLZ_ZERO_UNDEF(SDNode *N) { 6278 SDValue N0 = N->getOperand(0); 6279 EVT VT = N->getValueType(0); 6280 6281 // fold (ctlz_zero_undef c1) -> c2 6282 if (DAG.isConstantIntBuildVectorOrConstantInt(N0)) 6283 return DAG.getNode(ISD::CTLZ_ZERO_UNDEF, SDLoc(N), VT, N0); 6284 return SDValue(); 6285 } 6286 6287 SDValue DAGCombiner::visitCTTZ(SDNode *N) { 6288 SDValue N0 = N->getOperand(0); 6289 EVT VT = N->getValueType(0); 6290 6291 // fold (cttz c1) -> c2 6292 if (DAG.isConstantIntBuildVectorOrConstantInt(N0)) 6293 return DAG.getNode(ISD::CTTZ, SDLoc(N), VT, N0); 6294 return SDValue(); 6295 } 6296 6297 SDValue DAGCombiner::visitCTTZ_ZERO_UNDEF(SDNode *N) { 6298 SDValue N0 = N->getOperand(0); 6299 EVT VT = N->getValueType(0); 6300 6301 // fold (cttz_zero_undef c1) -> c2 6302 if (DAG.isConstantIntBuildVectorOrConstantInt(N0)) 6303 return DAG.getNode(ISD::CTTZ_ZERO_UNDEF, SDLoc(N), VT, N0); 6304 return SDValue(); 6305 } 6306 6307 SDValue DAGCombiner::visitCTPOP(SDNode *N) { 6308 SDValue N0 = N->getOperand(0); 6309 EVT VT = N->getValueType(0); 6310 6311 // fold (ctpop c1) -> c2 6312 if (DAG.isConstantIntBuildVectorOrConstantInt(N0)) 6313 return DAG.getNode(ISD::CTPOP, SDLoc(N), VT, N0); 6314 return SDValue(); 6315 } 6316 6317 /// \brief Generate Min/Max node 6318 static SDValue combineMinNumMaxNum(const SDLoc &DL, EVT VT, SDValue LHS, 6319 SDValue RHS, SDValue True, SDValue False, 6320 ISD::CondCode CC, const TargetLowering &TLI, 6321 SelectionDAG &DAG) { 6322 if (!(LHS == True && RHS == False) && !(LHS == False && RHS == True)) 6323 return SDValue(); 6324 6325 switch (CC) { 6326 case ISD::SETOLT: 6327 case ISD::SETOLE: 6328 case ISD::SETLT: 6329 case ISD::SETLE: 6330 case ISD::SETULT: 6331 case ISD::SETULE: { 6332 unsigned Opcode = (LHS == True) ? ISD::FMINNUM : ISD::FMAXNUM; 6333 if (TLI.isOperationLegal(Opcode, VT)) 6334 return DAG.getNode(Opcode, DL, VT, LHS, RHS); 6335 return SDValue(); 6336 } 6337 case ISD::SETOGT: 6338 case ISD::SETOGE: 6339 case ISD::SETGT: 6340 case ISD::SETGE: 6341 case ISD::SETUGT: 6342 case ISD::SETUGE: { 6343 unsigned Opcode = (LHS == True) ? ISD::FMAXNUM : ISD::FMINNUM; 6344 if (TLI.isOperationLegal(Opcode, VT)) 6345 return DAG.getNode(Opcode, DL, VT, LHS, RHS); 6346 return SDValue(); 6347 } 6348 default: 6349 return SDValue(); 6350 } 6351 } 6352 6353 SDValue DAGCombiner::foldSelectOfConstants(SDNode *N) { 6354 SDValue Cond = N->getOperand(0); 6355 SDValue N1 = N->getOperand(1); 6356 SDValue N2 = N->getOperand(2); 6357 EVT VT = N->getValueType(0); 6358 EVT CondVT = Cond.getValueType(); 6359 SDLoc DL(N); 6360 6361 if (!VT.isInteger()) 6362 return SDValue(); 6363 6364 auto *C1 = dyn_cast<ConstantSDNode>(N1); 6365 auto *C2 = dyn_cast<ConstantSDNode>(N2); 6366 if (!C1 || !C2) 6367 return SDValue(); 6368 6369 // Only do this before legalization to avoid conflicting with target-specific 6370 // transforms in the other direction (create a select from a zext/sext). There 6371 // is also a target-independent combine here in DAGCombiner in the other 6372 // direction for (select Cond, -1, 0) when the condition is not i1. 6373 if (CondVT == MVT::i1 && !LegalOperations) { 6374 if (C1->isNullValue() && C2->isOne()) { 6375 // select Cond, 0, 1 --> zext (!Cond) 6376 SDValue NotCond = DAG.getNOT(DL, Cond, MVT::i1); 6377 if (VT != MVT::i1) 6378 NotCond = DAG.getNode(ISD::ZERO_EXTEND, DL, VT, NotCond); 6379 return NotCond; 6380 } 6381 if (C1->isNullValue() && C2->isAllOnesValue()) { 6382 // select Cond, 0, -1 --> sext (!Cond) 6383 SDValue NotCond = DAG.getNOT(DL, Cond, MVT::i1); 6384 if (VT != MVT::i1) 6385 NotCond = DAG.getNode(ISD::SIGN_EXTEND, DL, VT, NotCond); 6386 return NotCond; 6387 } 6388 if (C1->isOne() && C2->isNullValue()) { 6389 // select Cond, 1, 0 --> zext (Cond) 6390 if (VT != MVT::i1) 6391 Cond = DAG.getNode(ISD::ZERO_EXTEND, DL, VT, Cond); 6392 return Cond; 6393 } 6394 if (C1->isAllOnesValue() && C2->isNullValue()) { 6395 // select Cond, -1, 0 --> sext (Cond) 6396 if (VT != MVT::i1) 6397 Cond = DAG.getNode(ISD::SIGN_EXTEND, DL, VT, Cond); 6398 return Cond; 6399 } 6400 6401 // For any constants that differ by 1, we can transform the select into an 6402 // extend and add. Use a target hook because some targets may prefer to 6403 // transform in the other direction. 6404 if (TLI.convertSelectOfConstantsToMath(VT)) { 6405 if (C1->getAPIntValue() - 1 == C2->getAPIntValue()) { 6406 // select Cond, C1, C1-1 --> add (zext Cond), C1-1 6407 if (VT != MVT::i1) 6408 Cond = DAG.getNode(ISD::ZERO_EXTEND, DL, VT, Cond); 6409 return DAG.getNode(ISD::ADD, DL, VT, Cond, N2); 6410 } 6411 if (C1->getAPIntValue() + 1 == C2->getAPIntValue()) { 6412 // select Cond, C1, C1+1 --> add (sext Cond), C1+1 6413 if (VT != MVT::i1) 6414 Cond = DAG.getNode(ISD::SIGN_EXTEND, DL, VT, Cond); 6415 return DAG.getNode(ISD::ADD, DL, VT, Cond, N2); 6416 } 6417 } 6418 6419 return SDValue(); 6420 } 6421 6422 // fold (select Cond, 0, 1) -> (xor Cond, 1) 6423 // We can't do this reliably if integer based booleans have different contents 6424 // to floating point based booleans. This is because we can't tell whether we 6425 // have an integer-based boolean or a floating-point-based boolean unless we 6426 // can find the SETCC that produced it and inspect its operands. This is 6427 // fairly easy if C is the SETCC node, but it can potentially be 6428 // undiscoverable (or not reasonably discoverable). For example, it could be 6429 // in another basic block or it could require searching a complicated 6430 // expression. 6431 if (CondVT.isInteger() && 6432 TLI.getBooleanContents(false, true) == 6433 TargetLowering::ZeroOrOneBooleanContent && 6434 TLI.getBooleanContents(false, false) == 6435 TargetLowering::ZeroOrOneBooleanContent && 6436 C1->isNullValue() && C2->isOne()) { 6437 SDValue NotCond = 6438 DAG.getNode(ISD::XOR, DL, CondVT, Cond, DAG.getConstant(1, DL, CondVT)); 6439 if (VT.bitsEq(CondVT)) 6440 return NotCond; 6441 return DAG.getZExtOrTrunc(NotCond, DL, VT); 6442 } 6443 6444 return SDValue(); 6445 } 6446 6447 SDValue DAGCombiner::visitSELECT(SDNode *N) { 6448 SDValue N0 = N->getOperand(0); 6449 SDValue N1 = N->getOperand(1); 6450 SDValue N2 = N->getOperand(2); 6451 EVT VT = N->getValueType(0); 6452 EVT VT0 = N0.getValueType(); 6453 SDLoc DL(N); 6454 6455 // fold (select C, X, X) -> X 6456 if (N1 == N2) 6457 return N1; 6458 6459 if (const ConstantSDNode *N0C = dyn_cast<const ConstantSDNode>(N0)) { 6460 // fold (select true, X, Y) -> X 6461 // fold (select false, X, Y) -> Y 6462 return !N0C->isNullValue() ? N1 : N2; 6463 } 6464 6465 // fold (select X, X, Y) -> (or X, Y) 6466 // fold (select X, 1, Y) -> (or C, Y) 6467 if (VT == VT0 && VT == MVT::i1 && (N0 == N1 || isOneConstant(N1))) 6468 return DAG.getNode(ISD::OR, DL, VT, N0, N2); 6469 6470 if (SDValue V = foldSelectOfConstants(N)) 6471 return V; 6472 6473 // fold (select C, 0, X) -> (and (not C), X) 6474 if (VT == VT0 && VT == MVT::i1 && isNullConstant(N1)) { 6475 SDValue NOTNode = DAG.getNOT(SDLoc(N0), N0, VT); 6476 AddToWorklist(NOTNode.getNode()); 6477 return DAG.getNode(ISD::AND, DL, VT, NOTNode, N2); 6478 } 6479 // fold (select C, X, 1) -> (or (not C), X) 6480 if (VT == VT0 && VT == MVT::i1 && isOneConstant(N2)) { 6481 SDValue NOTNode = DAG.getNOT(SDLoc(N0), N0, VT); 6482 AddToWorklist(NOTNode.getNode()); 6483 return DAG.getNode(ISD::OR, DL, VT, NOTNode, N1); 6484 } 6485 // fold (select X, Y, X) -> (and X, Y) 6486 // fold (select X, Y, 0) -> (and X, Y) 6487 if (VT == VT0 && VT == MVT::i1 && (N0 == N2 || isNullConstant(N2))) 6488 return DAG.getNode(ISD::AND, DL, VT, N0, N1); 6489 6490 // If we can fold this based on the true/false value, do so. 6491 if (SimplifySelectOps(N, N1, N2)) 6492 return SDValue(N, 0); // Don't revisit N. 6493 6494 if (VT0 == MVT::i1) { 6495 // The code in this block deals with the following 2 equivalences: 6496 // select(C0|C1, x, y) <=> select(C0, x, select(C1, x, y)) 6497 // select(C0&C1, x, y) <=> select(C0, select(C1, x, y), y) 6498 // The target can specify its preferred form with the 6499 // shouldNormalizeToSelectSequence() callback. However we always transform 6500 // to the right anyway if we find the inner select exists in the DAG anyway 6501 // and we always transform to the left side if we know that we can further 6502 // optimize the combination of the conditions. 6503 bool normalizeToSequence = 6504 TLI.shouldNormalizeToSelectSequence(*DAG.getContext(), VT); 6505 // select (and Cond0, Cond1), X, Y 6506 // -> select Cond0, (select Cond1, X, Y), Y 6507 if (N0->getOpcode() == ISD::AND && N0->hasOneUse()) { 6508 SDValue Cond0 = N0->getOperand(0); 6509 SDValue Cond1 = N0->getOperand(1); 6510 SDValue InnerSelect = 6511 DAG.getNode(ISD::SELECT, DL, N1.getValueType(), Cond1, N1, N2); 6512 if (normalizeToSequence || !InnerSelect.use_empty()) 6513 return DAG.getNode(ISD::SELECT, DL, N1.getValueType(), Cond0, 6514 InnerSelect, N2); 6515 } 6516 // select (or Cond0, Cond1), X, Y -> select Cond0, X, (select Cond1, X, Y) 6517 if (N0->getOpcode() == ISD::OR && N0->hasOneUse()) { 6518 SDValue Cond0 = N0->getOperand(0); 6519 SDValue Cond1 = N0->getOperand(1); 6520 SDValue InnerSelect = 6521 DAG.getNode(ISD::SELECT, DL, N1.getValueType(), Cond1, N1, N2); 6522 if (normalizeToSequence || !InnerSelect.use_empty()) 6523 return DAG.getNode(ISD::SELECT, DL, N1.getValueType(), Cond0, N1, 6524 InnerSelect); 6525 } 6526 6527 // select Cond0, (select Cond1, X, Y), Y -> select (and Cond0, Cond1), X, Y 6528 if (N1->getOpcode() == ISD::SELECT && N1->hasOneUse()) { 6529 SDValue N1_0 = N1->getOperand(0); 6530 SDValue N1_1 = N1->getOperand(1); 6531 SDValue N1_2 = N1->getOperand(2); 6532 if (N1_2 == N2 && N0.getValueType() == N1_0.getValueType()) { 6533 // Create the actual and node if we can generate good code for it. 6534 if (!normalizeToSequence) { 6535 SDValue And = DAG.getNode(ISD::AND, DL, N0.getValueType(), N0, N1_0); 6536 return DAG.getNode(ISD::SELECT, DL, N1.getValueType(), And, N1_1, N2); 6537 } 6538 // Otherwise see if we can optimize the "and" to a better pattern. 6539 if (SDValue Combined = visitANDLike(N0, N1_0, N)) 6540 return DAG.getNode(ISD::SELECT, DL, N1.getValueType(), Combined, N1_1, 6541 N2); 6542 } 6543 } 6544 // select Cond0, X, (select Cond1, X, Y) -> select (or Cond0, Cond1), X, Y 6545 if (N2->getOpcode() == ISD::SELECT && N2->hasOneUse()) { 6546 SDValue N2_0 = N2->getOperand(0); 6547 SDValue N2_1 = N2->getOperand(1); 6548 SDValue N2_2 = N2->getOperand(2); 6549 if (N2_1 == N1 && N0.getValueType() == N2_0.getValueType()) { 6550 // Create the actual or node if we can generate good code for it. 6551 if (!normalizeToSequence) { 6552 SDValue Or = DAG.getNode(ISD::OR, DL, N0.getValueType(), N0, N2_0); 6553 return DAG.getNode(ISD::SELECT, DL, N1.getValueType(), Or, N1, N2_2); 6554 } 6555 // Otherwise see if we can optimize to a better pattern. 6556 if (SDValue Combined = visitORLike(N0, N2_0, N)) 6557 return DAG.getNode(ISD::SELECT, DL, N1.getValueType(), Combined, N1, 6558 N2_2); 6559 } 6560 } 6561 } 6562 6563 // select (xor Cond, 1), X, Y -> select Cond, Y, X 6564 if (VT0 == MVT::i1) { 6565 if (N0->getOpcode() == ISD::XOR) { 6566 if (auto *C = dyn_cast<ConstantSDNode>(N0->getOperand(1))) { 6567 SDValue Cond0 = N0->getOperand(0); 6568 if (C->isOne()) 6569 return DAG.getNode(ISD::SELECT, DL, N1.getValueType(), Cond0, N2, N1); 6570 } 6571 } 6572 } 6573 6574 // fold selects based on a setcc into other things, such as min/max/abs 6575 if (N0.getOpcode() == ISD::SETCC) { 6576 // select x, y (fcmp lt x, y) -> fminnum x, y 6577 // select x, y (fcmp gt x, y) -> fmaxnum x, y 6578 // 6579 // This is OK if we don't care about what happens if either operand is a 6580 // NaN. 6581 // 6582 6583 // FIXME: Instead of testing for UnsafeFPMath, this should be checking for 6584 // no signed zeros as well as no nans. 6585 const TargetOptions &Options = DAG.getTarget().Options; 6586 if (Options.UnsafeFPMath && VT.isFloatingPoint() && N0.hasOneUse() && 6587 DAG.isKnownNeverNaN(N1) && DAG.isKnownNeverNaN(N2)) { 6588 ISD::CondCode CC = cast<CondCodeSDNode>(N0.getOperand(2))->get(); 6589 6590 if (SDValue FMinMax = combineMinNumMaxNum( 6591 DL, VT, N0.getOperand(0), N0.getOperand(1), N1, N2, CC, TLI, DAG)) 6592 return FMinMax; 6593 } 6594 6595 if ((!LegalOperations && 6596 TLI.isOperationLegalOrCustom(ISD::SELECT_CC, VT)) || 6597 TLI.isOperationLegal(ISD::SELECT_CC, VT)) 6598 return DAG.getNode(ISD::SELECT_CC, DL, VT, N0.getOperand(0), 6599 N0.getOperand(1), N1, N2, N0.getOperand(2)); 6600 return SimplifySelect(DL, N0, N1, N2); 6601 } 6602 6603 return SDValue(); 6604 } 6605 6606 static 6607 std::pair<SDValue, SDValue> SplitVSETCC(const SDNode *N, SelectionDAG &DAG) { 6608 SDLoc DL(N); 6609 EVT LoVT, HiVT; 6610 std::tie(LoVT, HiVT) = DAG.GetSplitDestVTs(N->getValueType(0)); 6611 6612 // Split the inputs. 6613 SDValue Lo, Hi, LL, LH, RL, RH; 6614 std::tie(LL, LH) = DAG.SplitVectorOperand(N, 0); 6615 std::tie(RL, RH) = DAG.SplitVectorOperand(N, 1); 6616 6617 Lo = DAG.getNode(N->getOpcode(), DL, LoVT, LL, RL, N->getOperand(2)); 6618 Hi = DAG.getNode(N->getOpcode(), DL, HiVT, LH, RH, N->getOperand(2)); 6619 6620 return std::make_pair(Lo, Hi); 6621 } 6622 6623 // This function assumes all the vselect's arguments are CONCAT_VECTOR 6624 // nodes and that the condition is a BV of ConstantSDNodes (or undefs). 6625 static SDValue ConvertSelectToConcatVector(SDNode *N, SelectionDAG &DAG) { 6626 SDLoc DL(N); 6627 SDValue Cond = N->getOperand(0); 6628 SDValue LHS = N->getOperand(1); 6629 SDValue RHS = N->getOperand(2); 6630 EVT VT = N->getValueType(0); 6631 int NumElems = VT.getVectorNumElements(); 6632 assert(LHS.getOpcode() == ISD::CONCAT_VECTORS && 6633 RHS.getOpcode() == ISD::CONCAT_VECTORS && 6634 Cond.getOpcode() == ISD::BUILD_VECTOR); 6635 6636 // CONCAT_VECTOR can take an arbitrary number of arguments. We only care about 6637 // binary ones here. 6638 if (LHS->getNumOperands() != 2 || RHS->getNumOperands() != 2) 6639 return SDValue(); 6640 6641 // We're sure we have an even number of elements due to the 6642 // concat_vectors we have as arguments to vselect. 6643 // Skip BV elements until we find one that's not an UNDEF 6644 // After we find an UNDEF element, keep looping until we get to half the 6645 // length of the BV and see if all the non-undef nodes are the same. 6646 ConstantSDNode *BottomHalf = nullptr; 6647 for (int i = 0; i < NumElems / 2; ++i) { 6648 if (Cond->getOperand(i)->isUndef()) 6649 continue; 6650 6651 if (BottomHalf == nullptr) 6652 BottomHalf = cast<ConstantSDNode>(Cond.getOperand(i)); 6653 else if (Cond->getOperand(i).getNode() != BottomHalf) 6654 return SDValue(); 6655 } 6656 6657 // Do the same for the second half of the BuildVector 6658 ConstantSDNode *TopHalf = nullptr; 6659 for (int i = NumElems / 2; i < NumElems; ++i) { 6660 if (Cond->getOperand(i)->isUndef()) 6661 continue; 6662 6663 if (TopHalf == nullptr) 6664 TopHalf = cast<ConstantSDNode>(Cond.getOperand(i)); 6665 else if (Cond->getOperand(i).getNode() != TopHalf) 6666 return SDValue(); 6667 } 6668 6669 assert(TopHalf && BottomHalf && 6670 "One half of the selector was all UNDEFs and the other was all the " 6671 "same value. This should have been addressed before this function."); 6672 return DAG.getNode( 6673 ISD::CONCAT_VECTORS, DL, VT, 6674 BottomHalf->isNullValue() ? RHS->getOperand(0) : LHS->getOperand(0), 6675 TopHalf->isNullValue() ? RHS->getOperand(1) : LHS->getOperand(1)); 6676 } 6677 6678 SDValue DAGCombiner::visitMSCATTER(SDNode *N) { 6679 if (Level >= AfterLegalizeTypes) 6680 return SDValue(); 6681 6682 MaskedScatterSDNode *MSC = cast<MaskedScatterSDNode>(N); 6683 SDValue Mask = MSC->getMask(); 6684 SDValue Data = MSC->getValue(); 6685 SDLoc DL(N); 6686 6687 // If the MSCATTER data type requires splitting and the mask is provided by a 6688 // SETCC, then split both nodes and its operands before legalization. This 6689 // prevents the type legalizer from unrolling SETCC into scalar comparisons 6690 // and enables future optimizations (e.g. min/max pattern matching on X86). 6691 if (Mask.getOpcode() != ISD::SETCC) 6692 return SDValue(); 6693 6694 // Check if any splitting is required. 6695 if (TLI.getTypeAction(*DAG.getContext(), Data.getValueType()) != 6696 TargetLowering::TypeSplitVector) 6697 return SDValue(); 6698 SDValue MaskLo, MaskHi, Lo, Hi; 6699 std::tie(MaskLo, MaskHi) = SplitVSETCC(Mask.getNode(), DAG); 6700 6701 EVT LoVT, HiVT; 6702 std::tie(LoVT, HiVT) = DAG.GetSplitDestVTs(MSC->getValueType(0)); 6703 6704 SDValue Chain = MSC->getChain(); 6705 6706 EVT MemoryVT = MSC->getMemoryVT(); 6707 unsigned Alignment = MSC->getOriginalAlignment(); 6708 6709 EVT LoMemVT, HiMemVT; 6710 std::tie(LoMemVT, HiMemVT) = DAG.GetSplitDestVTs(MemoryVT); 6711 6712 SDValue DataLo, DataHi; 6713 std::tie(DataLo, DataHi) = DAG.SplitVector(Data, DL); 6714 6715 SDValue BasePtr = MSC->getBasePtr(); 6716 SDValue IndexLo, IndexHi; 6717 std::tie(IndexLo, IndexHi) = DAG.SplitVector(MSC->getIndex(), DL); 6718 6719 MachineMemOperand *MMO = DAG.getMachineFunction(). 6720 getMachineMemOperand(MSC->getPointerInfo(), 6721 MachineMemOperand::MOStore, LoMemVT.getStoreSize(), 6722 Alignment, MSC->getAAInfo(), MSC->getRanges()); 6723 6724 SDValue OpsLo[] = { Chain, DataLo, MaskLo, BasePtr, IndexLo }; 6725 Lo = DAG.getMaskedScatter(DAG.getVTList(MVT::Other), DataLo.getValueType(), 6726 DL, OpsLo, MMO); 6727 6728 SDValue OpsHi[] = {Chain, DataHi, MaskHi, BasePtr, IndexHi}; 6729 Hi = DAG.getMaskedScatter(DAG.getVTList(MVT::Other), DataHi.getValueType(), 6730 DL, OpsHi, MMO); 6731 6732 AddToWorklist(Lo.getNode()); 6733 AddToWorklist(Hi.getNode()); 6734 6735 return DAG.getNode(ISD::TokenFactor, DL, MVT::Other, Lo, Hi); 6736 } 6737 6738 SDValue DAGCombiner::visitMSTORE(SDNode *N) { 6739 if (Level >= AfterLegalizeTypes) 6740 return SDValue(); 6741 6742 MaskedStoreSDNode *MST = dyn_cast<MaskedStoreSDNode>(N); 6743 SDValue Mask = MST->getMask(); 6744 SDValue Data = MST->getValue(); 6745 EVT VT = Data.getValueType(); 6746 SDLoc DL(N); 6747 6748 // If the MSTORE data type requires splitting and the mask is provided by a 6749 // SETCC, then split both nodes and its operands before legalization. This 6750 // prevents the type legalizer from unrolling SETCC into scalar comparisons 6751 // and enables future optimizations (e.g. min/max pattern matching on X86). 6752 if (Mask.getOpcode() == ISD::SETCC) { 6753 // Check if any splitting is required. 6754 if (TLI.getTypeAction(*DAG.getContext(), VT) != 6755 TargetLowering::TypeSplitVector) 6756 return SDValue(); 6757 6758 SDValue MaskLo, MaskHi, Lo, Hi; 6759 std::tie(MaskLo, MaskHi) = SplitVSETCC(Mask.getNode(), DAG); 6760 6761 SDValue Chain = MST->getChain(); 6762 SDValue Ptr = MST->getBasePtr(); 6763 6764 EVT MemoryVT = MST->getMemoryVT(); 6765 unsigned Alignment = MST->getOriginalAlignment(); 6766 6767 // if Alignment is equal to the vector size, 6768 // take the half of it for the second part 6769 unsigned SecondHalfAlignment = 6770 (Alignment == VT.getSizeInBits() / 8) ? Alignment / 2 : Alignment; 6771 6772 EVT LoMemVT, HiMemVT; 6773 std::tie(LoMemVT, HiMemVT) = DAG.GetSplitDestVTs(MemoryVT); 6774 6775 SDValue DataLo, DataHi; 6776 std::tie(DataLo, DataHi) = DAG.SplitVector(Data, DL); 6777 6778 MachineMemOperand *MMO = DAG.getMachineFunction(). 6779 getMachineMemOperand(MST->getPointerInfo(), 6780 MachineMemOperand::MOStore, LoMemVT.getStoreSize(), 6781 Alignment, MST->getAAInfo(), MST->getRanges()); 6782 6783 Lo = DAG.getMaskedStore(Chain, DL, DataLo, Ptr, MaskLo, LoMemVT, MMO, 6784 MST->isTruncatingStore(), 6785 MST->isCompressingStore()); 6786 6787 Ptr = TLI.IncrementMemoryAddress(Ptr, MaskLo, DL, LoMemVT, DAG, 6788 MST->isCompressingStore()); 6789 6790 MMO = DAG.getMachineFunction(). 6791 getMachineMemOperand(MST->getPointerInfo(), 6792 MachineMemOperand::MOStore, HiMemVT.getStoreSize(), 6793 SecondHalfAlignment, MST->getAAInfo(), 6794 MST->getRanges()); 6795 6796 Hi = DAG.getMaskedStore(Chain, DL, DataHi, Ptr, MaskHi, HiMemVT, MMO, 6797 MST->isTruncatingStore(), 6798 MST->isCompressingStore()); 6799 6800 AddToWorklist(Lo.getNode()); 6801 AddToWorklist(Hi.getNode()); 6802 6803 return DAG.getNode(ISD::TokenFactor, DL, MVT::Other, Lo, Hi); 6804 } 6805 return SDValue(); 6806 } 6807 6808 SDValue DAGCombiner::visitMGATHER(SDNode *N) { 6809 if (Level >= AfterLegalizeTypes) 6810 return SDValue(); 6811 6812 MaskedGatherSDNode *MGT = cast<MaskedGatherSDNode>(N); 6813 SDValue Mask = MGT->getMask(); 6814 SDLoc DL(N); 6815 6816 // If the MGATHER result requires splitting and the mask is provided by a 6817 // SETCC, then split both nodes and its operands before legalization. This 6818 // prevents the type legalizer from unrolling SETCC into scalar comparisons 6819 // and enables future optimizations (e.g. min/max pattern matching on X86). 6820 6821 if (Mask.getOpcode() != ISD::SETCC) 6822 return SDValue(); 6823 6824 EVT VT = N->getValueType(0); 6825 6826 // Check if any splitting is required. 6827 if (TLI.getTypeAction(*DAG.getContext(), VT) != 6828 TargetLowering::TypeSplitVector) 6829 return SDValue(); 6830 6831 SDValue MaskLo, MaskHi, Lo, Hi; 6832 std::tie(MaskLo, MaskHi) = SplitVSETCC(Mask.getNode(), DAG); 6833 6834 SDValue Src0 = MGT->getValue(); 6835 SDValue Src0Lo, Src0Hi; 6836 std::tie(Src0Lo, Src0Hi) = DAG.SplitVector(Src0, DL); 6837 6838 EVT LoVT, HiVT; 6839 std::tie(LoVT, HiVT) = DAG.GetSplitDestVTs(VT); 6840 6841 SDValue Chain = MGT->getChain(); 6842 EVT MemoryVT = MGT->getMemoryVT(); 6843 unsigned Alignment = MGT->getOriginalAlignment(); 6844 6845 EVT LoMemVT, HiMemVT; 6846 std::tie(LoMemVT, HiMemVT) = DAG.GetSplitDestVTs(MemoryVT); 6847 6848 SDValue BasePtr = MGT->getBasePtr(); 6849 SDValue Index = MGT->getIndex(); 6850 SDValue IndexLo, IndexHi; 6851 std::tie(IndexLo, IndexHi) = DAG.SplitVector(Index, DL); 6852 6853 MachineMemOperand *MMO = DAG.getMachineFunction(). 6854 getMachineMemOperand(MGT->getPointerInfo(), 6855 MachineMemOperand::MOLoad, LoMemVT.getStoreSize(), 6856 Alignment, MGT->getAAInfo(), MGT->getRanges()); 6857 6858 SDValue OpsLo[] = { Chain, Src0Lo, MaskLo, BasePtr, IndexLo }; 6859 Lo = DAG.getMaskedGather(DAG.getVTList(LoVT, MVT::Other), LoVT, DL, OpsLo, 6860 MMO); 6861 6862 SDValue OpsHi[] = {Chain, Src0Hi, MaskHi, BasePtr, IndexHi}; 6863 Hi = DAG.getMaskedGather(DAG.getVTList(HiVT, MVT::Other), HiVT, DL, OpsHi, 6864 MMO); 6865 6866 AddToWorklist(Lo.getNode()); 6867 AddToWorklist(Hi.getNode()); 6868 6869 // Build a factor node to remember that this load is independent of the 6870 // other one. 6871 Chain = DAG.getNode(ISD::TokenFactor, DL, MVT::Other, Lo.getValue(1), 6872 Hi.getValue(1)); 6873 6874 // Legalized the chain result - switch anything that used the old chain to 6875 // use the new one. 6876 DAG.ReplaceAllUsesOfValueWith(SDValue(MGT, 1), Chain); 6877 6878 SDValue GatherRes = DAG.getNode(ISD::CONCAT_VECTORS, DL, VT, Lo, Hi); 6879 6880 SDValue RetOps[] = { GatherRes, Chain }; 6881 return DAG.getMergeValues(RetOps, DL); 6882 } 6883 6884 SDValue DAGCombiner::visitMLOAD(SDNode *N) { 6885 if (Level >= AfterLegalizeTypes) 6886 return SDValue(); 6887 6888 MaskedLoadSDNode *MLD = dyn_cast<MaskedLoadSDNode>(N); 6889 SDValue Mask = MLD->getMask(); 6890 SDLoc DL(N); 6891 6892 // If the MLOAD result requires splitting and the mask is provided by a 6893 // SETCC, then split both nodes and its operands before legalization. This 6894 // prevents the type legalizer from unrolling SETCC into scalar comparisons 6895 // and enables future optimizations (e.g. min/max pattern matching on X86). 6896 if (Mask.getOpcode() == ISD::SETCC) { 6897 EVT VT = N->getValueType(0); 6898 6899 // Check if any splitting is required. 6900 if (TLI.getTypeAction(*DAG.getContext(), VT) != 6901 TargetLowering::TypeSplitVector) 6902 return SDValue(); 6903 6904 SDValue MaskLo, MaskHi, Lo, Hi; 6905 std::tie(MaskLo, MaskHi) = SplitVSETCC(Mask.getNode(), DAG); 6906 6907 SDValue Src0 = MLD->getSrc0(); 6908 SDValue Src0Lo, Src0Hi; 6909 std::tie(Src0Lo, Src0Hi) = DAG.SplitVector(Src0, DL); 6910 6911 EVT LoVT, HiVT; 6912 std::tie(LoVT, HiVT) = DAG.GetSplitDestVTs(MLD->getValueType(0)); 6913 6914 SDValue Chain = MLD->getChain(); 6915 SDValue Ptr = MLD->getBasePtr(); 6916 EVT MemoryVT = MLD->getMemoryVT(); 6917 unsigned Alignment = MLD->getOriginalAlignment(); 6918 6919 // if Alignment is equal to the vector size, 6920 // take the half of it for the second part 6921 unsigned SecondHalfAlignment = 6922 (Alignment == MLD->getValueType(0).getSizeInBits()/8) ? 6923 Alignment/2 : Alignment; 6924 6925 EVT LoMemVT, HiMemVT; 6926 std::tie(LoMemVT, HiMemVT) = DAG.GetSplitDestVTs(MemoryVT); 6927 6928 MachineMemOperand *MMO = DAG.getMachineFunction(). 6929 getMachineMemOperand(MLD->getPointerInfo(), 6930 MachineMemOperand::MOLoad, LoMemVT.getStoreSize(), 6931 Alignment, MLD->getAAInfo(), MLD->getRanges()); 6932 6933 Lo = DAG.getMaskedLoad(LoVT, DL, Chain, Ptr, MaskLo, Src0Lo, LoMemVT, MMO, 6934 ISD::NON_EXTLOAD, MLD->isExpandingLoad()); 6935 6936 Ptr = TLI.IncrementMemoryAddress(Ptr, MaskLo, DL, LoMemVT, DAG, 6937 MLD->isExpandingLoad()); 6938 6939 MMO = DAG.getMachineFunction(). 6940 getMachineMemOperand(MLD->getPointerInfo(), 6941 MachineMemOperand::MOLoad, HiMemVT.getStoreSize(), 6942 SecondHalfAlignment, MLD->getAAInfo(), MLD->getRanges()); 6943 6944 Hi = DAG.getMaskedLoad(HiVT, DL, Chain, Ptr, MaskHi, Src0Hi, HiMemVT, MMO, 6945 ISD::NON_EXTLOAD, MLD->isExpandingLoad()); 6946 6947 AddToWorklist(Lo.getNode()); 6948 AddToWorklist(Hi.getNode()); 6949 6950 // Build a factor node to remember that this load is independent of the 6951 // other one. 6952 Chain = DAG.getNode(ISD::TokenFactor, DL, MVT::Other, Lo.getValue(1), 6953 Hi.getValue(1)); 6954 6955 // Legalized the chain result - switch anything that used the old chain to 6956 // use the new one. 6957 DAG.ReplaceAllUsesOfValueWith(SDValue(MLD, 1), Chain); 6958 6959 SDValue LoadRes = DAG.getNode(ISD::CONCAT_VECTORS, DL, VT, Lo, Hi); 6960 6961 SDValue RetOps[] = { LoadRes, Chain }; 6962 return DAG.getMergeValues(RetOps, DL); 6963 } 6964 return SDValue(); 6965 } 6966 6967 /// A vector select of 2 constant vectors can be simplified to math/logic to 6968 /// avoid a variable select instruction and possibly avoid constant loads. 6969 SDValue DAGCombiner::foldVSelectOfConstants(SDNode *N) { 6970 SDValue Cond = N->getOperand(0); 6971 SDValue N1 = N->getOperand(1); 6972 SDValue N2 = N->getOperand(2); 6973 EVT VT = N->getValueType(0); 6974 if (!Cond.hasOneUse() || Cond.getScalarValueSizeInBits() != 1 || 6975 !TLI.convertSelectOfConstantsToMath(VT) || 6976 !ISD::isBuildVectorOfConstantSDNodes(N1.getNode()) || 6977 !ISD::isBuildVectorOfConstantSDNodes(N2.getNode())) 6978 return SDValue(); 6979 6980 // Check if we can use the condition value to increment/decrement a single 6981 // constant value. This simplifies a select to an add and removes a constant 6982 // load/materialization from the general case. 6983 bool AllAddOne = true; 6984 bool AllSubOne = true; 6985 unsigned Elts = VT.getVectorNumElements(); 6986 for (unsigned i = 0; i != Elts; ++i) { 6987 SDValue N1Elt = N1.getOperand(i); 6988 SDValue N2Elt = N2.getOperand(i); 6989 if (N1Elt.isUndef() || N2Elt.isUndef()) 6990 continue; 6991 6992 const APInt &C1 = cast<ConstantSDNode>(N1Elt)->getAPIntValue(); 6993 const APInt &C2 = cast<ConstantSDNode>(N2Elt)->getAPIntValue(); 6994 if (C1 != C2 + 1) 6995 AllAddOne = false; 6996 if (C1 != C2 - 1) 6997 AllSubOne = false; 6998 } 6999 7000 // Further simplifications for the extra-special cases where the constants are 7001 // all 0 or all -1 should be implemented as folds of these patterns. 7002 SDLoc DL(N); 7003 if (AllAddOne || AllSubOne) { 7004 // vselect <N x i1> Cond, C+1, C --> add (zext Cond), C 7005 // vselect <N x i1> Cond, C-1, C --> add (sext Cond), C 7006 auto ExtendOpcode = AllAddOne ? ISD::ZERO_EXTEND : ISD::SIGN_EXTEND; 7007 SDValue ExtendedCond = DAG.getNode(ExtendOpcode, DL, VT, Cond); 7008 return DAG.getNode(ISD::ADD, DL, VT, ExtendedCond, N2); 7009 } 7010 7011 // The general case for select-of-constants: 7012 // vselect <N x i1> Cond, C1, C2 --> xor (and (sext Cond), (C1^C2)), C2 7013 // ...but that only makes sense if a vselect is slower than 2 logic ops, so 7014 // leave that to a machine-specific pass. 7015 return SDValue(); 7016 } 7017 7018 SDValue DAGCombiner::visitVSELECT(SDNode *N) { 7019 SDValue N0 = N->getOperand(0); 7020 SDValue N1 = N->getOperand(1); 7021 SDValue N2 = N->getOperand(2); 7022 SDLoc DL(N); 7023 7024 // fold (vselect C, X, X) -> X 7025 if (N1 == N2) 7026 return N1; 7027 7028 // Canonicalize integer abs. 7029 // vselect (setg[te] X, 0), X, -X -> 7030 // vselect (setgt X, -1), X, -X -> 7031 // vselect (setl[te] X, 0), -X, X -> 7032 // Y = sra (X, size(X)-1); xor (add (X, Y), Y) 7033 if (N0.getOpcode() == ISD::SETCC) { 7034 SDValue LHS = N0.getOperand(0), RHS = N0.getOperand(1); 7035 ISD::CondCode CC = cast<CondCodeSDNode>(N0.getOperand(2))->get(); 7036 bool isAbs = false; 7037 bool RHSIsAllZeros = ISD::isBuildVectorAllZeros(RHS.getNode()); 7038 7039 if (((RHSIsAllZeros && (CC == ISD::SETGT || CC == ISD::SETGE)) || 7040 (ISD::isBuildVectorAllOnes(RHS.getNode()) && CC == ISD::SETGT)) && 7041 N1 == LHS && N2.getOpcode() == ISD::SUB && N1 == N2.getOperand(1)) 7042 isAbs = ISD::isBuildVectorAllZeros(N2.getOperand(0).getNode()); 7043 else if ((RHSIsAllZeros && (CC == ISD::SETLT || CC == ISD::SETLE)) && 7044 N2 == LHS && N1.getOpcode() == ISD::SUB && N2 == N1.getOperand(1)) 7045 isAbs = ISD::isBuildVectorAllZeros(N1.getOperand(0).getNode()); 7046 7047 if (isAbs) { 7048 EVT VT = LHS.getValueType(); 7049 if (TLI.isOperationLegalOrCustom(ISD::ABS, VT)) 7050 return DAG.getNode(ISD::ABS, DL, VT, LHS); 7051 7052 SDValue Shift = DAG.getNode( 7053 ISD::SRA, DL, VT, LHS, 7054 DAG.getConstant(VT.getScalarSizeInBits() - 1, DL, VT)); 7055 SDValue Add = DAG.getNode(ISD::ADD, DL, VT, LHS, Shift); 7056 AddToWorklist(Shift.getNode()); 7057 AddToWorklist(Add.getNode()); 7058 return DAG.getNode(ISD::XOR, DL, VT, Add, Shift); 7059 } 7060 } 7061 7062 if (SimplifySelectOps(N, N1, N2)) 7063 return SDValue(N, 0); // Don't revisit N. 7064 7065 // Fold (vselect (build_vector all_ones), N1, N2) -> N1 7066 if (ISD::isBuildVectorAllOnes(N0.getNode())) 7067 return N1; 7068 // Fold (vselect (build_vector all_zeros), N1, N2) -> N2 7069 if (ISD::isBuildVectorAllZeros(N0.getNode())) 7070 return N2; 7071 7072 // The ConvertSelectToConcatVector function is assuming both the above 7073 // checks for (vselect (build_vector all{ones,zeros) ...) have been made 7074 // and addressed. 7075 if (N1.getOpcode() == ISD::CONCAT_VECTORS && 7076 N2.getOpcode() == ISD::CONCAT_VECTORS && 7077 ISD::isBuildVectorOfConstantSDNodes(N0.getNode())) { 7078 if (SDValue CV = ConvertSelectToConcatVector(N, DAG)) 7079 return CV; 7080 } 7081 7082 if (SDValue V = foldVSelectOfConstants(N)) 7083 return V; 7084 7085 return SDValue(); 7086 } 7087 7088 SDValue DAGCombiner::visitSELECT_CC(SDNode *N) { 7089 SDValue N0 = N->getOperand(0); 7090 SDValue N1 = N->getOperand(1); 7091 SDValue N2 = N->getOperand(2); 7092 SDValue N3 = N->getOperand(3); 7093 SDValue N4 = N->getOperand(4); 7094 ISD::CondCode CC = cast<CondCodeSDNode>(N4)->get(); 7095 7096 // fold select_cc lhs, rhs, x, x, cc -> x 7097 if (N2 == N3) 7098 return N2; 7099 7100 // Determine if the condition we're dealing with is constant 7101 if (SDValue SCC = SimplifySetCC(getSetCCResultType(N0.getValueType()), N0, N1, 7102 CC, SDLoc(N), false)) { 7103 AddToWorklist(SCC.getNode()); 7104 7105 if (ConstantSDNode *SCCC = dyn_cast<ConstantSDNode>(SCC.getNode())) { 7106 if (!SCCC->isNullValue()) 7107 return N2; // cond always true -> true val 7108 else 7109 return N3; // cond always false -> false val 7110 } else if (SCC->isUndef()) { 7111 // When the condition is UNDEF, just return the first operand. This is 7112 // coherent the DAG creation, no setcc node is created in this case 7113 return N2; 7114 } else if (SCC.getOpcode() == ISD::SETCC) { 7115 // Fold to a simpler select_cc 7116 return DAG.getNode(ISD::SELECT_CC, SDLoc(N), N2.getValueType(), 7117 SCC.getOperand(0), SCC.getOperand(1), N2, N3, 7118 SCC.getOperand(2)); 7119 } 7120 } 7121 7122 // If we can fold this based on the true/false value, do so. 7123 if (SimplifySelectOps(N, N2, N3)) 7124 return SDValue(N, 0); // Don't revisit N. 7125 7126 // fold select_cc into other things, such as min/max/abs 7127 return SimplifySelectCC(SDLoc(N), N0, N1, N2, N3, CC); 7128 } 7129 7130 SDValue DAGCombiner::visitSETCC(SDNode *N) { 7131 return SimplifySetCC(N->getValueType(0), N->getOperand(0), N->getOperand(1), 7132 cast<CondCodeSDNode>(N->getOperand(2))->get(), 7133 SDLoc(N)); 7134 } 7135 7136 SDValue DAGCombiner::visitSETCCE(SDNode *N) { 7137 SDValue LHS = N->getOperand(0); 7138 SDValue RHS = N->getOperand(1); 7139 SDValue Carry = N->getOperand(2); 7140 SDValue Cond = N->getOperand(3); 7141 7142 // If Carry is false, fold to a regular SETCC. 7143 if (Carry.getOpcode() == ISD::CARRY_FALSE) 7144 return DAG.getNode(ISD::SETCC, SDLoc(N), N->getVTList(), LHS, RHS, Cond); 7145 7146 return SDValue(); 7147 } 7148 7149 SDValue DAGCombiner::visitSETCCCARRY(SDNode *N) { 7150 SDValue LHS = N->getOperand(0); 7151 SDValue RHS = N->getOperand(1); 7152 SDValue Carry = N->getOperand(2); 7153 SDValue Cond = N->getOperand(3); 7154 7155 // If Carry is false, fold to a regular SETCC. 7156 if (isNullConstant(Carry)) 7157 return DAG.getNode(ISD::SETCC, SDLoc(N), N->getVTList(), LHS, RHS, Cond); 7158 7159 return SDValue(); 7160 } 7161 7162 /// Try to fold a sext/zext/aext dag node into a ConstantSDNode or 7163 /// a build_vector of constants. 7164 /// This function is called by the DAGCombiner when visiting sext/zext/aext 7165 /// dag nodes (see for example method DAGCombiner::visitSIGN_EXTEND). 7166 /// Vector extends are not folded if operations are legal; this is to 7167 /// avoid introducing illegal build_vector dag nodes. 7168 static SDNode *tryToFoldExtendOfConstant(SDNode *N, const TargetLowering &TLI, 7169 SelectionDAG &DAG, bool LegalTypes, 7170 bool LegalOperations) { 7171 unsigned Opcode = N->getOpcode(); 7172 SDValue N0 = N->getOperand(0); 7173 EVT VT = N->getValueType(0); 7174 7175 assert((Opcode == ISD::SIGN_EXTEND || Opcode == ISD::ZERO_EXTEND || 7176 Opcode == ISD::ANY_EXTEND || Opcode == ISD::SIGN_EXTEND_VECTOR_INREG || 7177 Opcode == ISD::ZERO_EXTEND_VECTOR_INREG) 7178 && "Expected EXTEND dag node in input!"); 7179 7180 // fold (sext c1) -> c1 7181 // fold (zext c1) -> c1 7182 // fold (aext c1) -> c1 7183 if (isa<ConstantSDNode>(N0)) 7184 return DAG.getNode(Opcode, SDLoc(N), VT, N0).getNode(); 7185 7186 // fold (sext (build_vector AllConstants) -> (build_vector AllConstants) 7187 // fold (zext (build_vector AllConstants) -> (build_vector AllConstants) 7188 // fold (aext (build_vector AllConstants) -> (build_vector AllConstants) 7189 EVT SVT = VT.getScalarType(); 7190 if (!(VT.isVector() && 7191 (!LegalTypes || (!LegalOperations && TLI.isTypeLegal(SVT))) && 7192 ISD::isBuildVectorOfConstantSDNodes(N0.getNode()))) 7193 return nullptr; 7194 7195 // We can fold this node into a build_vector. 7196 unsigned VTBits = SVT.getSizeInBits(); 7197 unsigned EVTBits = N0->getValueType(0).getScalarSizeInBits(); 7198 SmallVector<SDValue, 8> Elts; 7199 unsigned NumElts = VT.getVectorNumElements(); 7200 SDLoc DL(N); 7201 7202 for (unsigned i=0; i != NumElts; ++i) { 7203 SDValue Op = N0->getOperand(i); 7204 if (Op->isUndef()) { 7205 Elts.push_back(DAG.getUNDEF(SVT)); 7206 continue; 7207 } 7208 7209 SDLoc DL(Op); 7210 // Get the constant value and if needed trunc it to the size of the type. 7211 // Nodes like build_vector might have constants wider than the scalar type. 7212 APInt C = cast<ConstantSDNode>(Op)->getAPIntValue().zextOrTrunc(EVTBits); 7213 if (Opcode == ISD::SIGN_EXTEND || Opcode == ISD::SIGN_EXTEND_VECTOR_INREG) 7214 Elts.push_back(DAG.getConstant(C.sext(VTBits), DL, SVT)); 7215 else 7216 Elts.push_back(DAG.getConstant(C.zext(VTBits), DL, SVT)); 7217 } 7218 7219 return DAG.getBuildVector(VT, DL, Elts).getNode(); 7220 } 7221 7222 // ExtendUsesToFormExtLoad - Trying to extend uses of a load to enable this: 7223 // "fold ({s|z|a}ext (load x)) -> ({s|z|a}ext (truncate ({s|z|a}extload x)))" 7224 // transformation. Returns true if extension are possible and the above 7225 // mentioned transformation is profitable. 7226 static bool ExtendUsesToFormExtLoad(SDNode *N, SDValue N0, 7227 unsigned ExtOpc, 7228 SmallVectorImpl<SDNode *> &ExtendNodes, 7229 const TargetLowering &TLI) { 7230 bool HasCopyToRegUses = false; 7231 bool isTruncFree = TLI.isTruncateFree(N->getValueType(0), N0.getValueType()); 7232 for (SDNode::use_iterator UI = N0.getNode()->use_begin(), 7233 UE = N0.getNode()->use_end(); 7234 UI != UE; ++UI) { 7235 SDNode *User = *UI; 7236 if (User == N) 7237 continue; 7238 if (UI.getUse().getResNo() != N0.getResNo()) 7239 continue; 7240 // FIXME: Only extend SETCC N, N and SETCC N, c for now. 7241 if (ExtOpc != ISD::ANY_EXTEND && User->getOpcode() == ISD::SETCC) { 7242 ISD::CondCode CC = cast<CondCodeSDNode>(User->getOperand(2))->get(); 7243 if (ExtOpc == ISD::ZERO_EXTEND && ISD::isSignedIntSetCC(CC)) 7244 // Sign bits will be lost after a zext. 7245 return false; 7246 bool Add = false; 7247 for (unsigned i = 0; i != 2; ++i) { 7248 SDValue UseOp = User->getOperand(i); 7249 if (UseOp == N0) 7250 continue; 7251 if (!isa<ConstantSDNode>(UseOp)) 7252 return false; 7253 Add = true; 7254 } 7255 if (Add) 7256 ExtendNodes.push_back(User); 7257 continue; 7258 } 7259 // If truncates aren't free and there are users we can't 7260 // extend, it isn't worthwhile. 7261 if (!isTruncFree) 7262 return false; 7263 // Remember if this value is live-out. 7264 if (User->getOpcode() == ISD::CopyToReg) 7265 HasCopyToRegUses = true; 7266 } 7267 7268 if (HasCopyToRegUses) { 7269 bool BothLiveOut = false; 7270 for (SDNode::use_iterator UI = N->use_begin(), UE = N->use_end(); 7271 UI != UE; ++UI) { 7272 SDUse &Use = UI.getUse(); 7273 if (Use.getResNo() == 0 && Use.getUser()->getOpcode() == ISD::CopyToReg) { 7274 BothLiveOut = true; 7275 break; 7276 } 7277 } 7278 if (BothLiveOut) 7279 // Both unextended and extended values are live out. There had better be 7280 // a good reason for the transformation. 7281 return ExtendNodes.size(); 7282 } 7283 return true; 7284 } 7285 7286 void DAGCombiner::ExtendSetCCUses(const SmallVectorImpl<SDNode *> &SetCCs, 7287 SDValue Trunc, SDValue ExtLoad, 7288 const SDLoc &DL, ISD::NodeType ExtType) { 7289 // Extend SetCC uses if necessary. 7290 for (unsigned i = 0, e = SetCCs.size(); i != e; ++i) { 7291 SDNode *SetCC = SetCCs[i]; 7292 SmallVector<SDValue, 4> Ops; 7293 7294 for (unsigned j = 0; j != 2; ++j) { 7295 SDValue SOp = SetCC->getOperand(j); 7296 if (SOp == Trunc) 7297 Ops.push_back(ExtLoad); 7298 else 7299 Ops.push_back(DAG.getNode(ExtType, DL, ExtLoad->getValueType(0), SOp)); 7300 } 7301 7302 Ops.push_back(SetCC->getOperand(2)); 7303 CombineTo(SetCC, DAG.getNode(ISD::SETCC, DL, SetCC->getValueType(0), Ops)); 7304 } 7305 } 7306 7307 // FIXME: Bring more similar combines here, common to sext/zext (maybe aext?). 7308 SDValue DAGCombiner::CombineExtLoad(SDNode *N) { 7309 SDValue N0 = N->getOperand(0); 7310 EVT DstVT = N->getValueType(0); 7311 EVT SrcVT = N0.getValueType(); 7312 7313 assert((N->getOpcode() == ISD::SIGN_EXTEND || 7314 N->getOpcode() == ISD::ZERO_EXTEND) && 7315 "Unexpected node type (not an extend)!"); 7316 7317 // fold (sext (load x)) to multiple smaller sextloads; same for zext. 7318 // For example, on a target with legal v4i32, but illegal v8i32, turn: 7319 // (v8i32 (sext (v8i16 (load x)))) 7320 // into: 7321 // (v8i32 (concat_vectors (v4i32 (sextload x)), 7322 // (v4i32 (sextload (x + 16))))) 7323 // Where uses of the original load, i.e.: 7324 // (v8i16 (load x)) 7325 // are replaced with: 7326 // (v8i16 (truncate 7327 // (v8i32 (concat_vectors (v4i32 (sextload x)), 7328 // (v4i32 (sextload (x + 16))))))) 7329 // 7330 // This combine is only applicable to illegal, but splittable, vectors. 7331 // All legal types, and illegal non-vector types, are handled elsewhere. 7332 // This combine is controlled by TargetLowering::isVectorLoadExtDesirable. 7333 // 7334 if (N0->getOpcode() != ISD::LOAD) 7335 return SDValue(); 7336 7337 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 7338 7339 if (!ISD::isNON_EXTLoad(LN0) || !ISD::isUNINDEXEDLoad(LN0) || 7340 !N0.hasOneUse() || LN0->isVolatile() || !DstVT.isVector() || 7341 !DstVT.isPow2VectorType() || !TLI.isVectorLoadExtDesirable(SDValue(N, 0))) 7342 return SDValue(); 7343 7344 SmallVector<SDNode *, 4> SetCCs; 7345 if (!ExtendUsesToFormExtLoad(N, N0, N->getOpcode(), SetCCs, TLI)) 7346 return SDValue(); 7347 7348 ISD::LoadExtType ExtType = 7349 N->getOpcode() == ISD::SIGN_EXTEND ? ISD::SEXTLOAD : ISD::ZEXTLOAD; 7350 7351 // Try to split the vector types to get down to legal types. 7352 EVT SplitSrcVT = SrcVT; 7353 EVT SplitDstVT = DstVT; 7354 while (!TLI.isLoadExtLegalOrCustom(ExtType, SplitDstVT, SplitSrcVT) && 7355 SplitSrcVT.getVectorNumElements() > 1) { 7356 SplitDstVT = DAG.GetSplitDestVTs(SplitDstVT).first; 7357 SplitSrcVT = DAG.GetSplitDestVTs(SplitSrcVT).first; 7358 } 7359 7360 if (!TLI.isLoadExtLegalOrCustom(ExtType, SplitDstVT, SplitSrcVT)) 7361 return SDValue(); 7362 7363 SDLoc DL(N); 7364 const unsigned NumSplits = 7365 DstVT.getVectorNumElements() / SplitDstVT.getVectorNumElements(); 7366 const unsigned Stride = SplitSrcVT.getStoreSize(); 7367 SmallVector<SDValue, 4> Loads; 7368 SmallVector<SDValue, 4> Chains; 7369 7370 SDValue BasePtr = LN0->getBasePtr(); 7371 for (unsigned Idx = 0; Idx < NumSplits; Idx++) { 7372 const unsigned Offset = Idx * Stride; 7373 const unsigned Align = MinAlign(LN0->getAlignment(), Offset); 7374 7375 SDValue SplitLoad = DAG.getExtLoad( 7376 ExtType, DL, SplitDstVT, LN0->getChain(), BasePtr, 7377 LN0->getPointerInfo().getWithOffset(Offset), SplitSrcVT, Align, 7378 LN0->getMemOperand()->getFlags(), LN0->getAAInfo()); 7379 7380 BasePtr = DAG.getNode(ISD::ADD, DL, BasePtr.getValueType(), BasePtr, 7381 DAG.getConstant(Stride, DL, BasePtr.getValueType())); 7382 7383 Loads.push_back(SplitLoad.getValue(0)); 7384 Chains.push_back(SplitLoad.getValue(1)); 7385 } 7386 7387 SDValue NewChain = DAG.getNode(ISD::TokenFactor, DL, MVT::Other, Chains); 7388 SDValue NewValue = DAG.getNode(ISD::CONCAT_VECTORS, DL, DstVT, Loads); 7389 7390 // Simplify TF. 7391 AddToWorklist(NewChain.getNode()); 7392 7393 CombineTo(N, NewValue); 7394 7395 // Replace uses of the original load (before extension) 7396 // with a truncate of the concatenated sextloaded vectors. 7397 SDValue Trunc = 7398 DAG.getNode(ISD::TRUNCATE, SDLoc(N0), N0.getValueType(), NewValue); 7399 CombineTo(N0.getNode(), Trunc, NewChain); 7400 ExtendSetCCUses(SetCCs, Trunc, NewValue, DL, 7401 (ISD::NodeType)N->getOpcode()); 7402 return SDValue(N, 0); // Return N so it doesn't get rechecked! 7403 } 7404 7405 /// If we're narrowing or widening the result of a vector select and the final 7406 /// size is the same size as a setcc (compare) feeding the select, then try to 7407 /// apply the cast operation to the select's operands because matching vector 7408 /// sizes for a select condition and other operands should be more efficient. 7409 SDValue DAGCombiner::matchVSelectOpSizesWithSetCC(SDNode *Cast) { 7410 unsigned CastOpcode = Cast->getOpcode(); 7411 assert((CastOpcode == ISD::SIGN_EXTEND || CastOpcode == ISD::ZERO_EXTEND || 7412 CastOpcode == ISD::TRUNCATE || CastOpcode == ISD::FP_EXTEND || 7413 CastOpcode == ISD::FP_ROUND) && 7414 "Unexpected opcode for vector select narrowing/widening"); 7415 7416 // We only do this transform before legal ops because the pattern may be 7417 // obfuscated by target-specific operations after legalization. Do not create 7418 // an illegal select op, however, because that may be difficult to lower. 7419 EVT VT = Cast->getValueType(0); 7420 if (LegalOperations || !TLI.isOperationLegalOrCustom(ISD::VSELECT, VT)) 7421 return SDValue(); 7422 7423 SDValue VSel = Cast->getOperand(0); 7424 if (VSel.getOpcode() != ISD::VSELECT || !VSel.hasOneUse() || 7425 VSel.getOperand(0).getOpcode() != ISD::SETCC) 7426 return SDValue(); 7427 7428 // Does the setcc have the same vector size as the casted select? 7429 SDValue SetCC = VSel.getOperand(0); 7430 EVT SetCCVT = getSetCCResultType(SetCC.getOperand(0).getValueType()); 7431 if (SetCCVT.getSizeInBits() != VT.getSizeInBits()) 7432 return SDValue(); 7433 7434 // cast (vsel (setcc X), A, B) --> vsel (setcc X), (cast A), (cast B) 7435 SDValue A = VSel.getOperand(1); 7436 SDValue B = VSel.getOperand(2); 7437 SDValue CastA, CastB; 7438 SDLoc DL(Cast); 7439 if (CastOpcode == ISD::FP_ROUND) { 7440 // FP_ROUND (fptrunc) has an extra flag operand to pass along. 7441 CastA = DAG.getNode(CastOpcode, DL, VT, A, Cast->getOperand(1)); 7442 CastB = DAG.getNode(CastOpcode, DL, VT, B, Cast->getOperand(1)); 7443 } else { 7444 CastA = DAG.getNode(CastOpcode, DL, VT, A); 7445 CastB = DAG.getNode(CastOpcode, DL, VT, B); 7446 } 7447 return DAG.getNode(ISD::VSELECT, DL, VT, SetCC, CastA, CastB); 7448 } 7449 7450 SDValue DAGCombiner::visitSIGN_EXTEND(SDNode *N) { 7451 SDValue N0 = N->getOperand(0); 7452 EVT VT = N->getValueType(0); 7453 SDLoc DL(N); 7454 7455 if (SDNode *Res = tryToFoldExtendOfConstant(N, TLI, DAG, LegalTypes, 7456 LegalOperations)) 7457 return SDValue(Res, 0); 7458 7459 // fold (sext (sext x)) -> (sext x) 7460 // fold (sext (aext x)) -> (sext x) 7461 if (N0.getOpcode() == ISD::SIGN_EXTEND || N0.getOpcode() == ISD::ANY_EXTEND) 7462 return DAG.getNode(ISD::SIGN_EXTEND, DL, VT, N0.getOperand(0)); 7463 7464 if (N0.getOpcode() == ISD::TRUNCATE) { 7465 // fold (sext (truncate (load x))) -> (sext (smaller load x)) 7466 // fold (sext (truncate (srl (load x), c))) -> (sext (smaller load (x+c/n))) 7467 if (SDValue NarrowLoad = ReduceLoadWidth(N0.getNode())) { 7468 SDNode *oye = N0.getOperand(0).getNode(); 7469 if (NarrowLoad.getNode() != N0.getNode()) { 7470 CombineTo(N0.getNode(), NarrowLoad); 7471 // CombineTo deleted the truncate, if needed, but not what's under it. 7472 AddToWorklist(oye); 7473 } 7474 return SDValue(N, 0); // Return N so it doesn't get rechecked! 7475 } 7476 7477 // See if the value being truncated is already sign extended. If so, just 7478 // eliminate the trunc/sext pair. 7479 SDValue Op = N0.getOperand(0); 7480 unsigned OpBits = Op.getScalarValueSizeInBits(); 7481 unsigned MidBits = N0.getScalarValueSizeInBits(); 7482 unsigned DestBits = VT.getScalarSizeInBits(); 7483 unsigned NumSignBits = DAG.ComputeNumSignBits(Op); 7484 7485 if (OpBits == DestBits) { 7486 // Op is i32, Mid is i8, and Dest is i32. If Op has more than 24 sign 7487 // bits, it is already ready. 7488 if (NumSignBits > DestBits-MidBits) 7489 return Op; 7490 } else if (OpBits < DestBits) { 7491 // Op is i32, Mid is i8, and Dest is i64. If Op has more than 24 sign 7492 // bits, just sext from i32. 7493 if (NumSignBits > OpBits-MidBits) 7494 return DAG.getNode(ISD::SIGN_EXTEND, DL, VT, Op); 7495 } else { 7496 // Op is i64, Mid is i8, and Dest is i32. If Op has more than 56 sign 7497 // bits, just truncate to i32. 7498 if (NumSignBits > OpBits-MidBits) 7499 return DAG.getNode(ISD::TRUNCATE, DL, VT, Op); 7500 } 7501 7502 // fold (sext (truncate x)) -> (sextinreg x). 7503 if (!LegalOperations || TLI.isOperationLegal(ISD::SIGN_EXTEND_INREG, 7504 N0.getValueType())) { 7505 if (OpBits < DestBits) 7506 Op = DAG.getNode(ISD::ANY_EXTEND, SDLoc(N0), VT, Op); 7507 else if (OpBits > DestBits) 7508 Op = DAG.getNode(ISD::TRUNCATE, SDLoc(N0), VT, Op); 7509 return DAG.getNode(ISD::SIGN_EXTEND_INREG, DL, VT, Op, 7510 DAG.getValueType(N0.getValueType())); 7511 } 7512 } 7513 7514 // fold (sext (load x)) -> (sext (truncate (sextload x))) 7515 // Only generate vector extloads when 1) they're legal, and 2) they are 7516 // deemed desirable by the target. 7517 if (ISD::isNON_EXTLoad(N0.getNode()) && ISD::isUNINDEXEDLoad(N0.getNode()) && 7518 ((!LegalOperations && !VT.isVector() && 7519 !cast<LoadSDNode>(N0)->isVolatile()) || 7520 TLI.isLoadExtLegal(ISD::SEXTLOAD, VT, N0.getValueType()))) { 7521 bool DoXform = true; 7522 SmallVector<SDNode*, 4> SetCCs; 7523 if (!N0.hasOneUse()) 7524 DoXform = ExtendUsesToFormExtLoad(N, N0, ISD::SIGN_EXTEND, SetCCs, TLI); 7525 if (VT.isVector()) 7526 DoXform &= TLI.isVectorLoadExtDesirable(SDValue(N, 0)); 7527 if (DoXform) { 7528 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 7529 SDValue ExtLoad = DAG.getExtLoad(ISD::SEXTLOAD, DL, VT, LN0->getChain(), 7530 LN0->getBasePtr(), N0.getValueType(), 7531 LN0->getMemOperand()); 7532 SDValue Trunc = DAG.getNode(ISD::TRUNCATE, SDLoc(N0), 7533 N0.getValueType(), ExtLoad); 7534 ExtendSetCCUses(SetCCs, Trunc, ExtLoad, DL, ISD::SIGN_EXTEND); 7535 // If the load value is used only by N, replace it via CombineTo N. 7536 bool NoReplaceTrunc = SDValue(LN0, 0).hasOneUse(); 7537 CombineTo(N, ExtLoad); 7538 if (NoReplaceTrunc) 7539 DAG.ReplaceAllUsesOfValueWith(SDValue(LN0, 1), ExtLoad.getValue(1)); 7540 else 7541 CombineTo(LN0, Trunc, ExtLoad.getValue(1)); 7542 return SDValue(N, 0); 7543 } 7544 } 7545 7546 // fold (sext (load x)) to multiple smaller sextloads. 7547 // Only on illegal but splittable vectors. 7548 if (SDValue ExtLoad = CombineExtLoad(N)) 7549 return ExtLoad; 7550 7551 // fold (sext (sextload x)) -> (sext (truncate (sextload x))) 7552 // fold (sext ( extload x)) -> (sext (truncate (sextload x))) 7553 if ((ISD::isSEXTLoad(N0.getNode()) || ISD::isEXTLoad(N0.getNode())) && 7554 ISD::isUNINDEXEDLoad(N0.getNode()) && N0.hasOneUse()) { 7555 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 7556 EVT MemVT = LN0->getMemoryVT(); 7557 if ((!LegalOperations && !LN0->isVolatile()) || 7558 TLI.isLoadExtLegal(ISD::SEXTLOAD, VT, MemVT)) { 7559 SDValue ExtLoad = DAG.getExtLoad(ISD::SEXTLOAD, DL, VT, LN0->getChain(), 7560 LN0->getBasePtr(), MemVT, 7561 LN0->getMemOperand()); 7562 CombineTo(N, ExtLoad); 7563 CombineTo(N0.getNode(), 7564 DAG.getNode(ISD::TRUNCATE, SDLoc(N0), 7565 N0.getValueType(), ExtLoad), 7566 ExtLoad.getValue(1)); 7567 return SDValue(N, 0); // Return N so it doesn't get rechecked! 7568 } 7569 } 7570 7571 // fold (sext (and/or/xor (load x), cst)) -> 7572 // (and/or/xor (sextload x), (sext cst)) 7573 if ((N0.getOpcode() == ISD::AND || N0.getOpcode() == ISD::OR || 7574 N0.getOpcode() == ISD::XOR) && 7575 isa<LoadSDNode>(N0.getOperand(0)) && 7576 N0.getOperand(1).getOpcode() == ISD::Constant && 7577 TLI.isLoadExtLegal(ISD::SEXTLOAD, VT, N0.getValueType()) && 7578 (!LegalOperations && TLI.isOperationLegal(N0.getOpcode(), VT))) { 7579 LoadSDNode *LN0 = cast<LoadSDNode>(N0.getOperand(0)); 7580 if (LN0->getExtensionType() != ISD::ZEXTLOAD && LN0->isUnindexed()) { 7581 bool DoXform = true; 7582 SmallVector<SDNode*, 4> SetCCs; 7583 if (!N0.hasOneUse()) 7584 DoXform = ExtendUsesToFormExtLoad(N, N0.getOperand(0), ISD::SIGN_EXTEND, 7585 SetCCs, TLI); 7586 if (DoXform) { 7587 SDValue ExtLoad = DAG.getExtLoad(ISD::SEXTLOAD, SDLoc(LN0), VT, 7588 LN0->getChain(), LN0->getBasePtr(), 7589 LN0->getMemoryVT(), 7590 LN0->getMemOperand()); 7591 APInt Mask = cast<ConstantSDNode>(N0.getOperand(1))->getAPIntValue(); 7592 Mask = Mask.sext(VT.getSizeInBits()); 7593 SDValue And = DAG.getNode(N0.getOpcode(), DL, VT, 7594 ExtLoad, DAG.getConstant(Mask, DL, VT)); 7595 SDValue Trunc = DAG.getNode(ISD::TRUNCATE, 7596 SDLoc(N0.getOperand(0)), 7597 N0.getOperand(0).getValueType(), ExtLoad); 7598 ExtendSetCCUses(SetCCs, Trunc, ExtLoad, DL, ISD::SIGN_EXTEND); 7599 bool NoReplaceTruncAnd = !N0.hasOneUse(); 7600 bool NoReplaceTrunc = SDValue(LN0, 0).hasOneUse(); 7601 CombineTo(N, And); 7602 // If N0 has multiple uses, change other uses as well. 7603 if (NoReplaceTruncAnd) { 7604 SDValue TruncAnd = 7605 DAG.getNode(ISD::TRUNCATE, DL, N0.getValueType(), And); 7606 CombineTo(N0.getNode(), TruncAnd); 7607 } 7608 if (NoReplaceTrunc) 7609 DAG.ReplaceAllUsesOfValueWith(SDValue(LN0, 1), ExtLoad.getValue(1)); 7610 else 7611 CombineTo(LN0, Trunc, ExtLoad.getValue(1)); 7612 return SDValue(N,0); // Return N so it doesn't get rechecked! 7613 } 7614 } 7615 } 7616 7617 if (N0.getOpcode() == ISD::SETCC) { 7618 SDValue N00 = N0.getOperand(0); 7619 SDValue N01 = N0.getOperand(1); 7620 ISD::CondCode CC = cast<CondCodeSDNode>(N0.getOperand(2))->get(); 7621 EVT N00VT = N0.getOperand(0).getValueType(); 7622 7623 // sext(setcc) -> sext_in_reg(vsetcc) for vectors. 7624 // Only do this before legalize for now. 7625 if (VT.isVector() && !LegalOperations && 7626 TLI.getBooleanContents(N00VT) == 7627 TargetLowering::ZeroOrNegativeOneBooleanContent) { 7628 // On some architectures (such as SSE/NEON/etc) the SETCC result type is 7629 // of the same size as the compared operands. Only optimize sext(setcc()) 7630 // if this is the case. 7631 EVT SVT = getSetCCResultType(N00VT); 7632 7633 // We know that the # elements of the results is the same as the 7634 // # elements of the compare (and the # elements of the compare result 7635 // for that matter). Check to see that they are the same size. If so, 7636 // we know that the element size of the sext'd result matches the 7637 // element size of the compare operands. 7638 if (VT.getSizeInBits() == SVT.getSizeInBits()) 7639 return DAG.getSetCC(DL, VT, N00, N01, CC); 7640 7641 // If the desired elements are smaller or larger than the source 7642 // elements, we can use a matching integer vector type and then 7643 // truncate/sign extend. 7644 EVT MatchingVecType = N00VT.changeVectorElementTypeToInteger(); 7645 if (SVT == MatchingVecType) { 7646 SDValue VsetCC = DAG.getSetCC(DL, MatchingVecType, N00, N01, CC); 7647 return DAG.getSExtOrTrunc(VsetCC, DL, VT); 7648 } 7649 } 7650 7651 // sext(setcc x, y, cc) -> (select (setcc x, y, cc), T, 0) 7652 // Here, T can be 1 or -1, depending on the type of the setcc and 7653 // getBooleanContents(). 7654 unsigned SetCCWidth = N0.getScalarValueSizeInBits(); 7655 7656 // To determine the "true" side of the select, we need to know the high bit 7657 // of the value returned by the setcc if it evaluates to true. 7658 // If the type of the setcc is i1, then the true case of the select is just 7659 // sext(i1 1), that is, -1. 7660 // If the type of the setcc is larger (say, i8) then the value of the high 7661 // bit depends on getBooleanContents(), so ask TLI for a real "true" value 7662 // of the appropriate width. 7663 SDValue ExtTrueVal = (SetCCWidth == 1) ? DAG.getAllOnesConstant(DL, VT) 7664 : TLI.getConstTrueVal(DAG, VT, DL); 7665 SDValue Zero = DAG.getConstant(0, DL, VT); 7666 if (SDValue SCC = 7667 SimplifySelectCC(DL, N00, N01, ExtTrueVal, Zero, CC, true)) 7668 return SCC; 7669 7670 if (!VT.isVector() && !TLI.convertSelectOfConstantsToMath(VT)) { 7671 EVT SetCCVT = getSetCCResultType(N00VT); 7672 // Don't do this transform for i1 because there's a select transform 7673 // that would reverse it. 7674 // TODO: We should not do this transform at all without a target hook 7675 // because a sext is likely cheaper than a select? 7676 if (SetCCVT.getScalarSizeInBits() != 1 && 7677 (!LegalOperations || TLI.isOperationLegal(ISD::SETCC, N00VT))) { 7678 SDValue SetCC = DAG.getSetCC(DL, SetCCVT, N00, N01, CC); 7679 return DAG.getSelect(DL, VT, SetCC, ExtTrueVal, Zero); 7680 } 7681 } 7682 } 7683 7684 // fold (sext x) -> (zext x) if the sign bit is known zero. 7685 if ((!LegalOperations || TLI.isOperationLegal(ISD::ZERO_EXTEND, VT)) && 7686 DAG.SignBitIsZero(N0)) 7687 return DAG.getNode(ISD::ZERO_EXTEND, DL, VT, N0); 7688 7689 if (SDValue NewVSel = matchVSelectOpSizesWithSetCC(N)) 7690 return NewVSel; 7691 7692 return SDValue(); 7693 } 7694 7695 // isTruncateOf - If N is a truncate of some other value, return true, record 7696 // the value being truncated in Op and which of Op's bits are zero/one in Known. 7697 // This function computes KnownBits to avoid a duplicated call to 7698 // computeKnownBits in the caller. 7699 static bool isTruncateOf(SelectionDAG &DAG, SDValue N, SDValue &Op, 7700 KnownBits &Known) { 7701 if (N->getOpcode() == ISD::TRUNCATE) { 7702 Op = N->getOperand(0); 7703 DAG.computeKnownBits(Op, Known); 7704 return true; 7705 } 7706 7707 if (N->getOpcode() != ISD::SETCC || N->getValueType(0) != MVT::i1 || 7708 cast<CondCodeSDNode>(N->getOperand(2))->get() != ISD::SETNE) 7709 return false; 7710 7711 SDValue Op0 = N->getOperand(0); 7712 SDValue Op1 = N->getOperand(1); 7713 assert(Op0.getValueType() == Op1.getValueType()); 7714 7715 if (isNullConstant(Op0)) 7716 Op = Op1; 7717 else if (isNullConstant(Op1)) 7718 Op = Op0; 7719 else 7720 return false; 7721 7722 DAG.computeKnownBits(Op, Known); 7723 7724 if (!(Known.Zero | 1).isAllOnesValue()) 7725 return false; 7726 7727 return true; 7728 } 7729 7730 SDValue DAGCombiner::visitZERO_EXTEND(SDNode *N) { 7731 SDValue N0 = N->getOperand(0); 7732 EVT VT = N->getValueType(0); 7733 7734 if (SDNode *Res = tryToFoldExtendOfConstant(N, TLI, DAG, LegalTypes, 7735 LegalOperations)) 7736 return SDValue(Res, 0); 7737 7738 // fold (zext (zext x)) -> (zext x) 7739 // fold (zext (aext x)) -> (zext x) 7740 if (N0.getOpcode() == ISD::ZERO_EXTEND || N0.getOpcode() == ISD::ANY_EXTEND) 7741 return DAG.getNode(ISD::ZERO_EXTEND, SDLoc(N), VT, 7742 N0.getOperand(0)); 7743 7744 // fold (zext (truncate x)) -> (zext x) or 7745 // (zext (truncate x)) -> (truncate x) 7746 // This is valid when the truncated bits of x are already zero. 7747 // FIXME: We should extend this to work for vectors too. 7748 SDValue Op; 7749 KnownBits Known; 7750 if (!VT.isVector() && isTruncateOf(DAG, N0, Op, Known)) { 7751 APInt TruncatedBits = 7752 (Op.getValueSizeInBits() == N0.getValueSizeInBits()) ? 7753 APInt(Op.getValueSizeInBits(), 0) : 7754 APInt::getBitsSet(Op.getValueSizeInBits(), 7755 N0.getValueSizeInBits(), 7756 std::min(Op.getValueSizeInBits(), 7757 VT.getSizeInBits())); 7758 if (TruncatedBits.isSubsetOf(Known.Zero)) 7759 return DAG.getZExtOrTrunc(Op, SDLoc(N), VT); 7760 } 7761 7762 // fold (zext (truncate x)) -> (and x, mask) 7763 if (N0.getOpcode() == ISD::TRUNCATE) { 7764 // fold (zext (truncate (load x))) -> (zext (smaller load x)) 7765 // fold (zext (truncate (srl (load x), c))) -> (zext (smaller load (x+c/n))) 7766 if (SDValue NarrowLoad = ReduceLoadWidth(N0.getNode())) { 7767 SDNode *oye = N0.getOperand(0).getNode(); 7768 if (NarrowLoad.getNode() != N0.getNode()) { 7769 CombineTo(N0.getNode(), NarrowLoad); 7770 // CombineTo deleted the truncate, if needed, but not what's under it. 7771 AddToWorklist(oye); 7772 } 7773 return SDValue(N, 0); // Return N so it doesn't get rechecked! 7774 } 7775 7776 EVT SrcVT = N0.getOperand(0).getValueType(); 7777 EVT MinVT = N0.getValueType(); 7778 7779 // Try to mask before the extension to avoid having to generate a larger mask, 7780 // possibly over several sub-vectors. 7781 if (SrcVT.bitsLT(VT)) { 7782 if (!LegalOperations || (TLI.isOperationLegal(ISD::AND, SrcVT) && 7783 TLI.isOperationLegal(ISD::ZERO_EXTEND, VT))) { 7784 SDValue Op = N0.getOperand(0); 7785 Op = DAG.getZeroExtendInReg(Op, SDLoc(N), MinVT.getScalarType()); 7786 AddToWorklist(Op.getNode()); 7787 return DAG.getZExtOrTrunc(Op, SDLoc(N), VT); 7788 } 7789 } 7790 7791 if (!LegalOperations || TLI.isOperationLegal(ISD::AND, VT)) { 7792 SDValue Op = DAG.getAnyExtOrTrunc(N0.getOperand(0), SDLoc(N), VT); 7793 AddToWorklist(Op.getNode()); 7794 SDValue And = DAG.getZeroExtendInReg(Op, SDLoc(N), MinVT.getScalarType()); 7795 // We may safely transfer the debug info describing the truncate node over 7796 // to the equivalent and operation. 7797 DAG.transferDbgValues(N0, And); 7798 return And; 7799 } 7800 } 7801 7802 // Fold (zext (and (trunc x), cst)) -> (and x, cst), 7803 // if either of the casts is not free. 7804 if (N0.getOpcode() == ISD::AND && 7805 N0.getOperand(0).getOpcode() == ISD::TRUNCATE && 7806 N0.getOperand(1).getOpcode() == ISD::Constant && 7807 (!TLI.isTruncateFree(N0.getOperand(0).getOperand(0).getValueType(), 7808 N0.getValueType()) || 7809 !TLI.isZExtFree(N0.getValueType(), VT))) { 7810 SDValue X = N0.getOperand(0).getOperand(0); 7811 X = DAG.getAnyExtOrTrunc(X, SDLoc(X), VT); 7812 APInt Mask = cast<ConstantSDNode>(N0.getOperand(1))->getAPIntValue(); 7813 Mask = Mask.zext(VT.getSizeInBits()); 7814 SDLoc DL(N); 7815 return DAG.getNode(ISD::AND, DL, VT, 7816 X, DAG.getConstant(Mask, DL, VT)); 7817 } 7818 7819 // fold (zext (load x)) -> (zext (truncate (zextload x))) 7820 // Only generate vector extloads when 1) they're legal, and 2) they are 7821 // deemed desirable by the target. 7822 if (ISD::isNON_EXTLoad(N0.getNode()) && ISD::isUNINDEXEDLoad(N0.getNode()) && 7823 ((!LegalOperations && !VT.isVector() && 7824 !cast<LoadSDNode>(N0)->isVolatile()) || 7825 TLI.isLoadExtLegal(ISD::ZEXTLOAD, VT, N0.getValueType()))) { 7826 bool DoXform = true; 7827 SmallVector<SDNode*, 4> SetCCs; 7828 if (!N0.hasOneUse()) 7829 DoXform = ExtendUsesToFormExtLoad(N, N0, ISD::ZERO_EXTEND, SetCCs, TLI); 7830 if (VT.isVector()) 7831 DoXform &= TLI.isVectorLoadExtDesirable(SDValue(N, 0)); 7832 if (DoXform) { 7833 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 7834 SDValue ExtLoad = DAG.getExtLoad(ISD::ZEXTLOAD, SDLoc(N), VT, 7835 LN0->getChain(), 7836 LN0->getBasePtr(), N0.getValueType(), 7837 LN0->getMemOperand()); 7838 7839 SDValue Trunc = DAG.getNode(ISD::TRUNCATE, SDLoc(N0), 7840 N0.getValueType(), ExtLoad); 7841 ExtendSetCCUses(SetCCs, Trunc, ExtLoad, SDLoc(N), ISD::ZERO_EXTEND); 7842 // If the load value is used only by N, replace it via CombineTo N. 7843 bool NoReplaceTrunc = SDValue(LN0, 0).hasOneUse(); 7844 CombineTo(N, ExtLoad); 7845 if (NoReplaceTrunc) 7846 DAG.ReplaceAllUsesOfValueWith(SDValue(LN0, 1), ExtLoad.getValue(1)); 7847 else 7848 CombineTo(LN0, Trunc, ExtLoad.getValue(1)); 7849 return SDValue(N, 0); // Return N so it doesn't get rechecked! 7850 } 7851 } 7852 7853 // fold (zext (load x)) to multiple smaller zextloads. 7854 // Only on illegal but splittable vectors. 7855 if (SDValue ExtLoad = CombineExtLoad(N)) 7856 return ExtLoad; 7857 7858 // fold (zext (and/or/xor (load x), cst)) -> 7859 // (and/or/xor (zextload x), (zext cst)) 7860 // Unless (and (load x) cst) will match as a zextload already and has 7861 // additional users. 7862 if ((N0.getOpcode() == ISD::AND || N0.getOpcode() == ISD::OR || 7863 N0.getOpcode() == ISD::XOR) && 7864 isa<LoadSDNode>(N0.getOperand(0)) && 7865 N0.getOperand(1).getOpcode() == ISD::Constant && 7866 TLI.isLoadExtLegal(ISD::ZEXTLOAD, VT, N0.getValueType()) && 7867 (!LegalOperations && TLI.isOperationLegal(N0.getOpcode(), VT))) { 7868 LoadSDNode *LN0 = cast<LoadSDNode>(N0.getOperand(0)); 7869 if (LN0->getExtensionType() != ISD::SEXTLOAD && LN0->isUnindexed()) { 7870 bool DoXform = true; 7871 SmallVector<SDNode*, 4> SetCCs; 7872 if (!N0.hasOneUse()) { 7873 if (N0.getOpcode() == ISD::AND) { 7874 auto *AndC = cast<ConstantSDNode>(N0.getOperand(1)); 7875 EVT LoadResultTy = AndC->getValueType(0); 7876 EVT ExtVT; 7877 if (isAndLoadExtLoad(AndC, LN0, LoadResultTy, ExtVT)) 7878 DoXform = false; 7879 } 7880 if (DoXform) 7881 DoXform = ExtendUsesToFormExtLoad(N, N0.getOperand(0), 7882 ISD::ZERO_EXTEND, SetCCs, TLI); 7883 } 7884 if (DoXform) { 7885 SDValue ExtLoad = DAG.getExtLoad(ISD::ZEXTLOAD, SDLoc(LN0), VT, 7886 LN0->getChain(), LN0->getBasePtr(), 7887 LN0->getMemoryVT(), 7888 LN0->getMemOperand()); 7889 APInt Mask = cast<ConstantSDNode>(N0.getOperand(1))->getAPIntValue(); 7890 Mask = Mask.zext(VT.getSizeInBits()); 7891 SDLoc DL(N); 7892 SDValue And = DAG.getNode(N0.getOpcode(), DL, VT, 7893 ExtLoad, DAG.getConstant(Mask, DL, VT)); 7894 SDValue Trunc = DAG.getNode(ISD::TRUNCATE, 7895 SDLoc(N0.getOperand(0)), 7896 N0.getOperand(0).getValueType(), ExtLoad); 7897 ExtendSetCCUses(SetCCs, Trunc, ExtLoad, DL, ISD::ZERO_EXTEND); 7898 bool NoReplaceTruncAnd = !N0.hasOneUse(); 7899 bool NoReplaceTrunc = SDValue(LN0, 0).hasOneUse(); 7900 CombineTo(N, And); 7901 // If N0 has multiple uses, change other uses as well. 7902 if (NoReplaceTruncAnd) { 7903 SDValue TruncAnd = 7904 DAG.getNode(ISD::TRUNCATE, DL, N0.getValueType(), And); 7905 CombineTo(N0.getNode(), TruncAnd); 7906 } 7907 if (NoReplaceTrunc) 7908 DAG.ReplaceAllUsesOfValueWith(SDValue(LN0, 1), ExtLoad.getValue(1)); 7909 else 7910 CombineTo(LN0, Trunc, ExtLoad.getValue(1)); 7911 return SDValue(N,0); // Return N so it doesn't get rechecked! 7912 } 7913 } 7914 } 7915 7916 // fold (zext (zextload x)) -> (zext (truncate (zextload x))) 7917 // fold (zext ( extload x)) -> (zext (truncate (zextload x))) 7918 if ((ISD::isZEXTLoad(N0.getNode()) || ISD::isEXTLoad(N0.getNode())) && 7919 ISD::isUNINDEXEDLoad(N0.getNode()) && N0.hasOneUse()) { 7920 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 7921 EVT MemVT = LN0->getMemoryVT(); 7922 if ((!LegalOperations && !LN0->isVolatile()) || 7923 TLI.isLoadExtLegal(ISD::ZEXTLOAD, VT, MemVT)) { 7924 SDValue ExtLoad = DAG.getExtLoad(ISD::ZEXTLOAD, SDLoc(N), VT, 7925 LN0->getChain(), 7926 LN0->getBasePtr(), MemVT, 7927 LN0->getMemOperand()); 7928 CombineTo(N, ExtLoad); 7929 CombineTo(N0.getNode(), 7930 DAG.getNode(ISD::TRUNCATE, SDLoc(N0), N0.getValueType(), 7931 ExtLoad), 7932 ExtLoad.getValue(1)); 7933 return SDValue(N, 0); // Return N so it doesn't get rechecked! 7934 } 7935 } 7936 7937 if (N0.getOpcode() == ISD::SETCC) { 7938 // Only do this before legalize for now. 7939 if (!LegalOperations && VT.isVector() && 7940 N0.getValueType().getVectorElementType() == MVT::i1) { 7941 EVT N00VT = N0.getOperand(0).getValueType(); 7942 if (getSetCCResultType(N00VT) == N0.getValueType()) 7943 return SDValue(); 7944 7945 // We know that the # elements of the results is the same as the # 7946 // elements of the compare (and the # elements of the compare result for 7947 // that matter). Check to see that they are the same size. If so, we know 7948 // that the element size of the sext'd result matches the element size of 7949 // the compare operands. 7950 SDLoc DL(N); 7951 SDValue VecOnes = DAG.getConstant(1, DL, VT); 7952 if (VT.getSizeInBits() == N00VT.getSizeInBits()) { 7953 // zext(setcc) -> (and (vsetcc), (1, 1, ...) for vectors. 7954 SDValue VSetCC = DAG.getNode(ISD::SETCC, DL, VT, N0.getOperand(0), 7955 N0.getOperand(1), N0.getOperand(2)); 7956 return DAG.getNode(ISD::AND, DL, VT, VSetCC, VecOnes); 7957 } 7958 7959 // If the desired elements are smaller or larger than the source 7960 // elements we can use a matching integer vector type and then 7961 // truncate/sign extend. 7962 EVT MatchingVectorType = N00VT.changeVectorElementTypeToInteger(); 7963 SDValue VsetCC = 7964 DAG.getNode(ISD::SETCC, DL, MatchingVectorType, N0.getOperand(0), 7965 N0.getOperand(1), N0.getOperand(2)); 7966 return DAG.getNode(ISD::AND, DL, VT, DAG.getSExtOrTrunc(VsetCC, DL, VT), 7967 VecOnes); 7968 } 7969 7970 // zext(setcc x,y,cc) -> select_cc x, y, 1, 0, cc 7971 SDLoc DL(N); 7972 if (SDValue SCC = SimplifySelectCC( 7973 DL, N0.getOperand(0), N0.getOperand(1), DAG.getConstant(1, DL, VT), 7974 DAG.getConstant(0, DL, VT), 7975 cast<CondCodeSDNode>(N0.getOperand(2))->get(), true)) 7976 return SCC; 7977 } 7978 7979 // (zext (shl (zext x), cst)) -> (shl (zext x), cst) 7980 if ((N0.getOpcode() == ISD::SHL || N0.getOpcode() == ISD::SRL) && 7981 isa<ConstantSDNode>(N0.getOperand(1)) && 7982 N0.getOperand(0).getOpcode() == ISD::ZERO_EXTEND && 7983 N0.hasOneUse()) { 7984 SDValue ShAmt = N0.getOperand(1); 7985 unsigned ShAmtVal = cast<ConstantSDNode>(ShAmt)->getZExtValue(); 7986 if (N0.getOpcode() == ISD::SHL) { 7987 SDValue InnerZExt = N0.getOperand(0); 7988 // If the original shl may be shifting out bits, do not perform this 7989 // transformation. 7990 unsigned KnownZeroBits = InnerZExt.getValueSizeInBits() - 7991 InnerZExt.getOperand(0).getValueSizeInBits(); 7992 if (ShAmtVal > KnownZeroBits) 7993 return SDValue(); 7994 } 7995 7996 SDLoc DL(N); 7997 7998 // Ensure that the shift amount is wide enough for the shifted value. 7999 if (VT.getSizeInBits() >= 256) 8000 ShAmt = DAG.getNode(ISD::ZERO_EXTEND, DL, MVT::i32, ShAmt); 8001 8002 return DAG.getNode(N0.getOpcode(), DL, VT, 8003 DAG.getNode(ISD::ZERO_EXTEND, DL, VT, N0.getOperand(0)), 8004 ShAmt); 8005 } 8006 8007 if (SDValue NewVSel = matchVSelectOpSizesWithSetCC(N)) 8008 return NewVSel; 8009 8010 return SDValue(); 8011 } 8012 8013 SDValue DAGCombiner::visitANY_EXTEND(SDNode *N) { 8014 SDValue N0 = N->getOperand(0); 8015 EVT VT = N->getValueType(0); 8016 8017 if (SDNode *Res = tryToFoldExtendOfConstant(N, TLI, DAG, LegalTypes, 8018 LegalOperations)) 8019 return SDValue(Res, 0); 8020 8021 // fold (aext (aext x)) -> (aext x) 8022 // fold (aext (zext x)) -> (zext x) 8023 // fold (aext (sext x)) -> (sext x) 8024 if (N0.getOpcode() == ISD::ANY_EXTEND || 8025 N0.getOpcode() == ISD::ZERO_EXTEND || 8026 N0.getOpcode() == ISD::SIGN_EXTEND) 8027 return DAG.getNode(N0.getOpcode(), SDLoc(N), VT, N0.getOperand(0)); 8028 8029 // fold (aext (truncate (load x))) -> (aext (smaller load x)) 8030 // fold (aext (truncate (srl (load x), c))) -> (aext (small load (x+c/n))) 8031 if (N0.getOpcode() == ISD::TRUNCATE) { 8032 if (SDValue NarrowLoad = ReduceLoadWidth(N0.getNode())) { 8033 SDNode *oye = N0.getOperand(0).getNode(); 8034 if (NarrowLoad.getNode() != N0.getNode()) { 8035 CombineTo(N0.getNode(), NarrowLoad); 8036 // CombineTo deleted the truncate, if needed, but not what's under it. 8037 AddToWorklist(oye); 8038 } 8039 return SDValue(N, 0); // Return N so it doesn't get rechecked! 8040 } 8041 } 8042 8043 // fold (aext (truncate x)) 8044 if (N0.getOpcode() == ISD::TRUNCATE) 8045 return DAG.getAnyExtOrTrunc(N0.getOperand(0), SDLoc(N), VT); 8046 8047 // Fold (aext (and (trunc x), cst)) -> (and x, cst) 8048 // if the trunc is not free. 8049 if (N0.getOpcode() == ISD::AND && 8050 N0.getOperand(0).getOpcode() == ISD::TRUNCATE && 8051 N0.getOperand(1).getOpcode() == ISD::Constant && 8052 !TLI.isTruncateFree(N0.getOperand(0).getOperand(0).getValueType(), 8053 N0.getValueType())) { 8054 SDLoc DL(N); 8055 SDValue X = N0.getOperand(0).getOperand(0); 8056 X = DAG.getAnyExtOrTrunc(X, DL, VT); 8057 APInt Mask = cast<ConstantSDNode>(N0.getOperand(1))->getAPIntValue(); 8058 Mask = Mask.zext(VT.getSizeInBits()); 8059 return DAG.getNode(ISD::AND, DL, VT, 8060 X, DAG.getConstant(Mask, DL, VT)); 8061 } 8062 8063 // fold (aext (load x)) -> (aext (truncate (extload x))) 8064 // None of the supported targets knows how to perform load and any_ext 8065 // on vectors in one instruction. We only perform this transformation on 8066 // scalars. 8067 if (ISD::isNON_EXTLoad(N0.getNode()) && !VT.isVector() && 8068 ISD::isUNINDEXEDLoad(N0.getNode()) && 8069 TLI.isLoadExtLegal(ISD::EXTLOAD, VT, N0.getValueType())) { 8070 bool DoXform = true; 8071 SmallVector<SDNode*, 4> SetCCs; 8072 if (!N0.hasOneUse()) 8073 DoXform = ExtendUsesToFormExtLoad(N, N0, ISD::ANY_EXTEND, SetCCs, TLI); 8074 if (DoXform) { 8075 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 8076 SDValue ExtLoad = DAG.getExtLoad(ISD::EXTLOAD, SDLoc(N), VT, 8077 LN0->getChain(), 8078 LN0->getBasePtr(), N0.getValueType(), 8079 LN0->getMemOperand()); 8080 SDValue Trunc = DAG.getNode(ISD::TRUNCATE, SDLoc(N0), 8081 N0.getValueType(), ExtLoad); 8082 ExtendSetCCUses(SetCCs, Trunc, ExtLoad, SDLoc(N), 8083 ISD::ANY_EXTEND); 8084 // If the load value is used only by N, replace it via CombineTo N. 8085 bool NoReplaceTrunc = N0.hasOneUse(); 8086 CombineTo(N, ExtLoad); 8087 if (NoReplaceTrunc) 8088 DAG.ReplaceAllUsesOfValueWith(SDValue(LN0, 1), ExtLoad.getValue(1)); 8089 else 8090 CombineTo(LN0, Trunc, ExtLoad.getValue(1)); 8091 return SDValue(N, 0); // Return N so it doesn't get rechecked! 8092 } 8093 } 8094 8095 // fold (aext (zextload x)) -> (aext (truncate (zextload x))) 8096 // fold (aext (sextload x)) -> (aext (truncate (sextload x))) 8097 // fold (aext ( extload x)) -> (aext (truncate (extload x))) 8098 if (N0.getOpcode() == ISD::LOAD && 8099 !ISD::isNON_EXTLoad(N0.getNode()) && ISD::isUNINDEXEDLoad(N0.getNode()) && 8100 N0.hasOneUse()) { 8101 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 8102 ISD::LoadExtType ExtType = LN0->getExtensionType(); 8103 EVT MemVT = LN0->getMemoryVT(); 8104 if (!LegalOperations || TLI.isLoadExtLegal(ExtType, VT, MemVT)) { 8105 SDValue ExtLoad = DAG.getExtLoad(ExtType, SDLoc(N), 8106 VT, LN0->getChain(), LN0->getBasePtr(), 8107 MemVT, LN0->getMemOperand()); 8108 CombineTo(N, ExtLoad); 8109 CombineTo(N0.getNode(), 8110 DAG.getNode(ISD::TRUNCATE, SDLoc(N0), 8111 N0.getValueType(), ExtLoad), 8112 ExtLoad.getValue(1)); 8113 return SDValue(N, 0); // Return N so it doesn't get rechecked! 8114 } 8115 } 8116 8117 if (N0.getOpcode() == ISD::SETCC) { 8118 // For vectors: 8119 // aext(setcc) -> vsetcc 8120 // aext(setcc) -> truncate(vsetcc) 8121 // aext(setcc) -> aext(vsetcc) 8122 // Only do this before legalize for now. 8123 if (VT.isVector() && !LegalOperations) { 8124 EVT N00VT = N0.getOperand(0).getValueType(); 8125 if (getSetCCResultType(N00VT) == N0.getValueType()) 8126 return SDValue(); 8127 8128 // We know that the # elements of the results is the same as the 8129 // # elements of the compare (and the # elements of the compare result 8130 // for that matter). Check to see that they are the same size. If so, 8131 // we know that the element size of the sext'd result matches the 8132 // element size of the compare operands. 8133 if (VT.getSizeInBits() == N00VT.getSizeInBits()) 8134 return DAG.getSetCC(SDLoc(N), VT, N0.getOperand(0), 8135 N0.getOperand(1), 8136 cast<CondCodeSDNode>(N0.getOperand(2))->get()); 8137 // If the desired elements are smaller or larger than the source 8138 // elements we can use a matching integer vector type and then 8139 // truncate/any extend 8140 else { 8141 EVT MatchingVectorType = N00VT.changeVectorElementTypeToInteger(); 8142 SDValue VsetCC = 8143 DAG.getSetCC(SDLoc(N), MatchingVectorType, N0.getOperand(0), 8144 N0.getOperand(1), 8145 cast<CondCodeSDNode>(N0.getOperand(2))->get()); 8146 return DAG.getAnyExtOrTrunc(VsetCC, SDLoc(N), VT); 8147 } 8148 } 8149 8150 // aext(setcc x,y,cc) -> select_cc x, y, 1, 0, cc 8151 SDLoc DL(N); 8152 if (SDValue SCC = SimplifySelectCC( 8153 DL, N0.getOperand(0), N0.getOperand(1), DAG.getConstant(1, DL, VT), 8154 DAG.getConstant(0, DL, VT), 8155 cast<CondCodeSDNode>(N0.getOperand(2))->get(), true)) 8156 return SCC; 8157 } 8158 8159 return SDValue(); 8160 } 8161 8162 SDValue DAGCombiner::visitAssertExt(SDNode *N) { 8163 unsigned Opcode = N->getOpcode(); 8164 SDValue N0 = N->getOperand(0); 8165 SDValue N1 = N->getOperand(1); 8166 EVT AssertVT = cast<VTSDNode>(N1)->getVT(); 8167 8168 // fold (assert?ext (assert?ext x, vt), vt) -> (assert?ext x, vt) 8169 if (N0.getOpcode() == Opcode && 8170 AssertVT == cast<VTSDNode>(N0.getOperand(1))->getVT()) 8171 return N0; 8172 8173 if (N0.getOpcode() == ISD::TRUNCATE && N0.hasOneUse() && 8174 N0.getOperand(0).getOpcode() == Opcode) { 8175 // We have an assert, truncate, assert sandwich. Make one stronger assert 8176 // by asserting on the smallest asserted type to the larger source type. 8177 // This eliminates the later assert: 8178 // assert (trunc (assert X, i8) to iN), i1 --> trunc (assert X, i1) to iN 8179 // assert (trunc (assert X, i1) to iN), i8 --> trunc (assert X, i1) to iN 8180 SDValue BigA = N0.getOperand(0); 8181 EVT BigA_AssertVT = cast<VTSDNode>(BigA.getOperand(1))->getVT(); 8182 assert(BigA_AssertVT.bitsLE(N0.getValueType()) && 8183 "Asserting zero/sign-extended bits to a type larger than the " 8184 "truncated destination does not provide information"); 8185 8186 SDLoc DL(N); 8187 EVT MinAssertVT = AssertVT.bitsLT(BigA_AssertVT) ? AssertVT : BigA_AssertVT; 8188 SDValue MinAssertVTVal = DAG.getValueType(MinAssertVT); 8189 SDValue NewAssert = DAG.getNode(Opcode, DL, BigA.getValueType(), 8190 BigA.getOperand(0), MinAssertVTVal); 8191 return DAG.getNode(ISD::TRUNCATE, DL, N->getValueType(0), NewAssert); 8192 } 8193 8194 return SDValue(); 8195 } 8196 8197 /// If the result of a wider load is shifted to right of N bits and then 8198 /// truncated to a narrower type and where N is a multiple of number of bits of 8199 /// the narrower type, transform it to a narrower load from address + N / num of 8200 /// bits of new type. Also narrow the load if the result is masked with an AND 8201 /// to effectively produce a smaller type. If the result is to be extended, also 8202 /// fold the extension to form a extending load. 8203 SDValue DAGCombiner::ReduceLoadWidth(SDNode *N) { 8204 unsigned Opc = N->getOpcode(); 8205 8206 ISD::LoadExtType ExtType = ISD::NON_EXTLOAD; 8207 SDValue N0 = N->getOperand(0); 8208 EVT VT = N->getValueType(0); 8209 EVT ExtVT = VT; 8210 8211 // This transformation isn't valid for vector loads. 8212 if (VT.isVector()) 8213 return SDValue(); 8214 8215 // Special case: SIGN_EXTEND_INREG is basically truncating to ExtVT then 8216 // extended to VT. 8217 if (Opc == ISD::SIGN_EXTEND_INREG) { 8218 ExtType = ISD::SEXTLOAD; 8219 ExtVT = cast<VTSDNode>(N->getOperand(1))->getVT(); 8220 } else if (Opc == ISD::SRL) { 8221 // Another special-case: SRL is basically zero-extending a narrower value, 8222 // or it maybe shifting a higher subword, half or byte into the lowest 8223 // bits. 8224 ExtType = ISD::ZEXTLOAD; 8225 N0 = SDValue(N, 0); 8226 8227 auto *LN0 = dyn_cast<LoadSDNode>(N0.getOperand(0)); 8228 auto *N01 = dyn_cast<ConstantSDNode>(N0.getOperand(1)); 8229 if (!N01 || !LN0) 8230 return SDValue(); 8231 8232 uint64_t ShiftAmt = N01->getZExtValue(); 8233 uint64_t MemoryWidth = LN0->getMemoryVT().getSizeInBits(); 8234 if (LN0->getExtensionType() != ISD::SEXTLOAD && MemoryWidth > ShiftAmt) 8235 ExtVT = EVT::getIntegerVT(*DAG.getContext(), MemoryWidth - ShiftAmt); 8236 else 8237 ExtVT = EVT::getIntegerVT(*DAG.getContext(), 8238 VT.getSizeInBits() - ShiftAmt); 8239 } else if (Opc == ISD::AND) { 8240 // An AND with a constant mask is the same as a truncate + zero-extend. 8241 auto AndC = dyn_cast<ConstantSDNode>(N->getOperand(1)); 8242 if (!AndC || !AndC->getAPIntValue().isMask()) 8243 return SDValue(); 8244 8245 unsigned ActiveBits = AndC->getAPIntValue().countTrailingOnes(); 8246 ExtType = ISD::ZEXTLOAD; 8247 ExtVT = EVT::getIntegerVT(*DAG.getContext(), ActiveBits); 8248 } 8249 8250 unsigned ShAmt = 0; 8251 if (N0.getOpcode() == ISD::SRL && N0.hasOneUse()) { 8252 if (ConstantSDNode *N01 = dyn_cast<ConstantSDNode>(N0.getOperand(1))) { 8253 ShAmt = N01->getZExtValue(); 8254 unsigned EVTBits = ExtVT.getSizeInBits(); 8255 // Is the shift amount a multiple of size of VT? 8256 if ((ShAmt & (EVTBits-1)) == 0) { 8257 N0 = N0.getOperand(0); 8258 // Is the load width a multiple of size of VT? 8259 if ((N0.getValueSizeInBits() & (EVTBits-1)) != 0) 8260 return SDValue(); 8261 } 8262 8263 // At this point, we must have a load or else we can't do the transform. 8264 if (!isa<LoadSDNode>(N0)) return SDValue(); 8265 8266 // Because a SRL must be assumed to *need* to zero-extend the high bits 8267 // (as opposed to anyext the high bits), we can't combine the zextload 8268 // lowering of SRL and an sextload. 8269 if (cast<LoadSDNode>(N0)->getExtensionType() == ISD::SEXTLOAD) 8270 return SDValue(); 8271 8272 // If the shift amount is larger than the input type then we're not 8273 // accessing any of the loaded bytes. If the load was a zextload/extload 8274 // then the result of the shift+trunc is zero/undef (handled elsewhere). 8275 if (ShAmt >= cast<LoadSDNode>(N0)->getMemoryVT().getSizeInBits()) 8276 return SDValue(); 8277 } 8278 } 8279 8280 // If the load is shifted left (and the result isn't shifted back right), 8281 // we can fold the truncate through the shift. 8282 unsigned ShLeftAmt = 0; 8283 if (ShAmt == 0 && N0.getOpcode() == ISD::SHL && N0.hasOneUse() && 8284 ExtVT == VT && TLI.isNarrowingProfitable(N0.getValueType(), VT)) { 8285 if (ConstantSDNode *N01 = dyn_cast<ConstantSDNode>(N0.getOperand(1))) { 8286 ShLeftAmt = N01->getZExtValue(); 8287 N0 = N0.getOperand(0); 8288 } 8289 } 8290 8291 // If we haven't found a load, we can't narrow it. 8292 if (!isa<LoadSDNode>(N0)) 8293 return SDValue(); 8294 8295 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 8296 if (!isLegalNarrowLoad(LN0, ExtType, ExtVT, ShAmt)) 8297 return SDValue(); 8298 8299 // For big endian targets, we need to adjust the offset to the pointer to 8300 // load the correct bytes. 8301 if (DAG.getDataLayout().isBigEndian()) { 8302 unsigned LVTStoreBits = LN0->getMemoryVT().getStoreSizeInBits(); 8303 unsigned EVTStoreBits = ExtVT.getStoreSizeInBits(); 8304 ShAmt = LVTStoreBits - EVTStoreBits - ShAmt; 8305 } 8306 8307 EVT PtrType = N0.getOperand(1).getValueType(); 8308 uint64_t PtrOff = ShAmt / 8; 8309 unsigned NewAlign = MinAlign(LN0->getAlignment(), PtrOff); 8310 SDLoc DL(LN0); 8311 // The original load itself didn't wrap, so an offset within it doesn't. 8312 SDNodeFlags Flags; 8313 Flags.setNoUnsignedWrap(true); 8314 SDValue NewPtr = DAG.getNode(ISD::ADD, DL, 8315 PtrType, LN0->getBasePtr(), 8316 DAG.getConstant(PtrOff, DL, PtrType), 8317 Flags); 8318 AddToWorklist(NewPtr.getNode()); 8319 8320 SDValue Load; 8321 if (ExtType == ISD::NON_EXTLOAD) 8322 Load = DAG.getLoad(VT, SDLoc(N0), LN0->getChain(), NewPtr, 8323 LN0->getPointerInfo().getWithOffset(PtrOff), NewAlign, 8324 LN0->getMemOperand()->getFlags(), LN0->getAAInfo()); 8325 else 8326 Load = DAG.getExtLoad(ExtType, SDLoc(N0), VT, LN0->getChain(), NewPtr, 8327 LN0->getPointerInfo().getWithOffset(PtrOff), ExtVT, 8328 NewAlign, LN0->getMemOperand()->getFlags(), 8329 LN0->getAAInfo()); 8330 8331 // Replace the old load's chain with the new load's chain. 8332 WorklistRemover DeadNodes(*this); 8333 DAG.ReplaceAllUsesOfValueWith(N0.getValue(1), Load.getValue(1)); 8334 8335 // Shift the result left, if we've swallowed a left shift. 8336 SDValue Result = Load; 8337 if (ShLeftAmt != 0) { 8338 EVT ShImmTy = getShiftAmountTy(Result.getValueType()); 8339 if (!isUIntN(ShImmTy.getSizeInBits(), ShLeftAmt)) 8340 ShImmTy = VT; 8341 // If the shift amount is as large as the result size (but, presumably, 8342 // no larger than the source) then the useful bits of the result are 8343 // zero; we can't simply return the shortened shift, because the result 8344 // of that operation is undefined. 8345 SDLoc DL(N0); 8346 if (ShLeftAmt >= VT.getSizeInBits()) 8347 Result = DAG.getConstant(0, DL, VT); 8348 else 8349 Result = DAG.getNode(ISD::SHL, DL, VT, 8350 Result, DAG.getConstant(ShLeftAmt, DL, ShImmTy)); 8351 } 8352 8353 // Return the new loaded value. 8354 return Result; 8355 } 8356 8357 SDValue DAGCombiner::visitSIGN_EXTEND_INREG(SDNode *N) { 8358 SDValue N0 = N->getOperand(0); 8359 SDValue N1 = N->getOperand(1); 8360 EVT VT = N->getValueType(0); 8361 EVT EVT = cast<VTSDNode>(N1)->getVT(); 8362 unsigned VTBits = VT.getScalarSizeInBits(); 8363 unsigned EVTBits = EVT.getScalarSizeInBits(); 8364 8365 if (N0.isUndef()) 8366 return DAG.getUNDEF(VT); 8367 8368 // fold (sext_in_reg c1) -> c1 8369 if (DAG.isConstantIntBuildVectorOrConstantInt(N0)) 8370 return DAG.getNode(ISD::SIGN_EXTEND_INREG, SDLoc(N), VT, N0, N1); 8371 8372 // If the input is already sign extended, just drop the extension. 8373 if (DAG.ComputeNumSignBits(N0) >= VTBits-EVTBits+1) 8374 return N0; 8375 8376 // fold (sext_in_reg (sext_in_reg x, VT2), VT1) -> (sext_in_reg x, minVT) pt2 8377 if (N0.getOpcode() == ISD::SIGN_EXTEND_INREG && 8378 EVT.bitsLT(cast<VTSDNode>(N0.getOperand(1))->getVT())) 8379 return DAG.getNode(ISD::SIGN_EXTEND_INREG, SDLoc(N), VT, 8380 N0.getOperand(0), N1); 8381 8382 // fold (sext_in_reg (sext x)) -> (sext x) 8383 // fold (sext_in_reg (aext x)) -> (sext x) 8384 // if x is small enough. 8385 if (N0.getOpcode() == ISD::SIGN_EXTEND || N0.getOpcode() == ISD::ANY_EXTEND) { 8386 SDValue N00 = N0.getOperand(0); 8387 if (N00.getScalarValueSizeInBits() <= EVTBits && 8388 (!LegalOperations || TLI.isOperationLegal(ISD::SIGN_EXTEND, VT))) 8389 return DAG.getNode(ISD::SIGN_EXTEND, SDLoc(N), VT, N00, N1); 8390 } 8391 8392 // fold (sext_in_reg (*_extend_vector_inreg x)) -> (sext_vector_in_reg x) 8393 if ((N0.getOpcode() == ISD::ANY_EXTEND_VECTOR_INREG || 8394 N0.getOpcode() == ISD::SIGN_EXTEND_VECTOR_INREG || 8395 N0.getOpcode() == ISD::ZERO_EXTEND_VECTOR_INREG) && 8396 N0.getOperand(0).getScalarValueSizeInBits() == EVTBits) { 8397 if (!LegalOperations || 8398 TLI.isOperationLegal(ISD::SIGN_EXTEND_VECTOR_INREG, VT)) 8399 return DAG.getSignExtendVectorInReg(N0.getOperand(0), SDLoc(N), VT); 8400 } 8401 8402 // fold (sext_in_reg (zext x)) -> (sext x) 8403 // iff we are extending the source sign bit. 8404 if (N0.getOpcode() == ISD::ZERO_EXTEND) { 8405 SDValue N00 = N0.getOperand(0); 8406 if (N00.getScalarValueSizeInBits() == EVTBits && 8407 (!LegalOperations || TLI.isOperationLegal(ISD::SIGN_EXTEND, VT))) 8408 return DAG.getNode(ISD::SIGN_EXTEND, SDLoc(N), VT, N00, N1); 8409 } 8410 8411 // fold (sext_in_reg x) -> (zext_in_reg x) if the sign bit is known zero. 8412 if (DAG.MaskedValueIsZero(N0, APInt::getOneBitSet(VTBits, EVTBits - 1))) 8413 return DAG.getZeroExtendInReg(N0, SDLoc(N), EVT.getScalarType()); 8414 8415 // fold operands of sext_in_reg based on knowledge that the top bits are not 8416 // demanded. 8417 if (SimplifyDemandedBits(SDValue(N, 0))) 8418 return SDValue(N, 0); 8419 8420 // fold (sext_in_reg (load x)) -> (smaller sextload x) 8421 // fold (sext_in_reg (srl (load x), c)) -> (smaller sextload (x+c/evtbits)) 8422 if (SDValue NarrowLoad = ReduceLoadWidth(N)) 8423 return NarrowLoad; 8424 8425 // fold (sext_in_reg (srl X, 24), i8) -> (sra X, 24) 8426 // fold (sext_in_reg (srl X, 23), i8) -> (sra X, 23) iff possible. 8427 // We already fold "(sext_in_reg (srl X, 25), i8) -> srl X, 25" above. 8428 if (N0.getOpcode() == ISD::SRL) { 8429 if (ConstantSDNode *ShAmt = dyn_cast<ConstantSDNode>(N0.getOperand(1))) 8430 if (ShAmt->getZExtValue()+EVTBits <= VTBits) { 8431 // We can turn this into an SRA iff the input to the SRL is already sign 8432 // extended enough. 8433 unsigned InSignBits = DAG.ComputeNumSignBits(N0.getOperand(0)); 8434 if (VTBits-(ShAmt->getZExtValue()+EVTBits) < InSignBits) 8435 return DAG.getNode(ISD::SRA, SDLoc(N), VT, 8436 N0.getOperand(0), N0.getOperand(1)); 8437 } 8438 } 8439 8440 // fold (sext_inreg (extload x)) -> (sextload x) 8441 // If sextload is not supported by target, we can only do the combine when 8442 // load has one use. Doing otherwise can block folding the extload with other 8443 // extends that the target does support. 8444 if (ISD::isEXTLoad(N0.getNode()) && 8445 ISD::isUNINDEXEDLoad(N0.getNode()) && 8446 EVT == cast<LoadSDNode>(N0)->getMemoryVT() && 8447 ((!LegalOperations && !cast<LoadSDNode>(N0)->isVolatile() && 8448 N0.hasOneUse()) || 8449 TLI.isLoadExtLegal(ISD::SEXTLOAD, VT, EVT))) { 8450 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 8451 SDValue ExtLoad = DAG.getExtLoad(ISD::SEXTLOAD, SDLoc(N), VT, 8452 LN0->getChain(), 8453 LN0->getBasePtr(), EVT, 8454 LN0->getMemOperand()); 8455 CombineTo(N, ExtLoad); 8456 CombineTo(N0.getNode(), ExtLoad, ExtLoad.getValue(1)); 8457 AddToWorklist(ExtLoad.getNode()); 8458 return SDValue(N, 0); // Return N so it doesn't get rechecked! 8459 } 8460 // fold (sext_inreg (zextload x)) -> (sextload x) iff load has one use 8461 if (ISD::isZEXTLoad(N0.getNode()) && ISD::isUNINDEXEDLoad(N0.getNode()) && 8462 N0.hasOneUse() && 8463 EVT == cast<LoadSDNode>(N0)->getMemoryVT() && 8464 ((!LegalOperations && !cast<LoadSDNode>(N0)->isVolatile()) || 8465 TLI.isLoadExtLegal(ISD::SEXTLOAD, VT, EVT))) { 8466 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 8467 SDValue ExtLoad = DAG.getExtLoad(ISD::SEXTLOAD, SDLoc(N), VT, 8468 LN0->getChain(), 8469 LN0->getBasePtr(), EVT, 8470 LN0->getMemOperand()); 8471 CombineTo(N, ExtLoad); 8472 CombineTo(N0.getNode(), ExtLoad, ExtLoad.getValue(1)); 8473 return SDValue(N, 0); // Return N so it doesn't get rechecked! 8474 } 8475 8476 // Form (sext_inreg (bswap >> 16)) or (sext_inreg (rotl (bswap) 16)) 8477 if (EVTBits <= 16 && N0.getOpcode() == ISD::OR) { 8478 if (SDValue BSwap = MatchBSwapHWordLow(N0.getNode(), N0.getOperand(0), 8479 N0.getOperand(1), false)) 8480 return DAG.getNode(ISD::SIGN_EXTEND_INREG, SDLoc(N), VT, 8481 BSwap, N1); 8482 } 8483 8484 return SDValue(); 8485 } 8486 8487 SDValue DAGCombiner::visitSIGN_EXTEND_VECTOR_INREG(SDNode *N) { 8488 SDValue N0 = N->getOperand(0); 8489 EVT VT = N->getValueType(0); 8490 8491 if (N0.isUndef()) 8492 return DAG.getUNDEF(VT); 8493 8494 if (SDNode *Res = tryToFoldExtendOfConstant(N, TLI, DAG, LegalTypes, 8495 LegalOperations)) 8496 return SDValue(Res, 0); 8497 8498 return SDValue(); 8499 } 8500 8501 SDValue DAGCombiner::visitZERO_EXTEND_VECTOR_INREG(SDNode *N) { 8502 SDValue N0 = N->getOperand(0); 8503 EVT VT = N->getValueType(0); 8504 8505 if (N0.isUndef()) 8506 return DAG.getUNDEF(VT); 8507 8508 if (SDNode *Res = tryToFoldExtendOfConstant(N, TLI, DAG, LegalTypes, 8509 LegalOperations)) 8510 return SDValue(Res, 0); 8511 8512 return SDValue(); 8513 } 8514 8515 SDValue DAGCombiner::visitTRUNCATE(SDNode *N) { 8516 SDValue N0 = N->getOperand(0); 8517 EVT VT = N->getValueType(0); 8518 bool isLE = DAG.getDataLayout().isLittleEndian(); 8519 8520 // noop truncate 8521 if (N0.getValueType() == N->getValueType(0)) 8522 return N0; 8523 8524 // fold (truncate (truncate x)) -> (truncate x) 8525 if (N0.getOpcode() == ISD::TRUNCATE) 8526 return DAG.getNode(ISD::TRUNCATE, SDLoc(N), VT, N0.getOperand(0)); 8527 8528 // fold (truncate c1) -> c1 8529 if (DAG.isConstantIntBuildVectorOrConstantInt(N0)) { 8530 SDValue C = DAG.getNode(ISD::TRUNCATE, SDLoc(N), VT, N0); 8531 if (C.getNode() != N) 8532 return C; 8533 } 8534 8535 // fold (truncate (ext x)) -> (ext x) or (truncate x) or x 8536 if (N0.getOpcode() == ISD::ZERO_EXTEND || 8537 N0.getOpcode() == ISD::SIGN_EXTEND || 8538 N0.getOpcode() == ISD::ANY_EXTEND) { 8539 // if the source is smaller than the dest, we still need an extend. 8540 if (N0.getOperand(0).getValueType().bitsLT(VT)) 8541 return DAG.getNode(N0.getOpcode(), SDLoc(N), VT, N0.getOperand(0)); 8542 // if the source is larger than the dest, than we just need the truncate. 8543 if (N0.getOperand(0).getValueType().bitsGT(VT)) 8544 return DAG.getNode(ISD::TRUNCATE, SDLoc(N), VT, N0.getOperand(0)); 8545 // if the source and dest are the same type, we can drop both the extend 8546 // and the truncate. 8547 return N0.getOperand(0); 8548 } 8549 8550 // If this is anyext(trunc), don't fold it, allow ourselves to be folded. 8551 if (N->hasOneUse() && (N->use_begin()->getOpcode() == ISD::ANY_EXTEND)) 8552 return SDValue(); 8553 8554 // Fold extract-and-trunc into a narrow extract. For example: 8555 // i64 x = EXTRACT_VECTOR_ELT(v2i64 val, i32 1) 8556 // i32 y = TRUNCATE(i64 x) 8557 // -- becomes -- 8558 // v16i8 b = BITCAST (v2i64 val) 8559 // i8 x = EXTRACT_VECTOR_ELT(v16i8 b, i32 8) 8560 // 8561 // Note: We only run this optimization after type legalization (which often 8562 // creates this pattern) and before operation legalization after which 8563 // we need to be more careful about the vector instructions that we generate. 8564 if (N0.getOpcode() == ISD::EXTRACT_VECTOR_ELT && 8565 LegalTypes && !LegalOperations && N0->hasOneUse() && VT != MVT::i1) { 8566 EVT VecTy = N0.getOperand(0).getValueType(); 8567 EVT ExTy = N0.getValueType(); 8568 EVT TrTy = N->getValueType(0); 8569 8570 unsigned NumElem = VecTy.getVectorNumElements(); 8571 unsigned SizeRatio = ExTy.getSizeInBits()/TrTy.getSizeInBits(); 8572 8573 EVT NVT = EVT::getVectorVT(*DAG.getContext(), TrTy, SizeRatio * NumElem); 8574 assert(NVT.getSizeInBits() == VecTy.getSizeInBits() && "Invalid Size"); 8575 8576 SDValue EltNo = N0->getOperand(1); 8577 if (isa<ConstantSDNode>(EltNo) && isTypeLegal(NVT)) { 8578 int Elt = cast<ConstantSDNode>(EltNo)->getZExtValue(); 8579 EVT IndexTy = TLI.getVectorIdxTy(DAG.getDataLayout()); 8580 int Index = isLE ? (Elt*SizeRatio) : (Elt*SizeRatio + (SizeRatio-1)); 8581 8582 SDLoc DL(N); 8583 return DAG.getNode(ISD::EXTRACT_VECTOR_ELT, DL, TrTy, 8584 DAG.getBitcast(NVT, N0.getOperand(0)), 8585 DAG.getConstant(Index, DL, IndexTy)); 8586 } 8587 } 8588 8589 // trunc (select c, a, b) -> select c, (trunc a), (trunc b) 8590 if (N0.getOpcode() == ISD::SELECT && N0.hasOneUse()) { 8591 EVT SrcVT = N0.getValueType(); 8592 if ((!LegalOperations || TLI.isOperationLegal(ISD::SELECT, SrcVT)) && 8593 TLI.isTruncateFree(SrcVT, VT)) { 8594 SDLoc SL(N0); 8595 SDValue Cond = N0.getOperand(0); 8596 SDValue TruncOp0 = DAG.getNode(ISD::TRUNCATE, SL, VT, N0.getOperand(1)); 8597 SDValue TruncOp1 = DAG.getNode(ISD::TRUNCATE, SL, VT, N0.getOperand(2)); 8598 return DAG.getNode(ISD::SELECT, SDLoc(N), VT, Cond, TruncOp0, TruncOp1); 8599 } 8600 } 8601 8602 // trunc (shl x, K) -> shl (trunc x), K => K < VT.getScalarSizeInBits() 8603 if (N0.getOpcode() == ISD::SHL && N0.hasOneUse() && 8604 (!LegalOperations || TLI.isOperationLegalOrCustom(ISD::SHL, VT)) && 8605 TLI.isTypeDesirableForOp(ISD::SHL, VT)) { 8606 SDValue Amt = N0.getOperand(1); 8607 KnownBits Known; 8608 DAG.computeKnownBits(Amt, Known); 8609 unsigned Size = VT.getScalarSizeInBits(); 8610 if (Known.getBitWidth() - Known.countMinLeadingZeros() <= Log2_32(Size)) { 8611 SDLoc SL(N); 8612 EVT AmtVT = TLI.getShiftAmountTy(VT, DAG.getDataLayout()); 8613 8614 SDValue Trunc = DAG.getNode(ISD::TRUNCATE, SL, VT, N0.getOperand(0)); 8615 if (AmtVT != Amt.getValueType()) { 8616 Amt = DAG.getZExtOrTrunc(Amt, SL, AmtVT); 8617 AddToWorklist(Amt.getNode()); 8618 } 8619 return DAG.getNode(ISD::SHL, SL, VT, Trunc, Amt); 8620 } 8621 } 8622 8623 // Fold a series of buildvector, bitcast, and truncate if possible. 8624 // For example fold 8625 // (2xi32 trunc (bitcast ((4xi32)buildvector x, x, y, y) 2xi64)) to 8626 // (2xi32 (buildvector x, y)). 8627 if (Level == AfterLegalizeVectorOps && VT.isVector() && 8628 N0.getOpcode() == ISD::BITCAST && N0.hasOneUse() && 8629 N0.getOperand(0).getOpcode() == ISD::BUILD_VECTOR && 8630 N0.getOperand(0).hasOneUse()) { 8631 SDValue BuildVect = N0.getOperand(0); 8632 EVT BuildVectEltTy = BuildVect.getValueType().getVectorElementType(); 8633 EVT TruncVecEltTy = VT.getVectorElementType(); 8634 8635 // Check that the element types match. 8636 if (BuildVectEltTy == TruncVecEltTy) { 8637 // Now we only need to compute the offset of the truncated elements. 8638 unsigned BuildVecNumElts = BuildVect.getNumOperands(); 8639 unsigned TruncVecNumElts = VT.getVectorNumElements(); 8640 unsigned TruncEltOffset = BuildVecNumElts / TruncVecNumElts; 8641 8642 assert((BuildVecNumElts % TruncVecNumElts) == 0 && 8643 "Invalid number of elements"); 8644 8645 SmallVector<SDValue, 8> Opnds; 8646 for (unsigned i = 0, e = BuildVecNumElts; i != e; i += TruncEltOffset) 8647 Opnds.push_back(BuildVect.getOperand(i)); 8648 8649 return DAG.getBuildVector(VT, SDLoc(N), Opnds); 8650 } 8651 } 8652 8653 // See if we can simplify the input to this truncate through knowledge that 8654 // only the low bits are being used. 8655 // For example "trunc (or (shl x, 8), y)" // -> trunc y 8656 // Currently we only perform this optimization on scalars because vectors 8657 // may have different active low bits. 8658 if (!VT.isVector()) { 8659 APInt Mask = 8660 APInt::getLowBitsSet(N0.getValueSizeInBits(), VT.getSizeInBits()); 8661 if (SDValue Shorter = DAG.GetDemandedBits(N0, Mask)) 8662 return DAG.getNode(ISD::TRUNCATE, SDLoc(N), VT, Shorter); 8663 } 8664 8665 // fold (truncate (load x)) -> (smaller load x) 8666 // fold (truncate (srl (load x), c)) -> (smaller load (x+c/evtbits)) 8667 if (!LegalTypes || TLI.isTypeDesirableForOp(N0.getOpcode(), VT)) { 8668 if (SDValue Reduced = ReduceLoadWidth(N)) 8669 return Reduced; 8670 8671 // Handle the case where the load remains an extending load even 8672 // after truncation. 8673 if (N0.hasOneUse() && ISD::isUNINDEXEDLoad(N0.getNode())) { 8674 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 8675 if (!LN0->isVolatile() && 8676 LN0->getMemoryVT().getStoreSizeInBits() < VT.getSizeInBits()) { 8677 SDValue NewLoad = DAG.getExtLoad(LN0->getExtensionType(), SDLoc(LN0), 8678 VT, LN0->getChain(), LN0->getBasePtr(), 8679 LN0->getMemoryVT(), 8680 LN0->getMemOperand()); 8681 DAG.ReplaceAllUsesOfValueWith(N0.getValue(1), NewLoad.getValue(1)); 8682 return NewLoad; 8683 } 8684 } 8685 } 8686 8687 // fold (trunc (concat ... x ...)) -> (concat ..., (trunc x), ...)), 8688 // where ... are all 'undef'. 8689 if (N0.getOpcode() == ISD::CONCAT_VECTORS && !LegalTypes) { 8690 SmallVector<EVT, 8> VTs; 8691 SDValue V; 8692 unsigned Idx = 0; 8693 unsigned NumDefs = 0; 8694 8695 for (unsigned i = 0, e = N0.getNumOperands(); i != e; ++i) { 8696 SDValue X = N0.getOperand(i); 8697 if (!X.isUndef()) { 8698 V = X; 8699 Idx = i; 8700 NumDefs++; 8701 } 8702 // Stop if more than one members are non-undef. 8703 if (NumDefs > 1) 8704 break; 8705 VTs.push_back(EVT::getVectorVT(*DAG.getContext(), 8706 VT.getVectorElementType(), 8707 X.getValueType().getVectorNumElements())); 8708 } 8709 8710 if (NumDefs == 0) 8711 return DAG.getUNDEF(VT); 8712 8713 if (NumDefs == 1) { 8714 assert(V.getNode() && "The single defined operand is empty!"); 8715 SmallVector<SDValue, 8> Opnds; 8716 for (unsigned i = 0, e = VTs.size(); i != e; ++i) { 8717 if (i != Idx) { 8718 Opnds.push_back(DAG.getUNDEF(VTs[i])); 8719 continue; 8720 } 8721 SDValue NV = DAG.getNode(ISD::TRUNCATE, SDLoc(V), VTs[i], V); 8722 AddToWorklist(NV.getNode()); 8723 Opnds.push_back(NV); 8724 } 8725 return DAG.getNode(ISD::CONCAT_VECTORS, SDLoc(N), VT, Opnds); 8726 } 8727 } 8728 8729 // Fold truncate of a bitcast of a vector to an extract of the low vector 8730 // element. 8731 // 8732 // e.g. trunc (i64 (bitcast v2i32:x)) -> extract_vector_elt v2i32:x, idx 8733 if (N0.getOpcode() == ISD::BITCAST && !VT.isVector()) { 8734 SDValue VecSrc = N0.getOperand(0); 8735 EVT SrcVT = VecSrc.getValueType(); 8736 if (SrcVT.isVector() && SrcVT.getScalarType() == VT && 8737 (!LegalOperations || 8738 TLI.isOperationLegal(ISD::EXTRACT_VECTOR_ELT, SrcVT))) { 8739 SDLoc SL(N); 8740 8741 EVT IdxVT = TLI.getVectorIdxTy(DAG.getDataLayout()); 8742 unsigned Idx = isLE ? 0 : SrcVT.getVectorNumElements() - 1; 8743 return DAG.getNode(ISD::EXTRACT_VECTOR_ELT, SL, VT, 8744 VecSrc, DAG.getConstant(Idx, SL, IdxVT)); 8745 } 8746 } 8747 8748 // Simplify the operands using demanded-bits information. 8749 if (!VT.isVector() && 8750 SimplifyDemandedBits(SDValue(N, 0))) 8751 return SDValue(N, 0); 8752 8753 // (trunc adde(X, Y, Carry)) -> (adde trunc(X), trunc(Y), Carry) 8754 // (trunc addcarry(X, Y, Carry)) -> (addcarry trunc(X), trunc(Y), Carry) 8755 // When the adde's carry is not used. 8756 if ((N0.getOpcode() == ISD::ADDE || N0.getOpcode() == ISD::ADDCARRY) && 8757 N0.hasOneUse() && !N0.getNode()->hasAnyUseOfValue(1) && 8758 (!LegalOperations || TLI.isOperationLegal(N0.getOpcode(), VT))) { 8759 SDLoc SL(N); 8760 auto X = DAG.getNode(ISD::TRUNCATE, SL, VT, N0.getOperand(0)); 8761 auto Y = DAG.getNode(ISD::TRUNCATE, SL, VT, N0.getOperand(1)); 8762 auto VTs = DAG.getVTList(VT, N0->getValueType(1)); 8763 return DAG.getNode(N0.getOpcode(), SL, VTs, X, Y, N0.getOperand(2)); 8764 } 8765 8766 if (SDValue NewVSel = matchVSelectOpSizesWithSetCC(N)) 8767 return NewVSel; 8768 8769 return SDValue(); 8770 } 8771 8772 static SDNode *getBuildPairElt(SDNode *N, unsigned i) { 8773 SDValue Elt = N->getOperand(i); 8774 if (Elt.getOpcode() != ISD::MERGE_VALUES) 8775 return Elt.getNode(); 8776 return Elt.getOperand(Elt.getResNo()).getNode(); 8777 } 8778 8779 /// build_pair (load, load) -> load 8780 /// if load locations are consecutive. 8781 SDValue DAGCombiner::CombineConsecutiveLoads(SDNode *N, EVT VT) { 8782 assert(N->getOpcode() == ISD::BUILD_PAIR); 8783 8784 LoadSDNode *LD1 = dyn_cast<LoadSDNode>(getBuildPairElt(N, 0)); 8785 LoadSDNode *LD2 = dyn_cast<LoadSDNode>(getBuildPairElt(N, 1)); 8786 8787 // A BUILD_PAIR is always having the least significant part in elt 0 and the 8788 // most significant part in elt 1. So when combining into one large load, we 8789 // need to consider the endianness. 8790 if (DAG.getDataLayout().isBigEndian()) 8791 std::swap(LD1, LD2); 8792 8793 if (!LD1 || !LD2 || !ISD::isNON_EXTLoad(LD1) || !LD1->hasOneUse() || 8794 LD1->getAddressSpace() != LD2->getAddressSpace()) 8795 return SDValue(); 8796 EVT LD1VT = LD1->getValueType(0); 8797 unsigned LD1Bytes = LD1VT.getStoreSize(); 8798 if (ISD::isNON_EXTLoad(LD2) && LD2->hasOneUse() && 8799 DAG.areNonVolatileConsecutiveLoads(LD2, LD1, LD1Bytes, 1)) { 8800 unsigned Align = LD1->getAlignment(); 8801 unsigned NewAlign = DAG.getDataLayout().getABITypeAlignment( 8802 VT.getTypeForEVT(*DAG.getContext())); 8803 8804 if (NewAlign <= Align && 8805 (!LegalOperations || TLI.isOperationLegal(ISD::LOAD, VT))) 8806 return DAG.getLoad(VT, SDLoc(N), LD1->getChain(), LD1->getBasePtr(), 8807 LD1->getPointerInfo(), Align); 8808 } 8809 8810 return SDValue(); 8811 } 8812 8813 static unsigned getPPCf128HiElementSelector(const SelectionDAG &DAG) { 8814 // On little-endian machines, bitcasting from ppcf128 to i128 does swap the Hi 8815 // and Lo parts; on big-endian machines it doesn't. 8816 return DAG.getDataLayout().isBigEndian() ? 1 : 0; 8817 } 8818 8819 static SDValue foldBitcastedFPLogic(SDNode *N, SelectionDAG &DAG, 8820 const TargetLowering &TLI) { 8821 // If this is not a bitcast to an FP type or if the target doesn't have 8822 // IEEE754-compliant FP logic, we're done. 8823 EVT VT = N->getValueType(0); 8824 if (!VT.isFloatingPoint() || !TLI.hasBitPreservingFPLogic(VT)) 8825 return SDValue(); 8826 8827 // TODO: Use splat values for the constant-checking below and remove this 8828 // restriction. 8829 SDValue N0 = N->getOperand(0); 8830 EVT SourceVT = N0.getValueType(); 8831 if (SourceVT.isVector()) 8832 return SDValue(); 8833 8834 unsigned FPOpcode; 8835 APInt SignMask; 8836 switch (N0.getOpcode()) { 8837 case ISD::AND: 8838 FPOpcode = ISD::FABS; 8839 SignMask = ~APInt::getSignMask(SourceVT.getSizeInBits()); 8840 break; 8841 case ISD::XOR: 8842 FPOpcode = ISD::FNEG; 8843 SignMask = APInt::getSignMask(SourceVT.getSizeInBits()); 8844 break; 8845 // TODO: ISD::OR --> ISD::FNABS? 8846 default: 8847 return SDValue(); 8848 } 8849 8850 // Fold (bitcast int (and (bitcast fp X to int), 0x7fff...) to fp) -> fabs X 8851 // Fold (bitcast int (xor (bitcast fp X to int), 0x8000...) to fp) -> fneg X 8852 SDValue LogicOp0 = N0.getOperand(0); 8853 ConstantSDNode *LogicOp1 = dyn_cast<ConstantSDNode>(N0.getOperand(1)); 8854 if (LogicOp1 && LogicOp1->getAPIntValue() == SignMask && 8855 LogicOp0.getOpcode() == ISD::BITCAST && 8856 LogicOp0->getOperand(0).getValueType() == VT) 8857 return DAG.getNode(FPOpcode, SDLoc(N), VT, LogicOp0->getOperand(0)); 8858 8859 return SDValue(); 8860 } 8861 8862 SDValue DAGCombiner::visitBITCAST(SDNode *N) { 8863 SDValue N0 = N->getOperand(0); 8864 EVT VT = N->getValueType(0); 8865 8866 if (N0.isUndef()) 8867 return DAG.getUNDEF(VT); 8868 8869 // If the input is a BUILD_VECTOR with all constant elements, fold this now. 8870 // Only do this before legalize, since afterward the target may be depending 8871 // on the bitconvert. 8872 // First check to see if this is all constant. 8873 if (!LegalTypes && 8874 N0.getOpcode() == ISD::BUILD_VECTOR && N0.getNode()->hasOneUse() && 8875 VT.isVector()) { 8876 bool isSimple = cast<BuildVectorSDNode>(N0)->isConstant(); 8877 8878 EVT DestEltVT = N->getValueType(0).getVectorElementType(); 8879 assert(!DestEltVT.isVector() && 8880 "Element type of vector ValueType must not be vector!"); 8881 if (isSimple) 8882 return ConstantFoldBITCASTofBUILD_VECTOR(N0.getNode(), DestEltVT); 8883 } 8884 8885 // If the input is a constant, let getNode fold it. 8886 if (isa<ConstantSDNode>(N0) || isa<ConstantFPSDNode>(N0)) { 8887 // If we can't allow illegal operations, we need to check that this is just 8888 // a fp -> int or int -> conversion and that the resulting operation will 8889 // be legal. 8890 if (!LegalOperations || 8891 (isa<ConstantSDNode>(N0) && VT.isFloatingPoint() && !VT.isVector() && 8892 TLI.isOperationLegal(ISD::ConstantFP, VT)) || 8893 (isa<ConstantFPSDNode>(N0) && VT.isInteger() && !VT.isVector() && 8894 TLI.isOperationLegal(ISD::Constant, VT))) 8895 return DAG.getBitcast(VT, N0); 8896 } 8897 8898 // (conv (conv x, t1), t2) -> (conv x, t2) 8899 if (N0.getOpcode() == ISD::BITCAST) 8900 return DAG.getBitcast(VT, N0.getOperand(0)); 8901 8902 // fold (conv (load x)) -> (load (conv*)x) 8903 // If the resultant load doesn't need a higher alignment than the original! 8904 if (ISD::isNormalLoad(N0.getNode()) && N0.hasOneUse() && 8905 // Do not change the width of a volatile load. 8906 !cast<LoadSDNode>(N0)->isVolatile() && 8907 // Do not remove the cast if the types differ in endian layout. 8908 TLI.hasBigEndianPartOrdering(N0.getValueType(), DAG.getDataLayout()) == 8909 TLI.hasBigEndianPartOrdering(VT, DAG.getDataLayout()) && 8910 (!LegalOperations || TLI.isOperationLegal(ISD::LOAD, VT)) && 8911 TLI.isLoadBitCastBeneficial(N0.getValueType(), VT)) { 8912 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 8913 unsigned OrigAlign = LN0->getAlignment(); 8914 8915 bool Fast = false; 8916 if (TLI.allowsMemoryAccess(*DAG.getContext(), DAG.getDataLayout(), VT, 8917 LN0->getAddressSpace(), OrigAlign, &Fast) && 8918 Fast) { 8919 SDValue Load = 8920 DAG.getLoad(VT, SDLoc(N), LN0->getChain(), LN0->getBasePtr(), 8921 LN0->getPointerInfo(), OrigAlign, 8922 LN0->getMemOperand()->getFlags(), LN0->getAAInfo()); 8923 DAG.ReplaceAllUsesOfValueWith(N0.getValue(1), Load.getValue(1)); 8924 return Load; 8925 } 8926 } 8927 8928 if (SDValue V = foldBitcastedFPLogic(N, DAG, TLI)) 8929 return V; 8930 8931 // fold (bitconvert (fneg x)) -> (xor (bitconvert x), signbit) 8932 // fold (bitconvert (fabs x)) -> (and (bitconvert x), (not signbit)) 8933 // 8934 // For ppc_fp128: 8935 // fold (bitcast (fneg x)) -> 8936 // flipbit = signbit 8937 // (xor (bitcast x) (build_pair flipbit, flipbit)) 8938 // 8939 // fold (bitcast (fabs x)) -> 8940 // flipbit = (and (extract_element (bitcast x), 0), signbit) 8941 // (xor (bitcast x) (build_pair flipbit, flipbit)) 8942 // This often reduces constant pool loads. 8943 if (((N0.getOpcode() == ISD::FNEG && !TLI.isFNegFree(N0.getValueType())) || 8944 (N0.getOpcode() == ISD::FABS && !TLI.isFAbsFree(N0.getValueType()))) && 8945 N0.getNode()->hasOneUse() && VT.isInteger() && 8946 !VT.isVector() && !N0.getValueType().isVector()) { 8947 SDValue NewConv = DAG.getBitcast(VT, N0.getOperand(0)); 8948 AddToWorklist(NewConv.getNode()); 8949 8950 SDLoc DL(N); 8951 if (N0.getValueType() == MVT::ppcf128 && !LegalTypes) { 8952 assert(VT.getSizeInBits() == 128); 8953 SDValue SignBit = DAG.getConstant( 8954 APInt::getSignMask(VT.getSizeInBits() / 2), SDLoc(N0), MVT::i64); 8955 SDValue FlipBit; 8956 if (N0.getOpcode() == ISD::FNEG) { 8957 FlipBit = SignBit; 8958 AddToWorklist(FlipBit.getNode()); 8959 } else { 8960 assert(N0.getOpcode() == ISD::FABS); 8961 SDValue Hi = 8962 DAG.getNode(ISD::EXTRACT_ELEMENT, SDLoc(NewConv), MVT::i64, NewConv, 8963 DAG.getIntPtrConstant(getPPCf128HiElementSelector(DAG), 8964 SDLoc(NewConv))); 8965 AddToWorklist(Hi.getNode()); 8966 FlipBit = DAG.getNode(ISD::AND, SDLoc(N0), MVT::i64, Hi, SignBit); 8967 AddToWorklist(FlipBit.getNode()); 8968 } 8969 SDValue FlipBits = 8970 DAG.getNode(ISD::BUILD_PAIR, SDLoc(N0), VT, FlipBit, FlipBit); 8971 AddToWorklist(FlipBits.getNode()); 8972 return DAG.getNode(ISD::XOR, DL, VT, NewConv, FlipBits); 8973 } 8974 APInt SignBit = APInt::getSignMask(VT.getSizeInBits()); 8975 if (N0.getOpcode() == ISD::FNEG) 8976 return DAG.getNode(ISD::XOR, DL, VT, 8977 NewConv, DAG.getConstant(SignBit, DL, VT)); 8978 assert(N0.getOpcode() == ISD::FABS); 8979 return DAG.getNode(ISD::AND, DL, VT, 8980 NewConv, DAG.getConstant(~SignBit, DL, VT)); 8981 } 8982 8983 // fold (bitconvert (fcopysign cst, x)) -> 8984 // (or (and (bitconvert x), sign), (and cst, (not sign))) 8985 // Note that we don't handle (copysign x, cst) because this can always be 8986 // folded to an fneg or fabs. 8987 // 8988 // For ppc_fp128: 8989 // fold (bitcast (fcopysign cst, x)) -> 8990 // flipbit = (and (extract_element 8991 // (xor (bitcast cst), (bitcast x)), 0), 8992 // signbit) 8993 // (xor (bitcast cst) (build_pair flipbit, flipbit)) 8994 if (N0.getOpcode() == ISD::FCOPYSIGN && N0.getNode()->hasOneUse() && 8995 isa<ConstantFPSDNode>(N0.getOperand(0)) && 8996 VT.isInteger() && !VT.isVector()) { 8997 unsigned OrigXWidth = N0.getOperand(1).getValueSizeInBits(); 8998 EVT IntXVT = EVT::getIntegerVT(*DAG.getContext(), OrigXWidth); 8999 if (isTypeLegal(IntXVT)) { 9000 SDValue X = DAG.getBitcast(IntXVT, N0.getOperand(1)); 9001 AddToWorklist(X.getNode()); 9002 9003 // If X has a different width than the result/lhs, sext it or truncate it. 9004 unsigned VTWidth = VT.getSizeInBits(); 9005 if (OrigXWidth < VTWidth) { 9006 X = DAG.getNode(ISD::SIGN_EXTEND, SDLoc(N), VT, X); 9007 AddToWorklist(X.getNode()); 9008 } else if (OrigXWidth > VTWidth) { 9009 // To get the sign bit in the right place, we have to shift it right 9010 // before truncating. 9011 SDLoc DL(X); 9012 X = DAG.getNode(ISD::SRL, DL, 9013 X.getValueType(), X, 9014 DAG.getConstant(OrigXWidth-VTWidth, DL, 9015 X.getValueType())); 9016 AddToWorklist(X.getNode()); 9017 X = DAG.getNode(ISD::TRUNCATE, SDLoc(X), VT, X); 9018 AddToWorklist(X.getNode()); 9019 } 9020 9021 if (N0.getValueType() == MVT::ppcf128 && !LegalTypes) { 9022 APInt SignBit = APInt::getSignMask(VT.getSizeInBits() / 2); 9023 SDValue Cst = DAG.getBitcast(VT, N0.getOperand(0)); 9024 AddToWorklist(Cst.getNode()); 9025 SDValue X = DAG.getBitcast(VT, N0.getOperand(1)); 9026 AddToWorklist(X.getNode()); 9027 SDValue XorResult = DAG.getNode(ISD::XOR, SDLoc(N0), VT, Cst, X); 9028 AddToWorklist(XorResult.getNode()); 9029 SDValue XorResult64 = DAG.getNode( 9030 ISD::EXTRACT_ELEMENT, SDLoc(XorResult), MVT::i64, XorResult, 9031 DAG.getIntPtrConstant(getPPCf128HiElementSelector(DAG), 9032 SDLoc(XorResult))); 9033 AddToWorklist(XorResult64.getNode()); 9034 SDValue FlipBit = 9035 DAG.getNode(ISD::AND, SDLoc(XorResult64), MVT::i64, XorResult64, 9036 DAG.getConstant(SignBit, SDLoc(XorResult64), MVT::i64)); 9037 AddToWorklist(FlipBit.getNode()); 9038 SDValue FlipBits = 9039 DAG.getNode(ISD::BUILD_PAIR, SDLoc(N0), VT, FlipBit, FlipBit); 9040 AddToWorklist(FlipBits.getNode()); 9041 return DAG.getNode(ISD::XOR, SDLoc(N), VT, Cst, FlipBits); 9042 } 9043 APInt SignBit = APInt::getSignMask(VT.getSizeInBits()); 9044 X = DAG.getNode(ISD::AND, SDLoc(X), VT, 9045 X, DAG.getConstant(SignBit, SDLoc(X), VT)); 9046 AddToWorklist(X.getNode()); 9047 9048 SDValue Cst = DAG.getBitcast(VT, N0.getOperand(0)); 9049 Cst = DAG.getNode(ISD::AND, SDLoc(Cst), VT, 9050 Cst, DAG.getConstant(~SignBit, SDLoc(Cst), VT)); 9051 AddToWorklist(Cst.getNode()); 9052 9053 return DAG.getNode(ISD::OR, SDLoc(N), VT, X, Cst); 9054 } 9055 } 9056 9057 // bitconvert(build_pair(ld, ld)) -> ld iff load locations are consecutive. 9058 if (N0.getOpcode() == ISD::BUILD_PAIR) 9059 if (SDValue CombineLD = CombineConsecutiveLoads(N0.getNode(), VT)) 9060 return CombineLD; 9061 9062 // Remove double bitcasts from shuffles - this is often a legacy of 9063 // XformToShuffleWithZero being used to combine bitmaskings (of 9064 // float vectors bitcast to integer vectors) into shuffles. 9065 // bitcast(shuffle(bitcast(s0),bitcast(s1))) -> shuffle(s0,s1) 9066 if (Level < AfterLegalizeDAG && TLI.isTypeLegal(VT) && VT.isVector() && 9067 N0->getOpcode() == ISD::VECTOR_SHUFFLE && 9068 VT.getVectorNumElements() >= N0.getValueType().getVectorNumElements() && 9069 !(VT.getVectorNumElements() % N0.getValueType().getVectorNumElements())) { 9070 ShuffleVectorSDNode *SVN = cast<ShuffleVectorSDNode>(N0); 9071 9072 // If operands are a bitcast, peek through if it casts the original VT. 9073 // If operands are a constant, just bitcast back to original VT. 9074 auto PeekThroughBitcast = [&](SDValue Op) { 9075 if (Op.getOpcode() == ISD::BITCAST && 9076 Op.getOperand(0).getValueType() == VT) 9077 return SDValue(Op.getOperand(0)); 9078 if (Op.isUndef() || ISD::isBuildVectorOfConstantSDNodes(Op.getNode()) || 9079 ISD::isBuildVectorOfConstantFPSDNodes(Op.getNode())) 9080 return DAG.getBitcast(VT, Op); 9081 return SDValue(); 9082 }; 9083 9084 // FIXME: If either input vector is bitcast, try to convert the shuffle to 9085 // the result type of this bitcast. This would eliminate at least one 9086 // bitcast. See the transform in InstCombine. 9087 SDValue SV0 = PeekThroughBitcast(N0->getOperand(0)); 9088 SDValue SV1 = PeekThroughBitcast(N0->getOperand(1)); 9089 if (!(SV0 && SV1)) 9090 return SDValue(); 9091 9092 int MaskScale = 9093 VT.getVectorNumElements() / N0.getValueType().getVectorNumElements(); 9094 SmallVector<int, 8> NewMask; 9095 for (int M : SVN->getMask()) 9096 for (int i = 0; i != MaskScale; ++i) 9097 NewMask.push_back(M < 0 ? -1 : M * MaskScale + i); 9098 9099 bool LegalMask = TLI.isShuffleMaskLegal(NewMask, VT); 9100 if (!LegalMask) { 9101 std::swap(SV0, SV1); 9102 ShuffleVectorSDNode::commuteMask(NewMask); 9103 LegalMask = TLI.isShuffleMaskLegal(NewMask, VT); 9104 } 9105 9106 if (LegalMask) 9107 return DAG.getVectorShuffle(VT, SDLoc(N), SV0, SV1, NewMask); 9108 } 9109 9110 return SDValue(); 9111 } 9112 9113 SDValue DAGCombiner::visitBUILD_PAIR(SDNode *N) { 9114 EVT VT = N->getValueType(0); 9115 return CombineConsecutiveLoads(N, VT); 9116 } 9117 9118 /// We know that BV is a build_vector node with Constant, ConstantFP or Undef 9119 /// operands. DstEltVT indicates the destination element value type. 9120 SDValue DAGCombiner:: 9121 ConstantFoldBITCASTofBUILD_VECTOR(SDNode *BV, EVT DstEltVT) { 9122 EVT SrcEltVT = BV->getValueType(0).getVectorElementType(); 9123 9124 // If this is already the right type, we're done. 9125 if (SrcEltVT == DstEltVT) return SDValue(BV, 0); 9126 9127 unsigned SrcBitSize = SrcEltVT.getSizeInBits(); 9128 unsigned DstBitSize = DstEltVT.getSizeInBits(); 9129 9130 // If this is a conversion of N elements of one type to N elements of another 9131 // type, convert each element. This handles FP<->INT cases. 9132 if (SrcBitSize == DstBitSize) { 9133 EVT VT = EVT::getVectorVT(*DAG.getContext(), DstEltVT, 9134 BV->getValueType(0).getVectorNumElements()); 9135 9136 // Due to the FP element handling below calling this routine recursively, 9137 // we can end up with a scalar-to-vector node here. 9138 if (BV->getOpcode() == ISD::SCALAR_TO_VECTOR) 9139 return DAG.getNode(ISD::SCALAR_TO_VECTOR, SDLoc(BV), VT, 9140 DAG.getBitcast(DstEltVT, BV->getOperand(0))); 9141 9142 SmallVector<SDValue, 8> Ops; 9143 for (SDValue Op : BV->op_values()) { 9144 // If the vector element type is not legal, the BUILD_VECTOR operands 9145 // are promoted and implicitly truncated. Make that explicit here. 9146 if (Op.getValueType() != SrcEltVT) 9147 Op = DAG.getNode(ISD::TRUNCATE, SDLoc(BV), SrcEltVT, Op); 9148 Ops.push_back(DAG.getBitcast(DstEltVT, Op)); 9149 AddToWorklist(Ops.back().getNode()); 9150 } 9151 return DAG.getBuildVector(VT, SDLoc(BV), Ops); 9152 } 9153 9154 // Otherwise, we're growing or shrinking the elements. To avoid having to 9155 // handle annoying details of growing/shrinking FP values, we convert them to 9156 // int first. 9157 if (SrcEltVT.isFloatingPoint()) { 9158 // Convert the input float vector to a int vector where the elements are the 9159 // same sizes. 9160 EVT IntVT = EVT::getIntegerVT(*DAG.getContext(), SrcEltVT.getSizeInBits()); 9161 BV = ConstantFoldBITCASTofBUILD_VECTOR(BV, IntVT).getNode(); 9162 SrcEltVT = IntVT; 9163 } 9164 9165 // Now we know the input is an integer vector. If the output is a FP type, 9166 // convert to integer first, then to FP of the right size. 9167 if (DstEltVT.isFloatingPoint()) { 9168 EVT TmpVT = EVT::getIntegerVT(*DAG.getContext(), DstEltVT.getSizeInBits()); 9169 SDNode *Tmp = ConstantFoldBITCASTofBUILD_VECTOR(BV, TmpVT).getNode(); 9170 9171 // Next, convert to FP elements of the same size. 9172 return ConstantFoldBITCASTofBUILD_VECTOR(Tmp, DstEltVT); 9173 } 9174 9175 SDLoc DL(BV); 9176 9177 // Okay, we know the src/dst types are both integers of differing types. 9178 // Handling growing first. 9179 assert(SrcEltVT.isInteger() && DstEltVT.isInteger()); 9180 if (SrcBitSize < DstBitSize) { 9181 unsigned NumInputsPerOutput = DstBitSize/SrcBitSize; 9182 9183 SmallVector<SDValue, 8> Ops; 9184 for (unsigned i = 0, e = BV->getNumOperands(); i != e; 9185 i += NumInputsPerOutput) { 9186 bool isLE = DAG.getDataLayout().isLittleEndian(); 9187 APInt NewBits = APInt(DstBitSize, 0); 9188 bool EltIsUndef = true; 9189 for (unsigned j = 0; j != NumInputsPerOutput; ++j) { 9190 // Shift the previously computed bits over. 9191 NewBits <<= SrcBitSize; 9192 SDValue Op = BV->getOperand(i+ (isLE ? (NumInputsPerOutput-j-1) : j)); 9193 if (Op.isUndef()) continue; 9194 EltIsUndef = false; 9195 9196 NewBits |= cast<ConstantSDNode>(Op)->getAPIntValue(). 9197 zextOrTrunc(SrcBitSize).zext(DstBitSize); 9198 } 9199 9200 if (EltIsUndef) 9201 Ops.push_back(DAG.getUNDEF(DstEltVT)); 9202 else 9203 Ops.push_back(DAG.getConstant(NewBits, DL, DstEltVT)); 9204 } 9205 9206 EVT VT = EVT::getVectorVT(*DAG.getContext(), DstEltVT, Ops.size()); 9207 return DAG.getBuildVector(VT, DL, Ops); 9208 } 9209 9210 // Finally, this must be the case where we are shrinking elements: each input 9211 // turns into multiple outputs. 9212 unsigned NumOutputsPerInput = SrcBitSize/DstBitSize; 9213 EVT VT = EVT::getVectorVT(*DAG.getContext(), DstEltVT, 9214 NumOutputsPerInput*BV->getNumOperands()); 9215 SmallVector<SDValue, 8> Ops; 9216 9217 for (const SDValue &Op : BV->op_values()) { 9218 if (Op.isUndef()) { 9219 Ops.append(NumOutputsPerInput, DAG.getUNDEF(DstEltVT)); 9220 continue; 9221 } 9222 9223 APInt OpVal = cast<ConstantSDNode>(Op)-> 9224 getAPIntValue().zextOrTrunc(SrcBitSize); 9225 9226 for (unsigned j = 0; j != NumOutputsPerInput; ++j) { 9227 APInt ThisVal = OpVal.trunc(DstBitSize); 9228 Ops.push_back(DAG.getConstant(ThisVal, DL, DstEltVT)); 9229 OpVal.lshrInPlace(DstBitSize); 9230 } 9231 9232 // For big endian targets, swap the order of the pieces of each element. 9233 if (DAG.getDataLayout().isBigEndian()) 9234 std::reverse(Ops.end()-NumOutputsPerInput, Ops.end()); 9235 } 9236 9237 return DAG.getBuildVector(VT, DL, Ops); 9238 } 9239 9240 static bool isContractable(SDNode *N) { 9241 SDNodeFlags F = N->getFlags(); 9242 return F.hasAllowContract() || F.hasUnsafeAlgebra(); 9243 } 9244 9245 /// Try to perform FMA combining on a given FADD node. 9246 SDValue DAGCombiner::visitFADDForFMACombine(SDNode *N) { 9247 SDValue N0 = N->getOperand(0); 9248 SDValue N1 = N->getOperand(1); 9249 EVT VT = N->getValueType(0); 9250 SDLoc SL(N); 9251 9252 const TargetOptions &Options = DAG.getTarget().Options; 9253 9254 // Floating-point multiply-add with intermediate rounding. 9255 bool HasFMAD = (LegalOperations && TLI.isOperationLegal(ISD::FMAD, VT)); 9256 9257 // Floating-point multiply-add without intermediate rounding. 9258 bool HasFMA = 9259 TLI.isFMAFasterThanFMulAndFAdd(VT) && 9260 (!LegalOperations || TLI.isOperationLegalOrCustom(ISD::FMA, VT)); 9261 9262 // No valid opcode, do not combine. 9263 if (!HasFMAD && !HasFMA) 9264 return SDValue(); 9265 9266 bool AllowFusionGlobally = (Options.AllowFPOpFusion == FPOpFusion::Fast || 9267 Options.UnsafeFPMath || HasFMAD); 9268 // If the addition is not contractable, do not combine. 9269 if (!AllowFusionGlobally && !isContractable(N)) 9270 return SDValue(); 9271 9272 const SelectionDAGTargetInfo *STI = DAG.getSubtarget().getSelectionDAGInfo(); 9273 if (STI && STI->generateFMAsInMachineCombiner(OptLevel)) 9274 return SDValue(); 9275 9276 // Always prefer FMAD to FMA for precision. 9277 unsigned PreferredFusedOpcode = HasFMAD ? ISD::FMAD : ISD::FMA; 9278 bool Aggressive = TLI.enableAggressiveFMAFusion(VT); 9279 9280 // Is the node an FMUL and contractable either due to global flags or 9281 // SDNodeFlags. 9282 auto isContractableFMUL = [AllowFusionGlobally](SDValue N) { 9283 if (N.getOpcode() != ISD::FMUL) 9284 return false; 9285 return AllowFusionGlobally || isContractable(N.getNode()); 9286 }; 9287 // If we have two choices trying to fold (fadd (fmul u, v), (fmul x, y)), 9288 // prefer to fold the multiply with fewer uses. 9289 if (Aggressive && isContractableFMUL(N0) && isContractableFMUL(N1)) { 9290 if (N0.getNode()->use_size() > N1.getNode()->use_size()) 9291 std::swap(N0, N1); 9292 } 9293 9294 // fold (fadd (fmul x, y), z) -> (fma x, y, z) 9295 if (isContractableFMUL(N0) && (Aggressive || N0->hasOneUse())) { 9296 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9297 N0.getOperand(0), N0.getOperand(1), N1); 9298 } 9299 9300 // fold (fadd x, (fmul y, z)) -> (fma y, z, x) 9301 // Note: Commutes FADD operands. 9302 if (isContractableFMUL(N1) && (Aggressive || N1->hasOneUse())) { 9303 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9304 N1.getOperand(0), N1.getOperand(1), N0); 9305 } 9306 9307 // Look through FP_EXTEND nodes to do more combining. 9308 9309 // fold (fadd (fpext (fmul x, y)), z) -> (fma (fpext x), (fpext y), z) 9310 if (N0.getOpcode() == ISD::FP_EXTEND) { 9311 SDValue N00 = N0.getOperand(0); 9312 if (isContractableFMUL(N00) && 9313 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N00.getValueType())) { 9314 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9315 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9316 N00.getOperand(0)), 9317 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9318 N00.getOperand(1)), N1); 9319 } 9320 } 9321 9322 // fold (fadd x, (fpext (fmul y, z))) -> (fma (fpext y), (fpext z), x) 9323 // Note: Commutes FADD operands. 9324 if (N1.getOpcode() == ISD::FP_EXTEND) { 9325 SDValue N10 = N1.getOperand(0); 9326 if (isContractableFMUL(N10) && 9327 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N10.getValueType())) { 9328 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9329 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9330 N10.getOperand(0)), 9331 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9332 N10.getOperand(1)), N0); 9333 } 9334 } 9335 9336 // More folding opportunities when target permits. 9337 if (Aggressive) { 9338 // fold (fadd (fma x, y, (fmul u, v)), z) -> (fma x, y (fma u, v, z)) 9339 // FIXME: The UnsafeAlgebra flag should be propagated to FMA/FMAD, but FMF 9340 // are currently only supported on binary nodes. 9341 if (Options.UnsafeFPMath && 9342 N0.getOpcode() == PreferredFusedOpcode && 9343 N0.getOperand(2).getOpcode() == ISD::FMUL && 9344 N0->hasOneUse() && N0.getOperand(2)->hasOneUse()) { 9345 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9346 N0.getOperand(0), N0.getOperand(1), 9347 DAG.getNode(PreferredFusedOpcode, SL, VT, 9348 N0.getOperand(2).getOperand(0), 9349 N0.getOperand(2).getOperand(1), 9350 N1)); 9351 } 9352 9353 // fold (fadd x, (fma y, z, (fmul u, v)) -> (fma y, z (fma u, v, x)) 9354 // FIXME: The UnsafeAlgebra flag should be propagated to FMA/FMAD, but FMF 9355 // are currently only supported on binary nodes. 9356 if (Options.UnsafeFPMath && 9357 N1->getOpcode() == PreferredFusedOpcode && 9358 N1.getOperand(2).getOpcode() == ISD::FMUL && 9359 N1->hasOneUse() && N1.getOperand(2)->hasOneUse()) { 9360 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9361 N1.getOperand(0), N1.getOperand(1), 9362 DAG.getNode(PreferredFusedOpcode, SL, VT, 9363 N1.getOperand(2).getOperand(0), 9364 N1.getOperand(2).getOperand(1), 9365 N0)); 9366 } 9367 9368 9369 // fold (fadd (fma x, y, (fpext (fmul u, v))), z) 9370 // -> (fma x, y, (fma (fpext u), (fpext v), z)) 9371 auto FoldFAddFMAFPExtFMul = [&] ( 9372 SDValue X, SDValue Y, SDValue U, SDValue V, SDValue Z) { 9373 return DAG.getNode(PreferredFusedOpcode, SL, VT, X, Y, 9374 DAG.getNode(PreferredFusedOpcode, SL, VT, 9375 DAG.getNode(ISD::FP_EXTEND, SL, VT, U), 9376 DAG.getNode(ISD::FP_EXTEND, SL, VT, V), 9377 Z)); 9378 }; 9379 if (N0.getOpcode() == PreferredFusedOpcode) { 9380 SDValue N02 = N0.getOperand(2); 9381 if (N02.getOpcode() == ISD::FP_EXTEND) { 9382 SDValue N020 = N02.getOperand(0); 9383 if (isContractableFMUL(N020) && 9384 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N020.getValueType())) { 9385 return FoldFAddFMAFPExtFMul(N0.getOperand(0), N0.getOperand(1), 9386 N020.getOperand(0), N020.getOperand(1), 9387 N1); 9388 } 9389 } 9390 } 9391 9392 // fold (fadd (fpext (fma x, y, (fmul u, v))), z) 9393 // -> (fma (fpext x), (fpext y), (fma (fpext u), (fpext v), z)) 9394 // FIXME: This turns two single-precision and one double-precision 9395 // operation into two double-precision operations, which might not be 9396 // interesting for all targets, especially GPUs. 9397 auto FoldFAddFPExtFMAFMul = [&] ( 9398 SDValue X, SDValue Y, SDValue U, SDValue V, SDValue Z) { 9399 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9400 DAG.getNode(ISD::FP_EXTEND, SL, VT, X), 9401 DAG.getNode(ISD::FP_EXTEND, SL, VT, Y), 9402 DAG.getNode(PreferredFusedOpcode, SL, VT, 9403 DAG.getNode(ISD::FP_EXTEND, SL, VT, U), 9404 DAG.getNode(ISD::FP_EXTEND, SL, VT, V), 9405 Z)); 9406 }; 9407 if (N0.getOpcode() == ISD::FP_EXTEND) { 9408 SDValue N00 = N0.getOperand(0); 9409 if (N00.getOpcode() == PreferredFusedOpcode) { 9410 SDValue N002 = N00.getOperand(2); 9411 if (isContractableFMUL(N002) && 9412 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N00.getValueType())) { 9413 return FoldFAddFPExtFMAFMul(N00.getOperand(0), N00.getOperand(1), 9414 N002.getOperand(0), N002.getOperand(1), 9415 N1); 9416 } 9417 } 9418 } 9419 9420 // fold (fadd x, (fma y, z, (fpext (fmul u, v))) 9421 // -> (fma y, z, (fma (fpext u), (fpext v), x)) 9422 if (N1.getOpcode() == PreferredFusedOpcode) { 9423 SDValue N12 = N1.getOperand(2); 9424 if (N12.getOpcode() == ISD::FP_EXTEND) { 9425 SDValue N120 = N12.getOperand(0); 9426 if (isContractableFMUL(N120) && 9427 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N120.getValueType())) { 9428 return FoldFAddFMAFPExtFMul(N1.getOperand(0), N1.getOperand(1), 9429 N120.getOperand(0), N120.getOperand(1), 9430 N0); 9431 } 9432 } 9433 } 9434 9435 // fold (fadd x, (fpext (fma y, z, (fmul u, v))) 9436 // -> (fma (fpext y), (fpext z), (fma (fpext u), (fpext v), x)) 9437 // FIXME: This turns two single-precision and one double-precision 9438 // operation into two double-precision operations, which might not be 9439 // interesting for all targets, especially GPUs. 9440 if (N1.getOpcode() == ISD::FP_EXTEND) { 9441 SDValue N10 = N1.getOperand(0); 9442 if (N10.getOpcode() == PreferredFusedOpcode) { 9443 SDValue N102 = N10.getOperand(2); 9444 if (isContractableFMUL(N102) && 9445 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N10.getValueType())) { 9446 return FoldFAddFPExtFMAFMul(N10.getOperand(0), N10.getOperand(1), 9447 N102.getOperand(0), N102.getOperand(1), 9448 N0); 9449 } 9450 } 9451 } 9452 } 9453 9454 return SDValue(); 9455 } 9456 9457 /// Try to perform FMA combining on a given FSUB node. 9458 SDValue DAGCombiner::visitFSUBForFMACombine(SDNode *N) { 9459 SDValue N0 = N->getOperand(0); 9460 SDValue N1 = N->getOperand(1); 9461 EVT VT = N->getValueType(0); 9462 SDLoc SL(N); 9463 9464 const TargetOptions &Options = DAG.getTarget().Options; 9465 // Floating-point multiply-add with intermediate rounding. 9466 bool HasFMAD = (LegalOperations && TLI.isOperationLegal(ISD::FMAD, VT)); 9467 9468 // Floating-point multiply-add without intermediate rounding. 9469 bool HasFMA = 9470 TLI.isFMAFasterThanFMulAndFAdd(VT) && 9471 (!LegalOperations || TLI.isOperationLegalOrCustom(ISD::FMA, VT)); 9472 9473 // No valid opcode, do not combine. 9474 if (!HasFMAD && !HasFMA) 9475 return SDValue(); 9476 9477 bool AllowFusionGlobally = (Options.AllowFPOpFusion == FPOpFusion::Fast || 9478 Options.UnsafeFPMath || HasFMAD); 9479 // If the subtraction is not contractable, do not combine. 9480 if (!AllowFusionGlobally && !isContractable(N)) 9481 return SDValue(); 9482 9483 const SelectionDAGTargetInfo *STI = DAG.getSubtarget().getSelectionDAGInfo(); 9484 if (STI && STI->generateFMAsInMachineCombiner(OptLevel)) 9485 return SDValue(); 9486 9487 // Always prefer FMAD to FMA for precision. 9488 unsigned PreferredFusedOpcode = HasFMAD ? ISD::FMAD : ISD::FMA; 9489 bool Aggressive = TLI.enableAggressiveFMAFusion(VT); 9490 9491 // Is the node an FMUL and contractable either due to global flags or 9492 // SDNodeFlags. 9493 auto isContractableFMUL = [AllowFusionGlobally](SDValue N) { 9494 if (N.getOpcode() != ISD::FMUL) 9495 return false; 9496 return AllowFusionGlobally || isContractable(N.getNode()); 9497 }; 9498 9499 // fold (fsub (fmul x, y), z) -> (fma x, y, (fneg z)) 9500 if (isContractableFMUL(N0) && (Aggressive || N0->hasOneUse())) { 9501 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9502 N0.getOperand(0), N0.getOperand(1), 9503 DAG.getNode(ISD::FNEG, SL, VT, N1)); 9504 } 9505 9506 // fold (fsub x, (fmul y, z)) -> (fma (fneg y), z, x) 9507 // Note: Commutes FSUB operands. 9508 if (isContractableFMUL(N1) && (Aggressive || N1->hasOneUse())) 9509 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9510 DAG.getNode(ISD::FNEG, SL, VT, 9511 N1.getOperand(0)), 9512 N1.getOperand(1), N0); 9513 9514 // fold (fsub (fneg (fmul, x, y)), z) -> (fma (fneg x), y, (fneg z)) 9515 if (N0.getOpcode() == ISD::FNEG && isContractableFMUL(N0.getOperand(0)) && 9516 (Aggressive || (N0->hasOneUse() && N0.getOperand(0).hasOneUse()))) { 9517 SDValue N00 = N0.getOperand(0).getOperand(0); 9518 SDValue N01 = N0.getOperand(0).getOperand(1); 9519 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9520 DAG.getNode(ISD::FNEG, SL, VT, N00), N01, 9521 DAG.getNode(ISD::FNEG, SL, VT, N1)); 9522 } 9523 9524 // Look through FP_EXTEND nodes to do more combining. 9525 9526 // fold (fsub (fpext (fmul x, y)), z) 9527 // -> (fma (fpext x), (fpext y), (fneg z)) 9528 if (N0.getOpcode() == ISD::FP_EXTEND) { 9529 SDValue N00 = N0.getOperand(0); 9530 if (isContractableFMUL(N00) && 9531 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N00.getValueType())) { 9532 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9533 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9534 N00.getOperand(0)), 9535 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9536 N00.getOperand(1)), 9537 DAG.getNode(ISD::FNEG, SL, VT, N1)); 9538 } 9539 } 9540 9541 // fold (fsub x, (fpext (fmul y, z))) 9542 // -> (fma (fneg (fpext y)), (fpext z), x) 9543 // Note: Commutes FSUB operands. 9544 if (N1.getOpcode() == ISD::FP_EXTEND) { 9545 SDValue N10 = N1.getOperand(0); 9546 if (isContractableFMUL(N10) && 9547 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N10.getValueType())) { 9548 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9549 DAG.getNode(ISD::FNEG, SL, VT, 9550 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9551 N10.getOperand(0))), 9552 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9553 N10.getOperand(1)), 9554 N0); 9555 } 9556 } 9557 9558 // fold (fsub (fpext (fneg (fmul, x, y))), z) 9559 // -> (fneg (fma (fpext x), (fpext y), z)) 9560 // Note: This could be removed with appropriate canonicalization of the 9561 // input expression into (fneg (fadd (fpext (fmul, x, y)), z). However, the 9562 // orthogonal flags -fp-contract=fast and -enable-unsafe-fp-math prevent 9563 // from implementing the canonicalization in visitFSUB. 9564 if (N0.getOpcode() == ISD::FP_EXTEND) { 9565 SDValue N00 = N0.getOperand(0); 9566 if (N00.getOpcode() == ISD::FNEG) { 9567 SDValue N000 = N00.getOperand(0); 9568 if (isContractableFMUL(N000) && 9569 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N00.getValueType())) { 9570 return DAG.getNode(ISD::FNEG, SL, VT, 9571 DAG.getNode(PreferredFusedOpcode, SL, VT, 9572 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9573 N000.getOperand(0)), 9574 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9575 N000.getOperand(1)), 9576 N1)); 9577 } 9578 } 9579 } 9580 9581 // fold (fsub (fneg (fpext (fmul, x, y))), z) 9582 // -> (fneg (fma (fpext x)), (fpext y), z) 9583 // Note: This could be removed with appropriate canonicalization of the 9584 // input expression into (fneg (fadd (fpext (fmul, x, y)), z). However, the 9585 // orthogonal flags -fp-contract=fast and -enable-unsafe-fp-math prevent 9586 // from implementing the canonicalization in visitFSUB. 9587 if (N0.getOpcode() == ISD::FNEG) { 9588 SDValue N00 = N0.getOperand(0); 9589 if (N00.getOpcode() == ISD::FP_EXTEND) { 9590 SDValue N000 = N00.getOperand(0); 9591 if (isContractableFMUL(N000) && 9592 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N000.getValueType())) { 9593 return DAG.getNode(ISD::FNEG, SL, VT, 9594 DAG.getNode(PreferredFusedOpcode, SL, VT, 9595 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9596 N000.getOperand(0)), 9597 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9598 N000.getOperand(1)), 9599 N1)); 9600 } 9601 } 9602 } 9603 9604 // More folding opportunities when target permits. 9605 if (Aggressive) { 9606 // fold (fsub (fma x, y, (fmul u, v)), z) 9607 // -> (fma x, y (fma u, v, (fneg z))) 9608 // FIXME: The UnsafeAlgebra flag should be propagated to FMA/FMAD, but FMF 9609 // are currently only supported on binary nodes. 9610 if (Options.UnsafeFPMath && N0.getOpcode() == PreferredFusedOpcode && 9611 isContractableFMUL(N0.getOperand(2)) && N0->hasOneUse() && 9612 N0.getOperand(2)->hasOneUse()) { 9613 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9614 N0.getOperand(0), N0.getOperand(1), 9615 DAG.getNode(PreferredFusedOpcode, SL, VT, 9616 N0.getOperand(2).getOperand(0), 9617 N0.getOperand(2).getOperand(1), 9618 DAG.getNode(ISD::FNEG, SL, VT, 9619 N1))); 9620 } 9621 9622 // fold (fsub x, (fma y, z, (fmul u, v))) 9623 // -> (fma (fneg y), z, (fma (fneg u), v, x)) 9624 // FIXME: The UnsafeAlgebra flag should be propagated to FMA/FMAD, but FMF 9625 // are currently only supported on binary nodes. 9626 if (Options.UnsafeFPMath && N1.getOpcode() == PreferredFusedOpcode && 9627 isContractableFMUL(N1.getOperand(2))) { 9628 SDValue N20 = N1.getOperand(2).getOperand(0); 9629 SDValue N21 = N1.getOperand(2).getOperand(1); 9630 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9631 DAG.getNode(ISD::FNEG, SL, VT, 9632 N1.getOperand(0)), 9633 N1.getOperand(1), 9634 DAG.getNode(PreferredFusedOpcode, SL, VT, 9635 DAG.getNode(ISD::FNEG, SL, VT, N20), 9636 9637 N21, N0)); 9638 } 9639 9640 9641 // fold (fsub (fma x, y, (fpext (fmul u, v))), z) 9642 // -> (fma x, y (fma (fpext u), (fpext v), (fneg z))) 9643 if (N0.getOpcode() == PreferredFusedOpcode) { 9644 SDValue N02 = N0.getOperand(2); 9645 if (N02.getOpcode() == ISD::FP_EXTEND) { 9646 SDValue N020 = N02.getOperand(0); 9647 if (isContractableFMUL(N020) && 9648 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N020.getValueType())) { 9649 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9650 N0.getOperand(0), N0.getOperand(1), 9651 DAG.getNode(PreferredFusedOpcode, SL, VT, 9652 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9653 N020.getOperand(0)), 9654 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9655 N020.getOperand(1)), 9656 DAG.getNode(ISD::FNEG, SL, VT, 9657 N1))); 9658 } 9659 } 9660 } 9661 9662 // fold (fsub (fpext (fma x, y, (fmul u, v))), z) 9663 // -> (fma (fpext x), (fpext y), 9664 // (fma (fpext u), (fpext v), (fneg z))) 9665 // FIXME: This turns two single-precision and one double-precision 9666 // operation into two double-precision operations, which might not be 9667 // interesting for all targets, especially GPUs. 9668 if (N0.getOpcode() == ISD::FP_EXTEND) { 9669 SDValue N00 = N0.getOperand(0); 9670 if (N00.getOpcode() == PreferredFusedOpcode) { 9671 SDValue N002 = N00.getOperand(2); 9672 if (isContractableFMUL(N002) && 9673 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N00.getValueType())) { 9674 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9675 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9676 N00.getOperand(0)), 9677 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9678 N00.getOperand(1)), 9679 DAG.getNode(PreferredFusedOpcode, SL, VT, 9680 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9681 N002.getOperand(0)), 9682 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9683 N002.getOperand(1)), 9684 DAG.getNode(ISD::FNEG, SL, VT, 9685 N1))); 9686 } 9687 } 9688 } 9689 9690 // fold (fsub x, (fma y, z, (fpext (fmul u, v)))) 9691 // -> (fma (fneg y), z, (fma (fneg (fpext u)), (fpext v), x)) 9692 if (N1.getOpcode() == PreferredFusedOpcode && 9693 N1.getOperand(2).getOpcode() == ISD::FP_EXTEND) { 9694 SDValue N120 = N1.getOperand(2).getOperand(0); 9695 if (isContractableFMUL(N120) && 9696 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, N120.getValueType())) { 9697 SDValue N1200 = N120.getOperand(0); 9698 SDValue N1201 = N120.getOperand(1); 9699 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9700 DAG.getNode(ISD::FNEG, SL, VT, N1.getOperand(0)), 9701 N1.getOperand(1), 9702 DAG.getNode(PreferredFusedOpcode, SL, VT, 9703 DAG.getNode(ISD::FNEG, SL, VT, 9704 DAG.getNode(ISD::FP_EXTEND, SL, 9705 VT, N1200)), 9706 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9707 N1201), 9708 N0)); 9709 } 9710 } 9711 9712 // fold (fsub x, (fpext (fma y, z, (fmul u, v)))) 9713 // -> (fma (fneg (fpext y)), (fpext z), 9714 // (fma (fneg (fpext u)), (fpext v), x)) 9715 // FIXME: This turns two single-precision and one double-precision 9716 // operation into two double-precision operations, which might not be 9717 // interesting for all targets, especially GPUs. 9718 if (N1.getOpcode() == ISD::FP_EXTEND && 9719 N1.getOperand(0).getOpcode() == PreferredFusedOpcode) { 9720 SDValue CvtSrc = N1.getOperand(0); 9721 SDValue N100 = CvtSrc.getOperand(0); 9722 SDValue N101 = CvtSrc.getOperand(1); 9723 SDValue N102 = CvtSrc.getOperand(2); 9724 if (isContractableFMUL(N102) && 9725 TLI.isFPExtFoldable(PreferredFusedOpcode, VT, CvtSrc.getValueType())) { 9726 SDValue N1020 = N102.getOperand(0); 9727 SDValue N1021 = N102.getOperand(1); 9728 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9729 DAG.getNode(ISD::FNEG, SL, VT, 9730 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9731 N100)), 9732 DAG.getNode(ISD::FP_EXTEND, SL, VT, N101), 9733 DAG.getNode(PreferredFusedOpcode, SL, VT, 9734 DAG.getNode(ISD::FNEG, SL, VT, 9735 DAG.getNode(ISD::FP_EXTEND, SL, 9736 VT, N1020)), 9737 DAG.getNode(ISD::FP_EXTEND, SL, VT, 9738 N1021), 9739 N0)); 9740 } 9741 } 9742 } 9743 9744 return SDValue(); 9745 } 9746 9747 /// Try to perform FMA combining on a given FMUL node based on the distributive 9748 /// law x * (y + 1) = x * y + x and variants thereof (commuted versions, 9749 /// subtraction instead of addition). 9750 SDValue DAGCombiner::visitFMULForFMADistributiveCombine(SDNode *N) { 9751 SDValue N0 = N->getOperand(0); 9752 SDValue N1 = N->getOperand(1); 9753 EVT VT = N->getValueType(0); 9754 SDLoc SL(N); 9755 9756 assert(N->getOpcode() == ISD::FMUL && "Expected FMUL Operation"); 9757 9758 const TargetOptions &Options = DAG.getTarget().Options; 9759 9760 // The transforms below are incorrect when x == 0 and y == inf, because the 9761 // intermediate multiplication produces a nan. 9762 if (!Options.NoInfsFPMath) 9763 return SDValue(); 9764 9765 // Floating-point multiply-add without intermediate rounding. 9766 bool HasFMA = 9767 (Options.AllowFPOpFusion == FPOpFusion::Fast || Options.UnsafeFPMath) && 9768 TLI.isFMAFasterThanFMulAndFAdd(VT) && 9769 (!LegalOperations || TLI.isOperationLegalOrCustom(ISD::FMA, VT)); 9770 9771 // Floating-point multiply-add with intermediate rounding. This can result 9772 // in a less precise result due to the changed rounding order. 9773 bool HasFMAD = Options.UnsafeFPMath && 9774 (LegalOperations && TLI.isOperationLegal(ISD::FMAD, VT)); 9775 9776 // No valid opcode, do not combine. 9777 if (!HasFMAD && !HasFMA) 9778 return SDValue(); 9779 9780 // Always prefer FMAD to FMA for precision. 9781 unsigned PreferredFusedOpcode = HasFMAD ? ISD::FMAD : ISD::FMA; 9782 bool Aggressive = TLI.enableAggressiveFMAFusion(VT); 9783 9784 // fold (fmul (fadd x, +1.0), y) -> (fma x, y, y) 9785 // fold (fmul (fadd x, -1.0), y) -> (fma x, y, (fneg y)) 9786 auto FuseFADD = [&](SDValue X, SDValue Y) { 9787 if (X.getOpcode() == ISD::FADD && (Aggressive || X->hasOneUse())) { 9788 auto XC1 = isConstOrConstSplatFP(X.getOperand(1)); 9789 if (XC1 && XC1->isExactlyValue(+1.0)) 9790 return DAG.getNode(PreferredFusedOpcode, SL, VT, X.getOperand(0), Y, Y); 9791 if (XC1 && XC1->isExactlyValue(-1.0)) 9792 return DAG.getNode(PreferredFusedOpcode, SL, VT, X.getOperand(0), Y, 9793 DAG.getNode(ISD::FNEG, SL, VT, Y)); 9794 } 9795 return SDValue(); 9796 }; 9797 9798 if (SDValue FMA = FuseFADD(N0, N1)) 9799 return FMA; 9800 if (SDValue FMA = FuseFADD(N1, N0)) 9801 return FMA; 9802 9803 // fold (fmul (fsub +1.0, x), y) -> (fma (fneg x), y, y) 9804 // fold (fmul (fsub -1.0, x), y) -> (fma (fneg x), y, (fneg y)) 9805 // fold (fmul (fsub x, +1.0), y) -> (fma x, y, (fneg y)) 9806 // fold (fmul (fsub x, -1.0), y) -> (fma x, y, y) 9807 auto FuseFSUB = [&](SDValue X, SDValue Y) { 9808 if (X.getOpcode() == ISD::FSUB && (Aggressive || X->hasOneUse())) { 9809 auto XC0 = isConstOrConstSplatFP(X.getOperand(0)); 9810 if (XC0 && XC0->isExactlyValue(+1.0)) 9811 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9812 DAG.getNode(ISD::FNEG, SL, VT, X.getOperand(1)), Y, 9813 Y); 9814 if (XC0 && XC0->isExactlyValue(-1.0)) 9815 return DAG.getNode(PreferredFusedOpcode, SL, VT, 9816 DAG.getNode(ISD::FNEG, SL, VT, X.getOperand(1)), Y, 9817 DAG.getNode(ISD::FNEG, SL, VT, Y)); 9818 9819 auto XC1 = isConstOrConstSplatFP(X.getOperand(1)); 9820 if (XC1 && XC1->isExactlyValue(+1.0)) 9821 return DAG.getNode(PreferredFusedOpcode, SL, VT, X.getOperand(0), Y, 9822 DAG.getNode(ISD::FNEG, SL, VT, Y)); 9823 if (XC1 && XC1->isExactlyValue(-1.0)) 9824 return DAG.getNode(PreferredFusedOpcode, SL, VT, X.getOperand(0), Y, Y); 9825 } 9826 return SDValue(); 9827 }; 9828 9829 if (SDValue FMA = FuseFSUB(N0, N1)) 9830 return FMA; 9831 if (SDValue FMA = FuseFSUB(N1, N0)) 9832 return FMA; 9833 9834 return SDValue(); 9835 } 9836 9837 static bool isFMulNegTwo(SDValue &N) { 9838 if (N.getOpcode() != ISD::FMUL) 9839 return false; 9840 if (ConstantFPSDNode *CFP = isConstOrConstSplatFP(N.getOperand(1))) 9841 return CFP->isExactlyValue(-2.0); 9842 return false; 9843 } 9844 9845 SDValue DAGCombiner::visitFADD(SDNode *N) { 9846 SDValue N0 = N->getOperand(0); 9847 SDValue N1 = N->getOperand(1); 9848 bool N0CFP = isConstantFPBuildVectorOrConstantFP(N0); 9849 bool N1CFP = isConstantFPBuildVectorOrConstantFP(N1); 9850 EVT VT = N->getValueType(0); 9851 SDLoc DL(N); 9852 const TargetOptions &Options = DAG.getTarget().Options; 9853 const SDNodeFlags Flags = N->getFlags(); 9854 9855 // fold vector ops 9856 if (VT.isVector()) 9857 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 9858 return FoldedVOp; 9859 9860 // fold (fadd c1, c2) -> c1 + c2 9861 if (N0CFP && N1CFP) 9862 return DAG.getNode(ISD::FADD, DL, VT, N0, N1, Flags); 9863 9864 // canonicalize constant to RHS 9865 if (N0CFP && !N1CFP) 9866 return DAG.getNode(ISD::FADD, DL, VT, N1, N0, Flags); 9867 9868 if (SDValue NewSel = foldBinOpIntoSelect(N)) 9869 return NewSel; 9870 9871 // fold (fadd A, (fneg B)) -> (fsub A, B) 9872 if ((!LegalOperations || TLI.isOperationLegalOrCustom(ISD::FSUB, VT)) && 9873 isNegatibleForFree(N1, LegalOperations, TLI, &Options) == 2) 9874 return DAG.getNode(ISD::FSUB, DL, VT, N0, 9875 GetNegatedExpression(N1, DAG, LegalOperations), Flags); 9876 9877 // fold (fadd (fneg A), B) -> (fsub B, A) 9878 if ((!LegalOperations || TLI.isOperationLegalOrCustom(ISD::FSUB, VT)) && 9879 isNegatibleForFree(N0, LegalOperations, TLI, &Options) == 2) 9880 return DAG.getNode(ISD::FSUB, DL, VT, N1, 9881 GetNegatedExpression(N0, DAG, LegalOperations), Flags); 9882 9883 // fold (fadd A, (fmul B, -2.0)) -> (fsub A, (fadd B, B)) 9884 // fold (fadd (fmul B, -2.0), A) -> (fsub A, (fadd B, B)) 9885 if ((isFMulNegTwo(N0) && N0.hasOneUse()) || 9886 (isFMulNegTwo(N1) && N1.hasOneUse())) { 9887 bool N1IsFMul = isFMulNegTwo(N1); 9888 SDValue AddOp = N1IsFMul ? N1.getOperand(0) : N0.getOperand(0); 9889 SDValue Add = DAG.getNode(ISD::FADD, DL, VT, AddOp, AddOp, Flags); 9890 return DAG.getNode(ISD::FSUB, DL, VT, N1IsFMul ? N0 : N1, Add, Flags); 9891 } 9892 9893 // FIXME: Auto-upgrade the target/function-level option. 9894 if (Options.NoSignedZerosFPMath || N->getFlags().hasNoSignedZeros()) { 9895 // fold (fadd A, 0) -> A 9896 if (ConstantFPSDNode *N1C = isConstOrConstSplatFP(N1)) 9897 if (N1C->isZero()) 9898 return N0; 9899 } 9900 9901 // If 'unsafe math' is enabled, fold lots of things. 9902 if (Options.UnsafeFPMath) { 9903 // No FP constant should be created after legalization as Instruction 9904 // Selection pass has a hard time dealing with FP constants. 9905 bool AllowNewConst = (Level < AfterLegalizeDAG); 9906 9907 // fold (fadd (fadd x, c1), c2) -> (fadd x, (fadd c1, c2)) 9908 if (N1CFP && N0.getOpcode() == ISD::FADD && N0.getNode()->hasOneUse() && 9909 isConstantFPBuildVectorOrConstantFP(N0.getOperand(1))) 9910 return DAG.getNode(ISD::FADD, DL, VT, N0.getOperand(0), 9911 DAG.getNode(ISD::FADD, DL, VT, N0.getOperand(1), N1, 9912 Flags), 9913 Flags); 9914 9915 // If allowed, fold (fadd (fneg x), x) -> 0.0 9916 if (AllowNewConst && N0.getOpcode() == ISD::FNEG && N0.getOperand(0) == N1) 9917 return DAG.getConstantFP(0.0, DL, VT); 9918 9919 // If allowed, fold (fadd x, (fneg x)) -> 0.0 9920 if (AllowNewConst && N1.getOpcode() == ISD::FNEG && N1.getOperand(0) == N0) 9921 return DAG.getConstantFP(0.0, DL, VT); 9922 9923 // We can fold chains of FADD's of the same value into multiplications. 9924 // This transform is not safe in general because we are reducing the number 9925 // of rounding steps. 9926 if (TLI.isOperationLegalOrCustom(ISD::FMUL, VT) && !N0CFP && !N1CFP) { 9927 if (N0.getOpcode() == ISD::FMUL) { 9928 bool CFP00 = isConstantFPBuildVectorOrConstantFP(N0.getOperand(0)); 9929 bool CFP01 = isConstantFPBuildVectorOrConstantFP(N0.getOperand(1)); 9930 9931 // (fadd (fmul x, c), x) -> (fmul x, c+1) 9932 if (CFP01 && !CFP00 && N0.getOperand(0) == N1) { 9933 SDValue NewCFP = DAG.getNode(ISD::FADD, DL, VT, N0.getOperand(1), 9934 DAG.getConstantFP(1.0, DL, VT), Flags); 9935 return DAG.getNode(ISD::FMUL, DL, VT, N1, NewCFP, Flags); 9936 } 9937 9938 // (fadd (fmul x, c), (fadd x, x)) -> (fmul x, c+2) 9939 if (CFP01 && !CFP00 && N1.getOpcode() == ISD::FADD && 9940 N1.getOperand(0) == N1.getOperand(1) && 9941 N0.getOperand(0) == N1.getOperand(0)) { 9942 SDValue NewCFP = DAG.getNode(ISD::FADD, DL, VT, N0.getOperand(1), 9943 DAG.getConstantFP(2.0, DL, VT), Flags); 9944 return DAG.getNode(ISD::FMUL, DL, VT, N0.getOperand(0), NewCFP, Flags); 9945 } 9946 } 9947 9948 if (N1.getOpcode() == ISD::FMUL) { 9949 bool CFP10 = isConstantFPBuildVectorOrConstantFP(N1.getOperand(0)); 9950 bool CFP11 = isConstantFPBuildVectorOrConstantFP(N1.getOperand(1)); 9951 9952 // (fadd x, (fmul x, c)) -> (fmul x, c+1) 9953 if (CFP11 && !CFP10 && N1.getOperand(0) == N0) { 9954 SDValue NewCFP = DAG.getNode(ISD::FADD, DL, VT, N1.getOperand(1), 9955 DAG.getConstantFP(1.0, DL, VT), Flags); 9956 return DAG.getNode(ISD::FMUL, DL, VT, N0, NewCFP, Flags); 9957 } 9958 9959 // (fadd (fadd x, x), (fmul x, c)) -> (fmul x, c+2) 9960 if (CFP11 && !CFP10 && N0.getOpcode() == ISD::FADD && 9961 N0.getOperand(0) == N0.getOperand(1) && 9962 N1.getOperand(0) == N0.getOperand(0)) { 9963 SDValue NewCFP = DAG.getNode(ISD::FADD, DL, VT, N1.getOperand(1), 9964 DAG.getConstantFP(2.0, DL, VT), Flags); 9965 return DAG.getNode(ISD::FMUL, DL, VT, N1.getOperand(0), NewCFP, Flags); 9966 } 9967 } 9968 9969 if (N0.getOpcode() == ISD::FADD && AllowNewConst) { 9970 bool CFP00 = isConstantFPBuildVectorOrConstantFP(N0.getOperand(0)); 9971 // (fadd (fadd x, x), x) -> (fmul x, 3.0) 9972 if (!CFP00 && N0.getOperand(0) == N0.getOperand(1) && 9973 (N0.getOperand(0) == N1)) { 9974 return DAG.getNode(ISD::FMUL, DL, VT, 9975 N1, DAG.getConstantFP(3.0, DL, VT), Flags); 9976 } 9977 } 9978 9979 if (N1.getOpcode() == ISD::FADD && AllowNewConst) { 9980 bool CFP10 = isConstantFPBuildVectorOrConstantFP(N1.getOperand(0)); 9981 // (fadd x, (fadd x, x)) -> (fmul x, 3.0) 9982 if (!CFP10 && N1.getOperand(0) == N1.getOperand(1) && 9983 N1.getOperand(0) == N0) { 9984 return DAG.getNode(ISD::FMUL, DL, VT, 9985 N0, DAG.getConstantFP(3.0, DL, VT), Flags); 9986 } 9987 } 9988 9989 // (fadd (fadd x, x), (fadd x, x)) -> (fmul x, 4.0) 9990 if (AllowNewConst && 9991 N0.getOpcode() == ISD::FADD && N1.getOpcode() == ISD::FADD && 9992 N0.getOperand(0) == N0.getOperand(1) && 9993 N1.getOperand(0) == N1.getOperand(1) && 9994 N0.getOperand(0) == N1.getOperand(0)) { 9995 return DAG.getNode(ISD::FMUL, DL, VT, N0.getOperand(0), 9996 DAG.getConstantFP(4.0, DL, VT), Flags); 9997 } 9998 } 9999 } // enable-unsafe-fp-math 10000 10001 // FADD -> FMA combines: 10002 if (SDValue Fused = visitFADDForFMACombine(N)) { 10003 AddToWorklist(Fused.getNode()); 10004 return Fused; 10005 } 10006 return SDValue(); 10007 } 10008 10009 SDValue DAGCombiner::visitFSUB(SDNode *N) { 10010 SDValue N0 = N->getOperand(0); 10011 SDValue N1 = N->getOperand(1); 10012 ConstantFPSDNode *N0CFP = isConstOrConstSplatFP(N0); 10013 ConstantFPSDNode *N1CFP = isConstOrConstSplatFP(N1); 10014 EVT VT = N->getValueType(0); 10015 SDLoc DL(N); 10016 const TargetOptions &Options = DAG.getTarget().Options; 10017 const SDNodeFlags Flags = N->getFlags(); 10018 10019 // fold vector ops 10020 if (VT.isVector()) 10021 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 10022 return FoldedVOp; 10023 10024 // fold (fsub c1, c2) -> c1-c2 10025 if (N0CFP && N1CFP) 10026 return DAG.getNode(ISD::FSUB, DL, VT, N0, N1, Flags); 10027 10028 if (SDValue NewSel = foldBinOpIntoSelect(N)) 10029 return NewSel; 10030 10031 // fold (fsub A, (fneg B)) -> (fadd A, B) 10032 if (isNegatibleForFree(N1, LegalOperations, TLI, &Options)) 10033 return DAG.getNode(ISD::FADD, DL, VT, N0, 10034 GetNegatedExpression(N1, DAG, LegalOperations), Flags); 10035 10036 // FIXME: Auto-upgrade the target/function-level option. 10037 if (Options.NoSignedZerosFPMath || N->getFlags().hasNoSignedZeros()) { 10038 // (fsub 0, B) -> -B 10039 if (N0CFP && N0CFP->isZero()) { 10040 if (isNegatibleForFree(N1, LegalOperations, TLI, &Options)) 10041 return GetNegatedExpression(N1, DAG, LegalOperations); 10042 if (!LegalOperations || TLI.isOperationLegal(ISD::FNEG, VT)) 10043 return DAG.getNode(ISD::FNEG, DL, VT, N1, Flags); 10044 } 10045 } 10046 10047 // If 'unsafe math' is enabled, fold lots of things. 10048 if (Options.UnsafeFPMath) { 10049 // (fsub A, 0) -> A 10050 if (N1CFP && N1CFP->isZero()) 10051 return N0; 10052 10053 // (fsub x, x) -> 0.0 10054 if (N0 == N1) 10055 return DAG.getConstantFP(0.0f, DL, VT); 10056 10057 // (fsub x, (fadd x, y)) -> (fneg y) 10058 // (fsub x, (fadd y, x)) -> (fneg y) 10059 if (N1.getOpcode() == ISD::FADD) { 10060 SDValue N10 = N1->getOperand(0); 10061 SDValue N11 = N1->getOperand(1); 10062 10063 if (N10 == N0 && isNegatibleForFree(N11, LegalOperations, TLI, &Options)) 10064 return GetNegatedExpression(N11, DAG, LegalOperations); 10065 10066 if (N11 == N0 && isNegatibleForFree(N10, LegalOperations, TLI, &Options)) 10067 return GetNegatedExpression(N10, DAG, LegalOperations); 10068 } 10069 } 10070 10071 // FSUB -> FMA combines: 10072 if (SDValue Fused = visitFSUBForFMACombine(N)) { 10073 AddToWorklist(Fused.getNode()); 10074 return Fused; 10075 } 10076 10077 return SDValue(); 10078 } 10079 10080 SDValue DAGCombiner::visitFMUL(SDNode *N) { 10081 SDValue N0 = N->getOperand(0); 10082 SDValue N1 = N->getOperand(1); 10083 ConstantFPSDNode *N0CFP = isConstOrConstSplatFP(N0); 10084 ConstantFPSDNode *N1CFP = isConstOrConstSplatFP(N1); 10085 EVT VT = N->getValueType(0); 10086 SDLoc DL(N); 10087 const TargetOptions &Options = DAG.getTarget().Options; 10088 const SDNodeFlags Flags = N->getFlags(); 10089 10090 // fold vector ops 10091 if (VT.isVector()) { 10092 // This just handles C1 * C2 for vectors. Other vector folds are below. 10093 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 10094 return FoldedVOp; 10095 } 10096 10097 // fold (fmul c1, c2) -> c1*c2 10098 if (N0CFP && N1CFP) 10099 return DAG.getNode(ISD::FMUL, DL, VT, N0, N1, Flags); 10100 10101 // canonicalize constant to RHS 10102 if (isConstantFPBuildVectorOrConstantFP(N0) && 10103 !isConstantFPBuildVectorOrConstantFP(N1)) 10104 return DAG.getNode(ISD::FMUL, DL, VT, N1, N0, Flags); 10105 10106 // fold (fmul A, 1.0) -> A 10107 if (N1CFP && N1CFP->isExactlyValue(1.0)) 10108 return N0; 10109 10110 if (SDValue NewSel = foldBinOpIntoSelect(N)) 10111 return NewSel; 10112 10113 if (Options.UnsafeFPMath) { 10114 // fold (fmul A, 0) -> 0 10115 if (N1CFP && N1CFP->isZero()) 10116 return N1; 10117 10118 // fold (fmul (fmul x, c1), c2) -> (fmul x, (fmul c1, c2)) 10119 if (N0.getOpcode() == ISD::FMUL) { 10120 // Fold scalars or any vector constants (not just splats). 10121 // This fold is done in general by InstCombine, but extra fmul insts 10122 // may have been generated during lowering. 10123 SDValue N00 = N0.getOperand(0); 10124 SDValue N01 = N0.getOperand(1); 10125 auto *BV1 = dyn_cast<BuildVectorSDNode>(N1); 10126 auto *BV00 = dyn_cast<BuildVectorSDNode>(N00); 10127 auto *BV01 = dyn_cast<BuildVectorSDNode>(N01); 10128 10129 // Check 1: Make sure that the first operand of the inner multiply is NOT 10130 // a constant. Otherwise, we may induce infinite looping. 10131 if (!(isConstOrConstSplatFP(N00) || (BV00 && BV00->isConstant()))) { 10132 // Check 2: Make sure that the second operand of the inner multiply and 10133 // the second operand of the outer multiply are constants. 10134 if ((N1CFP && isConstOrConstSplatFP(N01)) || 10135 (BV1 && BV01 && BV1->isConstant() && BV01->isConstant())) { 10136 SDValue MulConsts = DAG.getNode(ISD::FMUL, DL, VT, N01, N1, Flags); 10137 return DAG.getNode(ISD::FMUL, DL, VT, N00, MulConsts, Flags); 10138 } 10139 } 10140 } 10141 10142 // fold (fmul (fadd x, x), c) -> (fmul x, (fmul 2.0, c)) 10143 // Undo the fmul 2.0, x -> fadd x, x transformation, since if it occurs 10144 // during an early run of DAGCombiner can prevent folding with fmuls 10145 // inserted during lowering. 10146 if (N0.getOpcode() == ISD::FADD && 10147 (N0.getOperand(0) == N0.getOperand(1)) && 10148 N0.hasOneUse()) { 10149 const SDValue Two = DAG.getConstantFP(2.0, DL, VT); 10150 SDValue MulConsts = DAG.getNode(ISD::FMUL, DL, VT, Two, N1, Flags); 10151 return DAG.getNode(ISD::FMUL, DL, VT, N0.getOperand(0), MulConsts, Flags); 10152 } 10153 } 10154 10155 // fold (fmul X, 2.0) -> (fadd X, X) 10156 if (N1CFP && N1CFP->isExactlyValue(+2.0)) 10157 return DAG.getNode(ISD::FADD, DL, VT, N0, N0, Flags); 10158 10159 // fold (fmul X, -1.0) -> (fneg X) 10160 if (N1CFP && N1CFP->isExactlyValue(-1.0)) 10161 if (!LegalOperations || TLI.isOperationLegal(ISD::FNEG, VT)) 10162 return DAG.getNode(ISD::FNEG, DL, VT, N0); 10163 10164 // fold (fmul (fneg X), (fneg Y)) -> (fmul X, Y) 10165 if (char LHSNeg = isNegatibleForFree(N0, LegalOperations, TLI, &Options)) { 10166 if (char RHSNeg = isNegatibleForFree(N1, LegalOperations, TLI, &Options)) { 10167 // Both can be negated for free, check to see if at least one is cheaper 10168 // negated. 10169 if (LHSNeg == 2 || RHSNeg == 2) 10170 return DAG.getNode(ISD::FMUL, DL, VT, 10171 GetNegatedExpression(N0, DAG, LegalOperations), 10172 GetNegatedExpression(N1, DAG, LegalOperations), 10173 Flags); 10174 } 10175 } 10176 10177 // fold (fmul X, (select (fcmp X > 0.0), -1.0, 1.0)) -> (fneg (fabs X)) 10178 // fold (fmul X, (select (fcmp X > 0.0), 1.0, -1.0)) -> (fabs X) 10179 if (Flags.hasNoNaNs() && Flags.hasNoSignedZeros() && 10180 (N0.getOpcode() == ISD::SELECT || N1.getOpcode() == ISD::SELECT) && 10181 TLI.isOperationLegal(ISD::FABS, VT)) { 10182 SDValue Select = N0, X = N1; 10183 if (Select.getOpcode() != ISD::SELECT) 10184 std::swap(Select, X); 10185 10186 SDValue Cond = Select.getOperand(0); 10187 auto TrueOpnd = dyn_cast<ConstantFPSDNode>(Select.getOperand(1)); 10188 auto FalseOpnd = dyn_cast<ConstantFPSDNode>(Select.getOperand(2)); 10189 10190 if (TrueOpnd && FalseOpnd && 10191 Cond.getOpcode() == ISD::SETCC && Cond.getOperand(0) == X && 10192 isa<ConstantFPSDNode>(Cond.getOperand(1)) && 10193 cast<ConstantFPSDNode>(Cond.getOperand(1))->isExactlyValue(0.0)) { 10194 ISD::CondCode CC = cast<CondCodeSDNode>(Cond.getOperand(2))->get(); 10195 switch (CC) { 10196 default: break; 10197 case ISD::SETOLT: 10198 case ISD::SETULT: 10199 case ISD::SETOLE: 10200 case ISD::SETULE: 10201 case ISD::SETLT: 10202 case ISD::SETLE: 10203 std::swap(TrueOpnd, FalseOpnd); 10204 // Fall through 10205 case ISD::SETOGT: 10206 case ISD::SETUGT: 10207 case ISD::SETOGE: 10208 case ISD::SETUGE: 10209 case ISD::SETGT: 10210 case ISD::SETGE: 10211 if (TrueOpnd->isExactlyValue(-1.0) && FalseOpnd->isExactlyValue(1.0) && 10212 TLI.isOperationLegal(ISD::FNEG, VT)) 10213 return DAG.getNode(ISD::FNEG, DL, VT, 10214 DAG.getNode(ISD::FABS, DL, VT, X)); 10215 if (TrueOpnd->isExactlyValue(1.0) && FalseOpnd->isExactlyValue(-1.0)) 10216 return DAG.getNode(ISD::FABS, DL, VT, X); 10217 10218 break; 10219 } 10220 } 10221 } 10222 10223 // FMUL -> FMA combines: 10224 if (SDValue Fused = visitFMULForFMADistributiveCombine(N)) { 10225 AddToWorklist(Fused.getNode()); 10226 return Fused; 10227 } 10228 10229 return SDValue(); 10230 } 10231 10232 SDValue DAGCombiner::visitFMA(SDNode *N) { 10233 SDValue N0 = N->getOperand(0); 10234 SDValue N1 = N->getOperand(1); 10235 SDValue N2 = N->getOperand(2); 10236 ConstantFPSDNode *N0CFP = dyn_cast<ConstantFPSDNode>(N0); 10237 ConstantFPSDNode *N1CFP = dyn_cast<ConstantFPSDNode>(N1); 10238 EVT VT = N->getValueType(0); 10239 SDLoc DL(N); 10240 const TargetOptions &Options = DAG.getTarget().Options; 10241 10242 // Constant fold FMA. 10243 if (isa<ConstantFPSDNode>(N0) && 10244 isa<ConstantFPSDNode>(N1) && 10245 isa<ConstantFPSDNode>(N2)) { 10246 return DAG.getNode(ISD::FMA, DL, VT, N0, N1, N2); 10247 } 10248 10249 if (Options.UnsafeFPMath) { 10250 if (N0CFP && N0CFP->isZero()) 10251 return N2; 10252 if (N1CFP && N1CFP->isZero()) 10253 return N2; 10254 } 10255 // TODO: The FMA node should have flags that propagate to these nodes. 10256 if (N0CFP && N0CFP->isExactlyValue(1.0)) 10257 return DAG.getNode(ISD::FADD, SDLoc(N), VT, N1, N2); 10258 if (N1CFP && N1CFP->isExactlyValue(1.0)) 10259 return DAG.getNode(ISD::FADD, SDLoc(N), VT, N0, N2); 10260 10261 // Canonicalize (fma c, x, y) -> (fma x, c, y) 10262 if (isConstantFPBuildVectorOrConstantFP(N0) && 10263 !isConstantFPBuildVectorOrConstantFP(N1)) 10264 return DAG.getNode(ISD::FMA, SDLoc(N), VT, N1, N0, N2); 10265 10266 // TODO: FMA nodes should have flags that propagate to the created nodes. 10267 // For now, create a Flags object for use with all unsafe math transforms. 10268 SDNodeFlags Flags; 10269 Flags.setUnsafeAlgebra(true); 10270 10271 if (Options.UnsafeFPMath) { 10272 // (fma x, c1, (fmul x, c2)) -> (fmul x, c1+c2) 10273 if (N2.getOpcode() == ISD::FMUL && N0 == N2.getOperand(0) && 10274 isConstantFPBuildVectorOrConstantFP(N1) && 10275 isConstantFPBuildVectorOrConstantFP(N2.getOperand(1))) { 10276 return DAG.getNode(ISD::FMUL, DL, VT, N0, 10277 DAG.getNode(ISD::FADD, DL, VT, N1, N2.getOperand(1), 10278 Flags), Flags); 10279 } 10280 10281 // (fma (fmul x, c1), c2, y) -> (fma x, c1*c2, y) 10282 if (N0.getOpcode() == ISD::FMUL && 10283 isConstantFPBuildVectorOrConstantFP(N1) && 10284 isConstantFPBuildVectorOrConstantFP(N0.getOperand(1))) { 10285 return DAG.getNode(ISD::FMA, DL, VT, 10286 N0.getOperand(0), 10287 DAG.getNode(ISD::FMUL, DL, VT, N1, N0.getOperand(1), 10288 Flags), 10289 N2); 10290 } 10291 } 10292 10293 // (fma x, 1, y) -> (fadd x, y) 10294 // (fma x, -1, y) -> (fadd (fneg x), y) 10295 if (N1CFP) { 10296 if (N1CFP->isExactlyValue(1.0)) 10297 // TODO: The FMA node should have flags that propagate to this node. 10298 return DAG.getNode(ISD::FADD, DL, VT, N0, N2); 10299 10300 if (N1CFP->isExactlyValue(-1.0) && 10301 (!LegalOperations || TLI.isOperationLegal(ISD::FNEG, VT))) { 10302 SDValue RHSNeg = DAG.getNode(ISD::FNEG, DL, VT, N0); 10303 AddToWorklist(RHSNeg.getNode()); 10304 // TODO: The FMA node should have flags that propagate to this node. 10305 return DAG.getNode(ISD::FADD, DL, VT, N2, RHSNeg); 10306 } 10307 10308 // fma (fneg x), K, y -> fma x -K, y 10309 if (N0.getOpcode() == ISD::FNEG && 10310 (TLI.isOperationLegal(ISD::ConstantFP, VT) || 10311 (N1.hasOneUse() && !TLI.isFPImmLegal(N1CFP->getValueAPF(), VT)))) { 10312 return DAG.getNode(ISD::FMA, DL, VT, N0.getOperand(0), 10313 DAG.getNode(ISD::FNEG, DL, VT, N1, Flags), N2); 10314 } 10315 } 10316 10317 if (Options.UnsafeFPMath) { 10318 // (fma x, c, x) -> (fmul x, (c+1)) 10319 if (N1CFP && N0 == N2) { 10320 return DAG.getNode(ISD::FMUL, DL, VT, N0, 10321 DAG.getNode(ISD::FADD, DL, VT, N1, 10322 DAG.getConstantFP(1.0, DL, VT), Flags), 10323 Flags); 10324 } 10325 10326 // (fma x, c, (fneg x)) -> (fmul x, (c-1)) 10327 if (N1CFP && N2.getOpcode() == ISD::FNEG && N2.getOperand(0) == N0) { 10328 return DAG.getNode(ISD::FMUL, DL, VT, N0, 10329 DAG.getNode(ISD::FADD, DL, VT, N1, 10330 DAG.getConstantFP(-1.0, DL, VT), Flags), 10331 Flags); 10332 } 10333 } 10334 10335 return SDValue(); 10336 } 10337 10338 // Combine multiple FDIVs with the same divisor into multiple FMULs by the 10339 // reciprocal. 10340 // E.g., (a / D; b / D;) -> (recip = 1.0 / D; a * recip; b * recip) 10341 // Notice that this is not always beneficial. One reason is different targets 10342 // may have different costs for FDIV and FMUL, so sometimes the cost of two 10343 // FDIVs may be lower than the cost of one FDIV and two FMULs. Another reason 10344 // is the critical path is increased from "one FDIV" to "one FDIV + one FMUL". 10345 SDValue DAGCombiner::combineRepeatedFPDivisors(SDNode *N) { 10346 bool UnsafeMath = DAG.getTarget().Options.UnsafeFPMath; 10347 const SDNodeFlags Flags = N->getFlags(); 10348 if (!UnsafeMath && !Flags.hasAllowReciprocal()) 10349 return SDValue(); 10350 10351 // Skip if current node is a reciprocal. 10352 SDValue N0 = N->getOperand(0); 10353 ConstantFPSDNode *N0CFP = dyn_cast<ConstantFPSDNode>(N0); 10354 if (N0CFP && N0CFP->isExactlyValue(1.0)) 10355 return SDValue(); 10356 10357 // Exit early if the target does not want this transform or if there can't 10358 // possibly be enough uses of the divisor to make the transform worthwhile. 10359 SDValue N1 = N->getOperand(1); 10360 unsigned MinUses = TLI.combineRepeatedFPDivisors(); 10361 if (!MinUses || N1->use_size() < MinUses) 10362 return SDValue(); 10363 10364 // Find all FDIV users of the same divisor. 10365 // Use a set because duplicates may be present in the user list. 10366 SetVector<SDNode *> Users; 10367 for (auto *U : N1->uses()) { 10368 if (U->getOpcode() == ISD::FDIV && U->getOperand(1) == N1) { 10369 // This division is eligible for optimization only if global unsafe math 10370 // is enabled or if this division allows reciprocal formation. 10371 if (UnsafeMath || U->getFlags().hasAllowReciprocal()) 10372 Users.insert(U); 10373 } 10374 } 10375 10376 // Now that we have the actual number of divisor uses, make sure it meets 10377 // the minimum threshold specified by the target. 10378 if (Users.size() < MinUses) 10379 return SDValue(); 10380 10381 EVT VT = N->getValueType(0); 10382 SDLoc DL(N); 10383 SDValue FPOne = DAG.getConstantFP(1.0, DL, VT); 10384 SDValue Reciprocal = DAG.getNode(ISD::FDIV, DL, VT, FPOne, N1, Flags); 10385 10386 // Dividend / Divisor -> Dividend * Reciprocal 10387 for (auto *U : Users) { 10388 SDValue Dividend = U->getOperand(0); 10389 if (Dividend != FPOne) { 10390 SDValue NewNode = DAG.getNode(ISD::FMUL, SDLoc(U), VT, Dividend, 10391 Reciprocal, Flags); 10392 CombineTo(U, NewNode); 10393 } else if (U != Reciprocal.getNode()) { 10394 // In the absence of fast-math-flags, this user node is always the 10395 // same node as Reciprocal, but with FMF they may be different nodes. 10396 CombineTo(U, Reciprocal); 10397 } 10398 } 10399 return SDValue(N, 0); // N was replaced. 10400 } 10401 10402 SDValue DAGCombiner::visitFDIV(SDNode *N) { 10403 SDValue N0 = N->getOperand(0); 10404 SDValue N1 = N->getOperand(1); 10405 ConstantFPSDNode *N0CFP = dyn_cast<ConstantFPSDNode>(N0); 10406 ConstantFPSDNode *N1CFP = dyn_cast<ConstantFPSDNode>(N1); 10407 EVT VT = N->getValueType(0); 10408 SDLoc DL(N); 10409 const TargetOptions &Options = DAG.getTarget().Options; 10410 SDNodeFlags Flags = N->getFlags(); 10411 10412 // fold vector ops 10413 if (VT.isVector()) 10414 if (SDValue FoldedVOp = SimplifyVBinOp(N)) 10415 return FoldedVOp; 10416 10417 // fold (fdiv c1, c2) -> c1/c2 10418 if (N0CFP && N1CFP) 10419 return DAG.getNode(ISD::FDIV, SDLoc(N), VT, N0, N1, Flags); 10420 10421 if (SDValue NewSel = foldBinOpIntoSelect(N)) 10422 return NewSel; 10423 10424 if (Options.UnsafeFPMath) { 10425 // fold (fdiv X, c2) -> fmul X, 1/c2 if losing precision is acceptable. 10426 if (N1CFP) { 10427 // Compute the reciprocal 1.0 / c2. 10428 const APFloat &N1APF = N1CFP->getValueAPF(); 10429 APFloat Recip(N1APF.getSemantics(), 1); // 1.0 10430 APFloat::opStatus st = Recip.divide(N1APF, APFloat::rmNearestTiesToEven); 10431 // Only do the transform if the reciprocal is a legal fp immediate that 10432 // isn't too nasty (eg NaN, denormal, ...). 10433 if ((st == APFloat::opOK || st == APFloat::opInexact) && // Not too nasty 10434 (!LegalOperations || 10435 // FIXME: custom lowering of ConstantFP might fail (see e.g. ARM 10436 // backend)... we should handle this gracefully after Legalize. 10437 // TLI.isOperationLegalOrCustom(ISD::ConstantFP, VT) || 10438 TLI.isOperationLegal(ISD::ConstantFP, VT) || 10439 TLI.isFPImmLegal(Recip, VT))) 10440 return DAG.getNode(ISD::FMUL, DL, VT, N0, 10441 DAG.getConstantFP(Recip, DL, VT), Flags); 10442 } 10443 10444 // If this FDIV is part of a reciprocal square root, it may be folded 10445 // into a target-specific square root estimate instruction. 10446 if (N1.getOpcode() == ISD::FSQRT) { 10447 if (SDValue RV = buildRsqrtEstimate(N1.getOperand(0), Flags)) { 10448 return DAG.getNode(ISD::FMUL, DL, VT, N0, RV, Flags); 10449 } 10450 } else if (N1.getOpcode() == ISD::FP_EXTEND && 10451 N1.getOperand(0).getOpcode() == ISD::FSQRT) { 10452 if (SDValue RV = buildRsqrtEstimate(N1.getOperand(0).getOperand(0), 10453 Flags)) { 10454 RV = DAG.getNode(ISD::FP_EXTEND, SDLoc(N1), VT, RV); 10455 AddToWorklist(RV.getNode()); 10456 return DAG.getNode(ISD::FMUL, DL, VT, N0, RV, Flags); 10457 } 10458 } else if (N1.getOpcode() == ISD::FP_ROUND && 10459 N1.getOperand(0).getOpcode() == ISD::FSQRT) { 10460 if (SDValue RV = buildRsqrtEstimate(N1.getOperand(0).getOperand(0), 10461 Flags)) { 10462 RV = DAG.getNode(ISD::FP_ROUND, SDLoc(N1), VT, RV, N1.getOperand(1)); 10463 AddToWorklist(RV.getNode()); 10464 return DAG.getNode(ISD::FMUL, DL, VT, N0, RV, Flags); 10465 } 10466 } else if (N1.getOpcode() == ISD::FMUL) { 10467 // Look through an FMUL. Even though this won't remove the FDIV directly, 10468 // it's still worthwhile to get rid of the FSQRT if possible. 10469 SDValue SqrtOp; 10470 SDValue OtherOp; 10471 if (N1.getOperand(0).getOpcode() == ISD::FSQRT) { 10472 SqrtOp = N1.getOperand(0); 10473 OtherOp = N1.getOperand(1); 10474 } else if (N1.getOperand(1).getOpcode() == ISD::FSQRT) { 10475 SqrtOp = N1.getOperand(1); 10476 OtherOp = N1.getOperand(0); 10477 } 10478 if (SqrtOp.getNode()) { 10479 // We found a FSQRT, so try to make this fold: 10480 // x / (y * sqrt(z)) -> x * (rsqrt(z) / y) 10481 if (SDValue RV = buildRsqrtEstimate(SqrtOp.getOperand(0), Flags)) { 10482 RV = DAG.getNode(ISD::FDIV, SDLoc(N1), VT, RV, OtherOp, Flags); 10483 AddToWorklist(RV.getNode()); 10484 return DAG.getNode(ISD::FMUL, DL, VT, N0, RV, Flags); 10485 } 10486 } 10487 } 10488 10489 // Fold into a reciprocal estimate and multiply instead of a real divide. 10490 if (SDValue RV = BuildReciprocalEstimate(N1, Flags)) { 10491 AddToWorklist(RV.getNode()); 10492 return DAG.getNode(ISD::FMUL, DL, VT, N0, RV, Flags); 10493 } 10494 } 10495 10496 // (fdiv (fneg X), (fneg Y)) -> (fdiv X, Y) 10497 if (char LHSNeg = isNegatibleForFree(N0, LegalOperations, TLI, &Options)) { 10498 if (char RHSNeg = isNegatibleForFree(N1, LegalOperations, TLI, &Options)) { 10499 // Both can be negated for free, check to see if at least one is cheaper 10500 // negated. 10501 if (LHSNeg == 2 || RHSNeg == 2) 10502 return DAG.getNode(ISD::FDIV, SDLoc(N), VT, 10503 GetNegatedExpression(N0, DAG, LegalOperations), 10504 GetNegatedExpression(N1, DAG, LegalOperations), 10505 Flags); 10506 } 10507 } 10508 10509 if (SDValue CombineRepeatedDivisors = combineRepeatedFPDivisors(N)) 10510 return CombineRepeatedDivisors; 10511 10512 return SDValue(); 10513 } 10514 10515 SDValue DAGCombiner::visitFREM(SDNode *N) { 10516 SDValue N0 = N->getOperand(0); 10517 SDValue N1 = N->getOperand(1); 10518 ConstantFPSDNode *N0CFP = dyn_cast<ConstantFPSDNode>(N0); 10519 ConstantFPSDNode *N1CFP = dyn_cast<ConstantFPSDNode>(N1); 10520 EVT VT = N->getValueType(0); 10521 10522 // fold (frem c1, c2) -> fmod(c1,c2) 10523 if (N0CFP && N1CFP) 10524 return DAG.getNode(ISD::FREM, SDLoc(N), VT, N0, N1, N->getFlags()); 10525 10526 if (SDValue NewSel = foldBinOpIntoSelect(N)) 10527 return NewSel; 10528 10529 return SDValue(); 10530 } 10531 10532 SDValue DAGCombiner::visitFSQRT(SDNode *N) { 10533 if (!DAG.getTarget().Options.UnsafeFPMath) 10534 return SDValue(); 10535 10536 SDValue N0 = N->getOperand(0); 10537 if (TLI.isFsqrtCheap(N0, DAG)) 10538 return SDValue(); 10539 10540 // TODO: FSQRT nodes should have flags that propagate to the created nodes. 10541 // For now, create a Flags object for use with all unsafe math transforms. 10542 SDNodeFlags Flags; 10543 Flags.setUnsafeAlgebra(true); 10544 return buildSqrtEstimate(N0, Flags); 10545 } 10546 10547 /// copysign(x, fp_extend(y)) -> copysign(x, y) 10548 /// copysign(x, fp_round(y)) -> copysign(x, y) 10549 static inline bool CanCombineFCOPYSIGN_EXTEND_ROUND(SDNode *N) { 10550 SDValue N1 = N->getOperand(1); 10551 if ((N1.getOpcode() == ISD::FP_EXTEND || 10552 N1.getOpcode() == ISD::FP_ROUND)) { 10553 // Do not optimize out type conversion of f128 type yet. 10554 // For some targets like x86_64, configuration is changed to keep one f128 10555 // value in one SSE register, but instruction selection cannot handle 10556 // FCOPYSIGN on SSE registers yet. 10557 EVT N1VT = N1->getValueType(0); 10558 EVT N1Op0VT = N1->getOperand(0)->getValueType(0); 10559 return (N1VT == N1Op0VT || N1Op0VT != MVT::f128); 10560 } 10561 return false; 10562 } 10563 10564 SDValue DAGCombiner::visitFCOPYSIGN(SDNode *N) { 10565 SDValue N0 = N->getOperand(0); 10566 SDValue N1 = N->getOperand(1); 10567 ConstantFPSDNode *N0CFP = dyn_cast<ConstantFPSDNode>(N0); 10568 ConstantFPSDNode *N1CFP = dyn_cast<ConstantFPSDNode>(N1); 10569 EVT VT = N->getValueType(0); 10570 10571 if (N0CFP && N1CFP) // Constant fold 10572 return DAG.getNode(ISD::FCOPYSIGN, SDLoc(N), VT, N0, N1); 10573 10574 if (N1CFP) { 10575 const APFloat &V = N1CFP->getValueAPF(); 10576 // copysign(x, c1) -> fabs(x) iff ispos(c1) 10577 // copysign(x, c1) -> fneg(fabs(x)) iff isneg(c1) 10578 if (!V.isNegative()) { 10579 if (!LegalOperations || TLI.isOperationLegal(ISD::FABS, VT)) 10580 return DAG.getNode(ISD::FABS, SDLoc(N), VT, N0); 10581 } else { 10582 if (!LegalOperations || TLI.isOperationLegal(ISD::FNEG, VT)) 10583 return DAG.getNode(ISD::FNEG, SDLoc(N), VT, 10584 DAG.getNode(ISD::FABS, SDLoc(N0), VT, N0)); 10585 } 10586 } 10587 10588 // copysign(fabs(x), y) -> copysign(x, y) 10589 // copysign(fneg(x), y) -> copysign(x, y) 10590 // copysign(copysign(x,z), y) -> copysign(x, y) 10591 if (N0.getOpcode() == ISD::FABS || N0.getOpcode() == ISD::FNEG || 10592 N0.getOpcode() == ISD::FCOPYSIGN) 10593 return DAG.getNode(ISD::FCOPYSIGN, SDLoc(N), VT, N0.getOperand(0), N1); 10594 10595 // copysign(x, abs(y)) -> abs(x) 10596 if (N1.getOpcode() == ISD::FABS) 10597 return DAG.getNode(ISD::FABS, SDLoc(N), VT, N0); 10598 10599 // copysign(x, copysign(y,z)) -> copysign(x, z) 10600 if (N1.getOpcode() == ISD::FCOPYSIGN) 10601 return DAG.getNode(ISD::FCOPYSIGN, SDLoc(N), VT, N0, N1.getOperand(1)); 10602 10603 // copysign(x, fp_extend(y)) -> copysign(x, y) 10604 // copysign(x, fp_round(y)) -> copysign(x, y) 10605 if (CanCombineFCOPYSIGN_EXTEND_ROUND(N)) 10606 return DAG.getNode(ISD::FCOPYSIGN, SDLoc(N), VT, N0, N1.getOperand(0)); 10607 10608 return SDValue(); 10609 } 10610 10611 SDValue DAGCombiner::visitSINT_TO_FP(SDNode *N) { 10612 SDValue N0 = N->getOperand(0); 10613 EVT VT = N->getValueType(0); 10614 EVT OpVT = N0.getValueType(); 10615 10616 // fold (sint_to_fp c1) -> c1fp 10617 if (DAG.isConstantIntBuildVectorOrConstantInt(N0) && 10618 // ...but only if the target supports immediate floating-point values 10619 (!LegalOperations || 10620 TLI.isOperationLegalOrCustom(ISD::ConstantFP, VT))) 10621 return DAG.getNode(ISD::SINT_TO_FP, SDLoc(N), VT, N0); 10622 10623 // If the input is a legal type, and SINT_TO_FP is not legal on this target, 10624 // but UINT_TO_FP is legal on this target, try to convert. 10625 if (!TLI.isOperationLegalOrCustom(ISD::SINT_TO_FP, OpVT) && 10626 TLI.isOperationLegalOrCustom(ISD::UINT_TO_FP, OpVT)) { 10627 // If the sign bit is known to be zero, we can change this to UINT_TO_FP. 10628 if (DAG.SignBitIsZero(N0)) 10629 return DAG.getNode(ISD::UINT_TO_FP, SDLoc(N), VT, N0); 10630 } 10631 10632 // The next optimizations are desirable only if SELECT_CC can be lowered. 10633 if (TLI.isOperationLegalOrCustom(ISD::SELECT_CC, VT) || !LegalOperations) { 10634 // fold (sint_to_fp (setcc x, y, cc)) -> (select_cc x, y, -1.0, 0.0,, cc) 10635 if (N0.getOpcode() == ISD::SETCC && N0.getValueType() == MVT::i1 && 10636 !VT.isVector() && 10637 (!LegalOperations || 10638 TLI.isOperationLegalOrCustom(ISD::ConstantFP, VT))) { 10639 SDLoc DL(N); 10640 SDValue Ops[] = 10641 { N0.getOperand(0), N0.getOperand(1), 10642 DAG.getConstantFP(-1.0, DL, VT), DAG.getConstantFP(0.0, DL, VT), 10643 N0.getOperand(2) }; 10644 return DAG.getNode(ISD::SELECT_CC, DL, VT, Ops); 10645 } 10646 10647 // fold (sint_to_fp (zext (setcc x, y, cc))) -> 10648 // (select_cc x, y, 1.0, 0.0,, cc) 10649 if (N0.getOpcode() == ISD::ZERO_EXTEND && 10650 N0.getOperand(0).getOpcode() == ISD::SETCC &&!VT.isVector() && 10651 (!LegalOperations || 10652 TLI.isOperationLegalOrCustom(ISD::ConstantFP, VT))) { 10653 SDLoc DL(N); 10654 SDValue Ops[] = 10655 { N0.getOperand(0).getOperand(0), N0.getOperand(0).getOperand(1), 10656 DAG.getConstantFP(1.0, DL, VT), DAG.getConstantFP(0.0, DL, VT), 10657 N0.getOperand(0).getOperand(2) }; 10658 return DAG.getNode(ISD::SELECT_CC, DL, VT, Ops); 10659 } 10660 } 10661 10662 return SDValue(); 10663 } 10664 10665 SDValue DAGCombiner::visitUINT_TO_FP(SDNode *N) { 10666 SDValue N0 = N->getOperand(0); 10667 EVT VT = N->getValueType(0); 10668 EVT OpVT = N0.getValueType(); 10669 10670 // fold (uint_to_fp c1) -> c1fp 10671 if (DAG.isConstantIntBuildVectorOrConstantInt(N0) && 10672 // ...but only if the target supports immediate floating-point values 10673 (!LegalOperations || 10674 TLI.isOperationLegalOrCustom(ISD::ConstantFP, VT))) 10675 return DAG.getNode(ISD::UINT_TO_FP, SDLoc(N), VT, N0); 10676 10677 // If the input is a legal type, and UINT_TO_FP is not legal on this target, 10678 // but SINT_TO_FP is legal on this target, try to convert. 10679 if (!TLI.isOperationLegalOrCustom(ISD::UINT_TO_FP, OpVT) && 10680 TLI.isOperationLegalOrCustom(ISD::SINT_TO_FP, OpVT)) { 10681 // If the sign bit is known to be zero, we can change this to SINT_TO_FP. 10682 if (DAG.SignBitIsZero(N0)) 10683 return DAG.getNode(ISD::SINT_TO_FP, SDLoc(N), VT, N0); 10684 } 10685 10686 // The next optimizations are desirable only if SELECT_CC can be lowered. 10687 if (TLI.isOperationLegalOrCustom(ISD::SELECT_CC, VT) || !LegalOperations) { 10688 // fold (uint_to_fp (setcc x, y, cc)) -> (select_cc x, y, -1.0, 0.0,, cc) 10689 if (N0.getOpcode() == ISD::SETCC && !VT.isVector() && 10690 (!LegalOperations || 10691 TLI.isOperationLegalOrCustom(ISD::ConstantFP, VT))) { 10692 SDLoc DL(N); 10693 SDValue Ops[] = 10694 { N0.getOperand(0), N0.getOperand(1), 10695 DAG.getConstantFP(1.0, DL, VT), DAG.getConstantFP(0.0, DL, VT), 10696 N0.getOperand(2) }; 10697 return DAG.getNode(ISD::SELECT_CC, DL, VT, Ops); 10698 } 10699 } 10700 10701 return SDValue(); 10702 } 10703 10704 // Fold (fp_to_{s/u}int ({s/u}int_to_fpx)) -> zext x, sext x, trunc x, or x 10705 static SDValue FoldIntToFPToInt(SDNode *N, SelectionDAG &DAG) { 10706 SDValue N0 = N->getOperand(0); 10707 EVT VT = N->getValueType(0); 10708 10709 if (N0.getOpcode() != ISD::UINT_TO_FP && N0.getOpcode() != ISD::SINT_TO_FP) 10710 return SDValue(); 10711 10712 SDValue Src = N0.getOperand(0); 10713 EVT SrcVT = Src.getValueType(); 10714 bool IsInputSigned = N0.getOpcode() == ISD::SINT_TO_FP; 10715 bool IsOutputSigned = N->getOpcode() == ISD::FP_TO_SINT; 10716 10717 // We can safely assume the conversion won't overflow the output range, 10718 // because (for example) (uint8_t)18293.f is undefined behavior. 10719 10720 // Since we can assume the conversion won't overflow, our decision as to 10721 // whether the input will fit in the float should depend on the minimum 10722 // of the input range and output range. 10723 10724 // This means this is also safe for a signed input and unsigned output, since 10725 // a negative input would lead to undefined behavior. 10726 unsigned InputSize = (int)SrcVT.getScalarSizeInBits() - IsInputSigned; 10727 unsigned OutputSize = (int)VT.getScalarSizeInBits() - IsOutputSigned; 10728 unsigned ActualSize = std::min(InputSize, OutputSize); 10729 const fltSemantics &sem = DAG.EVTToAPFloatSemantics(N0.getValueType()); 10730 10731 // We can only fold away the float conversion if the input range can be 10732 // represented exactly in the float range. 10733 if (APFloat::semanticsPrecision(sem) >= ActualSize) { 10734 if (VT.getScalarSizeInBits() > SrcVT.getScalarSizeInBits()) { 10735 unsigned ExtOp = IsInputSigned && IsOutputSigned ? ISD::SIGN_EXTEND 10736 : ISD::ZERO_EXTEND; 10737 return DAG.getNode(ExtOp, SDLoc(N), VT, Src); 10738 } 10739 if (VT.getScalarSizeInBits() < SrcVT.getScalarSizeInBits()) 10740 return DAG.getNode(ISD::TRUNCATE, SDLoc(N), VT, Src); 10741 return DAG.getBitcast(VT, Src); 10742 } 10743 return SDValue(); 10744 } 10745 10746 SDValue DAGCombiner::visitFP_TO_SINT(SDNode *N) { 10747 SDValue N0 = N->getOperand(0); 10748 EVT VT = N->getValueType(0); 10749 10750 // fold (fp_to_sint c1fp) -> c1 10751 if (isConstantFPBuildVectorOrConstantFP(N0)) 10752 return DAG.getNode(ISD::FP_TO_SINT, SDLoc(N), VT, N0); 10753 10754 return FoldIntToFPToInt(N, DAG); 10755 } 10756 10757 SDValue DAGCombiner::visitFP_TO_UINT(SDNode *N) { 10758 SDValue N0 = N->getOperand(0); 10759 EVT VT = N->getValueType(0); 10760 10761 // fold (fp_to_uint c1fp) -> c1 10762 if (isConstantFPBuildVectorOrConstantFP(N0)) 10763 return DAG.getNode(ISD::FP_TO_UINT, SDLoc(N), VT, N0); 10764 10765 return FoldIntToFPToInt(N, DAG); 10766 } 10767 10768 SDValue DAGCombiner::visitFP_ROUND(SDNode *N) { 10769 SDValue N0 = N->getOperand(0); 10770 SDValue N1 = N->getOperand(1); 10771 ConstantFPSDNode *N0CFP = dyn_cast<ConstantFPSDNode>(N0); 10772 EVT VT = N->getValueType(0); 10773 10774 // fold (fp_round c1fp) -> c1fp 10775 if (N0CFP) 10776 return DAG.getNode(ISD::FP_ROUND, SDLoc(N), VT, N0, N1); 10777 10778 // fold (fp_round (fp_extend x)) -> x 10779 if (N0.getOpcode() == ISD::FP_EXTEND && VT == N0.getOperand(0).getValueType()) 10780 return N0.getOperand(0); 10781 10782 // fold (fp_round (fp_round x)) -> (fp_round x) 10783 if (N0.getOpcode() == ISD::FP_ROUND) { 10784 const bool NIsTrunc = N->getConstantOperandVal(1) == 1; 10785 const bool N0IsTrunc = N0.getConstantOperandVal(1) == 1; 10786 10787 // Skip this folding if it results in an fp_round from f80 to f16. 10788 // 10789 // f80 to f16 always generates an expensive (and as yet, unimplemented) 10790 // libcall to __truncxfhf2 instead of selecting native f16 conversion 10791 // instructions from f32 or f64. Moreover, the first (value-preserving) 10792 // fp_round from f80 to either f32 or f64 may become a NOP in platforms like 10793 // x86. 10794 if (N0.getOperand(0).getValueType() == MVT::f80 && VT == MVT::f16) 10795 return SDValue(); 10796 10797 // If the first fp_round isn't a value preserving truncation, it might 10798 // introduce a tie in the second fp_round, that wouldn't occur in the 10799 // single-step fp_round we want to fold to. 10800 // In other words, double rounding isn't the same as rounding. 10801 // Also, this is a value preserving truncation iff both fp_round's are. 10802 if (DAG.getTarget().Options.UnsafeFPMath || N0IsTrunc) { 10803 SDLoc DL(N); 10804 return DAG.getNode(ISD::FP_ROUND, DL, VT, N0.getOperand(0), 10805 DAG.getIntPtrConstant(NIsTrunc && N0IsTrunc, DL)); 10806 } 10807 } 10808 10809 // fold (fp_round (copysign X, Y)) -> (copysign (fp_round X), Y) 10810 if (N0.getOpcode() == ISD::FCOPYSIGN && N0.getNode()->hasOneUse()) { 10811 SDValue Tmp = DAG.getNode(ISD::FP_ROUND, SDLoc(N0), VT, 10812 N0.getOperand(0), N1); 10813 AddToWorklist(Tmp.getNode()); 10814 return DAG.getNode(ISD::FCOPYSIGN, SDLoc(N), VT, 10815 Tmp, N0.getOperand(1)); 10816 } 10817 10818 if (SDValue NewVSel = matchVSelectOpSizesWithSetCC(N)) 10819 return NewVSel; 10820 10821 return SDValue(); 10822 } 10823 10824 SDValue DAGCombiner::visitFP_ROUND_INREG(SDNode *N) { 10825 SDValue N0 = N->getOperand(0); 10826 EVT VT = N->getValueType(0); 10827 EVT EVT = cast<VTSDNode>(N->getOperand(1))->getVT(); 10828 ConstantFPSDNode *N0CFP = dyn_cast<ConstantFPSDNode>(N0); 10829 10830 // fold (fp_round_inreg c1fp) -> c1fp 10831 if (N0CFP && isTypeLegal(EVT)) { 10832 SDLoc DL(N); 10833 SDValue Round = DAG.getConstantFP(*N0CFP->getConstantFPValue(), DL, EVT); 10834 return DAG.getNode(ISD::FP_EXTEND, DL, VT, Round); 10835 } 10836 10837 return SDValue(); 10838 } 10839 10840 SDValue DAGCombiner::visitFP_EXTEND(SDNode *N) { 10841 SDValue N0 = N->getOperand(0); 10842 EVT VT = N->getValueType(0); 10843 10844 // If this is fp_round(fpextend), don't fold it, allow ourselves to be folded. 10845 if (N->hasOneUse() && 10846 N->use_begin()->getOpcode() == ISD::FP_ROUND) 10847 return SDValue(); 10848 10849 // fold (fp_extend c1fp) -> c1fp 10850 if (isConstantFPBuildVectorOrConstantFP(N0)) 10851 return DAG.getNode(ISD::FP_EXTEND, SDLoc(N), VT, N0); 10852 10853 // fold (fp_extend (fp16_to_fp op)) -> (fp16_to_fp op) 10854 if (N0.getOpcode() == ISD::FP16_TO_FP && 10855 TLI.getOperationAction(ISD::FP16_TO_FP, VT) == TargetLowering::Legal) 10856 return DAG.getNode(ISD::FP16_TO_FP, SDLoc(N), VT, N0.getOperand(0)); 10857 10858 // Turn fp_extend(fp_round(X, 1)) -> x since the fp_round doesn't affect the 10859 // value of X. 10860 if (N0.getOpcode() == ISD::FP_ROUND 10861 && N0.getConstantOperandVal(1) == 1) { 10862 SDValue In = N0.getOperand(0); 10863 if (In.getValueType() == VT) return In; 10864 if (VT.bitsLT(In.getValueType())) 10865 return DAG.getNode(ISD::FP_ROUND, SDLoc(N), VT, 10866 In, N0.getOperand(1)); 10867 return DAG.getNode(ISD::FP_EXTEND, SDLoc(N), VT, In); 10868 } 10869 10870 // fold (fpext (load x)) -> (fpext (fptrunc (extload x))) 10871 if (ISD::isNormalLoad(N0.getNode()) && N0.hasOneUse() && 10872 TLI.isLoadExtLegal(ISD::EXTLOAD, VT, N0.getValueType())) { 10873 LoadSDNode *LN0 = cast<LoadSDNode>(N0); 10874 SDValue ExtLoad = DAG.getExtLoad(ISD::EXTLOAD, SDLoc(N), VT, 10875 LN0->getChain(), 10876 LN0->getBasePtr(), N0.getValueType(), 10877 LN0->getMemOperand()); 10878 CombineTo(N, ExtLoad); 10879 CombineTo(N0.getNode(), 10880 DAG.getNode(ISD::FP_ROUND, SDLoc(N0), 10881 N0.getValueType(), ExtLoad, 10882 DAG.getIntPtrConstant(1, SDLoc(N0))), 10883 ExtLoad.getValue(1)); 10884 return SDValue(N, 0); // Return N so it doesn't get rechecked! 10885 } 10886 10887 if (SDValue NewVSel = matchVSelectOpSizesWithSetCC(N)) 10888 return NewVSel; 10889 10890 return SDValue(); 10891 } 10892 10893 SDValue DAGCombiner::visitFCEIL(SDNode *N) { 10894 SDValue N0 = N->getOperand(0); 10895 EVT VT = N->getValueType(0); 10896 10897 // fold (fceil c1) -> fceil(c1) 10898 if (isConstantFPBuildVectorOrConstantFP(N0)) 10899 return DAG.getNode(ISD::FCEIL, SDLoc(N), VT, N0); 10900 10901 return SDValue(); 10902 } 10903 10904 SDValue DAGCombiner::visitFTRUNC(SDNode *N) { 10905 SDValue N0 = N->getOperand(0); 10906 EVT VT = N->getValueType(0); 10907 10908 // fold (ftrunc c1) -> ftrunc(c1) 10909 if (isConstantFPBuildVectorOrConstantFP(N0)) 10910 return DAG.getNode(ISD::FTRUNC, SDLoc(N), VT, N0); 10911 10912 // fold ftrunc (known rounded int x) -> x 10913 // ftrunc is a part of fptosi/fptoui expansion on some targets, so this is 10914 // likely to be generated to extract integer from a rounded floating value. 10915 switch (N0.getOpcode()) { 10916 default: break; 10917 case ISD::FRINT: 10918 case ISD::FTRUNC: 10919 case ISD::FNEARBYINT: 10920 case ISD::FFLOOR: 10921 case ISD::FCEIL: 10922 return N0; 10923 } 10924 10925 return SDValue(); 10926 } 10927 10928 SDValue DAGCombiner::visitFFLOOR(SDNode *N) { 10929 SDValue N0 = N->getOperand(0); 10930 EVT VT = N->getValueType(0); 10931 10932 // fold (ffloor c1) -> ffloor(c1) 10933 if (isConstantFPBuildVectorOrConstantFP(N0)) 10934 return DAG.getNode(ISD::FFLOOR, SDLoc(N), VT, N0); 10935 10936 return SDValue(); 10937 } 10938 10939 // FIXME: FNEG and FABS have a lot in common; refactor. 10940 SDValue DAGCombiner::visitFNEG(SDNode *N) { 10941 SDValue N0 = N->getOperand(0); 10942 EVT VT = N->getValueType(0); 10943 10944 // Constant fold FNEG. 10945 if (isConstantFPBuildVectorOrConstantFP(N0)) 10946 return DAG.getNode(ISD::FNEG, SDLoc(N), VT, N0); 10947 10948 if (isNegatibleForFree(N0, LegalOperations, DAG.getTargetLoweringInfo(), 10949 &DAG.getTarget().Options)) 10950 return GetNegatedExpression(N0, DAG, LegalOperations); 10951 10952 // Transform fneg(bitconvert(x)) -> bitconvert(x ^ sign) to avoid loading 10953 // constant pool values. 10954 if (!TLI.isFNegFree(VT) && 10955 N0.getOpcode() == ISD::BITCAST && 10956 N0.getNode()->hasOneUse()) { 10957 SDValue Int = N0.getOperand(0); 10958 EVT IntVT = Int.getValueType(); 10959 if (IntVT.isInteger() && !IntVT.isVector()) { 10960 APInt SignMask; 10961 if (N0.getValueType().isVector()) { 10962 // For a vector, get a mask such as 0x80... per scalar element 10963 // and splat it. 10964 SignMask = APInt::getSignMask(N0.getScalarValueSizeInBits()); 10965 SignMask = APInt::getSplat(IntVT.getSizeInBits(), SignMask); 10966 } else { 10967 // For a scalar, just generate 0x80... 10968 SignMask = APInt::getSignMask(IntVT.getSizeInBits()); 10969 } 10970 SDLoc DL0(N0); 10971 Int = DAG.getNode(ISD::XOR, DL0, IntVT, Int, 10972 DAG.getConstant(SignMask, DL0, IntVT)); 10973 AddToWorklist(Int.getNode()); 10974 return DAG.getBitcast(VT, Int); 10975 } 10976 } 10977 10978 // (fneg (fmul c, x)) -> (fmul -c, x) 10979 if (N0.getOpcode() == ISD::FMUL && 10980 (N0.getNode()->hasOneUse() || !TLI.isFNegFree(VT))) { 10981 ConstantFPSDNode *CFP1 = dyn_cast<ConstantFPSDNode>(N0.getOperand(1)); 10982 if (CFP1) { 10983 APFloat CVal = CFP1->getValueAPF(); 10984 CVal.changeSign(); 10985 if (Level >= AfterLegalizeDAG && 10986 (TLI.isFPImmLegal(CVal, VT) || 10987 TLI.isOperationLegal(ISD::ConstantFP, VT))) 10988 return DAG.getNode( 10989 ISD::FMUL, SDLoc(N), VT, N0.getOperand(0), 10990 DAG.getNode(ISD::FNEG, SDLoc(N), VT, N0.getOperand(1)), 10991 N0->getFlags()); 10992 } 10993 } 10994 10995 return SDValue(); 10996 } 10997 10998 SDValue DAGCombiner::visitFMINNUM(SDNode *N) { 10999 SDValue N0 = N->getOperand(0); 11000 SDValue N1 = N->getOperand(1); 11001 EVT VT = N->getValueType(0); 11002 const ConstantFPSDNode *N0CFP = isConstOrConstSplatFP(N0); 11003 const ConstantFPSDNode *N1CFP = isConstOrConstSplatFP(N1); 11004 11005 if (N0CFP && N1CFP) { 11006 const APFloat &C0 = N0CFP->getValueAPF(); 11007 const APFloat &C1 = N1CFP->getValueAPF(); 11008 return DAG.getConstantFP(minnum(C0, C1), SDLoc(N), VT); 11009 } 11010 11011 // Canonicalize to constant on RHS. 11012 if (isConstantFPBuildVectorOrConstantFP(N0) && 11013 !isConstantFPBuildVectorOrConstantFP(N1)) 11014 return DAG.getNode(ISD::FMINNUM, SDLoc(N), VT, N1, N0); 11015 11016 return SDValue(); 11017 } 11018 11019 SDValue DAGCombiner::visitFMAXNUM(SDNode *N) { 11020 SDValue N0 = N->getOperand(0); 11021 SDValue N1 = N->getOperand(1); 11022 EVT VT = N->getValueType(0); 11023 const ConstantFPSDNode *N0CFP = isConstOrConstSplatFP(N0); 11024 const ConstantFPSDNode *N1CFP = isConstOrConstSplatFP(N1); 11025 11026 if (N0CFP && N1CFP) { 11027 const APFloat &C0 = N0CFP->getValueAPF(); 11028 const APFloat &C1 = N1CFP->getValueAPF(); 11029 return DAG.getConstantFP(maxnum(C0, C1), SDLoc(N), VT); 11030 } 11031 11032 // Canonicalize to constant on RHS. 11033 if (isConstantFPBuildVectorOrConstantFP(N0) && 11034 !isConstantFPBuildVectorOrConstantFP(N1)) 11035 return DAG.getNode(ISD::FMAXNUM, SDLoc(N), VT, N1, N0); 11036 11037 return SDValue(); 11038 } 11039 11040 SDValue DAGCombiner::visitFABS(SDNode *N) { 11041 SDValue N0 = N->getOperand(0); 11042 EVT VT = N->getValueType(0); 11043 11044 // fold (fabs c1) -> fabs(c1) 11045 if (isConstantFPBuildVectorOrConstantFP(N0)) 11046 return DAG.getNode(ISD::FABS, SDLoc(N), VT, N0); 11047 11048 // fold (fabs (fabs x)) -> (fabs x) 11049 if (N0.getOpcode() == ISD::FABS) 11050 return N->getOperand(0); 11051 11052 // fold (fabs (fneg x)) -> (fabs x) 11053 // fold (fabs (fcopysign x, y)) -> (fabs x) 11054 if (N0.getOpcode() == ISD::FNEG || N0.getOpcode() == ISD::FCOPYSIGN) 11055 return DAG.getNode(ISD::FABS, SDLoc(N), VT, N0.getOperand(0)); 11056 11057 // Transform fabs(bitconvert(x)) -> bitconvert(x & ~sign) to avoid loading 11058 // constant pool values. 11059 if (!TLI.isFAbsFree(VT) && 11060 N0.getOpcode() == ISD::BITCAST && 11061 N0.getNode()->hasOneUse()) { 11062 SDValue Int = N0.getOperand(0); 11063 EVT IntVT = Int.getValueType(); 11064 if (IntVT.isInteger() && !IntVT.isVector()) { 11065 APInt SignMask; 11066 if (N0.getValueType().isVector()) { 11067 // For a vector, get a mask such as 0x7f... per scalar element 11068 // and splat it. 11069 SignMask = ~APInt::getSignMask(N0.getScalarValueSizeInBits()); 11070 SignMask = APInt::getSplat(IntVT.getSizeInBits(), SignMask); 11071 } else { 11072 // For a scalar, just generate 0x7f... 11073 SignMask = ~APInt::getSignMask(IntVT.getSizeInBits()); 11074 } 11075 SDLoc DL(N0); 11076 Int = DAG.getNode(ISD::AND, DL, IntVT, Int, 11077 DAG.getConstant(SignMask, DL, IntVT)); 11078 AddToWorklist(Int.getNode()); 11079 return DAG.getBitcast(N->getValueType(0), Int); 11080 } 11081 } 11082 11083 return SDValue(); 11084 } 11085 11086 SDValue DAGCombiner::visitBRCOND(SDNode *N) { 11087 SDValue Chain = N->getOperand(0); 11088 SDValue N1 = N->getOperand(1); 11089 SDValue N2 = N->getOperand(2); 11090 11091 // If N is a constant we could fold this into a fallthrough or unconditional 11092 // branch. However that doesn't happen very often in normal code, because 11093 // Instcombine/SimplifyCFG should have handled the available opportunities. 11094 // If we did this folding here, it would be necessary to update the 11095 // MachineBasicBlock CFG, which is awkward. 11096 11097 // fold a brcond with a setcc condition into a BR_CC node if BR_CC is legal 11098 // on the target. 11099 if (N1.getOpcode() == ISD::SETCC && 11100 TLI.isOperationLegalOrCustom(ISD::BR_CC, 11101 N1.getOperand(0).getValueType())) { 11102 return DAG.getNode(ISD::BR_CC, SDLoc(N), MVT::Other, 11103 Chain, N1.getOperand(2), 11104 N1.getOperand(0), N1.getOperand(1), N2); 11105 } 11106 11107 if ((N1.hasOneUse() && N1.getOpcode() == ISD::SRL) || 11108 ((N1.getOpcode() == ISD::TRUNCATE && N1.hasOneUse()) && 11109 (N1.getOperand(0).hasOneUse() && 11110 N1.getOperand(0).getOpcode() == ISD::SRL))) { 11111 SDNode *Trunc = nullptr; 11112 if (N1.getOpcode() == ISD::TRUNCATE) { 11113 // Look pass the truncate. 11114 Trunc = N1.getNode(); 11115 N1 = N1.getOperand(0); 11116 } 11117 11118 // Match this pattern so that we can generate simpler code: 11119 // 11120 // %a = ... 11121 // %b = and i32 %a, 2 11122 // %c = srl i32 %b, 1 11123 // brcond i32 %c ... 11124 // 11125 // into 11126 // 11127 // %a = ... 11128 // %b = and i32 %a, 2 11129 // %c = setcc eq %b, 0 11130 // brcond %c ... 11131 // 11132 // This applies only when the AND constant value has one bit set and the 11133 // SRL constant is equal to the log2 of the AND constant. The back-end is 11134 // smart enough to convert the result into a TEST/JMP sequence. 11135 SDValue Op0 = N1.getOperand(0); 11136 SDValue Op1 = N1.getOperand(1); 11137 11138 if (Op0.getOpcode() == ISD::AND && 11139 Op1.getOpcode() == ISD::Constant) { 11140 SDValue AndOp1 = Op0.getOperand(1); 11141 11142 if (AndOp1.getOpcode() == ISD::Constant) { 11143 const APInt &AndConst = cast<ConstantSDNode>(AndOp1)->getAPIntValue(); 11144 11145 if (AndConst.isPowerOf2() && 11146 cast<ConstantSDNode>(Op1)->getAPIntValue()==AndConst.logBase2()) { 11147 SDLoc DL(N); 11148 SDValue SetCC = 11149 DAG.getSetCC(DL, 11150 getSetCCResultType(Op0.getValueType()), 11151 Op0, DAG.getConstant(0, DL, Op0.getValueType()), 11152 ISD::SETNE); 11153 11154 SDValue NewBRCond = DAG.getNode(ISD::BRCOND, DL, 11155 MVT::Other, Chain, SetCC, N2); 11156 // Don't add the new BRCond into the worklist or else SimplifySelectCC 11157 // will convert it back to (X & C1) >> C2. 11158 CombineTo(N, NewBRCond, false); 11159 // Truncate is dead. 11160 if (Trunc) 11161 deleteAndRecombine(Trunc); 11162 // Replace the uses of SRL with SETCC 11163 WorklistRemover DeadNodes(*this); 11164 DAG.ReplaceAllUsesOfValueWith(N1, SetCC); 11165 deleteAndRecombine(N1.getNode()); 11166 return SDValue(N, 0); // Return N so it doesn't get rechecked! 11167 } 11168 } 11169 } 11170 11171 if (Trunc) 11172 // Restore N1 if the above transformation doesn't match. 11173 N1 = N->getOperand(1); 11174 } 11175 11176 // Transform br(xor(x, y)) -> br(x != y) 11177 // Transform br(xor(xor(x,y), 1)) -> br (x == y) 11178 if (N1.hasOneUse() && N1.getOpcode() == ISD::XOR) { 11179 SDNode *TheXor = N1.getNode(); 11180 SDValue Op0 = TheXor->getOperand(0); 11181 SDValue Op1 = TheXor->getOperand(1); 11182 if (Op0.getOpcode() == Op1.getOpcode()) { 11183 // Avoid missing important xor optimizations. 11184 if (SDValue Tmp = visitXOR(TheXor)) { 11185 if (Tmp.getNode() != TheXor) { 11186 DEBUG(dbgs() << "\nReplacing.8 "; 11187 TheXor->dump(&DAG); 11188 dbgs() << "\nWith: "; 11189 Tmp.getNode()->dump(&DAG); 11190 dbgs() << '\n'); 11191 WorklistRemover DeadNodes(*this); 11192 DAG.ReplaceAllUsesOfValueWith(N1, Tmp); 11193 deleteAndRecombine(TheXor); 11194 return DAG.getNode(ISD::BRCOND, SDLoc(N), 11195 MVT::Other, Chain, Tmp, N2); 11196 } 11197 11198 // visitXOR has changed XOR's operands or replaced the XOR completely, 11199 // bail out. 11200 return SDValue(N, 0); 11201 } 11202 } 11203 11204 if (Op0.getOpcode() != ISD::SETCC && Op1.getOpcode() != ISD::SETCC) { 11205 bool Equal = false; 11206 if (isOneConstant(Op0) && Op0.hasOneUse() && 11207 Op0.getOpcode() == ISD::XOR) { 11208 TheXor = Op0.getNode(); 11209 Equal = true; 11210 } 11211 11212 EVT SetCCVT = N1.getValueType(); 11213 if (LegalTypes) 11214 SetCCVT = getSetCCResultType(SetCCVT); 11215 SDValue SetCC = DAG.getSetCC(SDLoc(TheXor), 11216 SetCCVT, 11217 Op0, Op1, 11218 Equal ? ISD::SETEQ : ISD::SETNE); 11219 // Replace the uses of XOR with SETCC 11220 WorklistRemover DeadNodes(*this); 11221 DAG.ReplaceAllUsesOfValueWith(N1, SetCC); 11222 deleteAndRecombine(N1.getNode()); 11223 return DAG.getNode(ISD::BRCOND, SDLoc(N), 11224 MVT::Other, Chain, SetCC, N2); 11225 } 11226 } 11227 11228 return SDValue(); 11229 } 11230 11231 // Operand List for BR_CC: Chain, CondCC, CondLHS, CondRHS, DestBB. 11232 // 11233 SDValue DAGCombiner::visitBR_CC(SDNode *N) { 11234 CondCodeSDNode *CC = cast<CondCodeSDNode>(N->getOperand(1)); 11235 SDValue CondLHS = N->getOperand(2), CondRHS = N->getOperand(3); 11236 11237 // If N is a constant we could fold this into a fallthrough or unconditional 11238 // branch. However that doesn't happen very often in normal code, because 11239 // Instcombine/SimplifyCFG should have handled the available opportunities. 11240 // If we did this folding here, it would be necessary to update the 11241 // MachineBasicBlock CFG, which is awkward. 11242 11243 // Use SimplifySetCC to simplify SETCC's. 11244 SDValue Simp = SimplifySetCC(getSetCCResultType(CondLHS.getValueType()), 11245 CondLHS, CondRHS, CC->get(), SDLoc(N), 11246 false); 11247 if (Simp.getNode()) AddToWorklist(Simp.getNode()); 11248 11249 // fold to a simpler setcc 11250 if (Simp.getNode() && Simp.getOpcode() == ISD::SETCC) 11251 return DAG.getNode(ISD::BR_CC, SDLoc(N), MVT::Other, 11252 N->getOperand(0), Simp.getOperand(2), 11253 Simp.getOperand(0), Simp.getOperand(1), 11254 N->getOperand(4)); 11255 11256 return SDValue(); 11257 } 11258 11259 /// Return true if 'Use' is a load or a store that uses N as its base pointer 11260 /// and that N may be folded in the load / store addressing mode. 11261 static bool canFoldInAddressingMode(SDNode *N, SDNode *Use, 11262 SelectionDAG &DAG, 11263 const TargetLowering &TLI) { 11264 EVT VT; 11265 unsigned AS; 11266 11267 if (LoadSDNode *LD = dyn_cast<LoadSDNode>(Use)) { 11268 if (LD->isIndexed() || LD->getBasePtr().getNode() != N) 11269 return false; 11270 VT = LD->getMemoryVT(); 11271 AS = LD->getAddressSpace(); 11272 } else if (StoreSDNode *ST = dyn_cast<StoreSDNode>(Use)) { 11273 if (ST->isIndexed() || ST->getBasePtr().getNode() != N) 11274 return false; 11275 VT = ST->getMemoryVT(); 11276 AS = ST->getAddressSpace(); 11277 } else 11278 return false; 11279 11280 TargetLowering::AddrMode AM; 11281 if (N->getOpcode() == ISD::ADD) { 11282 ConstantSDNode *Offset = dyn_cast<ConstantSDNode>(N->getOperand(1)); 11283 if (Offset) 11284 // [reg +/- imm] 11285 AM.BaseOffs = Offset->getSExtValue(); 11286 else 11287 // [reg +/- reg] 11288 AM.Scale = 1; 11289 } else if (N->getOpcode() == ISD::SUB) { 11290 ConstantSDNode *Offset = dyn_cast<ConstantSDNode>(N->getOperand(1)); 11291 if (Offset) 11292 // [reg +/- imm] 11293 AM.BaseOffs = -Offset->getSExtValue(); 11294 else 11295 // [reg +/- reg] 11296 AM.Scale = 1; 11297 } else 11298 return false; 11299 11300 return TLI.isLegalAddressingMode(DAG.getDataLayout(), AM, 11301 VT.getTypeForEVT(*DAG.getContext()), AS); 11302 } 11303 11304 /// Try turning a load/store into a pre-indexed load/store when the base 11305 /// pointer is an add or subtract and it has other uses besides the load/store. 11306 /// After the transformation, the new indexed load/store has effectively folded 11307 /// the add/subtract in and all of its other uses are redirected to the 11308 /// new load/store. 11309 bool DAGCombiner::CombineToPreIndexedLoadStore(SDNode *N) { 11310 if (Level < AfterLegalizeDAG) 11311 return false; 11312 11313 bool isLoad = true; 11314 SDValue Ptr; 11315 EVT VT; 11316 if (LoadSDNode *LD = dyn_cast<LoadSDNode>(N)) { 11317 if (LD->isIndexed()) 11318 return false; 11319 VT = LD->getMemoryVT(); 11320 if (!TLI.isIndexedLoadLegal(ISD::PRE_INC, VT) && 11321 !TLI.isIndexedLoadLegal(ISD::PRE_DEC, VT)) 11322 return false; 11323 Ptr = LD->getBasePtr(); 11324 } else if (StoreSDNode *ST = dyn_cast<StoreSDNode>(N)) { 11325 if (ST->isIndexed()) 11326 return false; 11327 VT = ST->getMemoryVT(); 11328 if (!TLI.isIndexedStoreLegal(ISD::PRE_INC, VT) && 11329 !TLI.isIndexedStoreLegal(ISD::PRE_DEC, VT)) 11330 return false; 11331 Ptr = ST->getBasePtr(); 11332 isLoad = false; 11333 } else { 11334 return false; 11335 } 11336 11337 // If the pointer is not an add/sub, or if it doesn't have multiple uses, bail 11338 // out. There is no reason to make this a preinc/predec. 11339 if ((Ptr.getOpcode() != ISD::ADD && Ptr.getOpcode() != ISD::SUB) || 11340 Ptr.getNode()->hasOneUse()) 11341 return false; 11342 11343 // Ask the target to do addressing mode selection. 11344 SDValue BasePtr; 11345 SDValue Offset; 11346 ISD::MemIndexedMode AM = ISD::UNINDEXED; 11347 if (!TLI.getPreIndexedAddressParts(N, BasePtr, Offset, AM, DAG)) 11348 return false; 11349 11350 // Backends without true r+i pre-indexed forms may need to pass a 11351 // constant base with a variable offset so that constant coercion 11352 // will work with the patterns in canonical form. 11353 bool Swapped = false; 11354 if (isa<ConstantSDNode>(BasePtr)) { 11355 std::swap(BasePtr, Offset); 11356 Swapped = true; 11357 } 11358 11359 // Don't create a indexed load / store with zero offset. 11360 if (isNullConstant(Offset)) 11361 return false; 11362 11363 // Try turning it into a pre-indexed load / store except when: 11364 // 1) The new base ptr is a frame index. 11365 // 2) If N is a store and the new base ptr is either the same as or is a 11366 // predecessor of the value being stored. 11367 // 3) Another use of old base ptr is a predecessor of N. If ptr is folded 11368 // that would create a cycle. 11369 // 4) All uses are load / store ops that use it as old base ptr. 11370 11371 // Check #1. Preinc'ing a frame index would require copying the stack pointer 11372 // (plus the implicit offset) to a register to preinc anyway. 11373 if (isa<FrameIndexSDNode>(BasePtr) || isa<RegisterSDNode>(BasePtr)) 11374 return false; 11375 11376 // Check #2. 11377 if (!isLoad) { 11378 SDValue Val = cast<StoreSDNode>(N)->getValue(); 11379 if (Val == BasePtr || BasePtr.getNode()->isPredecessorOf(Val.getNode())) 11380 return false; 11381 } 11382 11383 // Caches for hasPredecessorHelper. 11384 SmallPtrSet<const SDNode *, 32> Visited; 11385 SmallVector<const SDNode *, 16> Worklist; 11386 Worklist.push_back(N); 11387 11388 // If the offset is a constant, there may be other adds of constants that 11389 // can be folded with this one. We should do this to avoid having to keep 11390 // a copy of the original base pointer. 11391 SmallVector<SDNode *, 16> OtherUses; 11392 if (isa<ConstantSDNode>(Offset)) 11393 for (SDNode::use_iterator UI = BasePtr.getNode()->use_begin(), 11394 UE = BasePtr.getNode()->use_end(); 11395 UI != UE; ++UI) { 11396 SDUse &Use = UI.getUse(); 11397 // Skip the use that is Ptr and uses of other results from BasePtr's 11398 // node (important for nodes that return multiple results). 11399 if (Use.getUser() == Ptr.getNode() || Use != BasePtr) 11400 continue; 11401 11402 if (SDNode::hasPredecessorHelper(Use.getUser(), Visited, Worklist)) 11403 continue; 11404 11405 if (Use.getUser()->getOpcode() != ISD::ADD && 11406 Use.getUser()->getOpcode() != ISD::SUB) { 11407 OtherUses.clear(); 11408 break; 11409 } 11410 11411 SDValue Op1 = Use.getUser()->getOperand((UI.getOperandNo() + 1) & 1); 11412 if (!isa<ConstantSDNode>(Op1)) { 11413 OtherUses.clear(); 11414 break; 11415 } 11416 11417 // FIXME: In some cases, we can be smarter about this. 11418 if (Op1.getValueType() != Offset.getValueType()) { 11419 OtherUses.clear(); 11420 break; 11421 } 11422 11423 OtherUses.push_back(Use.getUser()); 11424 } 11425 11426 if (Swapped) 11427 std::swap(BasePtr, Offset); 11428 11429 // Now check for #3 and #4. 11430 bool RealUse = false; 11431 11432 for (SDNode *Use : Ptr.getNode()->uses()) { 11433 if (Use == N) 11434 continue; 11435 if (SDNode::hasPredecessorHelper(Use, Visited, Worklist)) 11436 return false; 11437 11438 // If Ptr may be folded in addressing mode of other use, then it's 11439 // not profitable to do this transformation. 11440 if (!canFoldInAddressingMode(Ptr.getNode(), Use, DAG, TLI)) 11441 RealUse = true; 11442 } 11443 11444 if (!RealUse) 11445 return false; 11446 11447 SDValue Result; 11448 if (isLoad) 11449 Result = DAG.getIndexedLoad(SDValue(N,0), SDLoc(N), 11450 BasePtr, Offset, AM); 11451 else 11452 Result = DAG.getIndexedStore(SDValue(N,0), SDLoc(N), 11453 BasePtr, Offset, AM); 11454 ++PreIndexedNodes; 11455 ++NodesCombined; 11456 DEBUG(dbgs() << "\nReplacing.4 "; 11457 N->dump(&DAG); 11458 dbgs() << "\nWith: "; 11459 Result.getNode()->dump(&DAG); 11460 dbgs() << '\n'); 11461 WorklistRemover DeadNodes(*this); 11462 if (isLoad) { 11463 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 0), Result.getValue(0)); 11464 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 1), Result.getValue(2)); 11465 } else { 11466 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 0), Result.getValue(1)); 11467 } 11468 11469 // Finally, since the node is now dead, remove it from the graph. 11470 deleteAndRecombine(N); 11471 11472 if (Swapped) 11473 std::swap(BasePtr, Offset); 11474 11475 // Replace other uses of BasePtr that can be updated to use Ptr 11476 for (unsigned i = 0, e = OtherUses.size(); i != e; ++i) { 11477 unsigned OffsetIdx = 1; 11478 if (OtherUses[i]->getOperand(OffsetIdx).getNode() == BasePtr.getNode()) 11479 OffsetIdx = 0; 11480 assert(OtherUses[i]->getOperand(!OffsetIdx).getNode() == 11481 BasePtr.getNode() && "Expected BasePtr operand"); 11482 11483 // We need to replace ptr0 in the following expression: 11484 // x0 * offset0 + y0 * ptr0 = t0 11485 // knowing that 11486 // x1 * offset1 + y1 * ptr0 = t1 (the indexed load/store) 11487 // 11488 // where x0, x1, y0 and y1 in {-1, 1} are given by the types of the 11489 // indexed load/store and the expression that needs to be re-written. 11490 // 11491 // Therefore, we have: 11492 // t0 = (x0 * offset0 - x1 * y0 * y1 *offset1) + (y0 * y1) * t1 11493 11494 ConstantSDNode *CN = 11495 cast<ConstantSDNode>(OtherUses[i]->getOperand(OffsetIdx)); 11496 int X0, X1, Y0, Y1; 11497 const APInt &Offset0 = CN->getAPIntValue(); 11498 APInt Offset1 = cast<ConstantSDNode>(Offset)->getAPIntValue(); 11499 11500 X0 = (OtherUses[i]->getOpcode() == ISD::SUB && OffsetIdx == 1) ? -1 : 1; 11501 Y0 = (OtherUses[i]->getOpcode() == ISD::SUB && OffsetIdx == 0) ? -1 : 1; 11502 X1 = (AM == ISD::PRE_DEC && !Swapped) ? -1 : 1; 11503 Y1 = (AM == ISD::PRE_DEC && Swapped) ? -1 : 1; 11504 11505 unsigned Opcode = (Y0 * Y1 < 0) ? ISD::SUB : ISD::ADD; 11506 11507 APInt CNV = Offset0; 11508 if (X0 < 0) CNV = -CNV; 11509 if (X1 * Y0 * Y1 < 0) CNV = CNV + Offset1; 11510 else CNV = CNV - Offset1; 11511 11512 SDLoc DL(OtherUses[i]); 11513 11514 // We can now generate the new expression. 11515 SDValue NewOp1 = DAG.getConstant(CNV, DL, CN->getValueType(0)); 11516 SDValue NewOp2 = Result.getValue(isLoad ? 1 : 0); 11517 11518 SDValue NewUse = DAG.getNode(Opcode, 11519 DL, 11520 OtherUses[i]->getValueType(0), NewOp1, NewOp2); 11521 DAG.ReplaceAllUsesOfValueWith(SDValue(OtherUses[i], 0), NewUse); 11522 deleteAndRecombine(OtherUses[i]); 11523 } 11524 11525 // Replace the uses of Ptr with uses of the updated base value. 11526 DAG.ReplaceAllUsesOfValueWith(Ptr, Result.getValue(isLoad ? 1 : 0)); 11527 deleteAndRecombine(Ptr.getNode()); 11528 AddToWorklist(Result.getNode()); 11529 11530 return true; 11531 } 11532 11533 /// Try to combine a load/store with a add/sub of the base pointer node into a 11534 /// post-indexed load/store. The transformation folded the add/subtract into the 11535 /// new indexed load/store effectively and all of its uses are redirected to the 11536 /// new load/store. 11537 bool DAGCombiner::CombineToPostIndexedLoadStore(SDNode *N) { 11538 if (Level < AfterLegalizeDAG) 11539 return false; 11540 11541 bool isLoad = true; 11542 SDValue Ptr; 11543 EVT VT; 11544 if (LoadSDNode *LD = dyn_cast<LoadSDNode>(N)) { 11545 if (LD->isIndexed()) 11546 return false; 11547 VT = LD->getMemoryVT(); 11548 if (!TLI.isIndexedLoadLegal(ISD::POST_INC, VT) && 11549 !TLI.isIndexedLoadLegal(ISD::POST_DEC, VT)) 11550 return false; 11551 Ptr = LD->getBasePtr(); 11552 } else if (StoreSDNode *ST = dyn_cast<StoreSDNode>(N)) { 11553 if (ST->isIndexed()) 11554 return false; 11555 VT = ST->getMemoryVT(); 11556 if (!TLI.isIndexedStoreLegal(ISD::POST_INC, VT) && 11557 !TLI.isIndexedStoreLegal(ISD::POST_DEC, VT)) 11558 return false; 11559 Ptr = ST->getBasePtr(); 11560 isLoad = false; 11561 } else { 11562 return false; 11563 } 11564 11565 if (Ptr.getNode()->hasOneUse()) 11566 return false; 11567 11568 for (SDNode *Op : Ptr.getNode()->uses()) { 11569 if (Op == N || 11570 (Op->getOpcode() != ISD::ADD && Op->getOpcode() != ISD::SUB)) 11571 continue; 11572 11573 SDValue BasePtr; 11574 SDValue Offset; 11575 ISD::MemIndexedMode AM = ISD::UNINDEXED; 11576 if (TLI.getPostIndexedAddressParts(N, Op, BasePtr, Offset, AM, DAG)) { 11577 // Don't create a indexed load / store with zero offset. 11578 if (isNullConstant(Offset)) 11579 continue; 11580 11581 // Try turning it into a post-indexed load / store except when 11582 // 1) All uses are load / store ops that use it as base ptr (and 11583 // it may be folded as addressing mmode). 11584 // 2) Op must be independent of N, i.e. Op is neither a predecessor 11585 // nor a successor of N. Otherwise, if Op is folded that would 11586 // create a cycle. 11587 11588 if (isa<FrameIndexSDNode>(BasePtr) || isa<RegisterSDNode>(BasePtr)) 11589 continue; 11590 11591 // Check for #1. 11592 bool TryNext = false; 11593 for (SDNode *Use : BasePtr.getNode()->uses()) { 11594 if (Use == Ptr.getNode()) 11595 continue; 11596 11597 // If all the uses are load / store addresses, then don't do the 11598 // transformation. 11599 if (Use->getOpcode() == ISD::ADD || Use->getOpcode() == ISD::SUB){ 11600 bool RealUse = false; 11601 for (SDNode *UseUse : Use->uses()) { 11602 if (!canFoldInAddressingMode(Use, UseUse, DAG, TLI)) 11603 RealUse = true; 11604 } 11605 11606 if (!RealUse) { 11607 TryNext = true; 11608 break; 11609 } 11610 } 11611 } 11612 11613 if (TryNext) 11614 continue; 11615 11616 // Check for #2 11617 if (!Op->isPredecessorOf(N) && !N->isPredecessorOf(Op)) { 11618 SDValue Result = isLoad 11619 ? DAG.getIndexedLoad(SDValue(N,0), SDLoc(N), 11620 BasePtr, Offset, AM) 11621 : DAG.getIndexedStore(SDValue(N,0), SDLoc(N), 11622 BasePtr, Offset, AM); 11623 ++PostIndexedNodes; 11624 ++NodesCombined; 11625 DEBUG(dbgs() << "\nReplacing.5 "; 11626 N->dump(&DAG); 11627 dbgs() << "\nWith: "; 11628 Result.getNode()->dump(&DAG); 11629 dbgs() << '\n'); 11630 WorklistRemover DeadNodes(*this); 11631 if (isLoad) { 11632 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 0), Result.getValue(0)); 11633 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 1), Result.getValue(2)); 11634 } else { 11635 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 0), Result.getValue(1)); 11636 } 11637 11638 // Finally, since the node is now dead, remove it from the graph. 11639 deleteAndRecombine(N); 11640 11641 // Replace the uses of Use with uses of the updated base value. 11642 DAG.ReplaceAllUsesOfValueWith(SDValue(Op, 0), 11643 Result.getValue(isLoad ? 1 : 0)); 11644 deleteAndRecombine(Op); 11645 return true; 11646 } 11647 } 11648 } 11649 11650 return false; 11651 } 11652 11653 /// \brief Return the base-pointer arithmetic from an indexed \p LD. 11654 SDValue DAGCombiner::SplitIndexingFromLoad(LoadSDNode *LD) { 11655 ISD::MemIndexedMode AM = LD->getAddressingMode(); 11656 assert(AM != ISD::UNINDEXED); 11657 SDValue BP = LD->getOperand(1); 11658 SDValue Inc = LD->getOperand(2); 11659 11660 // Some backends use TargetConstants for load offsets, but don't expect 11661 // TargetConstants in general ADD nodes. We can convert these constants into 11662 // regular Constants (if the constant is not opaque). 11663 assert((Inc.getOpcode() != ISD::TargetConstant || 11664 !cast<ConstantSDNode>(Inc)->isOpaque()) && 11665 "Cannot split out indexing using opaque target constants"); 11666 if (Inc.getOpcode() == ISD::TargetConstant) { 11667 ConstantSDNode *ConstInc = cast<ConstantSDNode>(Inc); 11668 Inc = DAG.getConstant(*ConstInc->getConstantIntValue(), SDLoc(Inc), 11669 ConstInc->getValueType(0)); 11670 } 11671 11672 unsigned Opc = 11673 (AM == ISD::PRE_INC || AM == ISD::POST_INC ? ISD::ADD : ISD::SUB); 11674 return DAG.getNode(Opc, SDLoc(LD), BP.getSimpleValueType(), BP, Inc); 11675 } 11676 11677 SDValue DAGCombiner::visitLOAD(SDNode *N) { 11678 LoadSDNode *LD = cast<LoadSDNode>(N); 11679 SDValue Chain = LD->getChain(); 11680 SDValue Ptr = LD->getBasePtr(); 11681 11682 // If load is not volatile and there are no uses of the loaded value (and 11683 // the updated indexed value in case of indexed loads), change uses of the 11684 // chain value into uses of the chain input (i.e. delete the dead load). 11685 if (!LD->isVolatile()) { 11686 if (N->getValueType(1) == MVT::Other) { 11687 // Unindexed loads. 11688 if (!N->hasAnyUseOfValue(0)) { 11689 // It's not safe to use the two value CombineTo variant here. e.g. 11690 // v1, chain2 = load chain1, loc 11691 // v2, chain3 = load chain2, loc 11692 // v3 = add v2, c 11693 // Now we replace use of chain2 with chain1. This makes the second load 11694 // isomorphic to the one we are deleting, and thus makes this load live. 11695 DEBUG(dbgs() << "\nReplacing.6 "; 11696 N->dump(&DAG); 11697 dbgs() << "\nWith chain: "; 11698 Chain.getNode()->dump(&DAG); 11699 dbgs() << "\n"); 11700 WorklistRemover DeadNodes(*this); 11701 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 1), Chain); 11702 AddUsersToWorklist(Chain.getNode()); 11703 if (N->use_empty()) 11704 deleteAndRecombine(N); 11705 11706 return SDValue(N, 0); // Return N so it doesn't get rechecked! 11707 } 11708 } else { 11709 // Indexed loads. 11710 assert(N->getValueType(2) == MVT::Other && "Malformed indexed loads?"); 11711 11712 // If this load has an opaque TargetConstant offset, then we cannot split 11713 // the indexing into an add/sub directly (that TargetConstant may not be 11714 // valid for a different type of node, and we cannot convert an opaque 11715 // target constant into a regular constant). 11716 bool HasOTCInc = LD->getOperand(2).getOpcode() == ISD::TargetConstant && 11717 cast<ConstantSDNode>(LD->getOperand(2))->isOpaque(); 11718 11719 if (!N->hasAnyUseOfValue(0) && 11720 ((MaySplitLoadIndex && !HasOTCInc) || !N->hasAnyUseOfValue(1))) { 11721 SDValue Undef = DAG.getUNDEF(N->getValueType(0)); 11722 SDValue Index; 11723 if (N->hasAnyUseOfValue(1) && MaySplitLoadIndex && !HasOTCInc) { 11724 Index = SplitIndexingFromLoad(LD); 11725 // Try to fold the base pointer arithmetic into subsequent loads and 11726 // stores. 11727 AddUsersToWorklist(N); 11728 } else 11729 Index = DAG.getUNDEF(N->getValueType(1)); 11730 DEBUG(dbgs() << "\nReplacing.7 "; 11731 N->dump(&DAG); 11732 dbgs() << "\nWith: "; 11733 Undef.getNode()->dump(&DAG); 11734 dbgs() << " and 2 other values\n"); 11735 WorklistRemover DeadNodes(*this); 11736 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 0), Undef); 11737 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 1), Index); 11738 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 2), Chain); 11739 deleteAndRecombine(N); 11740 return SDValue(N, 0); // Return N so it doesn't get rechecked! 11741 } 11742 } 11743 } 11744 11745 // If this load is directly stored, replace the load value with the stored 11746 // value. 11747 // TODO: Handle store large -> read small portion. 11748 // TODO: Handle TRUNCSTORE/LOADEXT 11749 if (OptLevel != CodeGenOpt::None && 11750 ISD::isNormalLoad(N) && !LD->isVolatile()) { 11751 if (ISD::isNON_TRUNCStore(Chain.getNode())) { 11752 StoreSDNode *PrevST = cast<StoreSDNode>(Chain); 11753 if (PrevST->getBasePtr() == Ptr && 11754 PrevST->getValue().getValueType() == N->getValueType(0)) 11755 return CombineTo(N, PrevST->getOperand(1), Chain); 11756 } 11757 } 11758 11759 // Try to infer better alignment information than the load already has. 11760 if (OptLevel != CodeGenOpt::None && LD->isUnindexed()) { 11761 if (unsigned Align = DAG.InferPtrAlignment(Ptr)) { 11762 if (Align > LD->getMemOperand()->getBaseAlignment()) { 11763 SDValue NewLoad = DAG.getExtLoad( 11764 LD->getExtensionType(), SDLoc(N), LD->getValueType(0), Chain, Ptr, 11765 LD->getPointerInfo(), LD->getMemoryVT(), Align, 11766 LD->getMemOperand()->getFlags(), LD->getAAInfo()); 11767 if (NewLoad.getNode() != N) 11768 return CombineTo(N, NewLoad, SDValue(NewLoad.getNode(), 1), true); 11769 } 11770 } 11771 } 11772 11773 if (LD->isUnindexed()) { 11774 // Walk up chain skipping non-aliasing memory nodes. 11775 SDValue BetterChain = FindBetterChain(N, Chain); 11776 11777 // If there is a better chain. 11778 if (Chain != BetterChain) { 11779 SDValue ReplLoad; 11780 11781 // Replace the chain to void dependency. 11782 if (LD->getExtensionType() == ISD::NON_EXTLOAD) { 11783 ReplLoad = DAG.getLoad(N->getValueType(0), SDLoc(LD), 11784 BetterChain, Ptr, LD->getMemOperand()); 11785 } else { 11786 ReplLoad = DAG.getExtLoad(LD->getExtensionType(), SDLoc(LD), 11787 LD->getValueType(0), 11788 BetterChain, Ptr, LD->getMemoryVT(), 11789 LD->getMemOperand()); 11790 } 11791 11792 // Create token factor to keep old chain connected. 11793 SDValue Token = DAG.getNode(ISD::TokenFactor, SDLoc(N), 11794 MVT::Other, Chain, ReplLoad.getValue(1)); 11795 11796 // Replace uses with load result and token factor 11797 return CombineTo(N, ReplLoad.getValue(0), Token); 11798 } 11799 } 11800 11801 // Try transforming N to an indexed load. 11802 if (CombineToPreIndexedLoadStore(N) || CombineToPostIndexedLoadStore(N)) 11803 return SDValue(N, 0); 11804 11805 // Try to slice up N to more direct loads if the slices are mapped to 11806 // different register banks or pairing can take place. 11807 if (SliceUpLoad(N)) 11808 return SDValue(N, 0); 11809 11810 return SDValue(); 11811 } 11812 11813 namespace { 11814 11815 /// \brief Helper structure used to slice a load in smaller loads. 11816 /// Basically a slice is obtained from the following sequence: 11817 /// Origin = load Ty1, Base 11818 /// Shift = srl Ty1 Origin, CstTy Amount 11819 /// Inst = trunc Shift to Ty2 11820 /// 11821 /// Then, it will be rewritten into: 11822 /// Slice = load SliceTy, Base + SliceOffset 11823 /// [Inst = zext Slice to Ty2], only if SliceTy <> Ty2 11824 /// 11825 /// SliceTy is deduced from the number of bits that are actually used to 11826 /// build Inst. 11827 struct LoadedSlice { 11828 /// \brief Helper structure used to compute the cost of a slice. 11829 struct Cost { 11830 /// Are we optimizing for code size. 11831 bool ForCodeSize; 11832 11833 /// Various cost. 11834 unsigned Loads = 0; 11835 unsigned Truncates = 0; 11836 unsigned CrossRegisterBanksCopies = 0; 11837 unsigned ZExts = 0; 11838 unsigned Shift = 0; 11839 11840 Cost(bool ForCodeSize = false) : ForCodeSize(ForCodeSize) {} 11841 11842 /// \brief Get the cost of one isolated slice. 11843 Cost(const LoadedSlice &LS, bool ForCodeSize = false) 11844 : ForCodeSize(ForCodeSize), Loads(1) { 11845 EVT TruncType = LS.Inst->getValueType(0); 11846 EVT LoadedType = LS.getLoadedType(); 11847 if (TruncType != LoadedType && 11848 !LS.DAG->getTargetLoweringInfo().isZExtFree(LoadedType, TruncType)) 11849 ZExts = 1; 11850 } 11851 11852 /// \brief Account for slicing gain in the current cost. 11853 /// Slicing provide a few gains like removing a shift or a 11854 /// truncate. This method allows to grow the cost of the original 11855 /// load with the gain from this slice. 11856 void addSliceGain(const LoadedSlice &LS) { 11857 // Each slice saves a truncate. 11858 const TargetLowering &TLI = LS.DAG->getTargetLoweringInfo(); 11859 if (!TLI.isTruncateFree(LS.Inst->getOperand(0).getValueType(), 11860 LS.Inst->getValueType(0))) 11861 ++Truncates; 11862 // If there is a shift amount, this slice gets rid of it. 11863 if (LS.Shift) 11864 ++Shift; 11865 // If this slice can merge a cross register bank copy, account for it. 11866 if (LS.canMergeExpensiveCrossRegisterBankCopy()) 11867 ++CrossRegisterBanksCopies; 11868 } 11869 11870 Cost &operator+=(const Cost &RHS) { 11871 Loads += RHS.Loads; 11872 Truncates += RHS.Truncates; 11873 CrossRegisterBanksCopies += RHS.CrossRegisterBanksCopies; 11874 ZExts += RHS.ZExts; 11875 Shift += RHS.Shift; 11876 return *this; 11877 } 11878 11879 bool operator==(const Cost &RHS) const { 11880 return Loads == RHS.Loads && Truncates == RHS.Truncates && 11881 CrossRegisterBanksCopies == RHS.CrossRegisterBanksCopies && 11882 ZExts == RHS.ZExts && Shift == RHS.Shift; 11883 } 11884 11885 bool operator!=(const Cost &RHS) const { return !(*this == RHS); } 11886 11887 bool operator<(const Cost &RHS) const { 11888 // Assume cross register banks copies are as expensive as loads. 11889 // FIXME: Do we want some more target hooks? 11890 unsigned ExpensiveOpsLHS = Loads + CrossRegisterBanksCopies; 11891 unsigned ExpensiveOpsRHS = RHS.Loads + RHS.CrossRegisterBanksCopies; 11892 // Unless we are optimizing for code size, consider the 11893 // expensive operation first. 11894 if (!ForCodeSize && ExpensiveOpsLHS != ExpensiveOpsRHS) 11895 return ExpensiveOpsLHS < ExpensiveOpsRHS; 11896 return (Truncates + ZExts + Shift + ExpensiveOpsLHS) < 11897 (RHS.Truncates + RHS.ZExts + RHS.Shift + ExpensiveOpsRHS); 11898 } 11899 11900 bool operator>(const Cost &RHS) const { return RHS < *this; } 11901 11902 bool operator<=(const Cost &RHS) const { return !(RHS < *this); } 11903 11904 bool operator>=(const Cost &RHS) const { return !(*this < RHS); } 11905 }; 11906 11907 // The last instruction that represent the slice. This should be a 11908 // truncate instruction. 11909 SDNode *Inst; 11910 11911 // The original load instruction. 11912 LoadSDNode *Origin; 11913 11914 // The right shift amount in bits from the original load. 11915 unsigned Shift; 11916 11917 // The DAG from which Origin came from. 11918 // This is used to get some contextual information about legal types, etc. 11919 SelectionDAG *DAG; 11920 11921 LoadedSlice(SDNode *Inst = nullptr, LoadSDNode *Origin = nullptr, 11922 unsigned Shift = 0, SelectionDAG *DAG = nullptr) 11923 : Inst(Inst), Origin(Origin), Shift(Shift), DAG(DAG) {} 11924 11925 /// \brief Get the bits used in a chunk of bits \p BitWidth large. 11926 /// \return Result is \p BitWidth and has used bits set to 1 and 11927 /// not used bits set to 0. 11928 APInt getUsedBits() const { 11929 // Reproduce the trunc(lshr) sequence: 11930 // - Start from the truncated value. 11931 // - Zero extend to the desired bit width. 11932 // - Shift left. 11933 assert(Origin && "No original load to compare against."); 11934 unsigned BitWidth = Origin->getValueSizeInBits(0); 11935 assert(Inst && "This slice is not bound to an instruction"); 11936 assert(Inst->getValueSizeInBits(0) <= BitWidth && 11937 "Extracted slice is bigger than the whole type!"); 11938 APInt UsedBits(Inst->getValueSizeInBits(0), 0); 11939 UsedBits.setAllBits(); 11940 UsedBits = UsedBits.zext(BitWidth); 11941 UsedBits <<= Shift; 11942 return UsedBits; 11943 } 11944 11945 /// \brief Get the size of the slice to be loaded in bytes. 11946 unsigned getLoadedSize() const { 11947 unsigned SliceSize = getUsedBits().countPopulation(); 11948 assert(!(SliceSize & 0x7) && "Size is not a multiple of a byte."); 11949 return SliceSize / 8; 11950 } 11951 11952 /// \brief Get the type that will be loaded for this slice. 11953 /// Note: This may not be the final type for the slice. 11954 EVT getLoadedType() const { 11955 assert(DAG && "Missing context"); 11956 LLVMContext &Ctxt = *DAG->getContext(); 11957 return EVT::getIntegerVT(Ctxt, getLoadedSize() * 8); 11958 } 11959 11960 /// \brief Get the alignment of the load used for this slice. 11961 unsigned getAlignment() const { 11962 unsigned Alignment = Origin->getAlignment(); 11963 unsigned Offset = getOffsetFromBase(); 11964 if (Offset != 0) 11965 Alignment = MinAlign(Alignment, Alignment + Offset); 11966 return Alignment; 11967 } 11968 11969 /// \brief Check if this slice can be rewritten with legal operations. 11970 bool isLegal() const { 11971 // An invalid slice is not legal. 11972 if (!Origin || !Inst || !DAG) 11973 return false; 11974 11975 // Offsets are for indexed load only, we do not handle that. 11976 if (!Origin->getOffset().isUndef()) 11977 return false; 11978 11979 const TargetLowering &TLI = DAG->getTargetLoweringInfo(); 11980 11981 // Check that the type is legal. 11982 EVT SliceType = getLoadedType(); 11983 if (!TLI.isTypeLegal(SliceType)) 11984 return false; 11985 11986 // Check that the load is legal for this type. 11987 if (!TLI.isOperationLegal(ISD::LOAD, SliceType)) 11988 return false; 11989 11990 // Check that the offset can be computed. 11991 // 1. Check its type. 11992 EVT PtrType = Origin->getBasePtr().getValueType(); 11993 if (PtrType == MVT::Untyped || PtrType.isExtended()) 11994 return false; 11995 11996 // 2. Check that it fits in the immediate. 11997 if (!TLI.isLegalAddImmediate(getOffsetFromBase())) 11998 return false; 11999 12000 // 3. Check that the computation is legal. 12001 if (!TLI.isOperationLegal(ISD::ADD, PtrType)) 12002 return false; 12003 12004 // Check that the zext is legal if it needs one. 12005 EVT TruncateType = Inst->getValueType(0); 12006 if (TruncateType != SliceType && 12007 !TLI.isOperationLegal(ISD::ZERO_EXTEND, TruncateType)) 12008 return false; 12009 12010 return true; 12011 } 12012 12013 /// \brief Get the offset in bytes of this slice in the original chunk of 12014 /// bits. 12015 /// \pre DAG != nullptr. 12016 uint64_t getOffsetFromBase() const { 12017 assert(DAG && "Missing context."); 12018 bool IsBigEndian = DAG->getDataLayout().isBigEndian(); 12019 assert(!(Shift & 0x7) && "Shifts not aligned on Bytes are not supported."); 12020 uint64_t Offset = Shift / 8; 12021 unsigned TySizeInBytes = Origin->getValueSizeInBits(0) / 8; 12022 assert(!(Origin->getValueSizeInBits(0) & 0x7) && 12023 "The size of the original loaded type is not a multiple of a" 12024 " byte."); 12025 // If Offset is bigger than TySizeInBytes, it means we are loading all 12026 // zeros. This should have been optimized before in the process. 12027 assert(TySizeInBytes > Offset && 12028 "Invalid shift amount for given loaded size"); 12029 if (IsBigEndian) 12030 Offset = TySizeInBytes - Offset - getLoadedSize(); 12031 return Offset; 12032 } 12033 12034 /// \brief Generate the sequence of instructions to load the slice 12035 /// represented by this object and redirect the uses of this slice to 12036 /// this new sequence of instructions. 12037 /// \pre this->Inst && this->Origin are valid Instructions and this 12038 /// object passed the legal check: LoadedSlice::isLegal returned true. 12039 /// \return The last instruction of the sequence used to load the slice. 12040 SDValue loadSlice() const { 12041 assert(Inst && Origin && "Unable to replace a non-existing slice."); 12042 const SDValue &OldBaseAddr = Origin->getBasePtr(); 12043 SDValue BaseAddr = OldBaseAddr; 12044 // Get the offset in that chunk of bytes w.r.t. the endianness. 12045 int64_t Offset = static_cast<int64_t>(getOffsetFromBase()); 12046 assert(Offset >= 0 && "Offset too big to fit in int64_t!"); 12047 if (Offset) { 12048 // BaseAddr = BaseAddr + Offset. 12049 EVT ArithType = BaseAddr.getValueType(); 12050 SDLoc DL(Origin); 12051 BaseAddr = DAG->getNode(ISD::ADD, DL, ArithType, BaseAddr, 12052 DAG->getConstant(Offset, DL, ArithType)); 12053 } 12054 12055 // Create the type of the loaded slice according to its size. 12056 EVT SliceType = getLoadedType(); 12057 12058 // Create the load for the slice. 12059 SDValue LastInst = 12060 DAG->getLoad(SliceType, SDLoc(Origin), Origin->getChain(), BaseAddr, 12061 Origin->getPointerInfo().getWithOffset(Offset), 12062 getAlignment(), Origin->getMemOperand()->getFlags()); 12063 // If the final type is not the same as the loaded type, this means that 12064 // we have to pad with zero. Create a zero extend for that. 12065 EVT FinalType = Inst->getValueType(0); 12066 if (SliceType != FinalType) 12067 LastInst = 12068 DAG->getNode(ISD::ZERO_EXTEND, SDLoc(LastInst), FinalType, LastInst); 12069 return LastInst; 12070 } 12071 12072 /// \brief Check if this slice can be merged with an expensive cross register 12073 /// bank copy. E.g., 12074 /// i = load i32 12075 /// f = bitcast i32 i to float 12076 bool canMergeExpensiveCrossRegisterBankCopy() const { 12077 if (!Inst || !Inst->hasOneUse()) 12078 return false; 12079 SDNode *Use = *Inst->use_begin(); 12080 if (Use->getOpcode() != ISD::BITCAST) 12081 return false; 12082 assert(DAG && "Missing context"); 12083 const TargetLowering &TLI = DAG->getTargetLoweringInfo(); 12084 EVT ResVT = Use->getValueType(0); 12085 const TargetRegisterClass *ResRC = TLI.getRegClassFor(ResVT.getSimpleVT()); 12086 const TargetRegisterClass *ArgRC = 12087 TLI.getRegClassFor(Use->getOperand(0).getValueType().getSimpleVT()); 12088 if (ArgRC == ResRC || !TLI.isOperationLegal(ISD::LOAD, ResVT)) 12089 return false; 12090 12091 // At this point, we know that we perform a cross-register-bank copy. 12092 // Check if it is expensive. 12093 const TargetRegisterInfo *TRI = DAG->getSubtarget().getRegisterInfo(); 12094 // Assume bitcasts are cheap, unless both register classes do not 12095 // explicitly share a common sub class. 12096 if (!TRI || TRI->getCommonSubClass(ArgRC, ResRC)) 12097 return false; 12098 12099 // Check if it will be merged with the load. 12100 // 1. Check the alignment constraint. 12101 unsigned RequiredAlignment = DAG->getDataLayout().getABITypeAlignment( 12102 ResVT.getTypeForEVT(*DAG->getContext())); 12103 12104 if (RequiredAlignment > getAlignment()) 12105 return false; 12106 12107 // 2. Check that the load is a legal operation for that type. 12108 if (!TLI.isOperationLegal(ISD::LOAD, ResVT)) 12109 return false; 12110 12111 // 3. Check that we do not have a zext in the way. 12112 if (Inst->getValueType(0) != getLoadedType()) 12113 return false; 12114 12115 return true; 12116 } 12117 }; 12118 12119 } // end anonymous namespace 12120 12121 /// \brief Check that all bits set in \p UsedBits form a dense region, i.e., 12122 /// \p UsedBits looks like 0..0 1..1 0..0. 12123 static bool areUsedBitsDense(const APInt &UsedBits) { 12124 // If all the bits are one, this is dense! 12125 if (UsedBits.isAllOnesValue()) 12126 return true; 12127 12128 // Get rid of the unused bits on the right. 12129 APInt NarrowedUsedBits = UsedBits.lshr(UsedBits.countTrailingZeros()); 12130 // Get rid of the unused bits on the left. 12131 if (NarrowedUsedBits.countLeadingZeros()) 12132 NarrowedUsedBits = NarrowedUsedBits.trunc(NarrowedUsedBits.getActiveBits()); 12133 // Check that the chunk of bits is completely used. 12134 return NarrowedUsedBits.isAllOnesValue(); 12135 } 12136 12137 /// \brief Check whether or not \p First and \p Second are next to each other 12138 /// in memory. This means that there is no hole between the bits loaded 12139 /// by \p First and the bits loaded by \p Second. 12140 static bool areSlicesNextToEachOther(const LoadedSlice &First, 12141 const LoadedSlice &Second) { 12142 assert(First.Origin == Second.Origin && First.Origin && 12143 "Unable to match different memory origins."); 12144 APInt UsedBits = First.getUsedBits(); 12145 assert((UsedBits & Second.getUsedBits()) == 0 && 12146 "Slices are not supposed to overlap."); 12147 UsedBits |= Second.getUsedBits(); 12148 return areUsedBitsDense(UsedBits); 12149 } 12150 12151 /// \brief Adjust the \p GlobalLSCost according to the target 12152 /// paring capabilities and the layout of the slices. 12153 /// \pre \p GlobalLSCost should account for at least as many loads as 12154 /// there is in the slices in \p LoadedSlices. 12155 static void adjustCostForPairing(SmallVectorImpl<LoadedSlice> &LoadedSlices, 12156 LoadedSlice::Cost &GlobalLSCost) { 12157 unsigned NumberOfSlices = LoadedSlices.size(); 12158 // If there is less than 2 elements, no pairing is possible. 12159 if (NumberOfSlices < 2) 12160 return; 12161 12162 // Sort the slices so that elements that are likely to be next to each 12163 // other in memory are next to each other in the list. 12164 std::sort(LoadedSlices.begin(), LoadedSlices.end(), 12165 [](const LoadedSlice &LHS, const LoadedSlice &RHS) { 12166 assert(LHS.Origin == RHS.Origin && "Different bases not implemented."); 12167 return LHS.getOffsetFromBase() < RHS.getOffsetFromBase(); 12168 }); 12169 const TargetLowering &TLI = LoadedSlices[0].DAG->getTargetLoweringInfo(); 12170 // First (resp. Second) is the first (resp. Second) potentially candidate 12171 // to be placed in a paired load. 12172 const LoadedSlice *First = nullptr; 12173 const LoadedSlice *Second = nullptr; 12174 for (unsigned CurrSlice = 0; CurrSlice < NumberOfSlices; ++CurrSlice, 12175 // Set the beginning of the pair. 12176 First = Second) { 12177 Second = &LoadedSlices[CurrSlice]; 12178 12179 // If First is NULL, it means we start a new pair. 12180 // Get to the next slice. 12181 if (!First) 12182 continue; 12183 12184 EVT LoadedType = First->getLoadedType(); 12185 12186 // If the types of the slices are different, we cannot pair them. 12187 if (LoadedType != Second->getLoadedType()) 12188 continue; 12189 12190 // Check if the target supplies paired loads for this type. 12191 unsigned RequiredAlignment = 0; 12192 if (!TLI.hasPairedLoad(LoadedType, RequiredAlignment)) { 12193 // move to the next pair, this type is hopeless. 12194 Second = nullptr; 12195 continue; 12196 } 12197 // Check if we meet the alignment requirement. 12198 if (RequiredAlignment > First->getAlignment()) 12199 continue; 12200 12201 // Check that both loads are next to each other in memory. 12202 if (!areSlicesNextToEachOther(*First, *Second)) 12203 continue; 12204 12205 assert(GlobalLSCost.Loads > 0 && "We save more loads than we created!"); 12206 --GlobalLSCost.Loads; 12207 // Move to the next pair. 12208 Second = nullptr; 12209 } 12210 } 12211 12212 /// \brief Check the profitability of all involved LoadedSlice. 12213 /// Currently, it is considered profitable if there is exactly two 12214 /// involved slices (1) which are (2) next to each other in memory, and 12215 /// whose cost (\see LoadedSlice::Cost) is smaller than the original load (3). 12216 /// 12217 /// Note: The order of the elements in \p LoadedSlices may be modified, but not 12218 /// the elements themselves. 12219 /// 12220 /// FIXME: When the cost model will be mature enough, we can relax 12221 /// constraints (1) and (2). 12222 static bool isSlicingProfitable(SmallVectorImpl<LoadedSlice> &LoadedSlices, 12223 const APInt &UsedBits, bool ForCodeSize) { 12224 unsigned NumberOfSlices = LoadedSlices.size(); 12225 if (StressLoadSlicing) 12226 return NumberOfSlices > 1; 12227 12228 // Check (1). 12229 if (NumberOfSlices != 2) 12230 return false; 12231 12232 // Check (2). 12233 if (!areUsedBitsDense(UsedBits)) 12234 return false; 12235 12236 // Check (3). 12237 LoadedSlice::Cost OrigCost(ForCodeSize), GlobalSlicingCost(ForCodeSize); 12238 // The original code has one big load. 12239 OrigCost.Loads = 1; 12240 for (unsigned CurrSlice = 0; CurrSlice < NumberOfSlices; ++CurrSlice) { 12241 const LoadedSlice &LS = LoadedSlices[CurrSlice]; 12242 // Accumulate the cost of all the slices. 12243 LoadedSlice::Cost SliceCost(LS, ForCodeSize); 12244 GlobalSlicingCost += SliceCost; 12245 12246 // Account as cost in the original configuration the gain obtained 12247 // with the current slices. 12248 OrigCost.addSliceGain(LS); 12249 } 12250 12251 // If the target supports paired load, adjust the cost accordingly. 12252 adjustCostForPairing(LoadedSlices, GlobalSlicingCost); 12253 return OrigCost > GlobalSlicingCost; 12254 } 12255 12256 /// \brief If the given load, \p LI, is used only by trunc or trunc(lshr) 12257 /// operations, split it in the various pieces being extracted. 12258 /// 12259 /// This sort of thing is introduced by SROA. 12260 /// This slicing takes care not to insert overlapping loads. 12261 /// \pre LI is a simple load (i.e., not an atomic or volatile load). 12262 bool DAGCombiner::SliceUpLoad(SDNode *N) { 12263 if (Level < AfterLegalizeDAG) 12264 return false; 12265 12266 LoadSDNode *LD = cast<LoadSDNode>(N); 12267 if (LD->isVolatile() || !ISD::isNormalLoad(LD) || 12268 !LD->getValueType(0).isInteger()) 12269 return false; 12270 12271 // Keep track of already used bits to detect overlapping values. 12272 // In that case, we will just abort the transformation. 12273 APInt UsedBits(LD->getValueSizeInBits(0), 0); 12274 12275 SmallVector<LoadedSlice, 4> LoadedSlices; 12276 12277 // Check if this load is used as several smaller chunks of bits. 12278 // Basically, look for uses in trunc or trunc(lshr) and record a new chain 12279 // of computation for each trunc. 12280 for (SDNode::use_iterator UI = LD->use_begin(), UIEnd = LD->use_end(); 12281 UI != UIEnd; ++UI) { 12282 // Skip the uses of the chain. 12283 if (UI.getUse().getResNo() != 0) 12284 continue; 12285 12286 SDNode *User = *UI; 12287 unsigned Shift = 0; 12288 12289 // Check if this is a trunc(lshr). 12290 if (User->getOpcode() == ISD::SRL && User->hasOneUse() && 12291 isa<ConstantSDNode>(User->getOperand(1))) { 12292 Shift = User->getConstantOperandVal(1); 12293 User = *User->use_begin(); 12294 } 12295 12296 // At this point, User is a Truncate, iff we encountered, trunc or 12297 // trunc(lshr). 12298 if (User->getOpcode() != ISD::TRUNCATE) 12299 return false; 12300 12301 // The width of the type must be a power of 2 and greater than 8-bits. 12302 // Otherwise the load cannot be represented in LLVM IR. 12303 // Moreover, if we shifted with a non-8-bits multiple, the slice 12304 // will be across several bytes. We do not support that. 12305 unsigned Width = User->getValueSizeInBits(0); 12306 if (Width < 8 || !isPowerOf2_32(Width) || (Shift & 0x7)) 12307 return false; 12308 12309 // Build the slice for this chain of computations. 12310 LoadedSlice LS(User, LD, Shift, &DAG); 12311 APInt CurrentUsedBits = LS.getUsedBits(); 12312 12313 // Check if this slice overlaps with another. 12314 if ((CurrentUsedBits & UsedBits) != 0) 12315 return false; 12316 // Update the bits used globally. 12317 UsedBits |= CurrentUsedBits; 12318 12319 // Check if the new slice would be legal. 12320 if (!LS.isLegal()) 12321 return false; 12322 12323 // Record the slice. 12324 LoadedSlices.push_back(LS); 12325 } 12326 12327 // Abort slicing if it does not seem to be profitable. 12328 if (!isSlicingProfitable(LoadedSlices, UsedBits, ForCodeSize)) 12329 return false; 12330 12331 ++SlicedLoads; 12332 12333 // Rewrite each chain to use an independent load. 12334 // By construction, each chain can be represented by a unique load. 12335 12336 // Prepare the argument for the new token factor for all the slices. 12337 SmallVector<SDValue, 8> ArgChains; 12338 for (SmallVectorImpl<LoadedSlice>::const_iterator 12339 LSIt = LoadedSlices.begin(), 12340 LSItEnd = LoadedSlices.end(); 12341 LSIt != LSItEnd; ++LSIt) { 12342 SDValue SliceInst = LSIt->loadSlice(); 12343 CombineTo(LSIt->Inst, SliceInst, true); 12344 if (SliceInst.getOpcode() != ISD::LOAD) 12345 SliceInst = SliceInst.getOperand(0); 12346 assert(SliceInst->getOpcode() == ISD::LOAD && 12347 "It takes more than a zext to get to the loaded slice!!"); 12348 ArgChains.push_back(SliceInst.getValue(1)); 12349 } 12350 12351 SDValue Chain = DAG.getNode(ISD::TokenFactor, SDLoc(LD), MVT::Other, 12352 ArgChains); 12353 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 1), Chain); 12354 AddToWorklist(Chain.getNode()); 12355 return true; 12356 } 12357 12358 /// Check to see if V is (and load (ptr), imm), where the load is having 12359 /// specific bytes cleared out. If so, return the byte size being masked out 12360 /// and the shift amount. 12361 static std::pair<unsigned, unsigned> 12362 CheckForMaskedLoad(SDValue V, SDValue Ptr, SDValue Chain) { 12363 std::pair<unsigned, unsigned> Result(0, 0); 12364 12365 // Check for the structure we're looking for. 12366 if (V->getOpcode() != ISD::AND || 12367 !isa<ConstantSDNode>(V->getOperand(1)) || 12368 !ISD::isNormalLoad(V->getOperand(0).getNode())) 12369 return Result; 12370 12371 // Check the chain and pointer. 12372 LoadSDNode *LD = cast<LoadSDNode>(V->getOperand(0)); 12373 if (LD->getBasePtr() != Ptr) return Result; // Not from same pointer. 12374 12375 // The store should be chained directly to the load or be an operand of a 12376 // tokenfactor. 12377 if (LD == Chain.getNode()) 12378 ; // ok. 12379 else if (Chain->getOpcode() != ISD::TokenFactor) 12380 return Result; // Fail. 12381 else { 12382 bool isOk = false; 12383 for (const SDValue &ChainOp : Chain->op_values()) 12384 if (ChainOp.getNode() == LD) { 12385 isOk = true; 12386 break; 12387 } 12388 if (!isOk) return Result; 12389 } 12390 12391 // This only handles simple types. 12392 if (V.getValueType() != MVT::i16 && 12393 V.getValueType() != MVT::i32 && 12394 V.getValueType() != MVT::i64) 12395 return Result; 12396 12397 // Check the constant mask. Invert it so that the bits being masked out are 12398 // 0 and the bits being kept are 1. Use getSExtValue so that leading bits 12399 // follow the sign bit for uniformity. 12400 uint64_t NotMask = ~cast<ConstantSDNode>(V->getOperand(1))->getSExtValue(); 12401 unsigned NotMaskLZ = countLeadingZeros(NotMask); 12402 if (NotMaskLZ & 7) return Result; // Must be multiple of a byte. 12403 unsigned NotMaskTZ = countTrailingZeros(NotMask); 12404 if (NotMaskTZ & 7) return Result; // Must be multiple of a byte. 12405 if (NotMaskLZ == 64) return Result; // All zero mask. 12406 12407 // See if we have a continuous run of bits. If so, we have 0*1+0* 12408 if (countTrailingOnes(NotMask >> NotMaskTZ) + NotMaskTZ + NotMaskLZ != 64) 12409 return Result; 12410 12411 // Adjust NotMaskLZ down to be from the actual size of the int instead of i64. 12412 if (V.getValueType() != MVT::i64 && NotMaskLZ) 12413 NotMaskLZ -= 64-V.getValueSizeInBits(); 12414 12415 unsigned MaskedBytes = (V.getValueSizeInBits()-NotMaskLZ-NotMaskTZ)/8; 12416 switch (MaskedBytes) { 12417 case 1: 12418 case 2: 12419 case 4: break; 12420 default: return Result; // All one mask, or 5-byte mask. 12421 } 12422 12423 // Verify that the first bit starts at a multiple of mask so that the access 12424 // is aligned the same as the access width. 12425 if (NotMaskTZ && NotMaskTZ/8 % MaskedBytes) return Result; 12426 12427 Result.first = MaskedBytes; 12428 Result.second = NotMaskTZ/8; 12429 return Result; 12430 } 12431 12432 /// Check to see if IVal is something that provides a value as specified by 12433 /// MaskInfo. If so, replace the specified store with a narrower store of 12434 /// truncated IVal. 12435 static SDNode * 12436 ShrinkLoadReplaceStoreWithStore(const std::pair<unsigned, unsigned> &MaskInfo, 12437 SDValue IVal, StoreSDNode *St, 12438 DAGCombiner *DC) { 12439 unsigned NumBytes = MaskInfo.first; 12440 unsigned ByteShift = MaskInfo.second; 12441 SelectionDAG &DAG = DC->getDAG(); 12442 12443 // Check to see if IVal is all zeros in the part being masked in by the 'or' 12444 // that uses this. If not, this is not a replacement. 12445 APInt Mask = ~APInt::getBitsSet(IVal.getValueSizeInBits(), 12446 ByteShift*8, (ByteShift+NumBytes)*8); 12447 if (!DAG.MaskedValueIsZero(IVal, Mask)) return nullptr; 12448 12449 // Check that it is legal on the target to do this. It is legal if the new 12450 // VT we're shrinking to (i8/i16/i32) is legal or we're still before type 12451 // legalization. 12452 MVT VT = MVT::getIntegerVT(NumBytes*8); 12453 if (!DC->isTypeLegal(VT)) 12454 return nullptr; 12455 12456 // Okay, we can do this! Replace the 'St' store with a store of IVal that is 12457 // shifted by ByteShift and truncated down to NumBytes. 12458 if (ByteShift) { 12459 SDLoc DL(IVal); 12460 IVal = DAG.getNode(ISD::SRL, DL, IVal.getValueType(), IVal, 12461 DAG.getConstant(ByteShift*8, DL, 12462 DC->getShiftAmountTy(IVal.getValueType()))); 12463 } 12464 12465 // Figure out the offset for the store and the alignment of the access. 12466 unsigned StOffset; 12467 unsigned NewAlign = St->getAlignment(); 12468 12469 if (DAG.getDataLayout().isLittleEndian()) 12470 StOffset = ByteShift; 12471 else 12472 StOffset = IVal.getValueType().getStoreSize() - ByteShift - NumBytes; 12473 12474 SDValue Ptr = St->getBasePtr(); 12475 if (StOffset) { 12476 SDLoc DL(IVal); 12477 Ptr = DAG.getNode(ISD::ADD, DL, Ptr.getValueType(), 12478 Ptr, DAG.getConstant(StOffset, DL, Ptr.getValueType())); 12479 NewAlign = MinAlign(NewAlign, StOffset); 12480 } 12481 12482 // Truncate down to the new size. 12483 IVal = DAG.getNode(ISD::TRUNCATE, SDLoc(IVal), VT, IVal); 12484 12485 ++OpsNarrowed; 12486 return DAG 12487 .getStore(St->getChain(), SDLoc(St), IVal, Ptr, 12488 St->getPointerInfo().getWithOffset(StOffset), NewAlign) 12489 .getNode(); 12490 } 12491 12492 /// Look for sequence of load / op / store where op is one of 'or', 'xor', and 12493 /// 'and' of immediates. If 'op' is only touching some of the loaded bits, try 12494 /// narrowing the load and store if it would end up being a win for performance 12495 /// or code size. 12496 SDValue DAGCombiner::ReduceLoadOpStoreWidth(SDNode *N) { 12497 StoreSDNode *ST = cast<StoreSDNode>(N); 12498 if (ST->isVolatile()) 12499 return SDValue(); 12500 12501 SDValue Chain = ST->getChain(); 12502 SDValue Value = ST->getValue(); 12503 SDValue Ptr = ST->getBasePtr(); 12504 EVT VT = Value.getValueType(); 12505 12506 if (ST->isTruncatingStore() || VT.isVector() || !Value.hasOneUse()) 12507 return SDValue(); 12508 12509 unsigned Opc = Value.getOpcode(); 12510 12511 // If this is "store (or X, Y), P" and X is "(and (load P), cst)", where cst 12512 // is a byte mask indicating a consecutive number of bytes, check to see if 12513 // Y is known to provide just those bytes. If so, we try to replace the 12514 // load + replace + store sequence with a single (narrower) store, which makes 12515 // the load dead. 12516 if (Opc == ISD::OR) { 12517 std::pair<unsigned, unsigned> MaskedLoad; 12518 MaskedLoad = CheckForMaskedLoad(Value.getOperand(0), Ptr, Chain); 12519 if (MaskedLoad.first) 12520 if (SDNode *NewST = ShrinkLoadReplaceStoreWithStore(MaskedLoad, 12521 Value.getOperand(1), ST,this)) 12522 return SDValue(NewST, 0); 12523 12524 // Or is commutative, so try swapping X and Y. 12525 MaskedLoad = CheckForMaskedLoad(Value.getOperand(1), Ptr, Chain); 12526 if (MaskedLoad.first) 12527 if (SDNode *NewST = ShrinkLoadReplaceStoreWithStore(MaskedLoad, 12528 Value.getOperand(0), ST,this)) 12529 return SDValue(NewST, 0); 12530 } 12531 12532 if ((Opc != ISD::OR && Opc != ISD::XOR && Opc != ISD::AND) || 12533 Value.getOperand(1).getOpcode() != ISD::Constant) 12534 return SDValue(); 12535 12536 SDValue N0 = Value.getOperand(0); 12537 if (ISD::isNormalLoad(N0.getNode()) && N0.hasOneUse() && 12538 Chain == SDValue(N0.getNode(), 1)) { 12539 LoadSDNode *LD = cast<LoadSDNode>(N0); 12540 if (LD->getBasePtr() != Ptr || 12541 LD->getPointerInfo().getAddrSpace() != 12542 ST->getPointerInfo().getAddrSpace()) 12543 return SDValue(); 12544 12545 // Find the type to narrow it the load / op / store to. 12546 SDValue N1 = Value.getOperand(1); 12547 unsigned BitWidth = N1.getValueSizeInBits(); 12548 APInt Imm = cast<ConstantSDNode>(N1)->getAPIntValue(); 12549 if (Opc == ISD::AND) 12550 Imm ^= APInt::getAllOnesValue(BitWidth); 12551 if (Imm == 0 || Imm.isAllOnesValue()) 12552 return SDValue(); 12553 unsigned ShAmt = Imm.countTrailingZeros(); 12554 unsigned MSB = BitWidth - Imm.countLeadingZeros() - 1; 12555 unsigned NewBW = NextPowerOf2(MSB - ShAmt); 12556 EVT NewVT = EVT::getIntegerVT(*DAG.getContext(), NewBW); 12557 // The narrowing should be profitable, the load/store operation should be 12558 // legal (or custom) and the store size should be equal to the NewVT width. 12559 while (NewBW < BitWidth && 12560 (NewVT.getStoreSizeInBits() != NewBW || 12561 !TLI.isOperationLegalOrCustom(Opc, NewVT) || 12562 !TLI.isNarrowingProfitable(VT, NewVT))) { 12563 NewBW = NextPowerOf2(NewBW); 12564 NewVT = EVT::getIntegerVT(*DAG.getContext(), NewBW); 12565 } 12566 if (NewBW >= BitWidth) 12567 return SDValue(); 12568 12569 // If the lsb changed does not start at the type bitwidth boundary, 12570 // start at the previous one. 12571 if (ShAmt % NewBW) 12572 ShAmt = (((ShAmt + NewBW - 1) / NewBW) * NewBW) - NewBW; 12573 APInt Mask = APInt::getBitsSet(BitWidth, ShAmt, 12574 std::min(BitWidth, ShAmt + NewBW)); 12575 if ((Imm & Mask) == Imm) { 12576 APInt NewImm = (Imm & Mask).lshr(ShAmt).trunc(NewBW); 12577 if (Opc == ISD::AND) 12578 NewImm ^= APInt::getAllOnesValue(NewBW); 12579 uint64_t PtrOff = ShAmt / 8; 12580 // For big endian targets, we need to adjust the offset to the pointer to 12581 // load the correct bytes. 12582 if (DAG.getDataLayout().isBigEndian()) 12583 PtrOff = (BitWidth + 7 - NewBW) / 8 - PtrOff; 12584 12585 unsigned NewAlign = MinAlign(LD->getAlignment(), PtrOff); 12586 Type *NewVTTy = NewVT.getTypeForEVT(*DAG.getContext()); 12587 if (NewAlign < DAG.getDataLayout().getABITypeAlignment(NewVTTy)) 12588 return SDValue(); 12589 12590 SDValue NewPtr = DAG.getNode(ISD::ADD, SDLoc(LD), 12591 Ptr.getValueType(), Ptr, 12592 DAG.getConstant(PtrOff, SDLoc(LD), 12593 Ptr.getValueType())); 12594 SDValue NewLD = 12595 DAG.getLoad(NewVT, SDLoc(N0), LD->getChain(), NewPtr, 12596 LD->getPointerInfo().getWithOffset(PtrOff), NewAlign, 12597 LD->getMemOperand()->getFlags(), LD->getAAInfo()); 12598 SDValue NewVal = DAG.getNode(Opc, SDLoc(Value), NewVT, NewLD, 12599 DAG.getConstant(NewImm, SDLoc(Value), 12600 NewVT)); 12601 SDValue NewST = 12602 DAG.getStore(Chain, SDLoc(N), NewVal, NewPtr, 12603 ST->getPointerInfo().getWithOffset(PtrOff), NewAlign); 12604 12605 AddToWorklist(NewPtr.getNode()); 12606 AddToWorklist(NewLD.getNode()); 12607 AddToWorklist(NewVal.getNode()); 12608 WorklistRemover DeadNodes(*this); 12609 DAG.ReplaceAllUsesOfValueWith(N0.getValue(1), NewLD.getValue(1)); 12610 ++OpsNarrowed; 12611 return NewST; 12612 } 12613 } 12614 12615 return SDValue(); 12616 } 12617 12618 /// For a given floating point load / store pair, if the load value isn't used 12619 /// by any other operations, then consider transforming the pair to integer 12620 /// load / store operations if the target deems the transformation profitable. 12621 SDValue DAGCombiner::TransformFPLoadStorePair(SDNode *N) { 12622 StoreSDNode *ST = cast<StoreSDNode>(N); 12623 SDValue Chain = ST->getChain(); 12624 SDValue Value = ST->getValue(); 12625 if (ISD::isNormalStore(ST) && ISD::isNormalLoad(Value.getNode()) && 12626 Value.hasOneUse() && 12627 Chain == SDValue(Value.getNode(), 1)) { 12628 LoadSDNode *LD = cast<LoadSDNode>(Value); 12629 EVT VT = LD->getMemoryVT(); 12630 if (!VT.isFloatingPoint() || 12631 VT != ST->getMemoryVT() || 12632 LD->isNonTemporal() || 12633 ST->isNonTemporal() || 12634 LD->getPointerInfo().getAddrSpace() != 0 || 12635 ST->getPointerInfo().getAddrSpace() != 0) 12636 return SDValue(); 12637 12638 EVT IntVT = EVT::getIntegerVT(*DAG.getContext(), VT.getSizeInBits()); 12639 if (!TLI.isOperationLegal(ISD::LOAD, IntVT) || 12640 !TLI.isOperationLegal(ISD::STORE, IntVT) || 12641 !TLI.isDesirableToTransformToIntegerOp(ISD::LOAD, VT) || 12642 !TLI.isDesirableToTransformToIntegerOp(ISD::STORE, VT)) 12643 return SDValue(); 12644 12645 unsigned LDAlign = LD->getAlignment(); 12646 unsigned STAlign = ST->getAlignment(); 12647 Type *IntVTTy = IntVT.getTypeForEVT(*DAG.getContext()); 12648 unsigned ABIAlign = DAG.getDataLayout().getABITypeAlignment(IntVTTy); 12649 if (LDAlign < ABIAlign || STAlign < ABIAlign) 12650 return SDValue(); 12651 12652 SDValue NewLD = 12653 DAG.getLoad(IntVT, SDLoc(Value), LD->getChain(), LD->getBasePtr(), 12654 LD->getPointerInfo(), LDAlign); 12655 12656 SDValue NewST = 12657 DAG.getStore(NewLD.getValue(1), SDLoc(N), NewLD, ST->getBasePtr(), 12658 ST->getPointerInfo(), STAlign); 12659 12660 AddToWorklist(NewLD.getNode()); 12661 AddToWorklist(NewST.getNode()); 12662 WorklistRemover DeadNodes(*this); 12663 DAG.ReplaceAllUsesOfValueWith(Value.getValue(1), NewLD.getValue(1)); 12664 ++LdStFP2Int; 12665 return NewST; 12666 } 12667 12668 return SDValue(); 12669 } 12670 12671 // This is a helper function for visitMUL to check the profitability 12672 // of folding (mul (add x, c1), c2) -> (add (mul x, c2), c1*c2). 12673 // MulNode is the original multiply, AddNode is (add x, c1), 12674 // and ConstNode is c2. 12675 // 12676 // If the (add x, c1) has multiple uses, we could increase 12677 // the number of adds if we make this transformation. 12678 // It would only be worth doing this if we can remove a 12679 // multiply in the process. Check for that here. 12680 // To illustrate: 12681 // (A + c1) * c3 12682 // (A + c2) * c3 12683 // We're checking for cases where we have common "c3 * A" expressions. 12684 bool DAGCombiner::isMulAddWithConstProfitable(SDNode *MulNode, 12685 SDValue &AddNode, 12686 SDValue &ConstNode) { 12687 APInt Val; 12688 12689 // If the add only has one use, this would be OK to do. 12690 if (AddNode.getNode()->hasOneUse()) 12691 return true; 12692 12693 // Walk all the users of the constant with which we're multiplying. 12694 for (SDNode *Use : ConstNode->uses()) { 12695 if (Use == MulNode) // This use is the one we're on right now. Skip it. 12696 continue; 12697 12698 if (Use->getOpcode() == ISD::MUL) { // We have another multiply use. 12699 SDNode *OtherOp; 12700 SDNode *MulVar = AddNode.getOperand(0).getNode(); 12701 12702 // OtherOp is what we're multiplying against the constant. 12703 if (Use->getOperand(0) == ConstNode) 12704 OtherOp = Use->getOperand(1).getNode(); 12705 else 12706 OtherOp = Use->getOperand(0).getNode(); 12707 12708 // Check to see if multiply is with the same operand of our "add". 12709 // 12710 // ConstNode = CONST 12711 // Use = ConstNode * A <-- visiting Use. OtherOp is A. 12712 // ... 12713 // AddNode = (A + c1) <-- MulVar is A. 12714 // = AddNode * ConstNode <-- current visiting instruction. 12715 // 12716 // If we make this transformation, we will have a common 12717 // multiply (ConstNode * A) that we can save. 12718 if (OtherOp == MulVar) 12719 return true; 12720 12721 // Now check to see if a future expansion will give us a common 12722 // multiply. 12723 // 12724 // ConstNode = CONST 12725 // AddNode = (A + c1) 12726 // ... = AddNode * ConstNode <-- current visiting instruction. 12727 // ... 12728 // OtherOp = (A + c2) 12729 // Use = OtherOp * ConstNode <-- visiting Use. 12730 // 12731 // If we make this transformation, we will have a common 12732 // multiply (CONST * A) after we also do the same transformation 12733 // to the "t2" instruction. 12734 if (OtherOp->getOpcode() == ISD::ADD && 12735 DAG.isConstantIntBuildVectorOrConstantInt(OtherOp->getOperand(1)) && 12736 OtherOp->getOperand(0).getNode() == MulVar) 12737 return true; 12738 } 12739 } 12740 12741 // Didn't find a case where this would be profitable. 12742 return false; 12743 } 12744 12745 static SDValue peekThroughBitcast(SDValue V) { 12746 while (V.getOpcode() == ISD::BITCAST) 12747 V = V.getOperand(0); 12748 return V; 12749 } 12750 12751 SDValue DAGCombiner::getMergeStoreChains(SmallVectorImpl<MemOpLink> &StoreNodes, 12752 unsigned NumStores) { 12753 SmallVector<SDValue, 8> Chains; 12754 SmallPtrSet<const SDNode *, 8> Visited; 12755 SDLoc StoreDL(StoreNodes[0].MemNode); 12756 12757 for (unsigned i = 0; i < NumStores; ++i) { 12758 Visited.insert(StoreNodes[i].MemNode); 12759 } 12760 12761 // don't include nodes that are children 12762 for (unsigned i = 0; i < NumStores; ++i) { 12763 if (Visited.count(StoreNodes[i].MemNode->getChain().getNode()) == 0) 12764 Chains.push_back(StoreNodes[i].MemNode->getChain()); 12765 } 12766 12767 assert(Chains.size() > 0 && "Chain should have generated a chain"); 12768 return DAG.getNode(ISD::TokenFactor, StoreDL, MVT::Other, Chains); 12769 } 12770 12771 bool DAGCombiner::MergeStoresOfConstantsOrVecElts( 12772 SmallVectorImpl<MemOpLink> &StoreNodes, EVT MemVT, unsigned NumStores, 12773 bool IsConstantSrc, bool UseVector, bool UseTrunc) { 12774 // Make sure we have something to merge. 12775 if (NumStores < 2) 12776 return false; 12777 12778 // The latest Node in the DAG. 12779 SDLoc DL(StoreNodes[0].MemNode); 12780 12781 int64_t ElementSizeBits = MemVT.getStoreSizeInBits(); 12782 unsigned SizeInBits = NumStores * ElementSizeBits; 12783 unsigned NumMemElts = MemVT.isVector() ? MemVT.getVectorNumElements() : 1; 12784 12785 EVT StoreTy; 12786 if (UseVector) { 12787 unsigned Elts = NumStores * NumMemElts; 12788 // Get the type for the merged vector store. 12789 StoreTy = EVT::getVectorVT(*DAG.getContext(), MemVT.getScalarType(), Elts); 12790 } else 12791 StoreTy = EVT::getIntegerVT(*DAG.getContext(), SizeInBits); 12792 12793 SDValue StoredVal; 12794 if (UseVector) { 12795 if (IsConstantSrc) { 12796 SmallVector<SDValue, 8> BuildVector; 12797 for (unsigned I = 0; I != NumStores; ++I) { 12798 StoreSDNode *St = cast<StoreSDNode>(StoreNodes[I].MemNode); 12799 SDValue Val = St->getValue(); 12800 // If constant is of the wrong type, convert it now. 12801 if (MemVT != Val.getValueType()) { 12802 Val = peekThroughBitcast(Val); 12803 // Deal with constants of wrong size. 12804 if (ElementSizeBits != Val.getValueSizeInBits()) { 12805 EVT IntMemVT = 12806 EVT::getIntegerVT(*DAG.getContext(), MemVT.getSizeInBits()); 12807 if (isa<ConstantFPSDNode>(Val)) { 12808 // Not clear how to truncate FP values. 12809 return false; 12810 } else if (auto *C = dyn_cast<ConstantSDNode>(Val)) 12811 Val = DAG.getConstant(C->getAPIntValue() 12812 .zextOrTrunc(Val.getValueSizeInBits()) 12813 .zextOrTrunc(ElementSizeBits), 12814 SDLoc(C), IntMemVT); 12815 } 12816 // Make sure correctly size type is the correct type. 12817 Val = DAG.getBitcast(MemVT, Val); 12818 } 12819 BuildVector.push_back(Val); 12820 } 12821 StoredVal = DAG.getNode(MemVT.isVector() ? ISD::CONCAT_VECTORS 12822 : ISD::BUILD_VECTOR, 12823 DL, StoreTy, BuildVector); 12824 } else { 12825 SmallVector<SDValue, 8> Ops; 12826 for (unsigned i = 0; i < NumStores; ++i) { 12827 StoreSDNode *St = cast<StoreSDNode>(StoreNodes[i].MemNode); 12828 SDValue Val = peekThroughBitcast(St->getValue()); 12829 // All operands of BUILD_VECTOR / CONCAT_VECTOR must be of 12830 // type MemVT. If the underlying value is not the correct 12831 // type, but it is an extraction of an appropriate vector we 12832 // can recast Val to be of the correct type. This may require 12833 // converting between EXTRACT_VECTOR_ELT and 12834 // EXTRACT_SUBVECTOR. 12835 if ((MemVT != Val.getValueType()) && 12836 (Val.getOpcode() == ISD::EXTRACT_VECTOR_ELT || 12837 Val.getOpcode() == ISD::EXTRACT_SUBVECTOR)) { 12838 SDValue Vec = Val.getOperand(0); 12839 EVT MemVTScalarTy = MemVT.getScalarType(); 12840 // We may need to add a bitcast here to get types to line up. 12841 if (MemVTScalarTy != Vec.getValueType()) { 12842 unsigned Elts = Vec.getValueType().getSizeInBits() / 12843 MemVTScalarTy.getSizeInBits(); 12844 EVT NewVecTy = 12845 EVT::getVectorVT(*DAG.getContext(), MemVTScalarTy, Elts); 12846 Vec = DAG.getBitcast(NewVecTy, Vec); 12847 } 12848 auto OpC = (MemVT.isVector()) ? ISD::EXTRACT_SUBVECTOR 12849 : ISD::EXTRACT_VECTOR_ELT; 12850 Val = DAG.getNode(OpC, SDLoc(Val), MemVT, Vec, Val.getOperand(1)); 12851 } 12852 Ops.push_back(Val); 12853 } 12854 12855 // Build the extracted vector elements back into a vector. 12856 StoredVal = DAG.getNode(MemVT.isVector() ? ISD::CONCAT_VECTORS 12857 : ISD::BUILD_VECTOR, 12858 DL, StoreTy, Ops); 12859 } 12860 } else { 12861 // We should always use a vector store when merging extracted vector 12862 // elements, so this path implies a store of constants. 12863 assert(IsConstantSrc && "Merged vector elements should use vector store"); 12864 12865 APInt StoreInt(SizeInBits, 0); 12866 12867 // Construct a single integer constant which is made of the smaller 12868 // constant inputs. 12869 bool IsLE = DAG.getDataLayout().isLittleEndian(); 12870 for (unsigned i = 0; i < NumStores; ++i) { 12871 unsigned Idx = IsLE ? (NumStores - 1 - i) : i; 12872 StoreSDNode *St = cast<StoreSDNode>(StoreNodes[Idx].MemNode); 12873 12874 SDValue Val = St->getValue(); 12875 StoreInt <<= ElementSizeBits; 12876 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Val)) { 12877 StoreInt |= C->getAPIntValue() 12878 .zextOrTrunc(ElementSizeBits) 12879 .zextOrTrunc(SizeInBits); 12880 } else if (ConstantFPSDNode *C = dyn_cast<ConstantFPSDNode>(Val)) { 12881 StoreInt |= C->getValueAPF() 12882 .bitcastToAPInt() 12883 .zextOrTrunc(ElementSizeBits) 12884 .zextOrTrunc(SizeInBits); 12885 // If fp truncation is necessary give up for now. 12886 if (MemVT.getSizeInBits() != ElementSizeBits) 12887 return false; 12888 } else { 12889 llvm_unreachable("Invalid constant element type"); 12890 } 12891 } 12892 12893 // Create the new Load and Store operations. 12894 StoredVal = DAG.getConstant(StoreInt, DL, StoreTy); 12895 } 12896 12897 LSBaseSDNode *FirstInChain = StoreNodes[0].MemNode; 12898 SDValue NewChain = getMergeStoreChains(StoreNodes, NumStores); 12899 12900 // make sure we use trunc store if it's necessary to be legal. 12901 SDValue NewStore; 12902 if (!UseTrunc) { 12903 NewStore = DAG.getStore(NewChain, DL, StoredVal, FirstInChain->getBasePtr(), 12904 FirstInChain->getPointerInfo(), 12905 FirstInChain->getAlignment()); 12906 } else { // Must be realized as a trunc store 12907 EVT LegalizedStoredValueTy = 12908 TLI.getTypeToTransformTo(*DAG.getContext(), StoredVal.getValueType()); 12909 unsigned LegalizedStoreSize = LegalizedStoredValueTy.getSizeInBits(); 12910 ConstantSDNode *C = cast<ConstantSDNode>(StoredVal); 12911 SDValue ExtendedStoreVal = 12912 DAG.getConstant(C->getAPIntValue().zextOrTrunc(LegalizedStoreSize), DL, 12913 LegalizedStoredValueTy); 12914 NewStore = DAG.getTruncStore( 12915 NewChain, DL, ExtendedStoreVal, FirstInChain->getBasePtr(), 12916 FirstInChain->getPointerInfo(), StoredVal.getValueType() /*TVT*/, 12917 FirstInChain->getAlignment(), 12918 FirstInChain->getMemOperand()->getFlags()); 12919 } 12920 12921 // Replace all merged stores with the new store. 12922 for (unsigned i = 0; i < NumStores; ++i) 12923 CombineTo(StoreNodes[i].MemNode, NewStore); 12924 12925 AddToWorklist(NewChain.getNode()); 12926 return true; 12927 } 12928 12929 void DAGCombiner::getStoreMergeCandidates( 12930 StoreSDNode *St, SmallVectorImpl<MemOpLink> &StoreNodes) { 12931 // This holds the base pointer, index, and the offset in bytes from the base 12932 // pointer. 12933 BaseIndexOffset BasePtr = BaseIndexOffset::match(St->getBasePtr(), DAG); 12934 EVT MemVT = St->getMemoryVT(); 12935 12936 SDValue Val = peekThroughBitcast(St->getValue()); 12937 // We must have a base and an offset. 12938 if (!BasePtr.getBase().getNode()) 12939 return; 12940 12941 // Do not handle stores to undef base pointers. 12942 if (BasePtr.getBase().isUndef()) 12943 return; 12944 12945 bool IsConstantSrc = isa<ConstantSDNode>(Val) || isa<ConstantFPSDNode>(Val); 12946 bool IsExtractVecSrc = (Val.getOpcode() == ISD::EXTRACT_VECTOR_ELT || 12947 Val.getOpcode() == ISD::EXTRACT_SUBVECTOR); 12948 bool IsLoadSrc = isa<LoadSDNode>(Val); 12949 BaseIndexOffset LBasePtr; 12950 // Match on loadbaseptr if relevant. 12951 EVT LoadVT; 12952 if (IsLoadSrc) { 12953 auto *Ld = cast<LoadSDNode>(Val); 12954 LBasePtr = BaseIndexOffset::match(Ld->getBasePtr(), DAG); 12955 LoadVT = Ld->getMemoryVT(); 12956 // Load and store should be the same type. 12957 if (MemVT != LoadVT) 12958 return; 12959 } 12960 auto CandidateMatch = [&](StoreSDNode *Other, BaseIndexOffset &Ptr, 12961 int64_t &Offset) -> bool { 12962 if (Other->isVolatile() || Other->isIndexed()) 12963 return false; 12964 SDValue Val = peekThroughBitcast(Other->getValue()); 12965 // Allow merging constants of different types as integers. 12966 bool NoTypeMatch = (MemVT.isInteger()) ? !MemVT.bitsEq(Other->getMemoryVT()) 12967 : Other->getMemoryVT() != MemVT; 12968 if (IsLoadSrc) { 12969 if (NoTypeMatch) 12970 return false; 12971 // The Load's Base Ptr must also match 12972 if (LoadSDNode *OtherLd = dyn_cast<LoadSDNode>(Val)) { 12973 auto LPtr = BaseIndexOffset::match(OtherLd->getBasePtr(), DAG); 12974 if (LoadVT != OtherLd->getMemoryVT()) 12975 return false; 12976 if (!(LBasePtr.equalBaseIndex(LPtr, DAG))) 12977 return false; 12978 } else 12979 return false; 12980 } 12981 if (IsConstantSrc) { 12982 if (NoTypeMatch) 12983 return false; 12984 if (!(isa<ConstantSDNode>(Val) || isa<ConstantFPSDNode>(Val))) 12985 return false; 12986 } 12987 if (IsExtractVecSrc) { 12988 // Do not merge truncated stores here. 12989 if (Other->isTruncatingStore()) 12990 return false; 12991 if (!MemVT.bitsEq(Val.getValueType())) 12992 return false; 12993 if (Val.getOpcode() != ISD::EXTRACT_VECTOR_ELT && 12994 Val.getOpcode() != ISD::EXTRACT_SUBVECTOR) 12995 return false; 12996 } 12997 Ptr = BaseIndexOffset::match(Other->getBasePtr(), DAG); 12998 return (BasePtr.equalBaseIndex(Ptr, DAG, Offset)); 12999 }; 13000 13001 // We looking for a root node which is an ancestor to all mergable 13002 // stores. We search up through a load, to our root and then down 13003 // through all children. For instance we will find Store{1,2,3} if 13004 // St is Store1, Store2. or Store3 where the root is not a load 13005 // which always true for nonvolatile ops. TODO: Expand 13006 // the search to find all valid candidates through multiple layers of loads. 13007 // 13008 // Root 13009 // |-------|-------| 13010 // Load Load Store3 13011 // | | 13012 // Store1 Store2 13013 // 13014 // FIXME: We should be able to climb and 13015 // descend TokenFactors to find candidates as well. 13016 13017 SDNode *RootNode = (St->getChain()).getNode(); 13018 13019 if (LoadSDNode *Ldn = dyn_cast<LoadSDNode>(RootNode)) { 13020 RootNode = Ldn->getChain().getNode(); 13021 for (auto I = RootNode->use_begin(), E = RootNode->use_end(); I != E; ++I) 13022 if (I.getOperandNo() == 0 && isa<LoadSDNode>(*I)) // walk down chain 13023 for (auto I2 = (*I)->use_begin(), E2 = (*I)->use_end(); I2 != E2; ++I2) 13024 if (I2.getOperandNo() == 0) 13025 if (StoreSDNode *OtherST = dyn_cast<StoreSDNode>(*I2)) { 13026 BaseIndexOffset Ptr; 13027 int64_t PtrDiff; 13028 if (CandidateMatch(OtherST, Ptr, PtrDiff)) 13029 StoreNodes.push_back(MemOpLink(OtherST, PtrDiff)); 13030 } 13031 } else 13032 for (auto I = RootNode->use_begin(), E = RootNode->use_end(); I != E; ++I) 13033 if (I.getOperandNo() == 0) 13034 if (StoreSDNode *OtherST = dyn_cast<StoreSDNode>(*I)) { 13035 BaseIndexOffset Ptr; 13036 int64_t PtrDiff; 13037 if (CandidateMatch(OtherST, Ptr, PtrDiff)) 13038 StoreNodes.push_back(MemOpLink(OtherST, PtrDiff)); 13039 } 13040 } 13041 13042 // We need to check that merging these stores does not cause a loop in 13043 // the DAG. Any store candidate may depend on another candidate 13044 // indirectly through its operand (we already consider dependencies 13045 // through the chain). Check in parallel by searching up from 13046 // non-chain operands of candidates. 13047 bool DAGCombiner::checkMergeStoreCandidatesForDependencies( 13048 SmallVectorImpl<MemOpLink> &StoreNodes, unsigned NumStores) { 13049 // FIXME: We should be able to truncate a full search of 13050 // predecessors by doing a BFS and keeping tabs the originating 13051 // stores from which worklist nodes come from in a similar way to 13052 // TokenFactor simplfication. 13053 13054 SmallPtrSet<const SDNode *, 16> Visited; 13055 SmallVector<const SDNode *, 8> Worklist; 13056 unsigned int Max = 8192; 13057 // Search Ops of store candidates. 13058 for (unsigned i = 0; i < NumStores; ++i) { 13059 SDNode *n = StoreNodes[i].MemNode; 13060 // Potential loops may happen only through non-chain operands 13061 for (unsigned j = 1; j < n->getNumOperands(); ++j) 13062 Worklist.push_back(n->getOperand(j).getNode()); 13063 } 13064 // Search through DAG. We can stop early if we find a store node. 13065 for (unsigned i = 0; i < NumStores; ++i) { 13066 if (SDNode::hasPredecessorHelper(StoreNodes[i].MemNode, Visited, Worklist, 13067 Max)) 13068 return false; 13069 // Check if we ended early, failing conservatively if so. 13070 if (Visited.size() >= Max) 13071 return false; 13072 } 13073 return true; 13074 } 13075 13076 bool DAGCombiner::MergeConsecutiveStores(StoreSDNode *St) { 13077 if (OptLevel == CodeGenOpt::None) 13078 return false; 13079 13080 EVT MemVT = St->getMemoryVT(); 13081 int64_t ElementSizeBytes = MemVT.getStoreSize(); 13082 unsigned NumMemElts = MemVT.isVector() ? MemVT.getVectorNumElements() : 1; 13083 13084 if (MemVT.getSizeInBits() * 2 > MaximumLegalStoreInBits) 13085 return false; 13086 13087 bool NoVectors = DAG.getMachineFunction().getFunction().hasFnAttribute( 13088 Attribute::NoImplicitFloat); 13089 13090 // This function cannot currently deal with non-byte-sized memory sizes. 13091 if (ElementSizeBytes * 8 != MemVT.getSizeInBits()) 13092 return false; 13093 13094 if (!MemVT.isSimple()) 13095 return false; 13096 13097 // Perform an early exit check. Do not bother looking at stored values that 13098 // are not constants, loads, or extracted vector elements. 13099 SDValue StoredVal = peekThroughBitcast(St->getValue()); 13100 bool IsLoadSrc = isa<LoadSDNode>(StoredVal); 13101 bool IsConstantSrc = isa<ConstantSDNode>(StoredVal) || 13102 isa<ConstantFPSDNode>(StoredVal); 13103 bool IsExtractVecSrc = (StoredVal.getOpcode() == ISD::EXTRACT_VECTOR_ELT || 13104 StoredVal.getOpcode() == ISD::EXTRACT_SUBVECTOR); 13105 13106 if (!IsConstantSrc && !IsLoadSrc && !IsExtractVecSrc) 13107 return false; 13108 13109 SmallVector<MemOpLink, 8> StoreNodes; 13110 // Find potential store merge candidates by searching through chain sub-DAG 13111 getStoreMergeCandidates(St, StoreNodes); 13112 13113 // Check if there is anything to merge. 13114 if (StoreNodes.size() < 2) 13115 return false; 13116 13117 // Sort the memory operands according to their distance from the 13118 // base pointer. 13119 std::sort(StoreNodes.begin(), StoreNodes.end(), 13120 [](MemOpLink LHS, MemOpLink RHS) { 13121 return LHS.OffsetFromBase < RHS.OffsetFromBase; 13122 }); 13123 13124 // Store Merge attempts to merge the lowest stores. This generally 13125 // works out as if successful, as the remaining stores are checked 13126 // after the first collection of stores is merged. However, in the 13127 // case that a non-mergeable store is found first, e.g., {p[-2], 13128 // p[0], p[1], p[2], p[3]}, we would fail and miss the subsequent 13129 // mergeable cases. To prevent this, we prune such stores from the 13130 // front of StoreNodes here. 13131 13132 bool RV = false; 13133 while (StoreNodes.size() > 1) { 13134 unsigned StartIdx = 0; 13135 while ((StartIdx + 1 < StoreNodes.size()) && 13136 StoreNodes[StartIdx].OffsetFromBase + ElementSizeBytes != 13137 StoreNodes[StartIdx + 1].OffsetFromBase) 13138 ++StartIdx; 13139 13140 // Bail if we don't have enough candidates to merge. 13141 if (StartIdx + 1 >= StoreNodes.size()) 13142 return RV; 13143 13144 if (StartIdx) 13145 StoreNodes.erase(StoreNodes.begin(), StoreNodes.begin() + StartIdx); 13146 13147 // Scan the memory operations on the chain and find the first 13148 // non-consecutive store memory address. 13149 unsigned NumConsecutiveStores = 1; 13150 int64_t StartAddress = StoreNodes[0].OffsetFromBase; 13151 // Check that the addresses are consecutive starting from the second 13152 // element in the list of stores. 13153 for (unsigned i = 1, e = StoreNodes.size(); i < e; ++i) { 13154 int64_t CurrAddress = StoreNodes[i].OffsetFromBase; 13155 if (CurrAddress - StartAddress != (ElementSizeBytes * i)) 13156 break; 13157 NumConsecutiveStores = i + 1; 13158 } 13159 13160 if (NumConsecutiveStores < 2) { 13161 StoreNodes.erase(StoreNodes.begin(), 13162 StoreNodes.begin() + NumConsecutiveStores); 13163 continue; 13164 } 13165 13166 // Check that we can merge these candidates without causing a cycle 13167 if (!checkMergeStoreCandidatesForDependencies(StoreNodes, 13168 NumConsecutiveStores)) { 13169 StoreNodes.erase(StoreNodes.begin(), 13170 StoreNodes.begin() + NumConsecutiveStores); 13171 continue; 13172 } 13173 13174 // The node with the lowest store address. 13175 LLVMContext &Context = *DAG.getContext(); 13176 const DataLayout &DL = DAG.getDataLayout(); 13177 13178 // Store the constants into memory as one consecutive store. 13179 if (IsConstantSrc) { 13180 LSBaseSDNode *FirstInChain = StoreNodes[0].MemNode; 13181 unsigned FirstStoreAS = FirstInChain->getAddressSpace(); 13182 unsigned FirstStoreAlign = FirstInChain->getAlignment(); 13183 unsigned LastLegalType = 1; 13184 unsigned LastLegalVectorType = 1; 13185 bool LastIntegerTrunc = false; 13186 bool NonZero = false; 13187 unsigned FirstZeroAfterNonZero = NumConsecutiveStores; 13188 for (unsigned i = 0; i < NumConsecutiveStores; ++i) { 13189 StoreSDNode *ST = cast<StoreSDNode>(StoreNodes[i].MemNode); 13190 SDValue StoredVal = ST->getValue(); 13191 bool IsElementZero = false; 13192 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(StoredVal)) 13193 IsElementZero = C->isNullValue(); 13194 else if (ConstantFPSDNode *C = dyn_cast<ConstantFPSDNode>(StoredVal)) 13195 IsElementZero = C->getConstantFPValue()->isNullValue(); 13196 if (IsElementZero) { 13197 if (NonZero && FirstZeroAfterNonZero == NumConsecutiveStores) 13198 FirstZeroAfterNonZero = i; 13199 } 13200 NonZero |= !IsElementZero; 13201 13202 // Find a legal type for the constant store. 13203 unsigned SizeInBits = (i + 1) * ElementSizeBytes * 8; 13204 EVT StoreTy = EVT::getIntegerVT(Context, SizeInBits); 13205 bool IsFast = false; 13206 if (TLI.isTypeLegal(StoreTy) && 13207 TLI.canMergeStoresTo(FirstStoreAS, StoreTy, DAG) && 13208 TLI.allowsMemoryAccess(Context, DL, StoreTy, FirstStoreAS, 13209 FirstStoreAlign, &IsFast) && 13210 IsFast) { 13211 LastIntegerTrunc = false; 13212 LastLegalType = i + 1; 13213 // Or check whether a truncstore is legal. 13214 } else if (TLI.getTypeAction(Context, StoreTy) == 13215 TargetLowering::TypePromoteInteger) { 13216 EVT LegalizedStoredValueTy = 13217 TLI.getTypeToTransformTo(Context, StoredVal.getValueType()); 13218 if (TLI.isTruncStoreLegal(LegalizedStoredValueTy, StoreTy) && 13219 TLI.canMergeStoresTo(FirstStoreAS, LegalizedStoredValueTy, DAG) && 13220 TLI.allowsMemoryAccess(Context, DL, StoreTy, FirstStoreAS, 13221 FirstStoreAlign, &IsFast) && 13222 IsFast) { 13223 LastIntegerTrunc = true; 13224 LastLegalType = i + 1; 13225 } 13226 } 13227 13228 // We only use vectors if the constant is known to be zero or the target 13229 // allows it and the function is not marked with the noimplicitfloat 13230 // attribute. 13231 if ((!NonZero || 13232 TLI.storeOfVectorConstantIsCheap(MemVT, i + 1, FirstStoreAS)) && 13233 !NoVectors) { 13234 // Find a legal type for the vector store. 13235 unsigned Elts = (i + 1) * NumMemElts; 13236 EVT Ty = EVT::getVectorVT(Context, MemVT.getScalarType(), Elts); 13237 if (TLI.isTypeLegal(Ty) && TLI.isTypeLegal(MemVT) && 13238 TLI.canMergeStoresTo(FirstStoreAS, Ty, DAG) && 13239 TLI.allowsMemoryAccess(Context, DL, Ty, FirstStoreAS, 13240 FirstStoreAlign, &IsFast) && 13241 IsFast) 13242 LastLegalVectorType = i + 1; 13243 } 13244 } 13245 13246 bool UseVector = (LastLegalVectorType > LastLegalType) && !NoVectors; 13247 unsigned NumElem = (UseVector) ? LastLegalVectorType : LastLegalType; 13248 13249 // Check if we found a legal integer type that creates a meaningful merge. 13250 if (NumElem < 2) { 13251 // We know that candidate stores are in order and of correct 13252 // shape. While there is no mergeable sequence from the 13253 // beginning one may start later in the sequence. The only 13254 // reason a merge of size N could have failed where another of 13255 // the same size would not have, is if the alignment has 13256 // improved or we've dropped a non-zero value. Drop as many 13257 // candidates as we can here. 13258 unsigned NumSkip = 1; 13259 while ( 13260 (NumSkip < NumConsecutiveStores) && 13261 (NumSkip < FirstZeroAfterNonZero) && 13262 (StoreNodes[NumSkip].MemNode->getAlignment() <= FirstStoreAlign)) { 13263 NumSkip++; 13264 } 13265 StoreNodes.erase(StoreNodes.begin(), StoreNodes.begin() + NumSkip); 13266 continue; 13267 } 13268 13269 bool Merged = MergeStoresOfConstantsOrVecElts( 13270 StoreNodes, MemVT, NumElem, true, UseVector, LastIntegerTrunc); 13271 RV |= Merged; 13272 13273 // Remove merged stores for next iteration. 13274 StoreNodes.erase(StoreNodes.begin(), StoreNodes.begin() + NumElem); 13275 continue; 13276 } 13277 13278 // When extracting multiple vector elements, try to store them 13279 // in one vector store rather than a sequence of scalar stores. 13280 if (IsExtractVecSrc) { 13281 LSBaseSDNode *FirstInChain = StoreNodes[0].MemNode; 13282 unsigned FirstStoreAS = FirstInChain->getAddressSpace(); 13283 unsigned FirstStoreAlign = FirstInChain->getAlignment(); 13284 unsigned NumStoresToMerge = 1; 13285 for (unsigned i = 0; i < NumConsecutiveStores; ++i) { 13286 StoreSDNode *St = cast<StoreSDNode>(StoreNodes[i].MemNode); 13287 SDValue StVal = peekThroughBitcast(St->getValue()); 13288 // This restriction could be loosened. 13289 // Bail out if any stored values are not elements extracted from a 13290 // vector. It should be possible to handle mixed sources, but load 13291 // sources need more careful handling (see the block of code below that 13292 // handles consecutive loads). 13293 if (StVal.getOpcode() != ISD::EXTRACT_VECTOR_ELT && 13294 StVal.getOpcode() != ISD::EXTRACT_SUBVECTOR) 13295 return RV; 13296 13297 // Find a legal type for the vector store. 13298 unsigned Elts = (i + 1) * NumMemElts; 13299 EVT Ty = 13300 EVT::getVectorVT(*DAG.getContext(), MemVT.getScalarType(), Elts); 13301 bool IsFast; 13302 if (TLI.isTypeLegal(Ty) && 13303 TLI.canMergeStoresTo(FirstStoreAS, Ty, DAG) && 13304 TLI.allowsMemoryAccess(Context, DL, Ty, FirstStoreAS, 13305 FirstStoreAlign, &IsFast) && 13306 IsFast) 13307 NumStoresToMerge = i + 1; 13308 } 13309 13310 // Check if we found a legal integer type that creates a meaningful merge. 13311 if (NumStoresToMerge < 2) { 13312 // We know that candidate stores are in order and of correct 13313 // shape. While there is no mergeable sequence from the 13314 // beginning one may start later in the sequence. The only 13315 // reason a merge of size N could have failed where another of 13316 // the same size would not have, is if the alignment has 13317 // improved. Drop as many candidates as we can here. 13318 unsigned NumSkip = 1; 13319 while ((NumSkip < NumConsecutiveStores) && 13320 (StoreNodes[NumSkip].MemNode->getAlignment() <= FirstStoreAlign)) 13321 NumSkip++; 13322 13323 StoreNodes.erase(StoreNodes.begin(), StoreNodes.begin() + NumSkip); 13324 continue; 13325 } 13326 13327 bool Merged = MergeStoresOfConstantsOrVecElts( 13328 StoreNodes, MemVT, NumStoresToMerge, false, true, false); 13329 if (!Merged) { 13330 StoreNodes.erase(StoreNodes.begin(), 13331 StoreNodes.begin() + NumStoresToMerge); 13332 continue; 13333 } 13334 // Remove merged stores for next iteration. 13335 StoreNodes.erase(StoreNodes.begin(), 13336 StoreNodes.begin() + NumStoresToMerge); 13337 RV = true; 13338 continue; 13339 } 13340 13341 // Below we handle the case of multiple consecutive stores that 13342 // come from multiple consecutive loads. We merge them into a single 13343 // wide load and a single wide store. 13344 13345 // Look for load nodes which are used by the stored values. 13346 SmallVector<MemOpLink, 8> LoadNodes; 13347 13348 // Find acceptable loads. Loads need to have the same chain (token factor), 13349 // must not be zext, volatile, indexed, and they must be consecutive. 13350 BaseIndexOffset LdBasePtr; 13351 for (unsigned i = 0; i < NumConsecutiveStores; ++i) { 13352 StoreSDNode *St = cast<StoreSDNode>(StoreNodes[i].MemNode); 13353 SDValue Val = peekThroughBitcast(St->getValue()); 13354 LoadSDNode *Ld = dyn_cast<LoadSDNode>(Val); 13355 if (!Ld) 13356 break; 13357 13358 // Loads must only have one use. 13359 if (!Ld->hasNUsesOfValue(1, 0)) 13360 break; 13361 13362 // The memory operands must not be volatile. 13363 if (Ld->isVolatile() || Ld->isIndexed()) 13364 break; 13365 13366 // The stored memory type must be the same. 13367 if (Ld->getMemoryVT() != MemVT) 13368 break; 13369 13370 BaseIndexOffset LdPtr = BaseIndexOffset::match(Ld->getBasePtr(), DAG); 13371 // If this is not the first ptr that we check. 13372 int64_t LdOffset = 0; 13373 if (LdBasePtr.getBase().getNode()) { 13374 // The base ptr must be the same. 13375 if (!LdBasePtr.equalBaseIndex(LdPtr, DAG, LdOffset)) 13376 break; 13377 } else { 13378 // Check that all other base pointers are the same as this one. 13379 LdBasePtr = LdPtr; 13380 } 13381 13382 // We found a potential memory operand to merge. 13383 LoadNodes.push_back(MemOpLink(Ld, LdOffset)); 13384 } 13385 13386 if (LoadNodes.size() < 2) { 13387 StoreNodes.erase(StoreNodes.begin(), StoreNodes.begin() + 1); 13388 continue; 13389 } 13390 13391 // If we have load/store pair instructions and we only have two values, 13392 // don't bother merging. 13393 unsigned RequiredAlignment; 13394 if (LoadNodes.size() == 2 && TLI.hasPairedLoad(MemVT, RequiredAlignment) && 13395 StoreNodes[0].MemNode->getAlignment() >= RequiredAlignment) { 13396 StoreNodes.erase(StoreNodes.begin(), StoreNodes.begin() + 2); 13397 continue; 13398 } 13399 LSBaseSDNode *FirstInChain = StoreNodes[0].MemNode; 13400 unsigned FirstStoreAS = FirstInChain->getAddressSpace(); 13401 unsigned FirstStoreAlign = FirstInChain->getAlignment(); 13402 LoadSDNode *FirstLoad = cast<LoadSDNode>(LoadNodes[0].MemNode); 13403 unsigned FirstLoadAS = FirstLoad->getAddressSpace(); 13404 unsigned FirstLoadAlign = FirstLoad->getAlignment(); 13405 13406 // Scan the memory operations on the chain and find the first 13407 // non-consecutive load memory address. These variables hold the index in 13408 // the store node array. 13409 unsigned LastConsecutiveLoad = 1; 13410 // This variable refers to the size and not index in the array. 13411 unsigned LastLegalVectorType = 1; 13412 unsigned LastLegalIntegerType = 1; 13413 bool isDereferenceable = true; 13414 bool DoIntegerTruncate = false; 13415 StartAddress = LoadNodes[0].OffsetFromBase; 13416 SDValue FirstChain = FirstLoad->getChain(); 13417 for (unsigned i = 1; i < LoadNodes.size(); ++i) { 13418 // All loads must share the same chain. 13419 if (LoadNodes[i].MemNode->getChain() != FirstChain) 13420 break; 13421 13422 int64_t CurrAddress = LoadNodes[i].OffsetFromBase; 13423 if (CurrAddress - StartAddress != (ElementSizeBytes * i)) 13424 break; 13425 LastConsecutiveLoad = i; 13426 13427 if (isDereferenceable && !LoadNodes[i].MemNode->isDereferenceable()) 13428 isDereferenceable = false; 13429 13430 // Find a legal type for the vector store. 13431 unsigned Elts = (i + 1) * NumMemElts; 13432 EVT StoreTy = EVT::getVectorVT(Context, MemVT.getScalarType(), Elts); 13433 13434 bool IsFastSt, IsFastLd; 13435 if (TLI.isTypeLegal(StoreTy) && 13436 TLI.canMergeStoresTo(FirstStoreAS, StoreTy, DAG) && 13437 TLI.allowsMemoryAccess(Context, DL, StoreTy, FirstStoreAS, 13438 FirstStoreAlign, &IsFastSt) && 13439 IsFastSt && 13440 TLI.allowsMemoryAccess(Context, DL, StoreTy, FirstLoadAS, 13441 FirstLoadAlign, &IsFastLd) && 13442 IsFastLd) { 13443 LastLegalVectorType = i + 1; 13444 } 13445 13446 // Find a legal type for the integer store. 13447 unsigned SizeInBits = (i + 1) * ElementSizeBytes * 8; 13448 StoreTy = EVT::getIntegerVT(Context, SizeInBits); 13449 if (TLI.isTypeLegal(StoreTy) && 13450 TLI.canMergeStoresTo(FirstStoreAS, StoreTy, DAG) && 13451 TLI.allowsMemoryAccess(Context, DL, StoreTy, FirstStoreAS, 13452 FirstStoreAlign, &IsFastSt) && 13453 IsFastSt && 13454 TLI.allowsMemoryAccess(Context, DL, StoreTy, FirstLoadAS, 13455 FirstLoadAlign, &IsFastLd) && 13456 IsFastLd) { 13457 LastLegalIntegerType = i + 1; 13458 DoIntegerTruncate = false; 13459 // Or check whether a truncstore and extload is legal. 13460 } else if (TLI.getTypeAction(Context, StoreTy) == 13461 TargetLowering::TypePromoteInteger) { 13462 EVT LegalizedStoredValueTy = TLI.getTypeToTransformTo(Context, StoreTy); 13463 if (TLI.isTruncStoreLegal(LegalizedStoredValueTy, StoreTy) && 13464 TLI.canMergeStoresTo(FirstStoreAS, LegalizedStoredValueTy, DAG) && 13465 TLI.isLoadExtLegal(ISD::ZEXTLOAD, LegalizedStoredValueTy, 13466 StoreTy) && 13467 TLI.isLoadExtLegal(ISD::SEXTLOAD, LegalizedStoredValueTy, 13468 StoreTy) && 13469 TLI.isLoadExtLegal(ISD::EXTLOAD, LegalizedStoredValueTy, StoreTy) && 13470 TLI.allowsMemoryAccess(Context, DL, StoreTy, FirstStoreAS, 13471 FirstStoreAlign, &IsFastSt) && 13472 IsFastSt && 13473 TLI.allowsMemoryAccess(Context, DL, StoreTy, FirstLoadAS, 13474 FirstLoadAlign, &IsFastLd) && 13475 IsFastLd) { 13476 LastLegalIntegerType = i + 1; 13477 DoIntegerTruncate = true; 13478 } 13479 } 13480 } 13481 13482 // Only use vector types if the vector type is larger than the integer type. 13483 // If they are the same, use integers. 13484 bool UseVectorTy = LastLegalVectorType > LastLegalIntegerType && !NoVectors; 13485 unsigned LastLegalType = 13486 std::max(LastLegalVectorType, LastLegalIntegerType); 13487 13488 // We add +1 here because the LastXXX variables refer to location while 13489 // the NumElem refers to array/index size. 13490 unsigned NumElem = std::min(NumConsecutiveStores, LastConsecutiveLoad + 1); 13491 NumElem = std::min(LastLegalType, NumElem); 13492 13493 if (NumElem < 2) { 13494 // We know that candidate stores are in order and of correct 13495 // shape. While there is no mergeable sequence from the 13496 // beginning one may start later in the sequence. The only 13497 // reason a merge of size N could have failed where another of 13498 // the same size would not have is if the alignment or either 13499 // the load or store has improved. Drop as many candidates as we 13500 // can here. 13501 unsigned NumSkip = 1; 13502 while ((NumSkip < LoadNodes.size()) && 13503 (LoadNodes[NumSkip].MemNode->getAlignment() <= FirstLoadAlign) && 13504 (StoreNodes[NumSkip].MemNode->getAlignment() <= FirstStoreAlign)) 13505 NumSkip++; 13506 StoreNodes.erase(StoreNodes.begin(), StoreNodes.begin() + NumSkip); 13507 continue; 13508 } 13509 13510 // Find if it is better to use vectors or integers to load and store 13511 // to memory. 13512 EVT JointMemOpVT; 13513 if (UseVectorTy) { 13514 // Find a legal type for the vector store. 13515 unsigned Elts = NumElem * NumMemElts; 13516 JointMemOpVT = EVT::getVectorVT(Context, MemVT.getScalarType(), Elts); 13517 } else { 13518 unsigned SizeInBits = NumElem * ElementSizeBytes * 8; 13519 JointMemOpVT = EVT::getIntegerVT(Context, SizeInBits); 13520 } 13521 13522 SDLoc LoadDL(LoadNodes[0].MemNode); 13523 SDLoc StoreDL(StoreNodes[0].MemNode); 13524 13525 // The merged loads are required to have the same incoming chain, so 13526 // using the first's chain is acceptable. 13527 13528 SDValue NewStoreChain = getMergeStoreChains(StoreNodes, NumElem); 13529 AddToWorklist(NewStoreChain.getNode()); 13530 13531 MachineMemOperand::Flags MMOFlags = isDereferenceable ? 13532 MachineMemOperand::MODereferenceable: 13533 MachineMemOperand::MONone; 13534 13535 SDValue NewLoad, NewStore; 13536 if (UseVectorTy || !DoIntegerTruncate) { 13537 NewLoad = DAG.getLoad(JointMemOpVT, LoadDL, FirstLoad->getChain(), 13538 FirstLoad->getBasePtr(), 13539 FirstLoad->getPointerInfo(), FirstLoadAlign, 13540 MMOFlags); 13541 NewStore = DAG.getStore(NewStoreChain, StoreDL, NewLoad, 13542 FirstInChain->getBasePtr(), 13543 FirstInChain->getPointerInfo(), FirstStoreAlign); 13544 } else { // This must be the truncstore/extload case 13545 EVT ExtendedTy = 13546 TLI.getTypeToTransformTo(*DAG.getContext(), JointMemOpVT); 13547 NewLoad = 13548 DAG.getExtLoad(ISD::EXTLOAD, LoadDL, ExtendedTy, FirstLoad->getChain(), 13549 FirstLoad->getBasePtr(), FirstLoad->getPointerInfo(), 13550 JointMemOpVT, FirstLoadAlign, MMOFlags); 13551 NewStore = DAG.getTruncStore(NewStoreChain, StoreDL, NewLoad, 13552 FirstInChain->getBasePtr(), 13553 FirstInChain->getPointerInfo(), JointMemOpVT, 13554 FirstInChain->getAlignment(), 13555 FirstInChain->getMemOperand()->getFlags()); 13556 } 13557 13558 // Transfer chain users from old loads to the new load. 13559 for (unsigned i = 0; i < NumElem; ++i) { 13560 LoadSDNode *Ld = cast<LoadSDNode>(LoadNodes[i].MemNode); 13561 DAG.ReplaceAllUsesOfValueWith(SDValue(Ld, 1), 13562 SDValue(NewLoad.getNode(), 1)); 13563 } 13564 13565 // Replace the all stores with the new store. Recursively remove 13566 // corresponding value if its no longer used. 13567 for (unsigned i = 0; i < NumElem; ++i) { 13568 SDValue Val = StoreNodes[i].MemNode->getOperand(1); 13569 CombineTo(StoreNodes[i].MemNode, NewStore); 13570 if (Val.getNode()->use_empty()) 13571 recursivelyDeleteUnusedNodes(Val.getNode()); 13572 } 13573 13574 RV = true; 13575 StoreNodes.erase(StoreNodes.begin(), StoreNodes.begin() + NumElem); 13576 } 13577 return RV; 13578 } 13579 13580 SDValue DAGCombiner::replaceStoreChain(StoreSDNode *ST, SDValue BetterChain) { 13581 SDLoc SL(ST); 13582 SDValue ReplStore; 13583 13584 // Replace the chain to avoid dependency. 13585 if (ST->isTruncatingStore()) { 13586 ReplStore = DAG.getTruncStore(BetterChain, SL, ST->getValue(), 13587 ST->getBasePtr(), ST->getMemoryVT(), 13588 ST->getMemOperand()); 13589 } else { 13590 ReplStore = DAG.getStore(BetterChain, SL, ST->getValue(), ST->getBasePtr(), 13591 ST->getMemOperand()); 13592 } 13593 13594 // Create token to keep both nodes around. 13595 SDValue Token = DAG.getNode(ISD::TokenFactor, SL, 13596 MVT::Other, ST->getChain(), ReplStore); 13597 13598 // Make sure the new and old chains are cleaned up. 13599 AddToWorklist(Token.getNode()); 13600 13601 // Don't add users to work list. 13602 return CombineTo(ST, Token, false); 13603 } 13604 13605 SDValue DAGCombiner::replaceStoreOfFPConstant(StoreSDNode *ST) { 13606 SDValue Value = ST->getValue(); 13607 if (Value.getOpcode() == ISD::TargetConstantFP) 13608 return SDValue(); 13609 13610 SDLoc DL(ST); 13611 13612 SDValue Chain = ST->getChain(); 13613 SDValue Ptr = ST->getBasePtr(); 13614 13615 const ConstantFPSDNode *CFP = cast<ConstantFPSDNode>(Value); 13616 13617 // NOTE: If the original store is volatile, this transform must not increase 13618 // the number of stores. For example, on x86-32 an f64 can be stored in one 13619 // processor operation but an i64 (which is not legal) requires two. So the 13620 // transform should not be done in this case. 13621 13622 SDValue Tmp; 13623 switch (CFP->getSimpleValueType(0).SimpleTy) { 13624 default: 13625 llvm_unreachable("Unknown FP type"); 13626 case MVT::f16: // We don't do this for these yet. 13627 case MVT::f80: 13628 case MVT::f128: 13629 case MVT::ppcf128: 13630 return SDValue(); 13631 case MVT::f32: 13632 if ((isTypeLegal(MVT::i32) && !LegalOperations && !ST->isVolatile()) || 13633 TLI.isOperationLegalOrCustom(ISD::STORE, MVT::i32)) { 13634 ; 13635 Tmp = DAG.getConstant((uint32_t)CFP->getValueAPF(). 13636 bitcastToAPInt().getZExtValue(), SDLoc(CFP), 13637 MVT::i32); 13638 return DAG.getStore(Chain, DL, Tmp, Ptr, ST->getMemOperand()); 13639 } 13640 13641 return SDValue(); 13642 case MVT::f64: 13643 if ((TLI.isTypeLegal(MVT::i64) && !LegalOperations && 13644 !ST->isVolatile()) || 13645 TLI.isOperationLegalOrCustom(ISD::STORE, MVT::i64)) { 13646 ; 13647 Tmp = DAG.getConstant(CFP->getValueAPF().bitcastToAPInt(). 13648 getZExtValue(), SDLoc(CFP), MVT::i64); 13649 return DAG.getStore(Chain, DL, Tmp, 13650 Ptr, ST->getMemOperand()); 13651 } 13652 13653 if (!ST->isVolatile() && 13654 TLI.isOperationLegalOrCustom(ISD::STORE, MVT::i32)) { 13655 // Many FP stores are not made apparent until after legalize, e.g. for 13656 // argument passing. Since this is so common, custom legalize the 13657 // 64-bit integer store into two 32-bit stores. 13658 uint64_t Val = CFP->getValueAPF().bitcastToAPInt().getZExtValue(); 13659 SDValue Lo = DAG.getConstant(Val & 0xFFFFFFFF, SDLoc(CFP), MVT::i32); 13660 SDValue Hi = DAG.getConstant(Val >> 32, SDLoc(CFP), MVT::i32); 13661 if (DAG.getDataLayout().isBigEndian()) 13662 std::swap(Lo, Hi); 13663 13664 unsigned Alignment = ST->getAlignment(); 13665 MachineMemOperand::Flags MMOFlags = ST->getMemOperand()->getFlags(); 13666 AAMDNodes AAInfo = ST->getAAInfo(); 13667 13668 SDValue St0 = DAG.getStore(Chain, DL, Lo, Ptr, ST->getPointerInfo(), 13669 ST->getAlignment(), MMOFlags, AAInfo); 13670 Ptr = DAG.getNode(ISD::ADD, DL, Ptr.getValueType(), Ptr, 13671 DAG.getConstant(4, DL, Ptr.getValueType())); 13672 Alignment = MinAlign(Alignment, 4U); 13673 SDValue St1 = DAG.getStore(Chain, DL, Hi, Ptr, 13674 ST->getPointerInfo().getWithOffset(4), 13675 Alignment, MMOFlags, AAInfo); 13676 return DAG.getNode(ISD::TokenFactor, DL, MVT::Other, 13677 St0, St1); 13678 } 13679 13680 return SDValue(); 13681 } 13682 } 13683 13684 SDValue DAGCombiner::visitSTORE(SDNode *N) { 13685 StoreSDNode *ST = cast<StoreSDNode>(N); 13686 SDValue Chain = ST->getChain(); 13687 SDValue Value = ST->getValue(); 13688 SDValue Ptr = ST->getBasePtr(); 13689 13690 // If this is a store of a bit convert, store the input value if the 13691 // resultant store does not need a higher alignment than the original. 13692 if (Value.getOpcode() == ISD::BITCAST && !ST->isTruncatingStore() && 13693 ST->isUnindexed()) { 13694 EVT SVT = Value.getOperand(0).getValueType(); 13695 if (((!LegalOperations && !ST->isVolatile()) || 13696 TLI.isOperationLegalOrCustom(ISD::STORE, SVT)) && 13697 TLI.isStoreBitCastBeneficial(Value.getValueType(), SVT)) { 13698 unsigned OrigAlign = ST->getAlignment(); 13699 bool Fast = false; 13700 if (TLI.allowsMemoryAccess(*DAG.getContext(), DAG.getDataLayout(), SVT, 13701 ST->getAddressSpace(), OrigAlign, &Fast) && 13702 Fast) { 13703 return DAG.getStore(Chain, SDLoc(N), Value.getOperand(0), Ptr, 13704 ST->getPointerInfo(), OrigAlign, 13705 ST->getMemOperand()->getFlags(), ST->getAAInfo()); 13706 } 13707 } 13708 } 13709 13710 // Turn 'store undef, Ptr' -> nothing. 13711 if (Value.isUndef() && ST->isUnindexed()) 13712 return Chain; 13713 13714 // Try to infer better alignment information than the store already has. 13715 if (OptLevel != CodeGenOpt::None && ST->isUnindexed()) { 13716 if (unsigned Align = DAG.InferPtrAlignment(Ptr)) { 13717 if (Align > ST->getAlignment()) { 13718 SDValue NewStore = 13719 DAG.getTruncStore(Chain, SDLoc(N), Value, Ptr, ST->getPointerInfo(), 13720 ST->getMemoryVT(), Align, 13721 ST->getMemOperand()->getFlags(), ST->getAAInfo()); 13722 if (NewStore.getNode() != N) 13723 return CombineTo(ST, NewStore, true); 13724 } 13725 } 13726 } 13727 13728 // Try transforming a pair floating point load / store ops to integer 13729 // load / store ops. 13730 if (SDValue NewST = TransformFPLoadStorePair(N)) 13731 return NewST; 13732 13733 if (ST->isUnindexed()) { 13734 // Walk up chain skipping non-aliasing memory nodes, on this store and any 13735 // adjacent stores. 13736 if (findBetterNeighborChains(ST)) { 13737 // replaceStoreChain uses CombineTo, which handled all of the worklist 13738 // manipulation. Return the original node to not do anything else. 13739 return SDValue(ST, 0); 13740 } 13741 Chain = ST->getChain(); 13742 } 13743 13744 // FIXME: is there such a thing as a truncating indexed store? 13745 if (ST->isTruncatingStore() && ST->isUnindexed() && 13746 Value.getValueType().isInteger()) { 13747 // See if we can simplify the input to this truncstore with knowledge that 13748 // only the low bits are being used. For example: 13749 // "truncstore (or (shl x, 8), y), i8" -> "truncstore y, i8" 13750 SDValue Shorter = DAG.GetDemandedBits( 13751 Value, APInt::getLowBitsSet(Value.getScalarValueSizeInBits(), 13752 ST->getMemoryVT().getScalarSizeInBits())); 13753 AddToWorklist(Value.getNode()); 13754 if (Shorter.getNode()) 13755 return DAG.getTruncStore(Chain, SDLoc(N), Shorter, 13756 Ptr, ST->getMemoryVT(), ST->getMemOperand()); 13757 13758 // Otherwise, see if we can simplify the operation with 13759 // SimplifyDemandedBits, which only works if the value has a single use. 13760 if (SimplifyDemandedBits( 13761 Value, 13762 APInt::getLowBitsSet(Value.getScalarValueSizeInBits(), 13763 ST->getMemoryVT().getScalarSizeInBits()))) { 13764 // Re-visit the store if anything changed and the store hasn't been merged 13765 // with another node (N is deleted) SimplifyDemandedBits will add Value's 13766 // node back to the worklist if necessary, but we also need to re-visit 13767 // the Store node itself. 13768 if (N->getOpcode() != ISD::DELETED_NODE) 13769 AddToWorklist(N); 13770 return SDValue(N, 0); 13771 } 13772 } 13773 13774 // If this is a load followed by a store to the same location, then the store 13775 // is dead/noop. 13776 if (LoadSDNode *Ld = dyn_cast<LoadSDNode>(Value)) { 13777 if (Ld->getBasePtr() == Ptr && ST->getMemoryVT() == Ld->getMemoryVT() && 13778 ST->isUnindexed() && !ST->isVolatile() && 13779 // There can't be any side effects between the load and store, such as 13780 // a call or store. 13781 Chain.reachesChainWithoutSideEffects(SDValue(Ld, 1))) { 13782 // The store is dead, remove it. 13783 return Chain; 13784 } 13785 } 13786 13787 if (StoreSDNode *ST1 = dyn_cast<StoreSDNode>(Chain)) { 13788 if (ST->isUnindexed() && !ST->isVolatile() && ST1->isUnindexed() && 13789 !ST1->isVolatile() && ST1->getBasePtr() == Ptr && 13790 ST->getMemoryVT() == ST1->getMemoryVT()) { 13791 // If this is a store followed by a store with the same value to the same 13792 // location, then the store is dead/noop. 13793 if (ST1->getValue() == Value) { 13794 // The store is dead, remove it. 13795 return Chain; 13796 } 13797 13798 // If this is a store who's preceeding store to the same location 13799 // and no one other node is chained to that store we can effectively 13800 // drop the store. Do not remove stores to undef as they may be used as 13801 // data sinks. 13802 if (OptLevel != CodeGenOpt::None && ST1->hasOneUse() && 13803 !ST1->getBasePtr().isUndef()) { 13804 // ST1 is fully overwritten and can be elided. Combine with it's chain 13805 // value. 13806 CombineTo(ST1, ST1->getChain()); 13807 return SDValue(); 13808 } 13809 } 13810 } 13811 13812 // If this is an FP_ROUND or TRUNC followed by a store, fold this into a 13813 // truncating store. We can do this even if this is already a truncstore. 13814 if ((Value.getOpcode() == ISD::FP_ROUND || Value.getOpcode() == ISD::TRUNCATE) 13815 && Value.getNode()->hasOneUse() && ST->isUnindexed() && 13816 TLI.isTruncStoreLegal(Value.getOperand(0).getValueType(), 13817 ST->getMemoryVT())) { 13818 return DAG.getTruncStore(Chain, SDLoc(N), Value.getOperand(0), 13819 Ptr, ST->getMemoryVT(), ST->getMemOperand()); 13820 } 13821 13822 // Always perform this optimization before types are legal. If the target 13823 // prefers, also try this after legalization to catch stores that were created 13824 // by intrinsics or other nodes. 13825 if (!LegalTypes || (TLI.mergeStoresAfterLegalization())) { 13826 while (true) { 13827 // There can be multiple store sequences on the same chain. 13828 // Keep trying to merge store sequences until we are unable to do so 13829 // or until we merge the last store on the chain. 13830 bool Changed = MergeConsecutiveStores(ST); 13831 if (!Changed) break; 13832 // Return N as merge only uses CombineTo and no worklist clean 13833 // up is necessary. 13834 if (N->getOpcode() == ISD::DELETED_NODE || !isa<StoreSDNode>(N)) 13835 return SDValue(N, 0); 13836 } 13837 } 13838 13839 // Try transforming N to an indexed store. 13840 if (CombineToPreIndexedLoadStore(N) || CombineToPostIndexedLoadStore(N)) 13841 return SDValue(N, 0); 13842 13843 // Turn 'store float 1.0, Ptr' -> 'store int 0x12345678, Ptr' 13844 // 13845 // Make sure to do this only after attempting to merge stores in order to 13846 // avoid changing the types of some subset of stores due to visit order, 13847 // preventing their merging. 13848 if (isa<ConstantFPSDNode>(ST->getValue())) { 13849 if (SDValue NewSt = replaceStoreOfFPConstant(ST)) 13850 return NewSt; 13851 } 13852 13853 if (SDValue NewSt = splitMergedValStore(ST)) 13854 return NewSt; 13855 13856 return ReduceLoadOpStoreWidth(N); 13857 } 13858 13859 /// For the instruction sequence of store below, F and I values 13860 /// are bundled together as an i64 value before being stored into memory. 13861 /// Sometimes it is more efficent to generate separate stores for F and I, 13862 /// which can remove the bitwise instructions or sink them to colder places. 13863 /// 13864 /// (store (or (zext (bitcast F to i32) to i64), 13865 /// (shl (zext I to i64), 32)), addr) --> 13866 /// (store F, addr) and (store I, addr+4) 13867 /// 13868 /// Similarly, splitting for other merged store can also be beneficial, like: 13869 /// For pair of {i32, i32}, i64 store --> two i32 stores. 13870 /// For pair of {i32, i16}, i64 store --> two i32 stores. 13871 /// For pair of {i16, i16}, i32 store --> two i16 stores. 13872 /// For pair of {i16, i8}, i32 store --> two i16 stores. 13873 /// For pair of {i8, i8}, i16 store --> two i8 stores. 13874 /// 13875 /// We allow each target to determine specifically which kind of splitting is 13876 /// supported. 13877 /// 13878 /// The store patterns are commonly seen from the simple code snippet below 13879 /// if only std::make_pair(...) is sroa transformed before inlined into hoo. 13880 /// void goo(const std::pair<int, float> &); 13881 /// hoo() { 13882 /// ... 13883 /// goo(std::make_pair(tmp, ftmp)); 13884 /// ... 13885 /// } 13886 /// 13887 SDValue DAGCombiner::splitMergedValStore(StoreSDNode *ST) { 13888 if (OptLevel == CodeGenOpt::None) 13889 return SDValue(); 13890 13891 SDValue Val = ST->getValue(); 13892 SDLoc DL(ST); 13893 13894 // Match OR operand. 13895 if (!Val.getValueType().isScalarInteger() || Val.getOpcode() != ISD::OR) 13896 return SDValue(); 13897 13898 // Match SHL operand and get Lower and Higher parts of Val. 13899 SDValue Op1 = Val.getOperand(0); 13900 SDValue Op2 = Val.getOperand(1); 13901 SDValue Lo, Hi; 13902 if (Op1.getOpcode() != ISD::SHL) { 13903 std::swap(Op1, Op2); 13904 if (Op1.getOpcode() != ISD::SHL) 13905 return SDValue(); 13906 } 13907 Lo = Op2; 13908 Hi = Op1.getOperand(0); 13909 if (!Op1.hasOneUse()) 13910 return SDValue(); 13911 13912 // Match shift amount to HalfValBitSize. 13913 unsigned HalfValBitSize = Val.getValueSizeInBits() / 2; 13914 ConstantSDNode *ShAmt = dyn_cast<ConstantSDNode>(Op1.getOperand(1)); 13915 if (!ShAmt || ShAmt->getAPIntValue() != HalfValBitSize) 13916 return SDValue(); 13917 13918 // Lo and Hi are zero-extended from int with size less equal than 32 13919 // to i64. 13920 if (Lo.getOpcode() != ISD::ZERO_EXTEND || !Lo.hasOneUse() || 13921 !Lo.getOperand(0).getValueType().isScalarInteger() || 13922 Lo.getOperand(0).getValueSizeInBits() > HalfValBitSize || 13923 Hi.getOpcode() != ISD::ZERO_EXTEND || !Hi.hasOneUse() || 13924 !Hi.getOperand(0).getValueType().isScalarInteger() || 13925 Hi.getOperand(0).getValueSizeInBits() > HalfValBitSize) 13926 return SDValue(); 13927 13928 // Use the EVT of low and high parts before bitcast as the input 13929 // of target query. 13930 EVT LowTy = (Lo.getOperand(0).getOpcode() == ISD::BITCAST) 13931 ? Lo.getOperand(0).getValueType() 13932 : Lo.getValueType(); 13933 EVT HighTy = (Hi.getOperand(0).getOpcode() == ISD::BITCAST) 13934 ? Hi.getOperand(0).getValueType() 13935 : Hi.getValueType(); 13936 if (!TLI.isMultiStoresCheaperThanBitsMerge(LowTy, HighTy)) 13937 return SDValue(); 13938 13939 // Start to split store. 13940 unsigned Alignment = ST->getAlignment(); 13941 MachineMemOperand::Flags MMOFlags = ST->getMemOperand()->getFlags(); 13942 AAMDNodes AAInfo = ST->getAAInfo(); 13943 13944 // Change the sizes of Lo and Hi's value types to HalfValBitSize. 13945 EVT VT = EVT::getIntegerVT(*DAG.getContext(), HalfValBitSize); 13946 Lo = DAG.getNode(ISD::ZERO_EXTEND, DL, VT, Lo.getOperand(0)); 13947 Hi = DAG.getNode(ISD::ZERO_EXTEND, DL, VT, Hi.getOperand(0)); 13948 13949 SDValue Chain = ST->getChain(); 13950 SDValue Ptr = ST->getBasePtr(); 13951 // Lower value store. 13952 SDValue St0 = DAG.getStore(Chain, DL, Lo, Ptr, ST->getPointerInfo(), 13953 ST->getAlignment(), MMOFlags, AAInfo); 13954 Ptr = 13955 DAG.getNode(ISD::ADD, DL, Ptr.getValueType(), Ptr, 13956 DAG.getConstant(HalfValBitSize / 8, DL, Ptr.getValueType())); 13957 // Higher value store. 13958 SDValue St1 = 13959 DAG.getStore(St0, DL, Hi, Ptr, 13960 ST->getPointerInfo().getWithOffset(HalfValBitSize / 8), 13961 Alignment / 2, MMOFlags, AAInfo); 13962 return St1; 13963 } 13964 13965 /// Convert a disguised subvector insertion into a shuffle: 13966 /// insert_vector_elt V, (bitcast X from vector type), IdxC --> 13967 /// bitcast(shuffle (bitcast V), (extended X), Mask) 13968 /// Note: We do not use an insert_subvector node because that requires a legal 13969 /// subvector type. 13970 SDValue DAGCombiner::combineInsertEltToShuffle(SDNode *N, unsigned InsIndex) { 13971 SDValue InsertVal = N->getOperand(1); 13972 if (InsertVal.getOpcode() != ISD::BITCAST || !InsertVal.hasOneUse() || 13973 !InsertVal.getOperand(0).getValueType().isVector()) 13974 return SDValue(); 13975 13976 SDValue SubVec = InsertVal.getOperand(0); 13977 SDValue DestVec = N->getOperand(0); 13978 EVT SubVecVT = SubVec.getValueType(); 13979 EVT VT = DestVec.getValueType(); 13980 unsigned NumSrcElts = SubVecVT.getVectorNumElements(); 13981 unsigned ExtendRatio = VT.getSizeInBits() / SubVecVT.getSizeInBits(); 13982 unsigned NumMaskVals = ExtendRatio * NumSrcElts; 13983 13984 // Step 1: Create a shuffle mask that implements this insert operation. The 13985 // vector that we are inserting into will be operand 0 of the shuffle, so 13986 // those elements are just 'i'. The inserted subvector is in the first 13987 // positions of operand 1 of the shuffle. Example: 13988 // insert v4i32 V, (v2i16 X), 2 --> shuffle v8i16 V', X', {0,1,2,3,8,9,6,7} 13989 SmallVector<int, 16> Mask(NumMaskVals); 13990 for (unsigned i = 0; i != NumMaskVals; ++i) { 13991 if (i / NumSrcElts == InsIndex) 13992 Mask[i] = (i % NumSrcElts) + NumMaskVals; 13993 else 13994 Mask[i] = i; 13995 } 13996 13997 // Bail out if the target can not handle the shuffle we want to create. 13998 EVT SubVecEltVT = SubVecVT.getVectorElementType(); 13999 EVT ShufVT = EVT::getVectorVT(*DAG.getContext(), SubVecEltVT, NumMaskVals); 14000 if (!TLI.isShuffleMaskLegal(Mask, ShufVT)) 14001 return SDValue(); 14002 14003 // Step 2: Create a wide vector from the inserted source vector by appending 14004 // undefined elements. This is the same size as our destination vector. 14005 SDLoc DL(N); 14006 SmallVector<SDValue, 8> ConcatOps(ExtendRatio, DAG.getUNDEF(SubVecVT)); 14007 ConcatOps[0] = SubVec; 14008 SDValue PaddedSubV = DAG.getNode(ISD::CONCAT_VECTORS, DL, ShufVT, ConcatOps); 14009 14010 // Step 3: Shuffle in the padded subvector. 14011 SDValue DestVecBC = DAG.getBitcast(ShufVT, DestVec); 14012 SDValue Shuf = DAG.getVectorShuffle(ShufVT, DL, DestVecBC, PaddedSubV, Mask); 14013 AddToWorklist(PaddedSubV.getNode()); 14014 AddToWorklist(DestVecBC.getNode()); 14015 AddToWorklist(Shuf.getNode()); 14016 return DAG.getBitcast(VT, Shuf); 14017 } 14018 14019 SDValue DAGCombiner::visitINSERT_VECTOR_ELT(SDNode *N) { 14020 SDValue InVec = N->getOperand(0); 14021 SDValue InVal = N->getOperand(1); 14022 SDValue EltNo = N->getOperand(2); 14023 SDLoc DL(N); 14024 14025 // If the inserted element is an UNDEF, just use the input vector. 14026 if (InVal.isUndef()) 14027 return InVec; 14028 14029 EVT VT = InVec.getValueType(); 14030 14031 // Remove redundant insertions: 14032 // (insert_vector_elt x (extract_vector_elt x idx) idx) -> x 14033 if (InVal.getOpcode() == ISD::EXTRACT_VECTOR_ELT && 14034 InVec == InVal.getOperand(0) && EltNo == InVal.getOperand(1)) 14035 return InVec; 14036 14037 // We must know which element is being inserted for folds below here. 14038 auto *IndexC = dyn_cast<ConstantSDNode>(EltNo); 14039 if (!IndexC) 14040 return SDValue(); 14041 unsigned Elt = IndexC->getZExtValue(); 14042 14043 if (SDValue Shuf = combineInsertEltToShuffle(N, Elt)) 14044 return Shuf; 14045 14046 // Canonicalize insert_vector_elt dag nodes. 14047 // Example: 14048 // (insert_vector_elt (insert_vector_elt A, Idx0), Idx1) 14049 // -> (insert_vector_elt (insert_vector_elt A, Idx1), Idx0) 14050 // 14051 // Do this only if the child insert_vector node has one use; also 14052 // do this only if indices are both constants and Idx1 < Idx0. 14053 if (InVec.getOpcode() == ISD::INSERT_VECTOR_ELT && InVec.hasOneUse() 14054 && isa<ConstantSDNode>(InVec.getOperand(2))) { 14055 unsigned OtherElt = InVec.getConstantOperandVal(2); 14056 if (Elt < OtherElt) { 14057 // Swap nodes. 14058 SDValue NewOp = DAG.getNode(ISD::INSERT_VECTOR_ELT, DL, VT, 14059 InVec.getOperand(0), InVal, EltNo); 14060 AddToWorklist(NewOp.getNode()); 14061 return DAG.getNode(ISD::INSERT_VECTOR_ELT, SDLoc(InVec.getNode()), 14062 VT, NewOp, InVec.getOperand(1), InVec.getOperand(2)); 14063 } 14064 } 14065 14066 // If we can't generate a legal BUILD_VECTOR, exit 14067 if (LegalOperations && !TLI.isOperationLegal(ISD::BUILD_VECTOR, VT)) 14068 return SDValue(); 14069 14070 // Check that the operand is a BUILD_VECTOR (or UNDEF, which can essentially 14071 // be converted to a BUILD_VECTOR). Fill in the Ops vector with the 14072 // vector elements. 14073 SmallVector<SDValue, 8> Ops; 14074 // Do not combine these two vectors if the output vector will not replace 14075 // the input vector. 14076 if (InVec.getOpcode() == ISD::BUILD_VECTOR && InVec.hasOneUse()) { 14077 Ops.append(InVec.getNode()->op_begin(), 14078 InVec.getNode()->op_end()); 14079 } else if (InVec.isUndef()) { 14080 unsigned NElts = VT.getVectorNumElements(); 14081 Ops.append(NElts, DAG.getUNDEF(InVal.getValueType())); 14082 } else { 14083 return SDValue(); 14084 } 14085 14086 // Insert the element 14087 if (Elt < Ops.size()) { 14088 // All the operands of BUILD_VECTOR must have the same type; 14089 // we enforce that here. 14090 EVT OpVT = Ops[0].getValueType(); 14091 Ops[Elt] = OpVT.isInteger() ? DAG.getAnyExtOrTrunc(InVal, DL, OpVT) : InVal; 14092 } 14093 14094 // Return the new vector 14095 return DAG.getBuildVector(VT, DL, Ops); 14096 } 14097 14098 SDValue DAGCombiner::ReplaceExtractVectorEltOfLoadWithNarrowedLoad( 14099 SDNode *EVE, EVT InVecVT, SDValue EltNo, LoadSDNode *OriginalLoad) { 14100 assert(!OriginalLoad->isVolatile()); 14101 14102 EVT ResultVT = EVE->getValueType(0); 14103 EVT VecEltVT = InVecVT.getVectorElementType(); 14104 unsigned Align = OriginalLoad->getAlignment(); 14105 unsigned NewAlign = DAG.getDataLayout().getABITypeAlignment( 14106 VecEltVT.getTypeForEVT(*DAG.getContext())); 14107 14108 if (NewAlign > Align || !TLI.isOperationLegalOrCustom(ISD::LOAD, VecEltVT)) 14109 return SDValue(); 14110 14111 ISD::LoadExtType ExtTy = ResultVT.bitsGT(VecEltVT) ? 14112 ISD::NON_EXTLOAD : ISD::EXTLOAD; 14113 if (!TLI.shouldReduceLoadWidth(OriginalLoad, ExtTy, VecEltVT)) 14114 return SDValue(); 14115 14116 Align = NewAlign; 14117 14118 SDValue NewPtr = OriginalLoad->getBasePtr(); 14119 SDValue Offset; 14120 EVT PtrType = NewPtr.getValueType(); 14121 MachinePointerInfo MPI; 14122 SDLoc DL(EVE); 14123 if (auto *ConstEltNo = dyn_cast<ConstantSDNode>(EltNo)) { 14124 int Elt = ConstEltNo->getZExtValue(); 14125 unsigned PtrOff = VecEltVT.getSizeInBits() * Elt / 8; 14126 Offset = DAG.getConstant(PtrOff, DL, PtrType); 14127 MPI = OriginalLoad->getPointerInfo().getWithOffset(PtrOff); 14128 } else { 14129 Offset = DAG.getZExtOrTrunc(EltNo, DL, PtrType); 14130 Offset = DAG.getNode( 14131 ISD::MUL, DL, PtrType, Offset, 14132 DAG.getConstant(VecEltVT.getStoreSize(), DL, PtrType)); 14133 MPI = OriginalLoad->getPointerInfo(); 14134 } 14135 NewPtr = DAG.getNode(ISD::ADD, DL, PtrType, NewPtr, Offset); 14136 14137 // The replacement we need to do here is a little tricky: we need to 14138 // replace an extractelement of a load with a load. 14139 // Use ReplaceAllUsesOfValuesWith to do the replacement. 14140 // Note that this replacement assumes that the extractvalue is the only 14141 // use of the load; that's okay because we don't want to perform this 14142 // transformation in other cases anyway. 14143 SDValue Load; 14144 SDValue Chain; 14145 if (ResultVT.bitsGT(VecEltVT)) { 14146 // If the result type of vextract is wider than the load, then issue an 14147 // extending load instead. 14148 ISD::LoadExtType ExtType = TLI.isLoadExtLegal(ISD::ZEXTLOAD, ResultVT, 14149 VecEltVT) 14150 ? ISD::ZEXTLOAD 14151 : ISD::EXTLOAD; 14152 Load = DAG.getExtLoad(ExtType, SDLoc(EVE), ResultVT, 14153 OriginalLoad->getChain(), NewPtr, MPI, VecEltVT, 14154 Align, OriginalLoad->getMemOperand()->getFlags(), 14155 OriginalLoad->getAAInfo()); 14156 Chain = Load.getValue(1); 14157 } else { 14158 Load = DAG.getLoad(VecEltVT, SDLoc(EVE), OriginalLoad->getChain(), NewPtr, 14159 MPI, Align, OriginalLoad->getMemOperand()->getFlags(), 14160 OriginalLoad->getAAInfo()); 14161 Chain = Load.getValue(1); 14162 if (ResultVT.bitsLT(VecEltVT)) 14163 Load = DAG.getNode(ISD::TRUNCATE, SDLoc(EVE), ResultVT, Load); 14164 else 14165 Load = DAG.getBitcast(ResultVT, Load); 14166 } 14167 WorklistRemover DeadNodes(*this); 14168 SDValue From[] = { SDValue(EVE, 0), SDValue(OriginalLoad, 1) }; 14169 SDValue To[] = { Load, Chain }; 14170 DAG.ReplaceAllUsesOfValuesWith(From, To, 2); 14171 // Since we're explicitly calling ReplaceAllUses, add the new node to the 14172 // worklist explicitly as well. 14173 AddToWorklist(Load.getNode()); 14174 AddUsersToWorklist(Load.getNode()); // Add users too 14175 // Make sure to revisit this node to clean it up; it will usually be dead. 14176 AddToWorklist(EVE); 14177 ++OpsNarrowed; 14178 return SDValue(EVE, 0); 14179 } 14180 14181 SDValue DAGCombiner::visitEXTRACT_VECTOR_ELT(SDNode *N) { 14182 // (vextract (scalar_to_vector val, 0) -> val 14183 SDValue InVec = N->getOperand(0); 14184 EVT VT = InVec.getValueType(); 14185 EVT NVT = N->getValueType(0); 14186 14187 if (InVec.isUndef()) 14188 return DAG.getUNDEF(NVT); 14189 14190 if (InVec.getOpcode() == ISD::SCALAR_TO_VECTOR) { 14191 // Check if the result type doesn't match the inserted element type. A 14192 // SCALAR_TO_VECTOR may truncate the inserted element and the 14193 // EXTRACT_VECTOR_ELT may widen the extracted vector. 14194 SDValue InOp = InVec.getOperand(0); 14195 if (InOp.getValueType() != NVT) { 14196 assert(InOp.getValueType().isInteger() && NVT.isInteger()); 14197 return DAG.getSExtOrTrunc(InOp, SDLoc(InVec), NVT); 14198 } 14199 return InOp; 14200 } 14201 14202 SDValue EltNo = N->getOperand(1); 14203 ConstantSDNode *ConstEltNo = dyn_cast<ConstantSDNode>(EltNo); 14204 14205 // extract_vector_elt (build_vector x, y), 1 -> y 14206 if (ConstEltNo && 14207 InVec.getOpcode() == ISD::BUILD_VECTOR && 14208 TLI.isTypeLegal(VT) && 14209 (InVec.hasOneUse() || 14210 TLI.aggressivelyPreferBuildVectorSources(VT))) { 14211 SDValue Elt = InVec.getOperand(ConstEltNo->getZExtValue()); 14212 EVT InEltVT = Elt.getValueType(); 14213 14214 // Sometimes build_vector's scalar input types do not match result type. 14215 if (NVT == InEltVT) 14216 return Elt; 14217 14218 // TODO: It may be useful to truncate if free if the build_vector implicitly 14219 // converts. 14220 } 14221 14222 // extract_vector_elt (v2i32 (bitcast i64:x)), EltTrunc -> i32 (trunc i64:x) 14223 bool isLE = DAG.getDataLayout().isLittleEndian(); 14224 unsigned EltTrunc = isLE ? 0 : VT.getVectorNumElements() - 1; 14225 if (ConstEltNo && InVec.getOpcode() == ISD::BITCAST && InVec.hasOneUse() && 14226 ConstEltNo->getZExtValue() == EltTrunc && VT.isInteger()) { 14227 SDValue BCSrc = InVec.getOperand(0); 14228 if (BCSrc.getValueType().isScalarInteger()) 14229 return DAG.getNode(ISD::TRUNCATE, SDLoc(N), NVT, BCSrc); 14230 } 14231 14232 // extract_vector_elt (insert_vector_elt vec, val, idx), idx) -> val 14233 // 14234 // This only really matters if the index is non-constant since other combines 14235 // on the constant elements already work. 14236 if (InVec.getOpcode() == ISD::INSERT_VECTOR_ELT && 14237 EltNo == InVec.getOperand(2)) { 14238 SDValue Elt = InVec.getOperand(1); 14239 return VT.isInteger() ? DAG.getAnyExtOrTrunc(Elt, SDLoc(N), NVT) : Elt; 14240 } 14241 14242 // Transform: (EXTRACT_VECTOR_ELT( VECTOR_SHUFFLE )) -> EXTRACT_VECTOR_ELT. 14243 // We only perform this optimization before the op legalization phase because 14244 // we may introduce new vector instructions which are not backed by TD 14245 // patterns. For example on AVX, extracting elements from a wide vector 14246 // without using extract_subvector. However, if we can find an underlying 14247 // scalar value, then we can always use that. 14248 if (ConstEltNo && InVec.getOpcode() == ISD::VECTOR_SHUFFLE) { 14249 int NumElem = VT.getVectorNumElements(); 14250 ShuffleVectorSDNode *SVOp = cast<ShuffleVectorSDNode>(InVec); 14251 // Find the new index to extract from. 14252 int OrigElt = SVOp->getMaskElt(ConstEltNo->getZExtValue()); 14253 14254 // Extracting an undef index is undef. 14255 if (OrigElt == -1) 14256 return DAG.getUNDEF(NVT); 14257 14258 // Select the right vector half to extract from. 14259 SDValue SVInVec; 14260 if (OrigElt < NumElem) { 14261 SVInVec = InVec->getOperand(0); 14262 } else { 14263 SVInVec = InVec->getOperand(1); 14264 OrigElt -= NumElem; 14265 } 14266 14267 if (SVInVec.getOpcode() == ISD::BUILD_VECTOR) { 14268 SDValue InOp = SVInVec.getOperand(OrigElt); 14269 if (InOp.getValueType() != NVT) { 14270 assert(InOp.getValueType().isInteger() && NVT.isInteger()); 14271 InOp = DAG.getSExtOrTrunc(InOp, SDLoc(SVInVec), NVT); 14272 } 14273 14274 return InOp; 14275 } 14276 14277 // FIXME: We should handle recursing on other vector shuffles and 14278 // scalar_to_vector here as well. 14279 14280 if (!LegalOperations || 14281 // FIXME: Should really be just isOperationLegalOrCustom. 14282 TLI.isOperationLegal(ISD::EXTRACT_VECTOR_ELT, VT) || 14283 TLI.isOperationExpand(ISD::VECTOR_SHUFFLE, VT)) { 14284 EVT IndexTy = TLI.getVectorIdxTy(DAG.getDataLayout()); 14285 return DAG.getNode(ISD::EXTRACT_VECTOR_ELT, SDLoc(N), NVT, SVInVec, 14286 DAG.getConstant(OrigElt, SDLoc(SVOp), IndexTy)); 14287 } 14288 } 14289 14290 bool BCNumEltsChanged = false; 14291 EVT ExtVT = VT.getVectorElementType(); 14292 EVT LVT = ExtVT; 14293 14294 // If the result of load has to be truncated, then it's not necessarily 14295 // profitable. 14296 if (NVT.bitsLT(LVT) && !TLI.isTruncateFree(LVT, NVT)) 14297 return SDValue(); 14298 14299 if (InVec.getOpcode() == ISD::BITCAST) { 14300 // Don't duplicate a load with other uses. 14301 if (!InVec.hasOneUse()) 14302 return SDValue(); 14303 14304 EVT BCVT = InVec.getOperand(0).getValueType(); 14305 if (!BCVT.isVector() || ExtVT.bitsGT(BCVT.getVectorElementType())) 14306 return SDValue(); 14307 if (VT.getVectorNumElements() != BCVT.getVectorNumElements()) 14308 BCNumEltsChanged = true; 14309 InVec = InVec.getOperand(0); 14310 ExtVT = BCVT.getVectorElementType(); 14311 } 14312 14313 // (vextract (vN[if]M load $addr), i) -> ([if]M load $addr + i * size) 14314 if (!LegalOperations && !ConstEltNo && InVec.hasOneUse() && 14315 ISD::isNormalLoad(InVec.getNode()) && 14316 !N->getOperand(1)->hasPredecessor(InVec.getNode())) { 14317 SDValue Index = N->getOperand(1); 14318 if (LoadSDNode *OrigLoad = dyn_cast<LoadSDNode>(InVec)) { 14319 if (!OrigLoad->isVolatile()) { 14320 return ReplaceExtractVectorEltOfLoadWithNarrowedLoad(N, VT, Index, 14321 OrigLoad); 14322 } 14323 } 14324 } 14325 14326 // Perform only after legalization to ensure build_vector / vector_shuffle 14327 // optimizations have already been done. 14328 if (!LegalOperations) return SDValue(); 14329 14330 // (vextract (v4f32 load $addr), c) -> (f32 load $addr+c*size) 14331 // (vextract (v4f32 s2v (f32 load $addr)), c) -> (f32 load $addr+c*size) 14332 // (vextract (v4f32 shuffle (load $addr), <1,u,u,u>), 0) -> (f32 load $addr) 14333 14334 if (ConstEltNo) { 14335 int Elt = cast<ConstantSDNode>(EltNo)->getZExtValue(); 14336 14337 LoadSDNode *LN0 = nullptr; 14338 const ShuffleVectorSDNode *SVN = nullptr; 14339 if (ISD::isNormalLoad(InVec.getNode())) { 14340 LN0 = cast<LoadSDNode>(InVec); 14341 } else if (InVec.getOpcode() == ISD::SCALAR_TO_VECTOR && 14342 InVec.getOperand(0).getValueType() == ExtVT && 14343 ISD::isNormalLoad(InVec.getOperand(0).getNode())) { 14344 // Don't duplicate a load with other uses. 14345 if (!InVec.hasOneUse()) 14346 return SDValue(); 14347 14348 LN0 = cast<LoadSDNode>(InVec.getOperand(0)); 14349 } else if ((SVN = dyn_cast<ShuffleVectorSDNode>(InVec))) { 14350 // (vextract (vector_shuffle (load $addr), v2, <1, u, u, u>), 1) 14351 // => 14352 // (load $addr+1*size) 14353 14354 // Don't duplicate a load with other uses. 14355 if (!InVec.hasOneUse()) 14356 return SDValue(); 14357 14358 // If the bit convert changed the number of elements, it is unsafe 14359 // to examine the mask. 14360 if (BCNumEltsChanged) 14361 return SDValue(); 14362 14363 // Select the input vector, guarding against out of range extract vector. 14364 unsigned NumElems = VT.getVectorNumElements(); 14365 int Idx = (Elt > (int)NumElems) ? -1 : SVN->getMaskElt(Elt); 14366 InVec = (Idx < (int)NumElems) ? InVec.getOperand(0) : InVec.getOperand(1); 14367 14368 if (InVec.getOpcode() == ISD::BITCAST) { 14369 // Don't duplicate a load with other uses. 14370 if (!InVec.hasOneUse()) 14371 return SDValue(); 14372 14373 InVec = InVec.getOperand(0); 14374 } 14375 if (ISD::isNormalLoad(InVec.getNode())) { 14376 LN0 = cast<LoadSDNode>(InVec); 14377 Elt = (Idx < (int)NumElems) ? Idx : Idx - (int)NumElems; 14378 EltNo = DAG.getConstant(Elt, SDLoc(EltNo), EltNo.getValueType()); 14379 } 14380 } 14381 14382 // Make sure we found a non-volatile load and the extractelement is 14383 // the only use. 14384 if (!LN0 || !LN0->hasNUsesOfValue(1,0) || LN0->isVolatile()) 14385 return SDValue(); 14386 14387 // If Idx was -1 above, Elt is going to be -1, so just return undef. 14388 if (Elt == -1) 14389 return DAG.getUNDEF(LVT); 14390 14391 return ReplaceExtractVectorEltOfLoadWithNarrowedLoad(N, VT, EltNo, LN0); 14392 } 14393 14394 return SDValue(); 14395 } 14396 14397 // Simplify (build_vec (ext )) to (bitcast (build_vec )) 14398 SDValue DAGCombiner::reduceBuildVecExtToExtBuildVec(SDNode *N) { 14399 // We perform this optimization post type-legalization because 14400 // the type-legalizer often scalarizes integer-promoted vectors. 14401 // Performing this optimization before may create bit-casts which 14402 // will be type-legalized to complex code sequences. 14403 // We perform this optimization only before the operation legalizer because we 14404 // may introduce illegal operations. 14405 if (Level != AfterLegalizeVectorOps && Level != AfterLegalizeTypes) 14406 return SDValue(); 14407 14408 unsigned NumInScalars = N->getNumOperands(); 14409 SDLoc DL(N); 14410 EVT VT = N->getValueType(0); 14411 14412 // Check to see if this is a BUILD_VECTOR of a bunch of values 14413 // which come from any_extend or zero_extend nodes. If so, we can create 14414 // a new BUILD_VECTOR using bit-casts which may enable other BUILD_VECTOR 14415 // optimizations. We do not handle sign-extend because we can't fill the sign 14416 // using shuffles. 14417 EVT SourceType = MVT::Other; 14418 bool AllAnyExt = true; 14419 14420 for (unsigned i = 0; i != NumInScalars; ++i) { 14421 SDValue In = N->getOperand(i); 14422 // Ignore undef inputs. 14423 if (In.isUndef()) continue; 14424 14425 bool AnyExt = In.getOpcode() == ISD::ANY_EXTEND; 14426 bool ZeroExt = In.getOpcode() == ISD::ZERO_EXTEND; 14427 14428 // Abort if the element is not an extension. 14429 if (!ZeroExt && !AnyExt) { 14430 SourceType = MVT::Other; 14431 break; 14432 } 14433 14434 // The input is a ZeroExt or AnyExt. Check the original type. 14435 EVT InTy = In.getOperand(0).getValueType(); 14436 14437 // Check that all of the widened source types are the same. 14438 if (SourceType == MVT::Other) 14439 // First time. 14440 SourceType = InTy; 14441 else if (InTy != SourceType) { 14442 // Multiple income types. Abort. 14443 SourceType = MVT::Other; 14444 break; 14445 } 14446 14447 // Check if all of the extends are ANY_EXTENDs. 14448 AllAnyExt &= AnyExt; 14449 } 14450 14451 // In order to have valid types, all of the inputs must be extended from the 14452 // same source type and all of the inputs must be any or zero extend. 14453 // Scalar sizes must be a power of two. 14454 EVT OutScalarTy = VT.getScalarType(); 14455 bool ValidTypes = SourceType != MVT::Other && 14456 isPowerOf2_32(OutScalarTy.getSizeInBits()) && 14457 isPowerOf2_32(SourceType.getSizeInBits()); 14458 14459 // Create a new simpler BUILD_VECTOR sequence which other optimizations can 14460 // turn into a single shuffle instruction. 14461 if (!ValidTypes) 14462 return SDValue(); 14463 14464 bool isLE = DAG.getDataLayout().isLittleEndian(); 14465 unsigned ElemRatio = OutScalarTy.getSizeInBits()/SourceType.getSizeInBits(); 14466 assert(ElemRatio > 1 && "Invalid element size ratio"); 14467 SDValue Filler = AllAnyExt ? DAG.getUNDEF(SourceType): 14468 DAG.getConstant(0, DL, SourceType); 14469 14470 unsigned NewBVElems = ElemRatio * VT.getVectorNumElements(); 14471 SmallVector<SDValue, 8> Ops(NewBVElems, Filler); 14472 14473 // Populate the new build_vector 14474 for (unsigned i = 0, e = N->getNumOperands(); i != e; ++i) { 14475 SDValue Cast = N->getOperand(i); 14476 assert((Cast.getOpcode() == ISD::ANY_EXTEND || 14477 Cast.getOpcode() == ISD::ZERO_EXTEND || 14478 Cast.isUndef()) && "Invalid cast opcode"); 14479 SDValue In; 14480 if (Cast.isUndef()) 14481 In = DAG.getUNDEF(SourceType); 14482 else 14483 In = Cast->getOperand(0); 14484 unsigned Index = isLE ? (i * ElemRatio) : 14485 (i * ElemRatio + (ElemRatio - 1)); 14486 14487 assert(Index < Ops.size() && "Invalid index"); 14488 Ops[Index] = In; 14489 } 14490 14491 // The type of the new BUILD_VECTOR node. 14492 EVT VecVT = EVT::getVectorVT(*DAG.getContext(), SourceType, NewBVElems); 14493 assert(VecVT.getSizeInBits() == VT.getSizeInBits() && 14494 "Invalid vector size"); 14495 // Check if the new vector type is legal. 14496 if (!isTypeLegal(VecVT)) return SDValue(); 14497 14498 // Make the new BUILD_VECTOR. 14499 SDValue BV = DAG.getBuildVector(VecVT, DL, Ops); 14500 14501 // The new BUILD_VECTOR node has the potential to be further optimized. 14502 AddToWorklist(BV.getNode()); 14503 // Bitcast to the desired type. 14504 return DAG.getBitcast(VT, BV); 14505 } 14506 14507 SDValue DAGCombiner::reduceBuildVecConvertToConvertBuildVec(SDNode *N) { 14508 EVT VT = N->getValueType(0); 14509 14510 unsigned NumInScalars = N->getNumOperands(); 14511 SDLoc DL(N); 14512 14513 EVT SrcVT = MVT::Other; 14514 unsigned Opcode = ISD::DELETED_NODE; 14515 unsigned NumDefs = 0; 14516 14517 for (unsigned i = 0; i != NumInScalars; ++i) { 14518 SDValue In = N->getOperand(i); 14519 unsigned Opc = In.getOpcode(); 14520 14521 if (Opc == ISD::UNDEF) 14522 continue; 14523 14524 // If all scalar values are floats and converted from integers. 14525 if (Opcode == ISD::DELETED_NODE && 14526 (Opc == ISD::UINT_TO_FP || Opc == ISD::SINT_TO_FP)) { 14527 Opcode = Opc; 14528 } 14529 14530 if (Opc != Opcode) 14531 return SDValue(); 14532 14533 EVT InVT = In.getOperand(0).getValueType(); 14534 14535 // If all scalar values are typed differently, bail out. It's chosen to 14536 // simplify BUILD_VECTOR of integer types. 14537 if (SrcVT == MVT::Other) 14538 SrcVT = InVT; 14539 if (SrcVT != InVT) 14540 return SDValue(); 14541 NumDefs++; 14542 } 14543 14544 // If the vector has just one element defined, it's not worth to fold it into 14545 // a vectorized one. 14546 if (NumDefs < 2) 14547 return SDValue(); 14548 14549 assert((Opcode == ISD::UINT_TO_FP || Opcode == ISD::SINT_TO_FP) 14550 && "Should only handle conversion from integer to float."); 14551 assert(SrcVT != MVT::Other && "Cannot determine source type!"); 14552 14553 EVT NVT = EVT::getVectorVT(*DAG.getContext(), SrcVT, NumInScalars); 14554 14555 if (!TLI.isOperationLegalOrCustom(Opcode, NVT)) 14556 return SDValue(); 14557 14558 // Just because the floating-point vector type is legal does not necessarily 14559 // mean that the corresponding integer vector type is. 14560 if (!isTypeLegal(NVT)) 14561 return SDValue(); 14562 14563 SmallVector<SDValue, 8> Opnds; 14564 for (unsigned i = 0; i != NumInScalars; ++i) { 14565 SDValue In = N->getOperand(i); 14566 14567 if (In.isUndef()) 14568 Opnds.push_back(DAG.getUNDEF(SrcVT)); 14569 else 14570 Opnds.push_back(In.getOperand(0)); 14571 } 14572 SDValue BV = DAG.getBuildVector(NVT, DL, Opnds); 14573 AddToWorklist(BV.getNode()); 14574 14575 return DAG.getNode(Opcode, DL, VT, BV); 14576 } 14577 14578 SDValue DAGCombiner::createBuildVecShuffle(const SDLoc &DL, SDNode *N, 14579 ArrayRef<int> VectorMask, 14580 SDValue VecIn1, SDValue VecIn2, 14581 unsigned LeftIdx) { 14582 MVT IdxTy = TLI.getVectorIdxTy(DAG.getDataLayout()); 14583 SDValue ZeroIdx = DAG.getConstant(0, DL, IdxTy); 14584 14585 EVT VT = N->getValueType(0); 14586 EVT InVT1 = VecIn1.getValueType(); 14587 EVT InVT2 = VecIn2.getNode() ? VecIn2.getValueType() : InVT1; 14588 14589 unsigned Vec2Offset = 0; 14590 unsigned NumElems = VT.getVectorNumElements(); 14591 unsigned ShuffleNumElems = NumElems; 14592 14593 // In case both the input vectors are extracted from same base 14594 // vector we do not need extra addend (Vec2Offset) while 14595 // computing shuffle mask. 14596 if (!VecIn2 || !(VecIn1.getOpcode() == ISD::EXTRACT_SUBVECTOR) || 14597 !(VecIn2.getOpcode() == ISD::EXTRACT_SUBVECTOR) || 14598 !(VecIn1.getOperand(0) == VecIn2.getOperand(0))) 14599 Vec2Offset = InVT1.getVectorNumElements(); 14600 14601 // We can't generate a shuffle node with mismatched input and output types. 14602 // Try to make the types match the type of the output. 14603 if (InVT1 != VT || InVT2 != VT) { 14604 if ((VT.getSizeInBits() % InVT1.getSizeInBits() == 0) && InVT1 == InVT2) { 14605 // If the output vector length is a multiple of both input lengths, 14606 // we can concatenate them and pad the rest with undefs. 14607 unsigned NumConcats = VT.getSizeInBits() / InVT1.getSizeInBits(); 14608 assert(NumConcats >= 2 && "Concat needs at least two inputs!"); 14609 SmallVector<SDValue, 2> ConcatOps(NumConcats, DAG.getUNDEF(InVT1)); 14610 ConcatOps[0] = VecIn1; 14611 ConcatOps[1] = VecIn2 ? VecIn2 : DAG.getUNDEF(InVT1); 14612 VecIn1 = DAG.getNode(ISD::CONCAT_VECTORS, DL, VT, ConcatOps); 14613 VecIn2 = SDValue(); 14614 } else if (InVT1.getSizeInBits() == VT.getSizeInBits() * 2) { 14615 if (!TLI.isExtractSubvectorCheap(VT, InVT1, NumElems)) 14616 return SDValue(); 14617 14618 if (!VecIn2.getNode()) { 14619 // If we only have one input vector, and it's twice the size of the 14620 // output, split it in two. 14621 VecIn2 = DAG.getNode(ISD::EXTRACT_SUBVECTOR, DL, VT, VecIn1, 14622 DAG.getConstant(NumElems, DL, IdxTy)); 14623 VecIn1 = DAG.getNode(ISD::EXTRACT_SUBVECTOR, DL, VT, VecIn1, ZeroIdx); 14624 // Since we now have shorter input vectors, adjust the offset of the 14625 // second vector's start. 14626 Vec2Offset = NumElems; 14627 } else if (InVT2.getSizeInBits() <= InVT1.getSizeInBits()) { 14628 // VecIn1 is wider than the output, and we have another, possibly 14629 // smaller input. Pad the smaller input with undefs, shuffle at the 14630 // input vector width, and extract the output. 14631 // The shuffle type is different than VT, so check legality again. 14632 if (LegalOperations && 14633 !TLI.isOperationLegal(ISD::VECTOR_SHUFFLE, InVT1)) 14634 return SDValue(); 14635 14636 // Legalizing INSERT_SUBVECTOR is tricky - you basically have to 14637 // lower it back into a BUILD_VECTOR. So if the inserted type is 14638 // illegal, don't even try. 14639 if (InVT1 != InVT2) { 14640 if (!TLI.isTypeLegal(InVT2)) 14641 return SDValue(); 14642 VecIn2 = DAG.getNode(ISD::INSERT_SUBVECTOR, DL, InVT1, 14643 DAG.getUNDEF(InVT1), VecIn2, ZeroIdx); 14644 } 14645 ShuffleNumElems = NumElems * 2; 14646 } else { 14647 // Both VecIn1 and VecIn2 are wider than the output, and VecIn2 is wider 14648 // than VecIn1. We can't handle this for now - this case will disappear 14649 // when we start sorting the vectors by type. 14650 return SDValue(); 14651 } 14652 } else if (InVT2.getSizeInBits() * 2 == VT.getSizeInBits() && 14653 InVT1.getSizeInBits() == VT.getSizeInBits()) { 14654 SmallVector<SDValue, 2> ConcatOps(2, DAG.getUNDEF(InVT2)); 14655 ConcatOps[0] = VecIn2; 14656 VecIn2 = DAG.getNode(ISD::CONCAT_VECTORS, DL, VT, ConcatOps); 14657 } else { 14658 // TODO: Support cases where the length mismatch isn't exactly by a 14659 // factor of 2. 14660 // TODO: Move this check upwards, so that if we have bad type 14661 // mismatches, we don't create any DAG nodes. 14662 return SDValue(); 14663 } 14664 } 14665 14666 // Initialize mask to undef. 14667 SmallVector<int, 8> Mask(ShuffleNumElems, -1); 14668 14669 // Only need to run up to the number of elements actually used, not the 14670 // total number of elements in the shuffle - if we are shuffling a wider 14671 // vector, the high lanes should be set to undef. 14672 for (unsigned i = 0; i != NumElems; ++i) { 14673 if (VectorMask[i] <= 0) 14674 continue; 14675 14676 unsigned ExtIndex = N->getOperand(i).getConstantOperandVal(1); 14677 if (VectorMask[i] == (int)LeftIdx) { 14678 Mask[i] = ExtIndex; 14679 } else if (VectorMask[i] == (int)LeftIdx + 1) { 14680 Mask[i] = Vec2Offset + ExtIndex; 14681 } 14682 } 14683 14684 // The type the input vectors may have changed above. 14685 InVT1 = VecIn1.getValueType(); 14686 14687 // If we already have a VecIn2, it should have the same type as VecIn1. 14688 // If we don't, get an undef/zero vector of the appropriate type. 14689 VecIn2 = VecIn2.getNode() ? VecIn2 : DAG.getUNDEF(InVT1); 14690 assert(InVT1 == VecIn2.getValueType() && "Unexpected second input type."); 14691 14692 SDValue Shuffle = DAG.getVectorShuffle(InVT1, DL, VecIn1, VecIn2, Mask); 14693 if (ShuffleNumElems > NumElems) 14694 Shuffle = DAG.getNode(ISD::EXTRACT_SUBVECTOR, DL, VT, Shuffle, ZeroIdx); 14695 14696 return Shuffle; 14697 } 14698 14699 // Check to see if this is a BUILD_VECTOR of a bunch of EXTRACT_VECTOR_ELT 14700 // operations. If the types of the vectors we're extracting from allow it, 14701 // turn this into a vector_shuffle node. 14702 SDValue DAGCombiner::reduceBuildVecToShuffle(SDNode *N) { 14703 SDLoc DL(N); 14704 EVT VT = N->getValueType(0); 14705 14706 // Only type-legal BUILD_VECTOR nodes are converted to shuffle nodes. 14707 if (!isTypeLegal(VT)) 14708 return SDValue(); 14709 14710 // May only combine to shuffle after legalize if shuffle is legal. 14711 if (LegalOperations && !TLI.isOperationLegal(ISD::VECTOR_SHUFFLE, VT)) 14712 return SDValue(); 14713 14714 bool UsesZeroVector = false; 14715 unsigned NumElems = N->getNumOperands(); 14716 14717 // Record, for each element of the newly built vector, which input vector 14718 // that element comes from. -1 stands for undef, 0 for the zero vector, 14719 // and positive values for the input vectors. 14720 // VectorMask maps each element to its vector number, and VecIn maps vector 14721 // numbers to their initial SDValues. 14722 14723 SmallVector<int, 8> VectorMask(NumElems, -1); 14724 SmallVector<SDValue, 8> VecIn; 14725 VecIn.push_back(SDValue()); 14726 14727 for (unsigned i = 0; i != NumElems; ++i) { 14728 SDValue Op = N->getOperand(i); 14729 14730 if (Op.isUndef()) 14731 continue; 14732 14733 // See if we can use a blend with a zero vector. 14734 // TODO: Should we generalize this to a blend with an arbitrary constant 14735 // vector? 14736 if (isNullConstant(Op) || isNullFPConstant(Op)) { 14737 UsesZeroVector = true; 14738 VectorMask[i] = 0; 14739 continue; 14740 } 14741 14742 // Not an undef or zero. If the input is something other than an 14743 // EXTRACT_VECTOR_ELT with a constant index, bail out. 14744 if (Op.getOpcode() != ISD::EXTRACT_VECTOR_ELT || 14745 !isa<ConstantSDNode>(Op.getOperand(1))) 14746 return SDValue(); 14747 SDValue ExtractedFromVec = Op.getOperand(0); 14748 14749 // All inputs must have the same element type as the output. 14750 if (VT.getVectorElementType() != 14751 ExtractedFromVec.getValueType().getVectorElementType()) 14752 return SDValue(); 14753 14754 // Have we seen this input vector before? 14755 // The vectors are expected to be tiny (usually 1 or 2 elements), so using 14756 // a map back from SDValues to numbers isn't worth it. 14757 unsigned Idx = std::distance( 14758 VecIn.begin(), std::find(VecIn.begin(), VecIn.end(), ExtractedFromVec)); 14759 if (Idx == VecIn.size()) 14760 VecIn.push_back(ExtractedFromVec); 14761 14762 VectorMask[i] = Idx; 14763 } 14764 14765 // If we didn't find at least one input vector, bail out. 14766 if (VecIn.size() < 2) 14767 return SDValue(); 14768 14769 // If all the Operands of BUILD_VECTOR extract from same 14770 // vector, then split the vector efficiently based on the maximum 14771 // vector access index and adjust the VectorMask and 14772 // VecIn accordingly. 14773 if (VecIn.size() == 2) { 14774 unsigned MaxIndex = 0; 14775 unsigned NearestPow2 = 0; 14776 SDValue Vec = VecIn.back(); 14777 EVT InVT = Vec.getValueType(); 14778 MVT IdxTy = TLI.getVectorIdxTy(DAG.getDataLayout()); 14779 SmallVector<unsigned, 8> IndexVec(NumElems, 0); 14780 14781 for (unsigned i = 0; i < NumElems; i++) { 14782 if (VectorMask[i] <= 0) 14783 continue; 14784 unsigned Index = N->getOperand(i).getConstantOperandVal(1); 14785 IndexVec[i] = Index; 14786 MaxIndex = std::max(MaxIndex, Index); 14787 } 14788 14789 NearestPow2 = PowerOf2Ceil(MaxIndex); 14790 if (InVT.isSimple() && NearestPow2 > 2 && MaxIndex < NearestPow2 && 14791 NumElems * 2 < NearestPow2) { 14792 unsigned SplitSize = NearestPow2 / 2; 14793 EVT SplitVT = EVT::getVectorVT(*DAG.getContext(), 14794 InVT.getVectorElementType(), SplitSize); 14795 if (TLI.isTypeLegal(SplitVT)) { 14796 SDValue VecIn2 = DAG.getNode(ISD::EXTRACT_SUBVECTOR, DL, SplitVT, Vec, 14797 DAG.getConstant(SplitSize, DL, IdxTy)); 14798 SDValue VecIn1 = DAG.getNode(ISD::EXTRACT_SUBVECTOR, DL, SplitVT, Vec, 14799 DAG.getConstant(0, DL, IdxTy)); 14800 VecIn.pop_back(); 14801 VecIn.push_back(VecIn1); 14802 VecIn.push_back(VecIn2); 14803 14804 for (unsigned i = 0; i < NumElems; i++) { 14805 if (VectorMask[i] <= 0) 14806 continue; 14807 VectorMask[i] = (IndexVec[i] < SplitSize) ? 1 : 2; 14808 } 14809 } 14810 } 14811 } 14812 14813 // TODO: We want to sort the vectors by descending length, so that adjacent 14814 // pairs have similar length, and the longer vector is always first in the 14815 // pair. 14816 14817 // TODO: Should this fire if some of the input vectors has illegal type (like 14818 // it does now), or should we let legalization run its course first? 14819 14820 // Shuffle phase: 14821 // Take pairs of vectors, and shuffle them so that the result has elements 14822 // from these vectors in the correct places. 14823 // For example, given: 14824 // t10: i32 = extract_vector_elt t1, Constant:i64<0> 14825 // t11: i32 = extract_vector_elt t2, Constant:i64<0> 14826 // t12: i32 = extract_vector_elt t3, Constant:i64<0> 14827 // t13: i32 = extract_vector_elt t1, Constant:i64<1> 14828 // t14: v4i32 = BUILD_VECTOR t10, t11, t12, t13 14829 // We will generate: 14830 // t20: v4i32 = vector_shuffle<0,4,u,1> t1, t2 14831 // t21: v4i32 = vector_shuffle<u,u,0,u> t3, undef 14832 SmallVector<SDValue, 4> Shuffles; 14833 for (unsigned In = 0, Len = (VecIn.size() / 2); In < Len; ++In) { 14834 unsigned LeftIdx = 2 * In + 1; 14835 SDValue VecLeft = VecIn[LeftIdx]; 14836 SDValue VecRight = 14837 (LeftIdx + 1) < VecIn.size() ? VecIn[LeftIdx + 1] : SDValue(); 14838 14839 if (SDValue Shuffle = createBuildVecShuffle(DL, N, VectorMask, VecLeft, 14840 VecRight, LeftIdx)) 14841 Shuffles.push_back(Shuffle); 14842 else 14843 return SDValue(); 14844 } 14845 14846 // If we need the zero vector as an "ingredient" in the blend tree, add it 14847 // to the list of shuffles. 14848 if (UsesZeroVector) 14849 Shuffles.push_back(VT.isInteger() ? DAG.getConstant(0, DL, VT) 14850 : DAG.getConstantFP(0.0, DL, VT)); 14851 14852 // If we only have one shuffle, we're done. 14853 if (Shuffles.size() == 1) 14854 return Shuffles[0]; 14855 14856 // Update the vector mask to point to the post-shuffle vectors. 14857 for (int &Vec : VectorMask) 14858 if (Vec == 0) 14859 Vec = Shuffles.size() - 1; 14860 else 14861 Vec = (Vec - 1) / 2; 14862 14863 // More than one shuffle. Generate a binary tree of blends, e.g. if from 14864 // the previous step we got the set of shuffles t10, t11, t12, t13, we will 14865 // generate: 14866 // t10: v8i32 = vector_shuffle<0,8,u,u,u,u,u,u> t1, t2 14867 // t11: v8i32 = vector_shuffle<u,u,0,8,u,u,u,u> t3, t4 14868 // t12: v8i32 = vector_shuffle<u,u,u,u,0,8,u,u> t5, t6 14869 // t13: v8i32 = vector_shuffle<u,u,u,u,u,u,0,8> t7, t8 14870 // t20: v8i32 = vector_shuffle<0,1,10,11,u,u,u,u> t10, t11 14871 // t21: v8i32 = vector_shuffle<u,u,u,u,4,5,14,15> t12, t13 14872 // t30: v8i32 = vector_shuffle<0,1,2,3,12,13,14,15> t20, t21 14873 14874 // Make sure the initial size of the shuffle list is even. 14875 if (Shuffles.size() % 2) 14876 Shuffles.push_back(DAG.getUNDEF(VT)); 14877 14878 for (unsigned CurSize = Shuffles.size(); CurSize > 1; CurSize /= 2) { 14879 if (CurSize % 2) { 14880 Shuffles[CurSize] = DAG.getUNDEF(VT); 14881 CurSize++; 14882 } 14883 for (unsigned In = 0, Len = CurSize / 2; In < Len; ++In) { 14884 int Left = 2 * In; 14885 int Right = 2 * In + 1; 14886 SmallVector<int, 8> Mask(NumElems, -1); 14887 for (unsigned i = 0; i != NumElems; ++i) { 14888 if (VectorMask[i] == Left) { 14889 Mask[i] = i; 14890 VectorMask[i] = In; 14891 } else if (VectorMask[i] == Right) { 14892 Mask[i] = i + NumElems; 14893 VectorMask[i] = In; 14894 } 14895 } 14896 14897 Shuffles[In] = 14898 DAG.getVectorShuffle(VT, DL, Shuffles[Left], Shuffles[Right], Mask); 14899 } 14900 } 14901 return Shuffles[0]; 14902 } 14903 14904 SDValue DAGCombiner::visitBUILD_VECTOR(SDNode *N) { 14905 EVT VT = N->getValueType(0); 14906 14907 // A vector built entirely of undefs is undef. 14908 if (ISD::allOperandsUndef(N)) 14909 return DAG.getUNDEF(VT); 14910 14911 // Check if we can express BUILD VECTOR via subvector extract. 14912 if (!LegalTypes && (N->getNumOperands() > 1)) { 14913 SDValue Op0 = N->getOperand(0); 14914 auto checkElem = [&](SDValue Op) -> uint64_t { 14915 if ((Op.getOpcode() == ISD::EXTRACT_VECTOR_ELT) && 14916 (Op0.getOperand(0) == Op.getOperand(0))) 14917 if (auto CNode = dyn_cast<ConstantSDNode>(Op.getOperand(1))) 14918 return CNode->getZExtValue(); 14919 return -1; 14920 }; 14921 14922 int Offset = checkElem(Op0); 14923 for (unsigned i = 0; i < N->getNumOperands(); ++i) { 14924 if (Offset + i != checkElem(N->getOperand(i))) { 14925 Offset = -1; 14926 break; 14927 } 14928 } 14929 14930 if ((Offset == 0) && 14931 (Op0.getOperand(0).getValueType() == N->getValueType(0))) 14932 return Op0.getOperand(0); 14933 if ((Offset != -1) && 14934 ((Offset % N->getValueType(0).getVectorNumElements()) == 14935 0)) // IDX must be multiple of output size. 14936 return DAG.getNode(ISD::EXTRACT_SUBVECTOR, SDLoc(N), N->getValueType(0), 14937 Op0.getOperand(0), Op0.getOperand(1)); 14938 } 14939 14940 if (SDValue V = reduceBuildVecExtToExtBuildVec(N)) 14941 return V; 14942 14943 if (SDValue V = reduceBuildVecConvertToConvertBuildVec(N)) 14944 return V; 14945 14946 if (SDValue V = reduceBuildVecToShuffle(N)) 14947 return V; 14948 14949 return SDValue(); 14950 } 14951 14952 static SDValue combineConcatVectorOfScalars(SDNode *N, SelectionDAG &DAG) { 14953 const TargetLowering &TLI = DAG.getTargetLoweringInfo(); 14954 EVT OpVT = N->getOperand(0).getValueType(); 14955 14956 // If the operands are legal vectors, leave them alone. 14957 if (TLI.isTypeLegal(OpVT)) 14958 return SDValue(); 14959 14960 SDLoc DL(N); 14961 EVT VT = N->getValueType(0); 14962 SmallVector<SDValue, 8> Ops; 14963 14964 EVT SVT = EVT::getIntegerVT(*DAG.getContext(), OpVT.getSizeInBits()); 14965 SDValue ScalarUndef = DAG.getNode(ISD::UNDEF, DL, SVT); 14966 14967 // Keep track of what we encounter. 14968 bool AnyInteger = false; 14969 bool AnyFP = false; 14970 for (const SDValue &Op : N->ops()) { 14971 if (ISD::BITCAST == Op.getOpcode() && 14972 !Op.getOperand(0).getValueType().isVector()) 14973 Ops.push_back(Op.getOperand(0)); 14974 else if (ISD::UNDEF == Op.getOpcode()) 14975 Ops.push_back(ScalarUndef); 14976 else 14977 return SDValue(); 14978 14979 // Note whether we encounter an integer or floating point scalar. 14980 // If it's neither, bail out, it could be something weird like x86mmx. 14981 EVT LastOpVT = Ops.back().getValueType(); 14982 if (LastOpVT.isFloatingPoint()) 14983 AnyFP = true; 14984 else if (LastOpVT.isInteger()) 14985 AnyInteger = true; 14986 else 14987 return SDValue(); 14988 } 14989 14990 // If any of the operands is a floating point scalar bitcast to a vector, 14991 // use floating point types throughout, and bitcast everything. 14992 // Replace UNDEFs by another scalar UNDEF node, of the final desired type. 14993 if (AnyFP) { 14994 SVT = EVT::getFloatingPointVT(OpVT.getSizeInBits()); 14995 ScalarUndef = DAG.getNode(ISD::UNDEF, DL, SVT); 14996 if (AnyInteger) { 14997 for (SDValue &Op : Ops) { 14998 if (Op.getValueType() == SVT) 14999 continue; 15000 if (Op.isUndef()) 15001 Op = ScalarUndef; 15002 else 15003 Op = DAG.getBitcast(SVT, Op); 15004 } 15005 } 15006 } 15007 15008 EVT VecVT = EVT::getVectorVT(*DAG.getContext(), SVT, 15009 VT.getSizeInBits() / SVT.getSizeInBits()); 15010 return DAG.getBitcast(VT, DAG.getBuildVector(VecVT, DL, Ops)); 15011 } 15012 15013 // Check to see if this is a CONCAT_VECTORS of a bunch of EXTRACT_SUBVECTOR 15014 // operations. If so, and if the EXTRACT_SUBVECTOR vector inputs come from at 15015 // most two distinct vectors the same size as the result, attempt to turn this 15016 // into a legal shuffle. 15017 static SDValue combineConcatVectorOfExtracts(SDNode *N, SelectionDAG &DAG) { 15018 EVT VT = N->getValueType(0); 15019 EVT OpVT = N->getOperand(0).getValueType(); 15020 int NumElts = VT.getVectorNumElements(); 15021 int NumOpElts = OpVT.getVectorNumElements(); 15022 15023 SDValue SV0 = DAG.getUNDEF(VT), SV1 = DAG.getUNDEF(VT); 15024 SmallVector<int, 8> Mask; 15025 15026 for (SDValue Op : N->ops()) { 15027 // Peek through any bitcast. 15028 Op = peekThroughBitcast(Op); 15029 15030 // UNDEF nodes convert to UNDEF shuffle mask values. 15031 if (Op.isUndef()) { 15032 Mask.append((unsigned)NumOpElts, -1); 15033 continue; 15034 } 15035 15036 if (Op.getOpcode() != ISD::EXTRACT_SUBVECTOR) 15037 return SDValue(); 15038 15039 // What vector are we extracting the subvector from and at what index? 15040 SDValue ExtVec = Op.getOperand(0); 15041 15042 // We want the EVT of the original extraction to correctly scale the 15043 // extraction index. 15044 EVT ExtVT = ExtVec.getValueType(); 15045 15046 // Peek through any bitcast. 15047 ExtVec = peekThroughBitcast(ExtVec); 15048 15049 // UNDEF nodes convert to UNDEF shuffle mask values. 15050 if (ExtVec.isUndef()) { 15051 Mask.append((unsigned)NumOpElts, -1); 15052 continue; 15053 } 15054 15055 if (!isa<ConstantSDNode>(Op.getOperand(1))) 15056 return SDValue(); 15057 int ExtIdx = Op.getConstantOperandVal(1); 15058 15059 // Ensure that we are extracting a subvector from a vector the same 15060 // size as the result. 15061 if (ExtVT.getSizeInBits() != VT.getSizeInBits()) 15062 return SDValue(); 15063 15064 // Scale the subvector index to account for any bitcast. 15065 int NumExtElts = ExtVT.getVectorNumElements(); 15066 if (0 == (NumExtElts % NumElts)) 15067 ExtIdx /= (NumExtElts / NumElts); 15068 else if (0 == (NumElts % NumExtElts)) 15069 ExtIdx *= (NumElts / NumExtElts); 15070 else 15071 return SDValue(); 15072 15073 // At most we can reference 2 inputs in the final shuffle. 15074 if (SV0.isUndef() || SV0 == ExtVec) { 15075 SV0 = ExtVec; 15076 for (int i = 0; i != NumOpElts; ++i) 15077 Mask.push_back(i + ExtIdx); 15078 } else if (SV1.isUndef() || SV1 == ExtVec) { 15079 SV1 = ExtVec; 15080 for (int i = 0; i != NumOpElts; ++i) 15081 Mask.push_back(i + ExtIdx + NumElts); 15082 } else { 15083 return SDValue(); 15084 } 15085 } 15086 15087 if (!DAG.getTargetLoweringInfo().isShuffleMaskLegal(Mask, VT)) 15088 return SDValue(); 15089 15090 return DAG.getVectorShuffle(VT, SDLoc(N), DAG.getBitcast(VT, SV0), 15091 DAG.getBitcast(VT, SV1), Mask); 15092 } 15093 15094 SDValue DAGCombiner::visitCONCAT_VECTORS(SDNode *N) { 15095 // If we only have one input vector, we don't need to do any concatenation. 15096 if (N->getNumOperands() == 1) 15097 return N->getOperand(0); 15098 15099 // Check if all of the operands are undefs. 15100 EVT VT = N->getValueType(0); 15101 if (ISD::allOperandsUndef(N)) 15102 return DAG.getUNDEF(VT); 15103 15104 // Optimize concat_vectors where all but the first of the vectors are undef. 15105 if (std::all_of(std::next(N->op_begin()), N->op_end(), [](const SDValue &Op) { 15106 return Op.isUndef(); 15107 })) { 15108 SDValue In = N->getOperand(0); 15109 assert(In.getValueType().isVector() && "Must concat vectors"); 15110 15111 // Transform: concat_vectors(scalar, undef) -> scalar_to_vector(sclr). 15112 if (In->getOpcode() == ISD::BITCAST && 15113 !In->getOperand(0)->getValueType(0).isVector()) { 15114 SDValue Scalar = In->getOperand(0); 15115 15116 // If the bitcast type isn't legal, it might be a trunc of a legal type; 15117 // look through the trunc so we can still do the transform: 15118 // concat_vectors(trunc(scalar), undef) -> scalar_to_vector(scalar) 15119 if (Scalar->getOpcode() == ISD::TRUNCATE && 15120 !TLI.isTypeLegal(Scalar.getValueType()) && 15121 TLI.isTypeLegal(Scalar->getOperand(0).getValueType())) 15122 Scalar = Scalar->getOperand(0); 15123 15124 EVT SclTy = Scalar->getValueType(0); 15125 15126 if (!SclTy.isFloatingPoint() && !SclTy.isInteger()) 15127 return SDValue(); 15128 15129 unsigned VNTNumElms = VT.getSizeInBits() / SclTy.getSizeInBits(); 15130 if (VNTNumElms < 2) 15131 return SDValue(); 15132 15133 EVT NVT = EVT::getVectorVT(*DAG.getContext(), SclTy, VNTNumElms); 15134 if (!TLI.isTypeLegal(NVT) || !TLI.isTypeLegal(Scalar.getValueType())) 15135 return SDValue(); 15136 15137 SDValue Res = DAG.getNode(ISD::SCALAR_TO_VECTOR, SDLoc(N), NVT, Scalar); 15138 return DAG.getBitcast(VT, Res); 15139 } 15140 } 15141 15142 // Fold any combination of BUILD_VECTOR or UNDEF nodes into one BUILD_VECTOR. 15143 // We have already tested above for an UNDEF only concatenation. 15144 // fold (concat_vectors (BUILD_VECTOR A, B, ...), (BUILD_VECTOR C, D, ...)) 15145 // -> (BUILD_VECTOR A, B, ..., C, D, ...) 15146 auto IsBuildVectorOrUndef = [](const SDValue &Op) { 15147 return ISD::UNDEF == Op.getOpcode() || ISD::BUILD_VECTOR == Op.getOpcode(); 15148 }; 15149 if (llvm::all_of(N->ops(), IsBuildVectorOrUndef)) { 15150 SmallVector<SDValue, 8> Opnds; 15151 EVT SVT = VT.getScalarType(); 15152 15153 EVT MinVT = SVT; 15154 if (!SVT.isFloatingPoint()) { 15155 // If BUILD_VECTOR are from built from integer, they may have different 15156 // operand types. Get the smallest type and truncate all operands to it. 15157 bool FoundMinVT = false; 15158 for (const SDValue &Op : N->ops()) 15159 if (ISD::BUILD_VECTOR == Op.getOpcode()) { 15160 EVT OpSVT = Op.getOperand(0)->getValueType(0); 15161 MinVT = (!FoundMinVT || OpSVT.bitsLE(MinVT)) ? OpSVT : MinVT; 15162 FoundMinVT = true; 15163 } 15164 assert(FoundMinVT && "Concat vector type mismatch"); 15165 } 15166 15167 for (const SDValue &Op : N->ops()) { 15168 EVT OpVT = Op.getValueType(); 15169 unsigned NumElts = OpVT.getVectorNumElements(); 15170 15171 if (ISD::UNDEF == Op.getOpcode()) 15172 Opnds.append(NumElts, DAG.getUNDEF(MinVT)); 15173 15174 if (ISD::BUILD_VECTOR == Op.getOpcode()) { 15175 if (SVT.isFloatingPoint()) { 15176 assert(SVT == OpVT.getScalarType() && "Concat vector type mismatch"); 15177 Opnds.append(Op->op_begin(), Op->op_begin() + NumElts); 15178 } else { 15179 for (unsigned i = 0; i != NumElts; ++i) 15180 Opnds.push_back( 15181 DAG.getNode(ISD::TRUNCATE, SDLoc(N), MinVT, Op.getOperand(i))); 15182 } 15183 } 15184 } 15185 15186 assert(VT.getVectorNumElements() == Opnds.size() && 15187 "Concat vector type mismatch"); 15188 return DAG.getBuildVector(VT, SDLoc(N), Opnds); 15189 } 15190 15191 // Fold CONCAT_VECTORS of only bitcast scalars (or undef) to BUILD_VECTOR. 15192 if (SDValue V = combineConcatVectorOfScalars(N, DAG)) 15193 return V; 15194 15195 // Fold CONCAT_VECTORS of EXTRACT_SUBVECTOR (or undef) to VECTOR_SHUFFLE. 15196 if (Level < AfterLegalizeVectorOps && TLI.isTypeLegal(VT)) 15197 if (SDValue V = combineConcatVectorOfExtracts(N, DAG)) 15198 return V; 15199 15200 // Type legalization of vectors and DAG canonicalization of SHUFFLE_VECTOR 15201 // nodes often generate nop CONCAT_VECTOR nodes. 15202 // Scan the CONCAT_VECTOR operands and look for a CONCAT operations that 15203 // place the incoming vectors at the exact same location. 15204 SDValue SingleSource = SDValue(); 15205 unsigned PartNumElem = N->getOperand(0).getValueType().getVectorNumElements(); 15206 15207 for (unsigned i = 0, e = N->getNumOperands(); i != e; ++i) { 15208 SDValue Op = N->getOperand(i); 15209 15210 if (Op.isUndef()) 15211 continue; 15212 15213 // Check if this is the identity extract: 15214 if (Op.getOpcode() != ISD::EXTRACT_SUBVECTOR) 15215 return SDValue(); 15216 15217 // Find the single incoming vector for the extract_subvector. 15218 if (SingleSource.getNode()) { 15219 if (Op.getOperand(0) != SingleSource) 15220 return SDValue(); 15221 } else { 15222 SingleSource = Op.getOperand(0); 15223 15224 // Check the source type is the same as the type of the result. 15225 // If not, this concat may extend the vector, so we can not 15226 // optimize it away. 15227 if (SingleSource.getValueType() != N->getValueType(0)) 15228 return SDValue(); 15229 } 15230 15231 unsigned IdentityIndex = i * PartNumElem; 15232 ConstantSDNode *CS = dyn_cast<ConstantSDNode>(Op.getOperand(1)); 15233 // The extract index must be constant. 15234 if (!CS) 15235 return SDValue(); 15236 15237 // Check that we are reading from the identity index. 15238 if (CS->getZExtValue() != IdentityIndex) 15239 return SDValue(); 15240 } 15241 15242 if (SingleSource.getNode()) 15243 return SingleSource; 15244 15245 return SDValue(); 15246 } 15247 15248 /// If we are extracting a subvector produced by a wide binary operator with at 15249 /// at least one operand that was the result of a vector concatenation, then try 15250 /// to use the narrow vector operands directly to avoid the concatenation and 15251 /// extraction. 15252 static SDValue narrowExtractedVectorBinOp(SDNode *Extract, SelectionDAG &DAG) { 15253 // TODO: Refactor with the caller (visitEXTRACT_SUBVECTOR), so we can share 15254 // some of these bailouts with other transforms. 15255 15256 // The extract index must be a constant, so we can map it to a concat operand. 15257 auto *ExtractIndex = dyn_cast<ConstantSDNode>(Extract->getOperand(1)); 15258 if (!ExtractIndex) 15259 return SDValue(); 15260 15261 // Only handle the case where we are doubling and then halving. A larger ratio 15262 // may require more than two narrow binops to replace the wide binop. 15263 EVT VT = Extract->getValueType(0); 15264 unsigned NumElems = VT.getVectorNumElements(); 15265 assert((ExtractIndex->getZExtValue() % NumElems) == 0 && 15266 "Extract index is not a multiple of the vector length."); 15267 if (Extract->getOperand(0).getValueSizeInBits() != VT.getSizeInBits() * 2) 15268 return SDValue(); 15269 15270 // We are looking for an optionally bitcasted wide vector binary operator 15271 // feeding an extract subvector. 15272 SDValue BinOp = peekThroughBitcast(Extract->getOperand(0)); 15273 15274 // TODO: The motivating case for this transform is an x86 AVX1 target. That 15275 // target has temptingly almost legal versions of bitwise logic ops in 256-bit 15276 // flavors, but no other 256-bit integer support. This could be extended to 15277 // handle any binop, but that may require fixing/adding other folds to avoid 15278 // codegen regressions. 15279 unsigned BOpcode = BinOp.getOpcode(); 15280 if (BOpcode != ISD::AND && BOpcode != ISD::OR && BOpcode != ISD::XOR) 15281 return SDValue(); 15282 15283 // The binop must be a vector type, so we can chop it in half. 15284 EVT WideBVT = BinOp.getValueType(); 15285 if (!WideBVT.isVector()) 15286 return SDValue(); 15287 15288 // Bail out if the target does not support a narrower version of the binop. 15289 EVT NarrowBVT = EVT::getVectorVT(*DAG.getContext(), WideBVT.getScalarType(), 15290 WideBVT.getVectorNumElements() / 2); 15291 const TargetLowering &TLI = DAG.getTargetLoweringInfo(); 15292 if (!TLI.isOperationLegalOrCustomOrPromote(BOpcode, NarrowBVT)) 15293 return SDValue(); 15294 15295 // Peek through bitcasts of the binary operator operands if needed. 15296 SDValue LHS = peekThroughBitcast(BinOp.getOperand(0)); 15297 SDValue RHS = peekThroughBitcast(BinOp.getOperand(1)); 15298 15299 // We need at least one concatenation operation of a binop operand to make 15300 // this transform worthwhile. The concat must double the input vector sizes. 15301 // TODO: Should we also handle INSERT_SUBVECTOR patterns? 15302 bool ConcatL = 15303 LHS.getOpcode() == ISD::CONCAT_VECTORS && LHS.getNumOperands() == 2; 15304 bool ConcatR = 15305 RHS.getOpcode() == ISD::CONCAT_VECTORS && RHS.getNumOperands() == 2; 15306 if (!ConcatL && !ConcatR) 15307 return SDValue(); 15308 15309 // If one of the binop operands was not the result of a concat, we must 15310 // extract a half-sized operand for our new narrow binop. We can't just reuse 15311 // the original extract index operand because we may have bitcasted. 15312 unsigned ConcatOpNum = ExtractIndex->getZExtValue() / NumElems; 15313 unsigned ExtBOIdx = ConcatOpNum * NarrowBVT.getVectorNumElements(); 15314 EVT ExtBOIdxVT = Extract->getOperand(1).getValueType(); 15315 SDLoc DL(Extract); 15316 15317 // extract (binop (concat X1, X2), (concat Y1, Y2)), N --> binop XN, YN 15318 // extract (binop (concat X1, X2), Y), N --> binop XN, (extract Y, N) 15319 // extract (binop X, (concat Y1, Y2)), N --> binop (extract X, N), YN 15320 SDValue X = ConcatL ? DAG.getBitcast(NarrowBVT, LHS.getOperand(ConcatOpNum)) 15321 : DAG.getNode(ISD::EXTRACT_SUBVECTOR, DL, NarrowBVT, 15322 BinOp.getOperand(0), 15323 DAG.getConstant(ExtBOIdx, DL, ExtBOIdxVT)); 15324 15325 SDValue Y = ConcatR ? DAG.getBitcast(NarrowBVT, RHS.getOperand(ConcatOpNum)) 15326 : DAG.getNode(ISD::EXTRACT_SUBVECTOR, DL, NarrowBVT, 15327 BinOp.getOperand(1), 15328 DAG.getConstant(ExtBOIdx, DL, ExtBOIdxVT)); 15329 15330 SDValue NarrowBinOp = DAG.getNode(BOpcode, DL, NarrowBVT, X, Y); 15331 return DAG.getBitcast(VT, NarrowBinOp); 15332 } 15333 15334 /// If we are extracting a subvector from a wide vector load, convert to a 15335 /// narrow load to eliminate the extraction: 15336 /// (extract_subvector (load wide vector)) --> (load narrow vector) 15337 static SDValue narrowExtractedVectorLoad(SDNode *Extract, SelectionDAG &DAG) { 15338 // TODO: Add support for big-endian. The offset calculation must be adjusted. 15339 if (DAG.getDataLayout().isBigEndian()) 15340 return SDValue(); 15341 15342 // TODO: The one-use check is overly conservative. Check the cost of the 15343 // extract instead or remove that condition entirely. 15344 auto *Ld = dyn_cast<LoadSDNode>(Extract->getOperand(0)); 15345 auto *ExtIdx = dyn_cast<ConstantSDNode>(Extract->getOperand(1)); 15346 if (!Ld || !Ld->hasOneUse() || Ld->getExtensionType() || Ld->isVolatile() || 15347 !ExtIdx) 15348 return SDValue(); 15349 15350 // The narrow load will be offset from the base address of the old load if 15351 // we are extracting from something besides index 0 (little-endian). 15352 EVT VT = Extract->getValueType(0); 15353 SDLoc DL(Extract); 15354 SDValue BaseAddr = Ld->getOperand(1); 15355 unsigned Offset = ExtIdx->getZExtValue() * VT.getScalarType().getStoreSize(); 15356 15357 // TODO: Use "BaseIndexOffset" to make this more effective. 15358 SDValue NewAddr = DAG.getMemBasePlusOffset(BaseAddr, Offset, DL); 15359 MachineFunction &MF = DAG.getMachineFunction(); 15360 MachineMemOperand *MMO = MF.getMachineMemOperand(Ld->getMemOperand(), Offset, 15361 VT.getStoreSize()); 15362 SDValue NewLd = DAG.getLoad(VT, DL, Ld->getChain(), NewAddr, MMO); 15363 DAG.makeEquivalentMemoryOrdering(Ld, NewLd); 15364 return NewLd; 15365 } 15366 15367 SDValue DAGCombiner::visitEXTRACT_SUBVECTOR(SDNode* N) { 15368 EVT NVT = N->getValueType(0); 15369 SDValue V = N->getOperand(0); 15370 15371 // Extract from UNDEF is UNDEF. 15372 if (V.isUndef()) 15373 return DAG.getUNDEF(NVT); 15374 15375 if (TLI.isOperationLegalOrCustomOrPromote(ISD::LOAD, NVT)) 15376 if (SDValue NarrowLoad = narrowExtractedVectorLoad(N, DAG)) 15377 return NarrowLoad; 15378 15379 // Combine: 15380 // (extract_subvec (concat V1, V2, ...), i) 15381 // Into: 15382 // Vi if possible 15383 // Only operand 0 is checked as 'concat' assumes all inputs of the same 15384 // type. 15385 if (V->getOpcode() == ISD::CONCAT_VECTORS && 15386 isa<ConstantSDNode>(N->getOperand(1)) && 15387 V->getOperand(0).getValueType() == NVT) { 15388 unsigned Idx = N->getConstantOperandVal(1); 15389 unsigned NumElems = NVT.getVectorNumElements(); 15390 assert((Idx % NumElems) == 0 && 15391 "IDX in concat is not a multiple of the result vector length."); 15392 return V->getOperand(Idx / NumElems); 15393 } 15394 15395 // Skip bitcasting 15396 V = peekThroughBitcast(V); 15397 15398 // If the input is a build vector. Try to make a smaller build vector. 15399 if (V->getOpcode() == ISD::BUILD_VECTOR) { 15400 if (auto *Idx = dyn_cast<ConstantSDNode>(N->getOperand(1))) { 15401 EVT InVT = V->getValueType(0); 15402 unsigned ExtractSize = NVT.getSizeInBits(); 15403 unsigned EltSize = InVT.getScalarSizeInBits(); 15404 // Only do this if we won't split any elements. 15405 if (ExtractSize % EltSize == 0) { 15406 unsigned NumElems = ExtractSize / EltSize; 15407 EVT ExtractVT = EVT::getVectorVT(*DAG.getContext(), 15408 InVT.getVectorElementType(), NumElems); 15409 if ((!LegalOperations || 15410 TLI.isOperationLegal(ISD::BUILD_VECTOR, ExtractVT)) && 15411 (!LegalTypes || TLI.isTypeLegal(ExtractVT))) { 15412 unsigned IdxVal = (Idx->getZExtValue() * NVT.getScalarSizeInBits()) / 15413 EltSize; 15414 15415 // Extract the pieces from the original build_vector. 15416 SDValue BuildVec = DAG.getBuildVector(ExtractVT, SDLoc(N), 15417 makeArrayRef(V->op_begin() + IdxVal, 15418 NumElems)); 15419 return DAG.getBitcast(NVT, BuildVec); 15420 } 15421 } 15422 } 15423 } 15424 15425 if (V->getOpcode() == ISD::INSERT_SUBVECTOR) { 15426 // Handle only simple case where vector being inserted and vector 15427 // being extracted are of same size. 15428 EVT SmallVT = V->getOperand(1).getValueType(); 15429 if (!NVT.bitsEq(SmallVT)) 15430 return SDValue(); 15431 15432 // Only handle cases where both indexes are constants. 15433 ConstantSDNode *ExtIdx = dyn_cast<ConstantSDNode>(N->getOperand(1)); 15434 ConstantSDNode *InsIdx = dyn_cast<ConstantSDNode>(V->getOperand(2)); 15435 15436 if (InsIdx && ExtIdx) { 15437 // Combine: 15438 // (extract_subvec (insert_subvec V1, V2, InsIdx), ExtIdx) 15439 // Into: 15440 // indices are equal or bit offsets are equal => V1 15441 // otherwise => (extract_subvec V1, ExtIdx) 15442 if (InsIdx->getZExtValue() * SmallVT.getScalarSizeInBits() == 15443 ExtIdx->getZExtValue() * NVT.getScalarSizeInBits()) 15444 return DAG.getBitcast(NVT, V->getOperand(1)); 15445 return DAG.getNode( 15446 ISD::EXTRACT_SUBVECTOR, SDLoc(N), NVT, 15447 DAG.getBitcast(N->getOperand(0).getValueType(), V->getOperand(0)), 15448 N->getOperand(1)); 15449 } 15450 } 15451 15452 if (SDValue NarrowBOp = narrowExtractedVectorBinOp(N, DAG)) 15453 return NarrowBOp; 15454 15455 return SDValue(); 15456 } 15457 15458 static SDValue simplifyShuffleOperandRecursively(SmallBitVector &UsedElements, 15459 SDValue V, SelectionDAG &DAG) { 15460 SDLoc DL(V); 15461 EVT VT = V.getValueType(); 15462 15463 switch (V.getOpcode()) { 15464 default: 15465 return V; 15466 15467 case ISD::CONCAT_VECTORS: { 15468 EVT OpVT = V->getOperand(0).getValueType(); 15469 int OpSize = OpVT.getVectorNumElements(); 15470 SmallBitVector OpUsedElements(OpSize, false); 15471 bool FoundSimplification = false; 15472 SmallVector<SDValue, 4> NewOps; 15473 NewOps.reserve(V->getNumOperands()); 15474 for (int i = 0, NumOps = V->getNumOperands(); i < NumOps; ++i) { 15475 SDValue Op = V->getOperand(i); 15476 bool OpUsed = false; 15477 for (int j = 0; j < OpSize; ++j) 15478 if (UsedElements[i * OpSize + j]) { 15479 OpUsedElements[j] = true; 15480 OpUsed = true; 15481 } 15482 NewOps.push_back( 15483 OpUsed ? simplifyShuffleOperandRecursively(OpUsedElements, Op, DAG) 15484 : DAG.getUNDEF(OpVT)); 15485 FoundSimplification |= Op == NewOps.back(); 15486 OpUsedElements.reset(); 15487 } 15488 if (FoundSimplification) 15489 V = DAG.getNode(ISD::CONCAT_VECTORS, DL, VT, NewOps); 15490 return V; 15491 } 15492 15493 case ISD::INSERT_SUBVECTOR: { 15494 SDValue BaseV = V->getOperand(0); 15495 SDValue SubV = V->getOperand(1); 15496 auto *IdxN = dyn_cast<ConstantSDNode>(V->getOperand(2)); 15497 if (!IdxN) 15498 return V; 15499 15500 int SubSize = SubV.getValueType().getVectorNumElements(); 15501 int Idx = IdxN->getZExtValue(); 15502 bool SubVectorUsed = false; 15503 SmallBitVector SubUsedElements(SubSize, false); 15504 for (int i = 0; i < SubSize; ++i) 15505 if (UsedElements[i + Idx]) { 15506 SubVectorUsed = true; 15507 SubUsedElements[i] = true; 15508 UsedElements[i + Idx] = false; 15509 } 15510 15511 // Now recurse on both the base and sub vectors. 15512 SDValue SimplifiedSubV = 15513 SubVectorUsed 15514 ? simplifyShuffleOperandRecursively(SubUsedElements, SubV, DAG) 15515 : DAG.getUNDEF(SubV.getValueType()); 15516 SDValue SimplifiedBaseV = simplifyShuffleOperandRecursively(UsedElements, BaseV, DAG); 15517 if (SimplifiedSubV != SubV || SimplifiedBaseV != BaseV) 15518 V = DAG.getNode(ISD::INSERT_SUBVECTOR, DL, VT, 15519 SimplifiedBaseV, SimplifiedSubV, V->getOperand(2)); 15520 return V; 15521 } 15522 } 15523 } 15524 15525 static SDValue simplifyShuffleOperands(ShuffleVectorSDNode *SVN, SDValue N0, 15526 SDValue N1, SelectionDAG &DAG) { 15527 EVT VT = SVN->getValueType(0); 15528 int NumElts = VT.getVectorNumElements(); 15529 SmallBitVector N0UsedElements(NumElts, false), N1UsedElements(NumElts, false); 15530 for (int M : SVN->getMask()) 15531 if (M >= 0 && M < NumElts) 15532 N0UsedElements[M] = true; 15533 else if (M >= NumElts) 15534 N1UsedElements[M - NumElts] = true; 15535 15536 SDValue S0 = simplifyShuffleOperandRecursively(N0UsedElements, N0, DAG); 15537 SDValue S1 = simplifyShuffleOperandRecursively(N1UsedElements, N1, DAG); 15538 if (S0 == N0 && S1 == N1) 15539 return SDValue(); 15540 15541 return DAG.getVectorShuffle(VT, SDLoc(SVN), S0, S1, SVN->getMask()); 15542 } 15543 15544 static SDValue simplifyShuffleMask(ShuffleVectorSDNode *SVN, SDValue N0, 15545 SDValue N1, SelectionDAG &DAG) { 15546 auto isUndefElt = [](SDValue V, int Idx) { 15547 // TODO - handle more cases as required. 15548 if (V.getOpcode() == ISD::BUILD_VECTOR) 15549 return V.getOperand(Idx).isUndef(); 15550 if (V.getOpcode() == ISD::SCALAR_TO_VECTOR) 15551 return (Idx != 0) || V.getOperand(0).isUndef(); 15552 return false; 15553 }; 15554 15555 EVT VT = SVN->getValueType(0); 15556 unsigned NumElts = VT.getVectorNumElements(); 15557 15558 bool Changed = false; 15559 SmallVector<int, 8> NewMask; 15560 for (unsigned i = 0; i != NumElts; ++i) { 15561 int Idx = SVN->getMaskElt(i); 15562 if ((0 <= Idx && Idx < (int)NumElts && isUndefElt(N0, Idx)) || 15563 ((int)NumElts < Idx && isUndefElt(N1, Idx - NumElts))) { 15564 Changed = true; 15565 Idx = -1; 15566 } 15567 NewMask.push_back(Idx); 15568 } 15569 if (Changed) 15570 return DAG.getVectorShuffle(VT, SDLoc(SVN), N0, N1, NewMask); 15571 15572 return SDValue(); 15573 } 15574 15575 // Tries to turn a shuffle of two CONCAT_VECTORS into a single concat, 15576 // or turn a shuffle of a single concat into simpler shuffle then concat. 15577 static SDValue partitionShuffleOfConcats(SDNode *N, SelectionDAG &DAG) { 15578 EVT VT = N->getValueType(0); 15579 unsigned NumElts = VT.getVectorNumElements(); 15580 15581 SDValue N0 = N->getOperand(0); 15582 SDValue N1 = N->getOperand(1); 15583 ShuffleVectorSDNode *SVN = cast<ShuffleVectorSDNode>(N); 15584 15585 SmallVector<SDValue, 4> Ops; 15586 EVT ConcatVT = N0.getOperand(0).getValueType(); 15587 unsigned NumElemsPerConcat = ConcatVT.getVectorNumElements(); 15588 unsigned NumConcats = NumElts / NumElemsPerConcat; 15589 15590 // Special case: shuffle(concat(A,B)) can be more efficiently represented 15591 // as concat(shuffle(A,B),UNDEF) if the shuffle doesn't set any of the high 15592 // half vector elements. 15593 if (NumElemsPerConcat * 2 == NumElts && N1.isUndef() && 15594 std::all_of(SVN->getMask().begin() + NumElemsPerConcat, 15595 SVN->getMask().end(), [](int i) { return i == -1; })) { 15596 N0 = DAG.getVectorShuffle(ConcatVT, SDLoc(N), N0.getOperand(0), N0.getOperand(1), 15597 makeArrayRef(SVN->getMask().begin(), NumElemsPerConcat)); 15598 N1 = DAG.getUNDEF(ConcatVT); 15599 return DAG.getNode(ISD::CONCAT_VECTORS, SDLoc(N), VT, N0, N1); 15600 } 15601 15602 // Look at every vector that's inserted. We're looking for exact 15603 // subvector-sized copies from a concatenated vector 15604 for (unsigned I = 0; I != NumConcats; ++I) { 15605 // Make sure we're dealing with a copy. 15606 unsigned Begin = I * NumElemsPerConcat; 15607 bool AllUndef = true, NoUndef = true; 15608 for (unsigned J = Begin; J != Begin + NumElemsPerConcat; ++J) { 15609 if (SVN->getMaskElt(J) >= 0) 15610 AllUndef = false; 15611 else 15612 NoUndef = false; 15613 } 15614 15615 if (NoUndef) { 15616 if (SVN->getMaskElt(Begin) % NumElemsPerConcat != 0) 15617 return SDValue(); 15618 15619 for (unsigned J = 1; J != NumElemsPerConcat; ++J) 15620 if (SVN->getMaskElt(Begin + J - 1) + 1 != SVN->getMaskElt(Begin + J)) 15621 return SDValue(); 15622 15623 unsigned FirstElt = SVN->getMaskElt(Begin) / NumElemsPerConcat; 15624 if (FirstElt < N0.getNumOperands()) 15625 Ops.push_back(N0.getOperand(FirstElt)); 15626 else 15627 Ops.push_back(N1.getOperand(FirstElt - N0.getNumOperands())); 15628 15629 } else if (AllUndef) { 15630 Ops.push_back(DAG.getUNDEF(N0.getOperand(0).getValueType())); 15631 } else { // Mixed with general masks and undefs, can't do optimization. 15632 return SDValue(); 15633 } 15634 } 15635 15636 return DAG.getNode(ISD::CONCAT_VECTORS, SDLoc(N), VT, Ops); 15637 } 15638 15639 // Attempt to combine a shuffle of 2 inputs of 'scalar sources' - 15640 // BUILD_VECTOR or SCALAR_TO_VECTOR into a single BUILD_VECTOR. 15641 // 15642 // SHUFFLE(BUILD_VECTOR(), BUILD_VECTOR()) -> BUILD_VECTOR() is always 15643 // a simplification in some sense, but it isn't appropriate in general: some 15644 // BUILD_VECTORs are substantially cheaper than others. The general case 15645 // of a BUILD_VECTOR requires inserting each element individually (or 15646 // performing the equivalent in a temporary stack variable). A BUILD_VECTOR of 15647 // all constants is a single constant pool load. A BUILD_VECTOR where each 15648 // element is identical is a splat. A BUILD_VECTOR where most of the operands 15649 // are undef lowers to a small number of element insertions. 15650 // 15651 // To deal with this, we currently use a bunch of mostly arbitrary heuristics. 15652 // We don't fold shuffles where one side is a non-zero constant, and we don't 15653 // fold shuffles if the resulting (non-splat) BUILD_VECTOR would have duplicate 15654 // non-constant operands. This seems to work out reasonably well in practice. 15655 static SDValue combineShuffleOfScalars(ShuffleVectorSDNode *SVN, 15656 SelectionDAG &DAG, 15657 const TargetLowering &TLI) { 15658 EVT VT = SVN->getValueType(0); 15659 unsigned NumElts = VT.getVectorNumElements(); 15660 SDValue N0 = SVN->getOperand(0); 15661 SDValue N1 = SVN->getOperand(1); 15662 15663 if (!N0->hasOneUse() || !N1->hasOneUse()) 15664 return SDValue(); 15665 15666 // If only one of N1,N2 is constant, bail out if it is not ALL_ZEROS as 15667 // discussed above. 15668 if (!N1.isUndef()) { 15669 bool N0AnyConst = isAnyConstantBuildVector(N0.getNode()); 15670 bool N1AnyConst = isAnyConstantBuildVector(N1.getNode()); 15671 if (N0AnyConst && !N1AnyConst && !ISD::isBuildVectorAllZeros(N0.getNode())) 15672 return SDValue(); 15673 if (!N0AnyConst && N1AnyConst && !ISD::isBuildVectorAllZeros(N1.getNode())) 15674 return SDValue(); 15675 } 15676 15677 // If both inputs are splats of the same value then we can safely merge this 15678 // to a single BUILD_VECTOR with undef elements based on the shuffle mask. 15679 bool IsSplat = false; 15680 auto *BV0 = dyn_cast<BuildVectorSDNode>(N0); 15681 auto *BV1 = dyn_cast<BuildVectorSDNode>(N1); 15682 if (BV0 && BV1) 15683 if (SDValue Splat0 = BV0->getSplatValue()) 15684 IsSplat = (Splat0 == BV1->getSplatValue()); 15685 15686 SmallVector<SDValue, 8> Ops; 15687 SmallSet<SDValue, 16> DuplicateOps; 15688 for (int M : SVN->getMask()) { 15689 SDValue Op = DAG.getUNDEF(VT.getScalarType()); 15690 if (M >= 0) { 15691 int Idx = M < (int)NumElts ? M : M - NumElts; 15692 SDValue &S = (M < (int)NumElts ? N0 : N1); 15693 if (S.getOpcode() == ISD::BUILD_VECTOR) { 15694 Op = S.getOperand(Idx); 15695 } else if (S.getOpcode() == ISD::SCALAR_TO_VECTOR) { 15696 assert(Idx == 0 && "Unexpected SCALAR_TO_VECTOR operand index."); 15697 Op = S.getOperand(0); 15698 } else { 15699 // Operand can't be combined - bail out. 15700 return SDValue(); 15701 } 15702 } 15703 15704 // Don't duplicate a non-constant BUILD_VECTOR operand unless we're 15705 // generating a splat; semantically, this is fine, but it's likely to 15706 // generate low-quality code if the target can't reconstruct an appropriate 15707 // shuffle. 15708 if (!Op.isUndef() && !isa<ConstantSDNode>(Op) && !isa<ConstantFPSDNode>(Op)) 15709 if (!IsSplat && !DuplicateOps.insert(Op).second) 15710 return SDValue(); 15711 15712 Ops.push_back(Op); 15713 } 15714 15715 // BUILD_VECTOR requires all inputs to be of the same type, find the 15716 // maximum type and extend them all. 15717 EVT SVT = VT.getScalarType(); 15718 if (SVT.isInteger()) 15719 for (SDValue &Op : Ops) 15720 SVT = (SVT.bitsLT(Op.getValueType()) ? Op.getValueType() : SVT); 15721 if (SVT != VT.getScalarType()) 15722 for (SDValue &Op : Ops) 15723 Op = TLI.isZExtFree(Op.getValueType(), SVT) 15724 ? DAG.getZExtOrTrunc(Op, SDLoc(SVN), SVT) 15725 : DAG.getSExtOrTrunc(Op, SDLoc(SVN), SVT); 15726 return DAG.getBuildVector(VT, SDLoc(SVN), Ops); 15727 } 15728 15729 // Match shuffles that can be converted to any_vector_extend_in_reg. 15730 // This is often generated during legalization. 15731 // e.g. v4i32 <0,u,1,u> -> (v2i64 any_vector_extend_in_reg(v4i32 src)) 15732 // TODO Add support for ZERO_EXTEND_VECTOR_INREG when we have a test case. 15733 static SDValue combineShuffleToVectorExtend(ShuffleVectorSDNode *SVN, 15734 SelectionDAG &DAG, 15735 const TargetLowering &TLI, 15736 bool LegalOperations, 15737 bool LegalTypes) { 15738 EVT VT = SVN->getValueType(0); 15739 bool IsBigEndian = DAG.getDataLayout().isBigEndian(); 15740 15741 // TODO Add support for big-endian when we have a test case. 15742 if (!VT.isInteger() || IsBigEndian) 15743 return SDValue(); 15744 15745 unsigned NumElts = VT.getVectorNumElements(); 15746 unsigned EltSizeInBits = VT.getScalarSizeInBits(); 15747 ArrayRef<int> Mask = SVN->getMask(); 15748 SDValue N0 = SVN->getOperand(0); 15749 15750 // shuffle<0,-1,1,-1> == (v2i64 anyextend_vector_inreg(v4i32)) 15751 auto isAnyExtend = [&Mask, &NumElts](unsigned Scale) { 15752 for (unsigned i = 0; i != NumElts; ++i) { 15753 if (Mask[i] < 0) 15754 continue; 15755 if ((i % Scale) == 0 && Mask[i] == (int)(i / Scale)) 15756 continue; 15757 return false; 15758 } 15759 return true; 15760 }; 15761 15762 // Attempt to match a '*_extend_vector_inreg' shuffle, we just search for 15763 // power-of-2 extensions as they are the most likely. 15764 for (unsigned Scale = 2; Scale < NumElts; Scale *= 2) { 15765 // Check for non power of 2 vector sizes 15766 if (NumElts % Scale != 0) 15767 continue; 15768 if (!isAnyExtend(Scale)) 15769 continue; 15770 15771 EVT OutSVT = EVT::getIntegerVT(*DAG.getContext(), EltSizeInBits * Scale); 15772 EVT OutVT = EVT::getVectorVT(*DAG.getContext(), OutSVT, NumElts / Scale); 15773 if (!LegalTypes || TLI.isTypeLegal(OutVT)) 15774 if (!LegalOperations || 15775 TLI.isOperationLegalOrCustom(ISD::ANY_EXTEND_VECTOR_INREG, OutVT)) 15776 return DAG.getBitcast(VT, 15777 DAG.getAnyExtendVectorInReg(N0, SDLoc(SVN), OutVT)); 15778 } 15779 15780 return SDValue(); 15781 } 15782 15783 // Detect 'truncate_vector_inreg' style shuffles that pack the lower parts of 15784 // each source element of a large type into the lowest elements of a smaller 15785 // destination type. This is often generated during legalization. 15786 // If the source node itself was a '*_extend_vector_inreg' node then we should 15787 // then be able to remove it. 15788 static SDValue combineTruncationShuffle(ShuffleVectorSDNode *SVN, 15789 SelectionDAG &DAG) { 15790 EVT VT = SVN->getValueType(0); 15791 bool IsBigEndian = DAG.getDataLayout().isBigEndian(); 15792 15793 // TODO Add support for big-endian when we have a test case. 15794 if (!VT.isInteger() || IsBigEndian) 15795 return SDValue(); 15796 15797 SDValue N0 = peekThroughBitcast(SVN->getOperand(0)); 15798 15799 unsigned Opcode = N0.getOpcode(); 15800 if (Opcode != ISD::ANY_EXTEND_VECTOR_INREG && 15801 Opcode != ISD::SIGN_EXTEND_VECTOR_INREG && 15802 Opcode != ISD::ZERO_EXTEND_VECTOR_INREG) 15803 return SDValue(); 15804 15805 SDValue N00 = N0.getOperand(0); 15806 ArrayRef<int> Mask = SVN->getMask(); 15807 unsigned NumElts = VT.getVectorNumElements(); 15808 unsigned EltSizeInBits = VT.getScalarSizeInBits(); 15809 unsigned ExtSrcSizeInBits = N00.getScalarValueSizeInBits(); 15810 unsigned ExtDstSizeInBits = N0.getScalarValueSizeInBits(); 15811 15812 if (ExtDstSizeInBits % ExtSrcSizeInBits != 0) 15813 return SDValue(); 15814 unsigned ExtScale = ExtDstSizeInBits / ExtSrcSizeInBits; 15815 15816 // (v4i32 truncate_vector_inreg(v2i64)) == shuffle<0,2-1,-1> 15817 // (v8i16 truncate_vector_inreg(v4i32)) == shuffle<0,2,4,6,-1,-1,-1,-1> 15818 // (v8i16 truncate_vector_inreg(v2i64)) == shuffle<0,4,-1,-1,-1,-1,-1,-1> 15819 auto isTruncate = [&Mask, &NumElts](unsigned Scale) { 15820 for (unsigned i = 0; i != NumElts; ++i) { 15821 if (Mask[i] < 0) 15822 continue; 15823 if ((i * Scale) < NumElts && Mask[i] == (int)(i * Scale)) 15824 continue; 15825 return false; 15826 } 15827 return true; 15828 }; 15829 15830 // At the moment we just handle the case where we've truncated back to the 15831 // same size as before the extension. 15832 // TODO: handle more extension/truncation cases as cases arise. 15833 if (EltSizeInBits != ExtSrcSizeInBits) 15834 return SDValue(); 15835 15836 // We can remove *extend_vector_inreg only if the truncation happens at 15837 // the same scale as the extension. 15838 if (isTruncate(ExtScale)) 15839 return DAG.getBitcast(VT, N00); 15840 15841 return SDValue(); 15842 } 15843 15844 // Combine shuffles of splat-shuffles of the form: 15845 // shuffle (shuffle V, undef, splat-mask), undef, M 15846 // If splat-mask contains undef elements, we need to be careful about 15847 // introducing undef's in the folded mask which are not the result of composing 15848 // the masks of the shuffles. 15849 static SDValue combineShuffleOfSplat(ArrayRef<int> UserMask, 15850 ShuffleVectorSDNode *Splat, 15851 SelectionDAG &DAG) { 15852 ArrayRef<int> SplatMask = Splat->getMask(); 15853 assert(UserMask.size() == SplatMask.size() && "Mask length mismatch"); 15854 15855 // Prefer simplifying to the splat-shuffle, if possible. This is legal if 15856 // every undef mask element in the splat-shuffle has a corresponding undef 15857 // element in the user-shuffle's mask or if the composition of mask elements 15858 // would result in undef. 15859 // Examples for (shuffle (shuffle v, undef, SplatMask), undef, UserMask): 15860 // * UserMask=[0,2,u,u], SplatMask=[2,u,2,u] -> [2,2,u,u] 15861 // In this case it is not legal to simplify to the splat-shuffle because we 15862 // may be exposing the users of the shuffle an undef element at index 1 15863 // which was not there before the combine. 15864 // * UserMask=[0,u,2,u], SplatMask=[2,u,2,u] -> [2,u,2,u] 15865 // In this case the composition of masks yields SplatMask, so it's ok to 15866 // simplify to the splat-shuffle. 15867 // * UserMask=[3,u,2,u], SplatMask=[2,u,2,u] -> [u,u,2,u] 15868 // In this case the composed mask includes all undef elements of SplatMask 15869 // and in addition sets element zero to undef. It is safe to simplify to 15870 // the splat-shuffle. 15871 auto CanSimplifyToExistingSplat = [](ArrayRef<int> UserMask, 15872 ArrayRef<int> SplatMask) { 15873 for (unsigned i = 0, e = UserMask.size(); i != e; ++i) 15874 if (UserMask[i] != -1 && SplatMask[i] == -1 && 15875 SplatMask[UserMask[i]] != -1) 15876 return false; 15877 return true; 15878 }; 15879 if (CanSimplifyToExistingSplat(UserMask, SplatMask)) 15880 return SDValue(Splat, 0); 15881 15882 // Create a new shuffle with a mask that is composed of the two shuffles' 15883 // masks. 15884 SmallVector<int, 32> NewMask; 15885 for (int Idx : UserMask) 15886 NewMask.push_back(Idx == -1 ? -1 : SplatMask[Idx]); 15887 15888 return DAG.getVectorShuffle(Splat->getValueType(0), SDLoc(Splat), 15889 Splat->getOperand(0), Splat->getOperand(1), 15890 NewMask); 15891 } 15892 15893 /// If the shuffle mask is taking exactly one element from the first vector 15894 /// operand and passing through all other elements from the second vector 15895 /// operand, return the index of the mask element that is choosing an element 15896 /// from the first operand. Otherwise, return -1. 15897 static int getShuffleMaskIndexOfOneElementFromOp0IntoOp1(ArrayRef<int> Mask) { 15898 int MaskSize = Mask.size(); 15899 int EltFromOp0 = -1; 15900 // TODO: This does not match if there are undef elements in the shuffle mask. 15901 // Should we ignore undefs in the shuffle mask instead? The trade-off is 15902 // removing an instruction (a shuffle), but losing the knowledge that some 15903 // vector lanes are not needed. 15904 for (int i = 0; i != MaskSize; ++i) { 15905 if (Mask[i] >= 0 && Mask[i] < MaskSize) { 15906 // We're looking for a shuffle of exactly one element from operand 0. 15907 if (EltFromOp0 != -1) 15908 return -1; 15909 EltFromOp0 = i; 15910 } else if (Mask[i] != i + MaskSize) { 15911 // Nothing from operand 1 can change lanes. 15912 return -1; 15913 } 15914 } 15915 return EltFromOp0; 15916 } 15917 15918 /// If a shuffle inserts exactly one element from a source vector operand into 15919 /// another vector operand and we can access the specified element as a scalar, 15920 /// then we can eliminate the shuffle. 15921 static SDValue replaceShuffleOfInsert(ShuffleVectorSDNode *Shuf, 15922 SelectionDAG &DAG) { 15923 // First, check if we are taking one element of a vector and shuffling that 15924 // element into another vector. 15925 ArrayRef<int> Mask = Shuf->getMask(); 15926 SmallVector<int, 16> CommutedMask(Mask.begin(), Mask.end()); 15927 SDValue Op0 = Shuf->getOperand(0); 15928 SDValue Op1 = Shuf->getOperand(1); 15929 int ShufOp0Index = getShuffleMaskIndexOfOneElementFromOp0IntoOp1(Mask); 15930 if (ShufOp0Index == -1) { 15931 // Commute mask and check again. 15932 ShuffleVectorSDNode::commuteMask(CommutedMask); 15933 ShufOp0Index = getShuffleMaskIndexOfOneElementFromOp0IntoOp1(CommutedMask); 15934 if (ShufOp0Index == -1) 15935 return SDValue(); 15936 // Commute operands to match the commuted shuffle mask. 15937 std::swap(Op0, Op1); 15938 Mask = CommutedMask; 15939 } 15940 15941 // The shuffle inserts exactly one element from operand 0 into operand 1. 15942 // Now see if we can access that element as a scalar via a real insert element 15943 // instruction. 15944 // TODO: We can try harder to locate the element as a scalar. Examples: it 15945 // could be an operand of SCALAR_TO_VECTOR, BUILD_VECTOR, or a constant. 15946 assert(Mask[ShufOp0Index] >= 0 && Mask[ShufOp0Index] < (int)Mask.size() && 15947 "Shuffle mask value must be from operand 0"); 15948 if (Op0.getOpcode() != ISD::INSERT_VECTOR_ELT) 15949 return SDValue(); 15950 15951 auto *InsIndexC = dyn_cast<ConstantSDNode>(Op0.getOperand(2)); 15952 if (!InsIndexC || InsIndexC->getSExtValue() != Mask[ShufOp0Index]) 15953 return SDValue(); 15954 15955 // There's an existing insertelement with constant insertion index, so we 15956 // don't need to check the legality/profitability of a replacement operation 15957 // that differs at most in the constant value. The target should be able to 15958 // lower any of those in a similar way. If not, legalization will expand this 15959 // to a scalar-to-vector plus shuffle. 15960 // 15961 // Note that the shuffle may move the scalar from the position that the insert 15962 // element used. Therefore, our new insert element occurs at the shuffle's 15963 // mask index value, not the insert's index value. 15964 // shuffle (insertelt v1, x, C), v2, mask --> insertelt v2, x, C' 15965 SDValue NewInsIndex = DAG.getConstant(ShufOp0Index, SDLoc(Shuf), 15966 Op0.getOperand(2).getValueType()); 15967 return DAG.getNode(ISD::INSERT_VECTOR_ELT, SDLoc(Shuf), Op0.getValueType(), 15968 Op1, Op0.getOperand(1), NewInsIndex); 15969 } 15970 15971 SDValue DAGCombiner::visitVECTOR_SHUFFLE(SDNode *N) { 15972 EVT VT = N->getValueType(0); 15973 unsigned NumElts = VT.getVectorNumElements(); 15974 15975 SDValue N0 = N->getOperand(0); 15976 SDValue N1 = N->getOperand(1); 15977 15978 assert(N0.getValueType() == VT && "Vector shuffle must be normalized in DAG"); 15979 15980 // Canonicalize shuffle undef, undef -> undef 15981 if (N0.isUndef() && N1.isUndef()) 15982 return DAG.getUNDEF(VT); 15983 15984 ShuffleVectorSDNode *SVN = cast<ShuffleVectorSDNode>(N); 15985 15986 // Canonicalize shuffle v, v -> v, undef 15987 if (N0 == N1) { 15988 SmallVector<int, 8> NewMask; 15989 for (unsigned i = 0; i != NumElts; ++i) { 15990 int Idx = SVN->getMaskElt(i); 15991 if (Idx >= (int)NumElts) Idx -= NumElts; 15992 NewMask.push_back(Idx); 15993 } 15994 return DAG.getVectorShuffle(VT, SDLoc(N), N0, DAG.getUNDEF(VT), NewMask); 15995 } 15996 15997 // Canonicalize shuffle undef, v -> v, undef. Commute the shuffle mask. 15998 if (N0.isUndef()) 15999 return DAG.getCommutedVectorShuffle(*SVN); 16000 16001 // Remove references to rhs if it is undef 16002 if (N1.isUndef()) { 16003 bool Changed = false; 16004 SmallVector<int, 8> NewMask; 16005 for (unsigned i = 0; i != NumElts; ++i) { 16006 int Idx = SVN->getMaskElt(i); 16007 if (Idx >= (int)NumElts) { 16008 Idx = -1; 16009 Changed = true; 16010 } 16011 NewMask.push_back(Idx); 16012 } 16013 if (Changed) 16014 return DAG.getVectorShuffle(VT, SDLoc(N), N0, N1, NewMask); 16015 } 16016 16017 // Simplify shuffle mask if a referenced element is UNDEF. 16018 if (SDValue V = simplifyShuffleMask(SVN, N0, N1, DAG)) 16019 return V; 16020 16021 if (SDValue InsElt = replaceShuffleOfInsert(SVN, DAG)) 16022 return InsElt; 16023 16024 // A shuffle of a single vector that is a splat can always be folded. 16025 if (auto *N0Shuf = dyn_cast<ShuffleVectorSDNode>(N0)) 16026 if (N1->isUndef() && N0Shuf->isSplat()) 16027 return combineShuffleOfSplat(SVN->getMask(), N0Shuf, DAG); 16028 16029 // If it is a splat, check if the argument vector is another splat or a 16030 // build_vector. 16031 if (SVN->isSplat() && SVN->getSplatIndex() < (int)NumElts) { 16032 SDNode *V = N0.getNode(); 16033 16034 // If this is a bit convert that changes the element type of the vector but 16035 // not the number of vector elements, look through it. Be careful not to 16036 // look though conversions that change things like v4f32 to v2f64. 16037 if (V->getOpcode() == ISD::BITCAST) { 16038 SDValue ConvInput = V->getOperand(0); 16039 if (ConvInput.getValueType().isVector() && 16040 ConvInput.getValueType().getVectorNumElements() == NumElts) 16041 V = ConvInput.getNode(); 16042 } 16043 16044 if (V->getOpcode() == ISD::BUILD_VECTOR) { 16045 assert(V->getNumOperands() == NumElts && 16046 "BUILD_VECTOR has wrong number of operands"); 16047 SDValue Base; 16048 bool AllSame = true; 16049 for (unsigned i = 0; i != NumElts; ++i) { 16050 if (!V->getOperand(i).isUndef()) { 16051 Base = V->getOperand(i); 16052 break; 16053 } 16054 } 16055 // Splat of <u, u, u, u>, return <u, u, u, u> 16056 if (!Base.getNode()) 16057 return N0; 16058 for (unsigned i = 0; i != NumElts; ++i) { 16059 if (V->getOperand(i) != Base) { 16060 AllSame = false; 16061 break; 16062 } 16063 } 16064 // Splat of <x, x, x, x>, return <x, x, x, x> 16065 if (AllSame) 16066 return N0; 16067 16068 // Canonicalize any other splat as a build_vector. 16069 const SDValue &Splatted = V->getOperand(SVN->getSplatIndex()); 16070 SmallVector<SDValue, 8> Ops(NumElts, Splatted); 16071 SDValue NewBV = DAG.getBuildVector(V->getValueType(0), SDLoc(N), Ops); 16072 16073 // We may have jumped through bitcasts, so the type of the 16074 // BUILD_VECTOR may not match the type of the shuffle. 16075 if (V->getValueType(0) != VT) 16076 NewBV = DAG.getBitcast(VT, NewBV); 16077 return NewBV; 16078 } 16079 } 16080 16081 // There are various patterns used to build up a vector from smaller vectors, 16082 // subvectors, or elements. Scan chains of these and replace unused insertions 16083 // or components with undef. 16084 if (SDValue S = simplifyShuffleOperands(SVN, N0, N1, DAG)) 16085 return S; 16086 16087 // Match shuffles that can be converted to any_vector_extend_in_reg. 16088 if (SDValue V = combineShuffleToVectorExtend(SVN, DAG, TLI, LegalOperations, LegalTypes)) 16089 return V; 16090 16091 // Combine "truncate_vector_in_reg" style shuffles. 16092 if (SDValue V = combineTruncationShuffle(SVN, DAG)) 16093 return V; 16094 16095 if (N0.getOpcode() == ISD::CONCAT_VECTORS && 16096 Level < AfterLegalizeVectorOps && 16097 (N1.isUndef() || 16098 (N1.getOpcode() == ISD::CONCAT_VECTORS && 16099 N0.getOperand(0).getValueType() == N1.getOperand(0).getValueType()))) { 16100 if (SDValue V = partitionShuffleOfConcats(N, DAG)) 16101 return V; 16102 } 16103 16104 // Attempt to combine a shuffle of 2 inputs of 'scalar sources' - 16105 // BUILD_VECTOR or SCALAR_TO_VECTOR into a single BUILD_VECTOR. 16106 if (Level < AfterLegalizeVectorOps && TLI.isTypeLegal(VT)) 16107 if (SDValue Res = combineShuffleOfScalars(SVN, DAG, TLI)) 16108 return Res; 16109 16110 // If this shuffle only has a single input that is a bitcasted shuffle, 16111 // attempt to merge the 2 shuffles and suitably bitcast the inputs/output 16112 // back to their original types. 16113 if (N0.getOpcode() == ISD::BITCAST && N0.hasOneUse() && 16114 N1.isUndef() && Level < AfterLegalizeVectorOps && 16115 TLI.isTypeLegal(VT)) { 16116 16117 // Peek through the bitcast only if there is one user. 16118 SDValue BC0 = N0; 16119 while (BC0.getOpcode() == ISD::BITCAST) { 16120 if (!BC0.hasOneUse()) 16121 break; 16122 BC0 = BC0.getOperand(0); 16123 } 16124 16125 auto ScaleShuffleMask = [](ArrayRef<int> Mask, int Scale) { 16126 if (Scale == 1) 16127 return SmallVector<int, 8>(Mask.begin(), Mask.end()); 16128 16129 SmallVector<int, 8> NewMask; 16130 for (int M : Mask) 16131 for (int s = 0; s != Scale; ++s) 16132 NewMask.push_back(M < 0 ? -1 : Scale * M + s); 16133 return NewMask; 16134 }; 16135 16136 if (BC0.getOpcode() == ISD::VECTOR_SHUFFLE && BC0.hasOneUse()) { 16137 EVT SVT = VT.getScalarType(); 16138 EVT InnerVT = BC0->getValueType(0); 16139 EVT InnerSVT = InnerVT.getScalarType(); 16140 16141 // Determine which shuffle works with the smaller scalar type. 16142 EVT ScaleVT = SVT.bitsLT(InnerSVT) ? VT : InnerVT; 16143 EVT ScaleSVT = ScaleVT.getScalarType(); 16144 16145 if (TLI.isTypeLegal(ScaleVT) && 16146 0 == (InnerSVT.getSizeInBits() % ScaleSVT.getSizeInBits()) && 16147 0 == (SVT.getSizeInBits() % ScaleSVT.getSizeInBits())) { 16148 int InnerScale = InnerSVT.getSizeInBits() / ScaleSVT.getSizeInBits(); 16149 int OuterScale = SVT.getSizeInBits() / ScaleSVT.getSizeInBits(); 16150 16151 // Scale the shuffle masks to the smaller scalar type. 16152 ShuffleVectorSDNode *InnerSVN = cast<ShuffleVectorSDNode>(BC0); 16153 SmallVector<int, 8> InnerMask = 16154 ScaleShuffleMask(InnerSVN->getMask(), InnerScale); 16155 SmallVector<int, 8> OuterMask = 16156 ScaleShuffleMask(SVN->getMask(), OuterScale); 16157 16158 // Merge the shuffle masks. 16159 SmallVector<int, 8> NewMask; 16160 for (int M : OuterMask) 16161 NewMask.push_back(M < 0 ? -1 : InnerMask[M]); 16162 16163 // Test for shuffle mask legality over both commutations. 16164 SDValue SV0 = BC0->getOperand(0); 16165 SDValue SV1 = BC0->getOperand(1); 16166 bool LegalMask = TLI.isShuffleMaskLegal(NewMask, ScaleVT); 16167 if (!LegalMask) { 16168 std::swap(SV0, SV1); 16169 ShuffleVectorSDNode::commuteMask(NewMask); 16170 LegalMask = TLI.isShuffleMaskLegal(NewMask, ScaleVT); 16171 } 16172 16173 if (LegalMask) { 16174 SV0 = DAG.getBitcast(ScaleVT, SV0); 16175 SV1 = DAG.getBitcast(ScaleVT, SV1); 16176 return DAG.getBitcast( 16177 VT, DAG.getVectorShuffle(ScaleVT, SDLoc(N), SV0, SV1, NewMask)); 16178 } 16179 } 16180 } 16181 } 16182 16183 // Canonicalize shuffles according to rules: 16184 // shuffle(A, shuffle(A, B)) -> shuffle(shuffle(A,B), A) 16185 // shuffle(B, shuffle(A, B)) -> shuffle(shuffle(A,B), B) 16186 // shuffle(B, shuffle(A, Undef)) -> shuffle(shuffle(A, Undef), B) 16187 if (N1.getOpcode() == ISD::VECTOR_SHUFFLE && 16188 N0.getOpcode() != ISD::VECTOR_SHUFFLE && Level < AfterLegalizeDAG && 16189 TLI.isTypeLegal(VT)) { 16190 // The incoming shuffle must be of the same type as the result of the 16191 // current shuffle. 16192 assert(N1->getOperand(0).getValueType() == VT && 16193 "Shuffle types don't match"); 16194 16195 SDValue SV0 = N1->getOperand(0); 16196 SDValue SV1 = N1->getOperand(1); 16197 bool HasSameOp0 = N0 == SV0; 16198 bool IsSV1Undef = SV1.isUndef(); 16199 if (HasSameOp0 || IsSV1Undef || N0 == SV1) 16200 // Commute the operands of this shuffle so that next rule 16201 // will trigger. 16202 return DAG.getCommutedVectorShuffle(*SVN); 16203 } 16204 16205 // Try to fold according to rules: 16206 // shuffle(shuffle(A, B, M0), C, M1) -> shuffle(A, B, M2) 16207 // shuffle(shuffle(A, B, M0), C, M1) -> shuffle(A, C, M2) 16208 // shuffle(shuffle(A, B, M0), C, M1) -> shuffle(B, C, M2) 16209 // Don't try to fold shuffles with illegal type. 16210 // Only fold if this shuffle is the only user of the other shuffle. 16211 if (N0.getOpcode() == ISD::VECTOR_SHUFFLE && N->isOnlyUserOf(N0.getNode()) && 16212 Level < AfterLegalizeDAG && TLI.isTypeLegal(VT)) { 16213 ShuffleVectorSDNode *OtherSV = cast<ShuffleVectorSDNode>(N0); 16214 16215 // Don't try to fold splats; they're likely to simplify somehow, or they 16216 // might be free. 16217 if (OtherSV->isSplat()) 16218 return SDValue(); 16219 16220 // The incoming shuffle must be of the same type as the result of the 16221 // current shuffle. 16222 assert(OtherSV->getOperand(0).getValueType() == VT && 16223 "Shuffle types don't match"); 16224 16225 SDValue SV0, SV1; 16226 SmallVector<int, 4> Mask; 16227 // Compute the combined shuffle mask for a shuffle with SV0 as the first 16228 // operand, and SV1 as the second operand. 16229 for (unsigned i = 0; i != NumElts; ++i) { 16230 int Idx = SVN->getMaskElt(i); 16231 if (Idx < 0) { 16232 // Propagate Undef. 16233 Mask.push_back(Idx); 16234 continue; 16235 } 16236 16237 SDValue CurrentVec; 16238 if (Idx < (int)NumElts) { 16239 // This shuffle index refers to the inner shuffle N0. Lookup the inner 16240 // shuffle mask to identify which vector is actually referenced. 16241 Idx = OtherSV->getMaskElt(Idx); 16242 if (Idx < 0) { 16243 // Propagate Undef. 16244 Mask.push_back(Idx); 16245 continue; 16246 } 16247 16248 CurrentVec = (Idx < (int) NumElts) ? OtherSV->getOperand(0) 16249 : OtherSV->getOperand(1); 16250 } else { 16251 // This shuffle index references an element within N1. 16252 CurrentVec = N1; 16253 } 16254 16255 // Simple case where 'CurrentVec' is UNDEF. 16256 if (CurrentVec.isUndef()) { 16257 Mask.push_back(-1); 16258 continue; 16259 } 16260 16261 // Canonicalize the shuffle index. We don't know yet if CurrentVec 16262 // will be the first or second operand of the combined shuffle. 16263 Idx = Idx % NumElts; 16264 if (!SV0.getNode() || SV0 == CurrentVec) { 16265 // Ok. CurrentVec is the left hand side. 16266 // Update the mask accordingly. 16267 SV0 = CurrentVec; 16268 Mask.push_back(Idx); 16269 continue; 16270 } 16271 16272 // Bail out if we cannot convert the shuffle pair into a single shuffle. 16273 if (SV1.getNode() && SV1 != CurrentVec) 16274 return SDValue(); 16275 16276 // Ok. CurrentVec is the right hand side. 16277 // Update the mask accordingly. 16278 SV1 = CurrentVec; 16279 Mask.push_back(Idx + NumElts); 16280 } 16281 16282 // Check if all indices in Mask are Undef. In case, propagate Undef. 16283 bool isUndefMask = true; 16284 for (unsigned i = 0; i != NumElts && isUndefMask; ++i) 16285 isUndefMask &= Mask[i] < 0; 16286 16287 if (isUndefMask) 16288 return DAG.getUNDEF(VT); 16289 16290 if (!SV0.getNode()) 16291 SV0 = DAG.getUNDEF(VT); 16292 if (!SV1.getNode()) 16293 SV1 = DAG.getUNDEF(VT); 16294 16295 // Avoid introducing shuffles with illegal mask. 16296 if (!TLI.isShuffleMaskLegal(Mask, VT)) { 16297 ShuffleVectorSDNode::commuteMask(Mask); 16298 16299 if (!TLI.isShuffleMaskLegal(Mask, VT)) 16300 return SDValue(); 16301 16302 // shuffle(shuffle(A, B, M0), C, M1) -> shuffle(B, A, M2) 16303 // shuffle(shuffle(A, B, M0), C, M1) -> shuffle(C, A, M2) 16304 // shuffle(shuffle(A, B, M0), C, M1) -> shuffle(C, B, M2) 16305 std::swap(SV0, SV1); 16306 } 16307 16308 // shuffle(shuffle(A, B, M0), C, M1) -> shuffle(A, B, M2) 16309 // shuffle(shuffle(A, B, M0), C, M1) -> shuffle(A, C, M2) 16310 // shuffle(shuffle(A, B, M0), C, M1) -> shuffle(B, C, M2) 16311 return DAG.getVectorShuffle(VT, SDLoc(N), SV0, SV1, Mask); 16312 } 16313 16314 return SDValue(); 16315 } 16316 16317 SDValue DAGCombiner::visitSCALAR_TO_VECTOR(SDNode *N) { 16318 SDValue InVal = N->getOperand(0); 16319 EVT VT = N->getValueType(0); 16320 16321 // Replace a SCALAR_TO_VECTOR(EXTRACT_VECTOR_ELT(V,C0)) pattern 16322 // with a VECTOR_SHUFFLE and possible truncate. 16323 if (InVal.getOpcode() == ISD::EXTRACT_VECTOR_ELT) { 16324 SDValue InVec = InVal->getOperand(0); 16325 SDValue EltNo = InVal->getOperand(1); 16326 auto InVecT = InVec.getValueType(); 16327 if (ConstantSDNode *C0 = dyn_cast<ConstantSDNode>(EltNo)) { 16328 SmallVector<int, 8> NewMask(InVecT.getVectorNumElements(), -1); 16329 int Elt = C0->getZExtValue(); 16330 NewMask[0] = Elt; 16331 SDValue Val; 16332 // If we have an implict truncate do truncate here as long as it's legal. 16333 // if it's not legal, this should 16334 if (VT.getScalarType() != InVal.getValueType() && 16335 InVal.getValueType().isScalarInteger() && 16336 isTypeLegal(VT.getScalarType())) { 16337 Val = 16338 DAG.getNode(ISD::TRUNCATE, SDLoc(InVal), VT.getScalarType(), InVal); 16339 return DAG.getNode(ISD::SCALAR_TO_VECTOR, SDLoc(N), VT, Val); 16340 } 16341 if (VT.getScalarType() == InVecT.getScalarType() && 16342 VT.getVectorNumElements() <= InVecT.getVectorNumElements() && 16343 TLI.isShuffleMaskLegal(NewMask, VT)) { 16344 Val = DAG.getVectorShuffle(InVecT, SDLoc(N), InVec, 16345 DAG.getUNDEF(InVecT), NewMask); 16346 // If the initial vector is the correct size this shuffle is a 16347 // valid result. 16348 if (VT == InVecT) 16349 return Val; 16350 // If not we must truncate the vector. 16351 if (VT.getVectorNumElements() != InVecT.getVectorNumElements()) { 16352 MVT IdxTy = TLI.getVectorIdxTy(DAG.getDataLayout()); 16353 SDValue ZeroIdx = DAG.getConstant(0, SDLoc(N), IdxTy); 16354 EVT SubVT = 16355 EVT::getVectorVT(*DAG.getContext(), InVecT.getVectorElementType(), 16356 VT.getVectorNumElements()); 16357 Val = DAG.getNode(ISD::EXTRACT_SUBVECTOR, SDLoc(N), SubVT, Val, 16358 ZeroIdx); 16359 return Val; 16360 } 16361 } 16362 } 16363 } 16364 16365 return SDValue(); 16366 } 16367 16368 SDValue DAGCombiner::visitINSERT_SUBVECTOR(SDNode *N) { 16369 EVT VT = N->getValueType(0); 16370 SDValue N0 = N->getOperand(0); 16371 SDValue N1 = N->getOperand(1); 16372 SDValue N2 = N->getOperand(2); 16373 16374 // If inserting an UNDEF, just return the original vector. 16375 if (N1.isUndef()) 16376 return N0; 16377 16378 // For nested INSERT_SUBVECTORs, attempt to combine inner node first to allow 16379 // us to pull BITCASTs from input to output. 16380 if (N0.hasOneUse() && N0->getOpcode() == ISD::INSERT_SUBVECTOR) 16381 if (SDValue NN0 = visitINSERT_SUBVECTOR(N0.getNode())) 16382 return DAG.getNode(ISD::INSERT_SUBVECTOR, SDLoc(N), VT, NN0, N1, N2); 16383 16384 // If this is an insert of an extracted vector into an undef vector, we can 16385 // just use the input to the extract. 16386 if (N0.isUndef() && N1.getOpcode() == ISD::EXTRACT_SUBVECTOR && 16387 N1.getOperand(1) == N2 && N1.getOperand(0).getValueType() == VT) 16388 return N1.getOperand(0); 16389 16390 // If we are inserting a bitcast value into an undef, with the same 16391 // number of elements, just use the bitcast input of the extract. 16392 // i.e. INSERT_SUBVECTOR UNDEF (BITCAST N1) N2 -> 16393 // BITCAST (INSERT_SUBVECTOR UNDEF N1 N2) 16394 if (N0.isUndef() && N1.getOpcode() == ISD::BITCAST && 16395 N1.getOperand(0).getOpcode() == ISD::EXTRACT_SUBVECTOR && 16396 N1.getOperand(0).getOperand(1) == N2 && 16397 N1.getOperand(0).getOperand(0).getValueType().getVectorNumElements() == 16398 VT.getVectorNumElements()) { 16399 return DAG.getBitcast(VT, N1.getOperand(0).getOperand(0)); 16400 } 16401 16402 // If both N1 and N2 are bitcast values on which insert_subvector 16403 // would makes sense, pull the bitcast through. 16404 // i.e. INSERT_SUBVECTOR (BITCAST N0) (BITCAST N1) N2 -> 16405 // BITCAST (INSERT_SUBVECTOR N0 N1 N2) 16406 if (N0.getOpcode() == ISD::BITCAST && N1.getOpcode() == ISD::BITCAST) { 16407 SDValue CN0 = N0.getOperand(0); 16408 SDValue CN1 = N1.getOperand(0); 16409 if (CN0.getValueType().getVectorElementType() == 16410 CN1.getValueType().getVectorElementType() && 16411 CN0.getValueType().getVectorNumElements() == 16412 VT.getVectorNumElements()) { 16413 SDValue NewINSERT = DAG.getNode(ISD::INSERT_SUBVECTOR, SDLoc(N), 16414 CN0.getValueType(), CN0, CN1, N2); 16415 return DAG.getBitcast(VT, NewINSERT); 16416 } 16417 } 16418 16419 // Combine INSERT_SUBVECTORs where we are inserting to the same index. 16420 // INSERT_SUBVECTOR( INSERT_SUBVECTOR( Vec, SubOld, Idx ), SubNew, Idx ) 16421 // --> INSERT_SUBVECTOR( Vec, SubNew, Idx ) 16422 if (N0.getOpcode() == ISD::INSERT_SUBVECTOR && 16423 N0.getOperand(1).getValueType() == N1.getValueType() && 16424 N0.getOperand(2) == N2) 16425 return DAG.getNode(ISD::INSERT_SUBVECTOR, SDLoc(N), VT, N0.getOperand(0), 16426 N1, N2); 16427 16428 if (!isa<ConstantSDNode>(N2)) 16429 return SDValue(); 16430 16431 unsigned InsIdx = cast<ConstantSDNode>(N2)->getZExtValue(); 16432 16433 // Canonicalize insert_subvector dag nodes. 16434 // Example: 16435 // (insert_subvector (insert_subvector A, Idx0), Idx1) 16436 // -> (insert_subvector (insert_subvector A, Idx1), Idx0) 16437 if (N0.getOpcode() == ISD::INSERT_SUBVECTOR && N0.hasOneUse() && 16438 N1.getValueType() == N0.getOperand(1).getValueType() && 16439 isa<ConstantSDNode>(N0.getOperand(2))) { 16440 unsigned OtherIdx = N0.getConstantOperandVal(2); 16441 if (InsIdx < OtherIdx) { 16442 // Swap nodes. 16443 SDValue NewOp = DAG.getNode(ISD::INSERT_SUBVECTOR, SDLoc(N), VT, 16444 N0.getOperand(0), N1, N2); 16445 AddToWorklist(NewOp.getNode()); 16446 return DAG.getNode(ISD::INSERT_SUBVECTOR, SDLoc(N0.getNode()), 16447 VT, NewOp, N0.getOperand(1), N0.getOperand(2)); 16448 } 16449 } 16450 16451 // If the input vector is a concatenation, and the insert replaces 16452 // one of the pieces, we can optimize into a single concat_vectors. 16453 if (N0.getOpcode() == ISD::CONCAT_VECTORS && N0.hasOneUse() && 16454 N0.getOperand(0).getValueType() == N1.getValueType()) { 16455 unsigned Factor = N1.getValueType().getVectorNumElements(); 16456 16457 SmallVector<SDValue, 8> Ops(N0->op_begin(), N0->op_end()); 16458 Ops[cast<ConstantSDNode>(N2)->getZExtValue() / Factor] = N1; 16459 16460 return DAG.getNode(ISD::CONCAT_VECTORS, SDLoc(N), VT, Ops); 16461 } 16462 16463 return SDValue(); 16464 } 16465 16466 SDValue DAGCombiner::visitFP_TO_FP16(SDNode *N) { 16467 SDValue N0 = N->getOperand(0); 16468 16469 // fold (fp_to_fp16 (fp16_to_fp op)) -> op 16470 if (N0->getOpcode() == ISD::FP16_TO_FP) 16471 return N0->getOperand(0); 16472 16473 return SDValue(); 16474 } 16475 16476 SDValue DAGCombiner::visitFP16_TO_FP(SDNode *N) { 16477 SDValue N0 = N->getOperand(0); 16478 16479 // fold fp16_to_fp(op & 0xffff) -> fp16_to_fp(op) 16480 if (N0->getOpcode() == ISD::AND) { 16481 ConstantSDNode *AndConst = getAsNonOpaqueConstant(N0.getOperand(1)); 16482 if (AndConst && AndConst->getAPIntValue() == 0xffff) { 16483 return DAG.getNode(ISD::FP16_TO_FP, SDLoc(N), N->getValueType(0), 16484 N0.getOperand(0)); 16485 } 16486 } 16487 16488 return SDValue(); 16489 } 16490 16491 /// Returns a vector_shuffle if it able to transform an AND to a vector_shuffle 16492 /// with the destination vector and a zero vector. 16493 /// e.g. AND V, <0xffffffff, 0, 0xffffffff, 0>. ==> 16494 /// vector_shuffle V, Zero, <0, 4, 2, 4> 16495 SDValue DAGCombiner::XformToShuffleWithZero(SDNode *N) { 16496 EVT VT = N->getValueType(0); 16497 SDValue LHS = N->getOperand(0); 16498 SDValue RHS = peekThroughBitcast(N->getOperand(1)); 16499 SDLoc DL(N); 16500 16501 // Make sure we're not running after operation legalization where it 16502 // may have custom lowered the vector shuffles. 16503 if (LegalOperations) 16504 return SDValue(); 16505 16506 if (N->getOpcode() != ISD::AND) 16507 return SDValue(); 16508 16509 if (RHS.getOpcode() != ISD::BUILD_VECTOR) 16510 return SDValue(); 16511 16512 EVT RVT = RHS.getValueType(); 16513 unsigned NumElts = RHS.getNumOperands(); 16514 16515 // Attempt to create a valid clear mask, splitting the mask into 16516 // sub elements and checking to see if each is 16517 // all zeros or all ones - suitable for shuffle masking. 16518 auto BuildClearMask = [&](int Split) { 16519 int NumSubElts = NumElts * Split; 16520 int NumSubBits = RVT.getScalarSizeInBits() / Split; 16521 16522 SmallVector<int, 8> Indices; 16523 for (int i = 0; i != NumSubElts; ++i) { 16524 int EltIdx = i / Split; 16525 int SubIdx = i % Split; 16526 SDValue Elt = RHS.getOperand(EltIdx); 16527 if (Elt.isUndef()) { 16528 Indices.push_back(-1); 16529 continue; 16530 } 16531 16532 APInt Bits; 16533 if (isa<ConstantSDNode>(Elt)) 16534 Bits = cast<ConstantSDNode>(Elt)->getAPIntValue(); 16535 else if (isa<ConstantFPSDNode>(Elt)) 16536 Bits = cast<ConstantFPSDNode>(Elt)->getValueAPF().bitcastToAPInt(); 16537 else 16538 return SDValue(); 16539 16540 // Extract the sub element from the constant bit mask. 16541 if (DAG.getDataLayout().isBigEndian()) { 16542 Bits.lshrInPlace((Split - SubIdx - 1) * NumSubBits); 16543 } else { 16544 Bits.lshrInPlace(SubIdx * NumSubBits); 16545 } 16546 16547 if (Split > 1) 16548 Bits = Bits.trunc(NumSubBits); 16549 16550 if (Bits.isAllOnesValue()) 16551 Indices.push_back(i); 16552 else if (Bits == 0) 16553 Indices.push_back(i + NumSubElts); 16554 else 16555 return SDValue(); 16556 } 16557 16558 // Let's see if the target supports this vector_shuffle. 16559 EVT ClearSVT = EVT::getIntegerVT(*DAG.getContext(), NumSubBits); 16560 EVT ClearVT = EVT::getVectorVT(*DAG.getContext(), ClearSVT, NumSubElts); 16561 if (!TLI.isVectorClearMaskLegal(Indices, ClearVT)) 16562 return SDValue(); 16563 16564 SDValue Zero = DAG.getConstant(0, DL, ClearVT); 16565 return DAG.getBitcast(VT, DAG.getVectorShuffle(ClearVT, DL, 16566 DAG.getBitcast(ClearVT, LHS), 16567 Zero, Indices)); 16568 }; 16569 16570 // Determine maximum split level (byte level masking). 16571 int MaxSplit = 1; 16572 if (RVT.getScalarSizeInBits() % 8 == 0) 16573 MaxSplit = RVT.getScalarSizeInBits() / 8; 16574 16575 for (int Split = 1; Split <= MaxSplit; ++Split) 16576 if (RVT.getScalarSizeInBits() % Split == 0) 16577 if (SDValue S = BuildClearMask(Split)) 16578 return S; 16579 16580 return SDValue(); 16581 } 16582 16583 /// Visit a binary vector operation, like ADD. 16584 SDValue DAGCombiner::SimplifyVBinOp(SDNode *N) { 16585 assert(N->getValueType(0).isVector() && 16586 "SimplifyVBinOp only works on vectors!"); 16587 16588 SDValue LHS = N->getOperand(0); 16589 SDValue RHS = N->getOperand(1); 16590 SDValue Ops[] = {LHS, RHS}; 16591 16592 // See if we can constant fold the vector operation. 16593 if (SDValue Fold = DAG.FoldConstantVectorArithmetic( 16594 N->getOpcode(), SDLoc(LHS), LHS.getValueType(), Ops, N->getFlags())) 16595 return Fold; 16596 16597 // Try to convert a constant mask AND into a shuffle clear mask. 16598 if (SDValue Shuffle = XformToShuffleWithZero(N)) 16599 return Shuffle; 16600 16601 // Type legalization might introduce new shuffles in the DAG. 16602 // Fold (VBinOp (shuffle (A, Undef, Mask)), (shuffle (B, Undef, Mask))) 16603 // -> (shuffle (VBinOp (A, B)), Undef, Mask). 16604 if (LegalTypes && isa<ShuffleVectorSDNode>(LHS) && 16605 isa<ShuffleVectorSDNode>(RHS) && LHS.hasOneUse() && RHS.hasOneUse() && 16606 LHS.getOperand(1).isUndef() && 16607 RHS.getOperand(1).isUndef()) { 16608 ShuffleVectorSDNode *SVN0 = cast<ShuffleVectorSDNode>(LHS); 16609 ShuffleVectorSDNode *SVN1 = cast<ShuffleVectorSDNode>(RHS); 16610 16611 if (SVN0->getMask().equals(SVN1->getMask())) { 16612 EVT VT = N->getValueType(0); 16613 SDValue UndefVector = LHS.getOperand(1); 16614 SDValue NewBinOp = DAG.getNode(N->getOpcode(), SDLoc(N), VT, 16615 LHS.getOperand(0), RHS.getOperand(0), 16616 N->getFlags()); 16617 AddUsersToWorklist(N); 16618 return DAG.getVectorShuffle(VT, SDLoc(N), NewBinOp, UndefVector, 16619 SVN0->getMask()); 16620 } 16621 } 16622 16623 return SDValue(); 16624 } 16625 16626 SDValue DAGCombiner::SimplifySelect(const SDLoc &DL, SDValue N0, SDValue N1, 16627 SDValue N2) { 16628 assert(N0.getOpcode() ==ISD::SETCC && "First argument must be a SetCC node!"); 16629 16630 SDValue SCC = SimplifySelectCC(DL, N0.getOperand(0), N0.getOperand(1), N1, N2, 16631 cast<CondCodeSDNode>(N0.getOperand(2))->get()); 16632 16633 // If we got a simplified select_cc node back from SimplifySelectCC, then 16634 // break it down into a new SETCC node, and a new SELECT node, and then return 16635 // the SELECT node, since we were called with a SELECT node. 16636 if (SCC.getNode()) { 16637 // Check to see if we got a select_cc back (to turn into setcc/select). 16638 // Otherwise, just return whatever node we got back, like fabs. 16639 if (SCC.getOpcode() == ISD::SELECT_CC) { 16640 SDValue SETCC = DAG.getNode(ISD::SETCC, SDLoc(N0), 16641 N0.getValueType(), 16642 SCC.getOperand(0), SCC.getOperand(1), 16643 SCC.getOperand(4)); 16644 AddToWorklist(SETCC.getNode()); 16645 return DAG.getSelect(SDLoc(SCC), SCC.getValueType(), SETCC, 16646 SCC.getOperand(2), SCC.getOperand(3)); 16647 } 16648 16649 return SCC; 16650 } 16651 return SDValue(); 16652 } 16653 16654 /// Given a SELECT or a SELECT_CC node, where LHS and RHS are the two values 16655 /// being selected between, see if we can simplify the select. Callers of this 16656 /// should assume that TheSelect is deleted if this returns true. As such, they 16657 /// should return the appropriate thing (e.g. the node) back to the top-level of 16658 /// the DAG combiner loop to avoid it being looked at. 16659 bool DAGCombiner::SimplifySelectOps(SDNode *TheSelect, SDValue LHS, 16660 SDValue RHS) { 16661 // fold (select (setcc x, [+-]0.0, *lt), NaN, (fsqrt x)) 16662 // The select + setcc is redundant, because fsqrt returns NaN for X < 0. 16663 if (const ConstantFPSDNode *NaN = isConstOrConstSplatFP(LHS)) { 16664 if (NaN->isNaN() && RHS.getOpcode() == ISD::FSQRT) { 16665 // We have: (select (setcc ?, ?, ?), NaN, (fsqrt ?)) 16666 SDValue Sqrt = RHS; 16667 ISD::CondCode CC; 16668 SDValue CmpLHS; 16669 const ConstantFPSDNode *Zero = nullptr; 16670 16671 if (TheSelect->getOpcode() == ISD::SELECT_CC) { 16672 CC = dyn_cast<CondCodeSDNode>(TheSelect->getOperand(4))->get(); 16673 CmpLHS = TheSelect->getOperand(0); 16674 Zero = isConstOrConstSplatFP(TheSelect->getOperand(1)); 16675 } else { 16676 // SELECT or VSELECT 16677 SDValue Cmp = TheSelect->getOperand(0); 16678 if (Cmp.getOpcode() == ISD::SETCC) { 16679 CC = dyn_cast<CondCodeSDNode>(Cmp.getOperand(2))->get(); 16680 CmpLHS = Cmp.getOperand(0); 16681 Zero = isConstOrConstSplatFP(Cmp.getOperand(1)); 16682 } 16683 } 16684 if (Zero && Zero->isZero() && 16685 Sqrt.getOperand(0) == CmpLHS && (CC == ISD::SETOLT || 16686 CC == ISD::SETULT || CC == ISD::SETLT)) { 16687 // We have: (select (setcc x, [+-]0.0, *lt), NaN, (fsqrt x)) 16688 CombineTo(TheSelect, Sqrt); 16689 return true; 16690 } 16691 } 16692 } 16693 // Cannot simplify select with vector condition 16694 if (TheSelect->getOperand(0).getValueType().isVector()) return false; 16695 16696 // If this is a select from two identical things, try to pull the operation 16697 // through the select. 16698 if (LHS.getOpcode() != RHS.getOpcode() || 16699 !LHS.hasOneUse() || !RHS.hasOneUse()) 16700 return false; 16701 16702 // If this is a load and the token chain is identical, replace the select 16703 // of two loads with a load through a select of the address to load from. 16704 // This triggers in things like "select bool X, 10.0, 123.0" after the FP 16705 // constants have been dropped into the constant pool. 16706 if (LHS.getOpcode() == ISD::LOAD) { 16707 LoadSDNode *LLD = cast<LoadSDNode>(LHS); 16708 LoadSDNode *RLD = cast<LoadSDNode>(RHS); 16709 16710 // Token chains must be identical. 16711 if (LHS.getOperand(0) != RHS.getOperand(0) || 16712 // Do not let this transformation reduce the number of volatile loads. 16713 LLD->isVolatile() || RLD->isVolatile() || 16714 // FIXME: If either is a pre/post inc/dec load, 16715 // we'd need to split out the address adjustment. 16716 LLD->isIndexed() || RLD->isIndexed() || 16717 // If this is an EXTLOAD, the VT's must match. 16718 LLD->getMemoryVT() != RLD->getMemoryVT() || 16719 // If this is an EXTLOAD, the kind of extension must match. 16720 (LLD->getExtensionType() != RLD->getExtensionType() && 16721 // The only exception is if one of the extensions is anyext. 16722 LLD->getExtensionType() != ISD::EXTLOAD && 16723 RLD->getExtensionType() != ISD::EXTLOAD) || 16724 // FIXME: this discards src value information. This is 16725 // over-conservative. It would be beneficial to be able to remember 16726 // both potential memory locations. Since we are discarding 16727 // src value info, don't do the transformation if the memory 16728 // locations are not in the default address space. 16729 LLD->getPointerInfo().getAddrSpace() != 0 || 16730 RLD->getPointerInfo().getAddrSpace() != 0 || 16731 !TLI.isOperationLegalOrCustom(TheSelect->getOpcode(), 16732 LLD->getBasePtr().getValueType())) 16733 return false; 16734 16735 // Check that the select condition doesn't reach either load. If so, 16736 // folding this will induce a cycle into the DAG. If not, this is safe to 16737 // xform, so create a select of the addresses. 16738 SDValue Addr; 16739 if (TheSelect->getOpcode() == ISD::SELECT) { 16740 SDNode *CondNode = TheSelect->getOperand(0).getNode(); 16741 if ((LLD->hasAnyUseOfValue(1) && LLD->isPredecessorOf(CondNode)) || 16742 (RLD->hasAnyUseOfValue(1) && RLD->isPredecessorOf(CondNode))) 16743 return false; 16744 // The loads must not depend on one another. 16745 if (LLD->isPredecessorOf(RLD) || 16746 RLD->isPredecessorOf(LLD)) 16747 return false; 16748 Addr = DAG.getSelect(SDLoc(TheSelect), 16749 LLD->getBasePtr().getValueType(), 16750 TheSelect->getOperand(0), LLD->getBasePtr(), 16751 RLD->getBasePtr()); 16752 } else { // Otherwise SELECT_CC 16753 SDNode *CondLHS = TheSelect->getOperand(0).getNode(); 16754 SDNode *CondRHS = TheSelect->getOperand(1).getNode(); 16755 16756 if ((LLD->hasAnyUseOfValue(1) && 16757 (LLD->isPredecessorOf(CondLHS) || LLD->isPredecessorOf(CondRHS))) || 16758 (RLD->hasAnyUseOfValue(1) && 16759 (RLD->isPredecessorOf(CondLHS) || RLD->isPredecessorOf(CondRHS)))) 16760 return false; 16761 16762 Addr = DAG.getNode(ISD::SELECT_CC, SDLoc(TheSelect), 16763 LLD->getBasePtr().getValueType(), 16764 TheSelect->getOperand(0), 16765 TheSelect->getOperand(1), 16766 LLD->getBasePtr(), RLD->getBasePtr(), 16767 TheSelect->getOperand(4)); 16768 } 16769 16770 SDValue Load; 16771 // It is safe to replace the two loads if they have different alignments, 16772 // but the new load must be the minimum (most restrictive) alignment of the 16773 // inputs. 16774 unsigned Alignment = std::min(LLD->getAlignment(), RLD->getAlignment()); 16775 MachineMemOperand::Flags MMOFlags = LLD->getMemOperand()->getFlags(); 16776 if (!RLD->isInvariant()) 16777 MMOFlags &= ~MachineMemOperand::MOInvariant; 16778 if (!RLD->isDereferenceable()) 16779 MMOFlags &= ~MachineMemOperand::MODereferenceable; 16780 if (LLD->getExtensionType() == ISD::NON_EXTLOAD) { 16781 // FIXME: Discards pointer and AA info. 16782 Load = DAG.getLoad(TheSelect->getValueType(0), SDLoc(TheSelect), 16783 LLD->getChain(), Addr, MachinePointerInfo(), Alignment, 16784 MMOFlags); 16785 } else { 16786 // FIXME: Discards pointer and AA info. 16787 Load = DAG.getExtLoad( 16788 LLD->getExtensionType() == ISD::EXTLOAD ? RLD->getExtensionType() 16789 : LLD->getExtensionType(), 16790 SDLoc(TheSelect), TheSelect->getValueType(0), LLD->getChain(), Addr, 16791 MachinePointerInfo(), LLD->getMemoryVT(), Alignment, MMOFlags); 16792 } 16793 16794 // Users of the select now use the result of the load. 16795 CombineTo(TheSelect, Load); 16796 16797 // Users of the old loads now use the new load's chain. We know the 16798 // old-load value is dead now. 16799 CombineTo(LHS.getNode(), Load.getValue(0), Load.getValue(1)); 16800 CombineTo(RHS.getNode(), Load.getValue(0), Load.getValue(1)); 16801 return true; 16802 } 16803 16804 return false; 16805 } 16806 16807 /// Try to fold an expression of the form (N0 cond N1) ? N2 : N3 to a shift and 16808 /// bitwise 'and'. 16809 SDValue DAGCombiner::foldSelectCCToShiftAnd(const SDLoc &DL, SDValue N0, 16810 SDValue N1, SDValue N2, SDValue N3, 16811 ISD::CondCode CC) { 16812 // If this is a select where the false operand is zero and the compare is a 16813 // check of the sign bit, see if we can perform the "gzip trick": 16814 // select_cc setlt X, 0, A, 0 -> and (sra X, size(X)-1), A 16815 // select_cc setgt X, 0, A, 0 -> and (not (sra X, size(X)-1)), A 16816 EVT XType = N0.getValueType(); 16817 EVT AType = N2.getValueType(); 16818 if (!isNullConstant(N3) || !XType.bitsGE(AType)) 16819 return SDValue(); 16820 16821 // If the comparison is testing for a positive value, we have to invert 16822 // the sign bit mask, so only do that transform if the target has a bitwise 16823 // 'and not' instruction (the invert is free). 16824 if (CC == ISD::SETGT && TLI.hasAndNot(N2)) { 16825 // (X > -1) ? A : 0 16826 // (X > 0) ? X : 0 <-- This is canonical signed max. 16827 if (!(isAllOnesConstant(N1) || (isNullConstant(N1) && N0 == N2))) 16828 return SDValue(); 16829 } else if (CC == ISD::SETLT) { 16830 // (X < 0) ? A : 0 16831 // (X < 1) ? X : 0 <-- This is un-canonicalized signed min. 16832 if (!(isNullConstant(N1) || (isOneConstant(N1) && N0 == N2))) 16833 return SDValue(); 16834 } else { 16835 return SDValue(); 16836 } 16837 16838 // and (sra X, size(X)-1), A -> "and (srl X, C2), A" iff A is a single-bit 16839 // constant. 16840 EVT ShiftAmtTy = getShiftAmountTy(N0.getValueType()); 16841 auto *N2C = dyn_cast<ConstantSDNode>(N2.getNode()); 16842 if (N2C && ((N2C->getAPIntValue() & (N2C->getAPIntValue() - 1)) == 0)) { 16843 unsigned ShCt = XType.getSizeInBits() - N2C->getAPIntValue().logBase2() - 1; 16844 SDValue ShiftAmt = DAG.getConstant(ShCt, DL, ShiftAmtTy); 16845 SDValue Shift = DAG.getNode(ISD::SRL, DL, XType, N0, ShiftAmt); 16846 AddToWorklist(Shift.getNode()); 16847 16848 if (XType.bitsGT(AType)) { 16849 Shift = DAG.getNode(ISD::TRUNCATE, DL, AType, Shift); 16850 AddToWorklist(Shift.getNode()); 16851 } 16852 16853 if (CC == ISD::SETGT) 16854 Shift = DAG.getNOT(DL, Shift, AType); 16855 16856 return DAG.getNode(ISD::AND, DL, AType, Shift, N2); 16857 } 16858 16859 SDValue ShiftAmt = DAG.getConstant(XType.getSizeInBits() - 1, DL, ShiftAmtTy); 16860 SDValue Shift = DAG.getNode(ISD::SRA, DL, XType, N0, ShiftAmt); 16861 AddToWorklist(Shift.getNode()); 16862 16863 if (XType.bitsGT(AType)) { 16864 Shift = DAG.getNode(ISD::TRUNCATE, DL, AType, Shift); 16865 AddToWorklist(Shift.getNode()); 16866 } 16867 16868 if (CC == ISD::SETGT) 16869 Shift = DAG.getNOT(DL, Shift, AType); 16870 16871 return DAG.getNode(ISD::AND, DL, AType, Shift, N2); 16872 } 16873 16874 /// Simplify an expression of the form (N0 cond N1) ? N2 : N3 16875 /// where 'cond' is the comparison specified by CC. 16876 SDValue DAGCombiner::SimplifySelectCC(const SDLoc &DL, SDValue N0, SDValue N1, 16877 SDValue N2, SDValue N3, ISD::CondCode CC, 16878 bool NotExtCompare) { 16879 // (x ? y : y) -> y. 16880 if (N2 == N3) return N2; 16881 16882 EVT VT = N2.getValueType(); 16883 ConstantSDNode *N1C = dyn_cast<ConstantSDNode>(N1.getNode()); 16884 ConstantSDNode *N2C = dyn_cast<ConstantSDNode>(N2.getNode()); 16885 16886 // Determine if the condition we're dealing with is constant 16887 SDValue SCC = SimplifySetCC(getSetCCResultType(N0.getValueType()), 16888 N0, N1, CC, DL, false); 16889 if (SCC.getNode()) AddToWorklist(SCC.getNode()); 16890 16891 if (ConstantSDNode *SCCC = dyn_cast_or_null<ConstantSDNode>(SCC.getNode())) { 16892 // fold select_cc true, x, y -> x 16893 // fold select_cc false, x, y -> y 16894 return !SCCC->isNullValue() ? N2 : N3; 16895 } 16896 16897 // Check to see if we can simplify the select into an fabs node 16898 if (ConstantFPSDNode *CFP = dyn_cast<ConstantFPSDNode>(N1)) { 16899 // Allow either -0.0 or 0.0 16900 if (CFP->isZero()) { 16901 // select (setg[te] X, +/-0.0), X, fneg(X) -> fabs 16902 if ((CC == ISD::SETGE || CC == ISD::SETGT) && 16903 N0 == N2 && N3.getOpcode() == ISD::FNEG && 16904 N2 == N3.getOperand(0)) 16905 return DAG.getNode(ISD::FABS, DL, VT, N0); 16906 16907 // select (setl[te] X, +/-0.0), fneg(X), X -> fabs 16908 if ((CC == ISD::SETLT || CC == ISD::SETLE) && 16909 N0 == N3 && N2.getOpcode() == ISD::FNEG && 16910 N2.getOperand(0) == N3) 16911 return DAG.getNode(ISD::FABS, DL, VT, N3); 16912 } 16913 } 16914 16915 // Turn "(a cond b) ? 1.0f : 2.0f" into "load (tmp + ((a cond b) ? 0 : 4)" 16916 // where "tmp" is a constant pool entry containing an array with 1.0 and 2.0 16917 // in it. This is a win when the constant is not otherwise available because 16918 // it replaces two constant pool loads with one. We only do this if the FP 16919 // type is known to be legal, because if it isn't, then we are before legalize 16920 // types an we want the other legalization to happen first (e.g. to avoid 16921 // messing with soft float) and if the ConstantFP is not legal, because if 16922 // it is legal, we may not need to store the FP constant in a constant pool. 16923 if (ConstantFPSDNode *TV = dyn_cast<ConstantFPSDNode>(N2)) 16924 if (ConstantFPSDNode *FV = dyn_cast<ConstantFPSDNode>(N3)) { 16925 if (TLI.isTypeLegal(N2.getValueType()) && 16926 (TLI.getOperationAction(ISD::ConstantFP, N2.getValueType()) != 16927 TargetLowering::Legal && 16928 !TLI.isFPImmLegal(TV->getValueAPF(), TV->getValueType(0)) && 16929 !TLI.isFPImmLegal(FV->getValueAPF(), FV->getValueType(0))) && 16930 // If both constants have multiple uses, then we won't need to do an 16931 // extra load, they are likely around in registers for other users. 16932 (TV->hasOneUse() || FV->hasOneUse())) { 16933 Constant *Elts[] = { 16934 const_cast<ConstantFP*>(FV->getConstantFPValue()), 16935 const_cast<ConstantFP*>(TV->getConstantFPValue()) 16936 }; 16937 Type *FPTy = Elts[0]->getType(); 16938 const DataLayout &TD = DAG.getDataLayout(); 16939 16940 // Create a ConstantArray of the two constants. 16941 Constant *CA = ConstantArray::get(ArrayType::get(FPTy, 2), Elts); 16942 SDValue CPIdx = 16943 DAG.getConstantPool(CA, TLI.getPointerTy(DAG.getDataLayout()), 16944 TD.getPrefTypeAlignment(FPTy)); 16945 unsigned Alignment = cast<ConstantPoolSDNode>(CPIdx)->getAlignment(); 16946 16947 // Get the offsets to the 0 and 1 element of the array so that we can 16948 // select between them. 16949 SDValue Zero = DAG.getIntPtrConstant(0, DL); 16950 unsigned EltSize = (unsigned)TD.getTypeAllocSize(Elts[0]->getType()); 16951 SDValue One = DAG.getIntPtrConstant(EltSize, SDLoc(FV)); 16952 16953 SDValue Cond = DAG.getSetCC(DL, 16954 getSetCCResultType(N0.getValueType()), 16955 N0, N1, CC); 16956 AddToWorklist(Cond.getNode()); 16957 SDValue CstOffset = DAG.getSelect(DL, Zero.getValueType(), 16958 Cond, One, Zero); 16959 AddToWorklist(CstOffset.getNode()); 16960 CPIdx = DAG.getNode(ISD::ADD, DL, CPIdx.getValueType(), CPIdx, 16961 CstOffset); 16962 AddToWorklist(CPIdx.getNode()); 16963 return DAG.getLoad( 16964 TV->getValueType(0), DL, DAG.getEntryNode(), CPIdx, 16965 MachinePointerInfo::getConstantPool(DAG.getMachineFunction()), 16966 Alignment); 16967 } 16968 } 16969 16970 if (SDValue V = foldSelectCCToShiftAnd(DL, N0, N1, N2, N3, CC)) 16971 return V; 16972 16973 // fold (select_cc seteq (and x, y), 0, 0, A) -> (and (shr (shl x)) A) 16974 // where y is has a single bit set. 16975 // A plaintext description would be, we can turn the SELECT_CC into an AND 16976 // when the condition can be materialized as an all-ones register. Any 16977 // single bit-test can be materialized as an all-ones register with 16978 // shift-left and shift-right-arith. 16979 if (CC == ISD::SETEQ && N0->getOpcode() == ISD::AND && 16980 N0->getValueType(0) == VT && isNullConstant(N1) && isNullConstant(N2)) { 16981 SDValue AndLHS = N0->getOperand(0); 16982 ConstantSDNode *ConstAndRHS = dyn_cast<ConstantSDNode>(N0->getOperand(1)); 16983 if (ConstAndRHS && ConstAndRHS->getAPIntValue().countPopulation() == 1) { 16984 // Shift the tested bit over the sign bit. 16985 const APInt &AndMask = ConstAndRHS->getAPIntValue(); 16986 SDValue ShlAmt = 16987 DAG.getConstant(AndMask.countLeadingZeros(), SDLoc(AndLHS), 16988 getShiftAmountTy(AndLHS.getValueType())); 16989 SDValue Shl = DAG.getNode(ISD::SHL, SDLoc(N0), VT, AndLHS, ShlAmt); 16990 16991 // Now arithmetic right shift it all the way over, so the result is either 16992 // all-ones, or zero. 16993 SDValue ShrAmt = 16994 DAG.getConstant(AndMask.getBitWidth() - 1, SDLoc(Shl), 16995 getShiftAmountTy(Shl.getValueType())); 16996 SDValue Shr = DAG.getNode(ISD::SRA, SDLoc(N0), VT, Shl, ShrAmt); 16997 16998 return DAG.getNode(ISD::AND, DL, VT, Shr, N3); 16999 } 17000 } 17001 17002 // fold select C, 16, 0 -> shl C, 4 17003 if (N2C && isNullConstant(N3) && N2C->getAPIntValue().isPowerOf2() && 17004 TLI.getBooleanContents(N0.getValueType()) == 17005 TargetLowering::ZeroOrOneBooleanContent) { 17006 17007 // If the caller doesn't want us to simplify this into a zext of a compare, 17008 // don't do it. 17009 if (NotExtCompare && N2C->isOne()) 17010 return SDValue(); 17011 17012 // Get a SetCC of the condition 17013 // NOTE: Don't create a SETCC if it's not legal on this target. 17014 if (!LegalOperations || 17015 TLI.isOperationLegal(ISD::SETCC, N0.getValueType())) { 17016 SDValue Temp, SCC; 17017 // cast from setcc result type to select result type 17018 if (LegalTypes) { 17019 SCC = DAG.getSetCC(DL, getSetCCResultType(N0.getValueType()), 17020 N0, N1, CC); 17021 if (N2.getValueType().bitsLT(SCC.getValueType())) 17022 Temp = DAG.getZeroExtendInReg(SCC, SDLoc(N2), 17023 N2.getValueType()); 17024 else 17025 Temp = DAG.getNode(ISD::ZERO_EXTEND, SDLoc(N2), 17026 N2.getValueType(), SCC); 17027 } else { 17028 SCC = DAG.getSetCC(SDLoc(N0), MVT::i1, N0, N1, CC); 17029 Temp = DAG.getNode(ISD::ZERO_EXTEND, SDLoc(N2), 17030 N2.getValueType(), SCC); 17031 } 17032 17033 AddToWorklist(SCC.getNode()); 17034 AddToWorklist(Temp.getNode()); 17035 17036 if (N2C->isOne()) 17037 return Temp; 17038 17039 // shl setcc result by log2 n2c 17040 return DAG.getNode( 17041 ISD::SHL, DL, N2.getValueType(), Temp, 17042 DAG.getConstant(N2C->getAPIntValue().logBase2(), SDLoc(Temp), 17043 getShiftAmountTy(Temp.getValueType()))); 17044 } 17045 } 17046 17047 // Check to see if this is an integer abs. 17048 // select_cc setg[te] X, 0, X, -X -> 17049 // select_cc setgt X, -1, X, -X -> 17050 // select_cc setl[te] X, 0, -X, X -> 17051 // select_cc setlt X, 1, -X, X -> 17052 // Y = sra (X, size(X)-1); xor (add (X, Y), Y) 17053 if (N1C) { 17054 ConstantSDNode *SubC = nullptr; 17055 if (((N1C->isNullValue() && (CC == ISD::SETGT || CC == ISD::SETGE)) || 17056 (N1C->isAllOnesValue() && CC == ISD::SETGT)) && 17057 N0 == N2 && N3.getOpcode() == ISD::SUB && N0 == N3.getOperand(1)) 17058 SubC = dyn_cast<ConstantSDNode>(N3.getOperand(0)); 17059 else if (((N1C->isNullValue() && (CC == ISD::SETLT || CC == ISD::SETLE)) || 17060 (N1C->isOne() && CC == ISD::SETLT)) && 17061 N0 == N3 && N2.getOpcode() == ISD::SUB && N0 == N2.getOperand(1)) 17062 SubC = dyn_cast<ConstantSDNode>(N2.getOperand(0)); 17063 17064 EVT XType = N0.getValueType(); 17065 if (SubC && SubC->isNullValue() && XType.isInteger()) { 17066 SDLoc DL(N0); 17067 SDValue Shift = DAG.getNode(ISD::SRA, DL, XType, 17068 N0, 17069 DAG.getConstant(XType.getSizeInBits() - 1, DL, 17070 getShiftAmountTy(N0.getValueType()))); 17071 SDValue Add = DAG.getNode(ISD::ADD, DL, 17072 XType, N0, Shift); 17073 AddToWorklist(Shift.getNode()); 17074 AddToWorklist(Add.getNode()); 17075 return DAG.getNode(ISD::XOR, DL, XType, Add, Shift); 17076 } 17077 } 17078 17079 // select_cc seteq X, 0, sizeof(X), ctlz(X) -> ctlz(X) 17080 // select_cc seteq X, 0, sizeof(X), ctlz_zero_undef(X) -> ctlz(X) 17081 // select_cc seteq X, 0, sizeof(X), cttz(X) -> cttz(X) 17082 // select_cc seteq X, 0, sizeof(X), cttz_zero_undef(X) -> cttz(X) 17083 // select_cc setne X, 0, ctlz(X), sizeof(X) -> ctlz(X) 17084 // select_cc setne X, 0, ctlz_zero_undef(X), sizeof(X) -> ctlz(X) 17085 // select_cc setne X, 0, cttz(X), sizeof(X) -> cttz(X) 17086 // select_cc setne X, 0, cttz_zero_undef(X), sizeof(X) -> cttz(X) 17087 if (N1C && N1C->isNullValue() && (CC == ISD::SETEQ || CC == ISD::SETNE)) { 17088 SDValue ValueOnZero = N2; 17089 SDValue Count = N3; 17090 // If the condition is NE instead of E, swap the operands. 17091 if (CC == ISD::SETNE) 17092 std::swap(ValueOnZero, Count); 17093 // Check if the value on zero is a constant equal to the bits in the type. 17094 if (auto *ValueOnZeroC = dyn_cast<ConstantSDNode>(ValueOnZero)) { 17095 if (ValueOnZeroC->getAPIntValue() == VT.getSizeInBits()) { 17096 // If the other operand is cttz/cttz_zero_undef of N0, and cttz is 17097 // legal, combine to just cttz. 17098 if ((Count.getOpcode() == ISD::CTTZ || 17099 Count.getOpcode() == ISD::CTTZ_ZERO_UNDEF) && 17100 N0 == Count.getOperand(0) && 17101 (!LegalOperations || TLI.isOperationLegal(ISD::CTTZ, VT))) 17102 return DAG.getNode(ISD::CTTZ, DL, VT, N0); 17103 // If the other operand is ctlz/ctlz_zero_undef of N0, and ctlz is 17104 // legal, combine to just ctlz. 17105 if ((Count.getOpcode() == ISD::CTLZ || 17106 Count.getOpcode() == ISD::CTLZ_ZERO_UNDEF) && 17107 N0 == Count.getOperand(0) && 17108 (!LegalOperations || TLI.isOperationLegal(ISD::CTLZ, VT))) 17109 return DAG.getNode(ISD::CTLZ, DL, VT, N0); 17110 } 17111 } 17112 } 17113 17114 return SDValue(); 17115 } 17116 17117 /// This is a stub for TargetLowering::SimplifySetCC. 17118 SDValue DAGCombiner::SimplifySetCC(EVT VT, SDValue N0, SDValue N1, 17119 ISD::CondCode Cond, const SDLoc &DL, 17120 bool foldBooleans) { 17121 TargetLowering::DAGCombinerInfo 17122 DagCombineInfo(DAG, Level, false, this); 17123 return TLI.SimplifySetCC(VT, N0, N1, Cond, foldBooleans, DagCombineInfo, DL); 17124 } 17125 17126 /// Given an ISD::SDIV node expressing a divide by constant, return 17127 /// a DAG expression to select that will generate the same value by multiplying 17128 /// by a magic number. 17129 /// Ref: "Hacker's Delight" or "The PowerPC Compiler Writer's Guide". 17130 SDValue DAGCombiner::BuildSDIV(SDNode *N) { 17131 // when optimising for minimum size, we don't want to expand a div to a mul 17132 // and a shift. 17133 if (DAG.getMachineFunction().getFunction().optForMinSize()) 17134 return SDValue(); 17135 17136 ConstantSDNode *C = isConstOrConstSplat(N->getOperand(1)); 17137 if (!C) 17138 return SDValue(); 17139 17140 // Avoid division by zero. 17141 if (C->isNullValue()) 17142 return SDValue(); 17143 17144 std::vector<SDNode *> Built; 17145 SDValue S = 17146 TLI.BuildSDIV(N, C->getAPIntValue(), DAG, LegalOperations, &Built); 17147 17148 for (SDNode *N : Built) 17149 AddToWorklist(N); 17150 return S; 17151 } 17152 17153 /// Given an ISD::SDIV node expressing a divide by constant power of 2, return a 17154 /// DAG expression that will generate the same value by right shifting. 17155 SDValue DAGCombiner::BuildSDIVPow2(SDNode *N) { 17156 ConstantSDNode *C = isConstOrConstSplat(N->getOperand(1)); 17157 if (!C) 17158 return SDValue(); 17159 17160 // Avoid division by zero. 17161 if (C->isNullValue()) 17162 return SDValue(); 17163 17164 std::vector<SDNode *> Built; 17165 SDValue S = TLI.BuildSDIVPow2(N, C->getAPIntValue(), DAG, &Built); 17166 17167 for (SDNode *N : Built) 17168 AddToWorklist(N); 17169 return S; 17170 } 17171 17172 /// Given an ISD::UDIV node expressing a divide by constant, return a DAG 17173 /// expression that will generate the same value by multiplying by a magic 17174 /// number. 17175 /// Ref: "Hacker's Delight" or "The PowerPC Compiler Writer's Guide". 17176 SDValue DAGCombiner::BuildUDIV(SDNode *N) { 17177 // when optimising for minimum size, we don't want to expand a div to a mul 17178 // and a shift. 17179 if (DAG.getMachineFunction().getFunction().optForMinSize()) 17180 return SDValue(); 17181 17182 ConstantSDNode *C = isConstOrConstSplat(N->getOperand(1)); 17183 if (!C) 17184 return SDValue(); 17185 17186 // Avoid division by zero. 17187 if (C->isNullValue()) 17188 return SDValue(); 17189 17190 std::vector<SDNode *> Built; 17191 SDValue S = 17192 TLI.BuildUDIV(N, C->getAPIntValue(), DAG, LegalOperations, &Built); 17193 17194 for (SDNode *N : Built) 17195 AddToWorklist(N); 17196 return S; 17197 } 17198 17199 /// Determines the LogBase2 value for a non-null input value using the 17200 /// transform: LogBase2(V) = (EltBits - 1) - ctlz(V). 17201 SDValue DAGCombiner::BuildLogBase2(SDValue V, const SDLoc &DL) { 17202 EVT VT = V.getValueType(); 17203 unsigned EltBits = VT.getScalarSizeInBits(); 17204 SDValue Ctlz = DAG.getNode(ISD::CTLZ, DL, VT, V); 17205 SDValue Base = DAG.getConstant(EltBits - 1, DL, VT); 17206 SDValue LogBase2 = DAG.getNode(ISD::SUB, DL, VT, Base, Ctlz); 17207 return LogBase2; 17208 } 17209 17210 /// Newton iteration for a function: F(X) is X_{i+1} = X_i - F(X_i)/F'(X_i) 17211 /// For the reciprocal, we need to find the zero of the function: 17212 /// F(X) = A X - 1 [which has a zero at X = 1/A] 17213 /// => 17214 /// X_{i+1} = X_i (2 - A X_i) = X_i + X_i (1 - A X_i) [this second form 17215 /// does not require additional intermediate precision] 17216 SDValue DAGCombiner::BuildReciprocalEstimate(SDValue Op, SDNodeFlags Flags) { 17217 if (Level >= AfterLegalizeDAG) 17218 return SDValue(); 17219 17220 // TODO: Handle half and/or extended types? 17221 EVT VT = Op.getValueType(); 17222 if (VT.getScalarType() != MVT::f32 && VT.getScalarType() != MVT::f64) 17223 return SDValue(); 17224 17225 // If estimates are explicitly disabled for this function, we're done. 17226 MachineFunction &MF = DAG.getMachineFunction(); 17227 int Enabled = TLI.getRecipEstimateDivEnabled(VT, MF); 17228 if (Enabled == TLI.ReciprocalEstimate::Disabled) 17229 return SDValue(); 17230 17231 // Estimates may be explicitly enabled for this type with a custom number of 17232 // refinement steps. 17233 int Iterations = TLI.getDivRefinementSteps(VT, MF); 17234 if (SDValue Est = TLI.getRecipEstimate(Op, DAG, Enabled, Iterations)) { 17235 AddToWorklist(Est.getNode()); 17236 17237 if (Iterations) { 17238 EVT VT = Op.getValueType(); 17239 SDLoc DL(Op); 17240 SDValue FPOne = DAG.getConstantFP(1.0, DL, VT); 17241 17242 // Newton iterations: Est = Est + Est (1 - Arg * Est) 17243 for (int i = 0; i < Iterations; ++i) { 17244 SDValue NewEst = DAG.getNode(ISD::FMUL, DL, VT, Op, Est, Flags); 17245 AddToWorklist(NewEst.getNode()); 17246 17247 NewEst = DAG.getNode(ISD::FSUB, DL, VT, FPOne, NewEst, Flags); 17248 AddToWorklist(NewEst.getNode()); 17249 17250 NewEst = DAG.getNode(ISD::FMUL, DL, VT, Est, NewEst, Flags); 17251 AddToWorklist(NewEst.getNode()); 17252 17253 Est = DAG.getNode(ISD::FADD, DL, VT, Est, NewEst, Flags); 17254 AddToWorklist(Est.getNode()); 17255 } 17256 } 17257 return Est; 17258 } 17259 17260 return SDValue(); 17261 } 17262 17263 /// Newton iteration for a function: F(X) is X_{i+1} = X_i - F(X_i)/F'(X_i) 17264 /// For the reciprocal sqrt, we need to find the zero of the function: 17265 /// F(X) = 1/X^2 - A [which has a zero at X = 1/sqrt(A)] 17266 /// => 17267 /// X_{i+1} = X_i (1.5 - A X_i^2 / 2) 17268 /// As a result, we precompute A/2 prior to the iteration loop. 17269 SDValue DAGCombiner::buildSqrtNROneConst(SDValue Arg, SDValue Est, 17270 unsigned Iterations, 17271 SDNodeFlags Flags, bool Reciprocal) { 17272 EVT VT = Arg.getValueType(); 17273 SDLoc DL(Arg); 17274 SDValue ThreeHalves = DAG.getConstantFP(1.5, DL, VT); 17275 17276 // We now need 0.5 * Arg which we can write as (1.5 * Arg - Arg) so that 17277 // this entire sequence requires only one FP constant. 17278 SDValue HalfArg = DAG.getNode(ISD::FMUL, DL, VT, ThreeHalves, Arg, Flags); 17279 AddToWorklist(HalfArg.getNode()); 17280 17281 HalfArg = DAG.getNode(ISD::FSUB, DL, VT, HalfArg, Arg, Flags); 17282 AddToWorklist(HalfArg.getNode()); 17283 17284 // Newton iterations: Est = Est * (1.5 - HalfArg * Est * Est) 17285 for (unsigned i = 0; i < Iterations; ++i) { 17286 SDValue NewEst = DAG.getNode(ISD::FMUL, DL, VT, Est, Est, Flags); 17287 AddToWorklist(NewEst.getNode()); 17288 17289 NewEst = DAG.getNode(ISD::FMUL, DL, VT, HalfArg, NewEst, Flags); 17290 AddToWorklist(NewEst.getNode()); 17291 17292 NewEst = DAG.getNode(ISD::FSUB, DL, VT, ThreeHalves, NewEst, Flags); 17293 AddToWorklist(NewEst.getNode()); 17294 17295 Est = DAG.getNode(ISD::FMUL, DL, VT, Est, NewEst, Flags); 17296 AddToWorklist(Est.getNode()); 17297 } 17298 17299 // If non-reciprocal square root is requested, multiply the result by Arg. 17300 if (!Reciprocal) { 17301 Est = DAG.getNode(ISD::FMUL, DL, VT, Est, Arg, Flags); 17302 AddToWorklist(Est.getNode()); 17303 } 17304 17305 return Est; 17306 } 17307 17308 /// Newton iteration for a function: F(X) is X_{i+1} = X_i - F(X_i)/F'(X_i) 17309 /// For the reciprocal sqrt, we need to find the zero of the function: 17310 /// F(X) = 1/X^2 - A [which has a zero at X = 1/sqrt(A)] 17311 /// => 17312 /// X_{i+1} = (-0.5 * X_i) * (A * X_i * X_i + (-3.0)) 17313 SDValue DAGCombiner::buildSqrtNRTwoConst(SDValue Arg, SDValue Est, 17314 unsigned Iterations, 17315 SDNodeFlags Flags, bool Reciprocal) { 17316 EVT VT = Arg.getValueType(); 17317 SDLoc DL(Arg); 17318 SDValue MinusThree = DAG.getConstantFP(-3.0, DL, VT); 17319 SDValue MinusHalf = DAG.getConstantFP(-0.5, DL, VT); 17320 17321 // This routine must enter the loop below to work correctly 17322 // when (Reciprocal == false). 17323 assert(Iterations > 0); 17324 17325 // Newton iterations for reciprocal square root: 17326 // E = (E * -0.5) * ((A * E) * E + -3.0) 17327 for (unsigned i = 0; i < Iterations; ++i) { 17328 SDValue AE = DAG.getNode(ISD::FMUL, DL, VT, Arg, Est, Flags); 17329 AddToWorklist(AE.getNode()); 17330 17331 SDValue AEE = DAG.getNode(ISD::FMUL, DL, VT, AE, Est, Flags); 17332 AddToWorklist(AEE.getNode()); 17333 17334 SDValue RHS = DAG.getNode(ISD::FADD, DL, VT, AEE, MinusThree, Flags); 17335 AddToWorklist(RHS.getNode()); 17336 17337 // When calculating a square root at the last iteration build: 17338 // S = ((A * E) * -0.5) * ((A * E) * E + -3.0) 17339 // (notice a common subexpression) 17340 SDValue LHS; 17341 if (Reciprocal || (i + 1) < Iterations) { 17342 // RSQRT: LHS = (E * -0.5) 17343 LHS = DAG.getNode(ISD::FMUL, DL, VT, Est, MinusHalf, Flags); 17344 } else { 17345 // SQRT: LHS = (A * E) * -0.5 17346 LHS = DAG.getNode(ISD::FMUL, DL, VT, AE, MinusHalf, Flags); 17347 } 17348 AddToWorklist(LHS.getNode()); 17349 17350 Est = DAG.getNode(ISD::FMUL, DL, VT, LHS, RHS, Flags); 17351 AddToWorklist(Est.getNode()); 17352 } 17353 17354 return Est; 17355 } 17356 17357 /// Build code to calculate either rsqrt(Op) or sqrt(Op). In the latter case 17358 /// Op*rsqrt(Op) is actually computed, so additional postprocessing is needed if 17359 /// Op can be zero. 17360 SDValue DAGCombiner::buildSqrtEstimateImpl(SDValue Op, SDNodeFlags Flags, 17361 bool Reciprocal) { 17362 if (Level >= AfterLegalizeDAG) 17363 return SDValue(); 17364 17365 // TODO: Handle half and/or extended types? 17366 EVT VT = Op.getValueType(); 17367 if (VT.getScalarType() != MVT::f32 && VT.getScalarType() != MVT::f64) 17368 return SDValue(); 17369 17370 // If estimates are explicitly disabled for this function, we're done. 17371 MachineFunction &MF = DAG.getMachineFunction(); 17372 int Enabled = TLI.getRecipEstimateSqrtEnabled(VT, MF); 17373 if (Enabled == TLI.ReciprocalEstimate::Disabled) 17374 return SDValue(); 17375 17376 // Estimates may be explicitly enabled for this type with a custom number of 17377 // refinement steps. 17378 int Iterations = TLI.getSqrtRefinementSteps(VT, MF); 17379 17380 bool UseOneConstNR = false; 17381 if (SDValue Est = 17382 TLI.getSqrtEstimate(Op, DAG, Enabled, Iterations, UseOneConstNR, 17383 Reciprocal)) { 17384 AddToWorklist(Est.getNode()); 17385 17386 if (Iterations) { 17387 Est = UseOneConstNR 17388 ? buildSqrtNROneConst(Op, Est, Iterations, Flags, Reciprocal) 17389 : buildSqrtNRTwoConst(Op, Est, Iterations, Flags, Reciprocal); 17390 17391 if (!Reciprocal) { 17392 // Unfortunately, Est is now NaN if the input was exactly 0.0. 17393 // Select out this case and force the answer to 0.0. 17394 EVT VT = Op.getValueType(); 17395 SDLoc DL(Op); 17396 17397 SDValue FPZero = DAG.getConstantFP(0.0, DL, VT); 17398 EVT CCVT = getSetCCResultType(VT); 17399 SDValue ZeroCmp = DAG.getSetCC(DL, CCVT, Op, FPZero, ISD::SETEQ); 17400 AddToWorklist(ZeroCmp.getNode()); 17401 17402 Est = DAG.getNode(VT.isVector() ? ISD::VSELECT : ISD::SELECT, DL, VT, 17403 ZeroCmp, FPZero, Est); 17404 AddToWorklist(Est.getNode()); 17405 } 17406 } 17407 return Est; 17408 } 17409 17410 return SDValue(); 17411 } 17412 17413 SDValue DAGCombiner::buildRsqrtEstimate(SDValue Op, SDNodeFlags Flags) { 17414 return buildSqrtEstimateImpl(Op, Flags, true); 17415 } 17416 17417 SDValue DAGCombiner::buildSqrtEstimate(SDValue Op, SDNodeFlags Flags) { 17418 return buildSqrtEstimateImpl(Op, Flags, false); 17419 } 17420 17421 /// Return true if base is a frame index, which is known not to alias with 17422 /// anything but itself. Provides base object and offset as results. 17423 static bool findBaseOffset(SDValue Ptr, SDValue &Base, int64_t &Offset, 17424 const GlobalValue *&GV, const void *&CV) { 17425 // Assume it is a primitive operation. 17426 Base = Ptr; Offset = 0; GV = nullptr; CV = nullptr; 17427 17428 // If it's an adding a simple constant then integrate the offset. 17429 if (Base.getOpcode() == ISD::ADD) { 17430 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Base.getOperand(1))) { 17431 Base = Base.getOperand(0); 17432 Offset += C->getSExtValue(); 17433 } 17434 } 17435 17436 // Return the underlying GlobalValue, and update the Offset. Return false 17437 // for GlobalAddressSDNode since the same GlobalAddress may be represented 17438 // by multiple nodes with different offsets. 17439 if (GlobalAddressSDNode *G = dyn_cast<GlobalAddressSDNode>(Base)) { 17440 GV = G->getGlobal(); 17441 Offset += G->getOffset(); 17442 return false; 17443 } 17444 17445 // Return the underlying Constant value, and update the Offset. Return false 17446 // for ConstantSDNodes since the same constant pool entry may be represented 17447 // by multiple nodes with different offsets. 17448 if (ConstantPoolSDNode *C = dyn_cast<ConstantPoolSDNode>(Base)) { 17449 CV = C->isMachineConstantPoolEntry() ? (const void *)C->getMachineCPVal() 17450 : (const void *)C->getConstVal(); 17451 Offset += C->getOffset(); 17452 return false; 17453 } 17454 // If it's any of the following then it can't alias with anything but itself. 17455 return isa<FrameIndexSDNode>(Base); 17456 } 17457 17458 /// Return true if there is any possibility that the two addresses overlap. 17459 bool DAGCombiner::isAlias(LSBaseSDNode *Op0, LSBaseSDNode *Op1) const { 17460 // If they are the same then they must be aliases. 17461 if (Op0->getBasePtr() == Op1->getBasePtr()) return true; 17462 17463 // If they are both volatile then they cannot be reordered. 17464 if (Op0->isVolatile() && Op1->isVolatile()) return true; 17465 17466 // If one operation reads from invariant memory, and the other may store, they 17467 // cannot alias. These should really be checking the equivalent of mayWrite, 17468 // but it only matters for memory nodes other than load /store. 17469 if (Op0->isInvariant() && Op1->writeMem()) 17470 return false; 17471 17472 if (Op1->isInvariant() && Op0->writeMem()) 17473 return false; 17474 17475 unsigned NumBytes0 = Op0->getMemoryVT().getStoreSize(); 17476 unsigned NumBytes1 = Op1->getMemoryVT().getStoreSize(); 17477 17478 // Check for BaseIndexOffset matching. 17479 BaseIndexOffset BasePtr0 = BaseIndexOffset::match(Op0->getBasePtr(), DAG); 17480 BaseIndexOffset BasePtr1 = BaseIndexOffset::match(Op1->getBasePtr(), DAG); 17481 int64_t PtrDiff; 17482 if (BasePtr0.equalBaseIndex(BasePtr1, DAG, PtrDiff)) 17483 return !((NumBytes0 <= PtrDiff) || (PtrDiff + NumBytes1 <= 0)); 17484 17485 // If both BasePtr0 and BasePtr1 are FrameIndexes, we will not be 17486 // able to calculate their relative offset if at least one arises 17487 // from an alloca. However, these allocas cannot overlap and we 17488 // can infer there is no alias. 17489 if (auto *A = dyn_cast<FrameIndexSDNode>(BasePtr0.getBase())) 17490 if (auto *B = dyn_cast<FrameIndexSDNode>(BasePtr1.getBase())) { 17491 MachineFrameInfo &MFI = DAG.getMachineFunction().getFrameInfo(); 17492 // If the base are the same frame index but the we couldn't find a 17493 // constant offset, (indices are different) be conservative. 17494 if (A != B && (!MFI.isFixedObjectIndex(A->getIndex()) || 17495 !MFI.isFixedObjectIndex(B->getIndex()))) 17496 return false; 17497 } 17498 17499 // FIXME: findBaseOffset and ConstantValue/GlobalValue/FrameIndex analysis 17500 // modified to use BaseIndexOffset. 17501 17502 // Gather base node and offset information. 17503 SDValue Base0, Base1; 17504 int64_t Offset0, Offset1; 17505 const GlobalValue *GV0, *GV1; 17506 const void *CV0, *CV1; 17507 bool IsFrameIndex0 = findBaseOffset(Op0->getBasePtr(), 17508 Base0, Offset0, GV0, CV0); 17509 bool IsFrameIndex1 = findBaseOffset(Op1->getBasePtr(), 17510 Base1, Offset1, GV1, CV1); 17511 17512 // If they have the same base address, then check to see if they overlap. 17513 if (Base0 == Base1 || (GV0 && (GV0 == GV1)) || (CV0 && (CV0 == CV1))) 17514 return !((Offset0 + NumBytes0) <= Offset1 || 17515 (Offset1 + NumBytes1) <= Offset0); 17516 17517 // It is possible for different frame indices to alias each other, mostly 17518 // when tail call optimization reuses return address slots for arguments. 17519 // To catch this case, look up the actual index of frame indices to compute 17520 // the real alias relationship. 17521 if (IsFrameIndex0 && IsFrameIndex1) { 17522 MachineFrameInfo &MFI = DAG.getMachineFunction().getFrameInfo(); 17523 Offset0 += MFI.getObjectOffset(cast<FrameIndexSDNode>(Base0)->getIndex()); 17524 Offset1 += MFI.getObjectOffset(cast<FrameIndexSDNode>(Base1)->getIndex()); 17525 return !((Offset0 + NumBytes0) <= Offset1 || 17526 (Offset1 + NumBytes1) <= Offset0); 17527 } 17528 17529 // Otherwise, if we know what the bases are, and they aren't identical, then 17530 // we know they cannot alias. 17531 if ((IsFrameIndex0 || CV0 || GV0) && (IsFrameIndex1 || CV1 || GV1)) 17532 return false; 17533 17534 // If we know required SrcValue1 and SrcValue2 have relatively large alignment 17535 // compared to the size and offset of the access, we may be able to prove they 17536 // do not alias. This check is conservative for now to catch cases created by 17537 // splitting vector types. 17538 int64_t SrcValOffset0 = Op0->getSrcValueOffset(); 17539 int64_t SrcValOffset1 = Op1->getSrcValueOffset(); 17540 unsigned OrigAlignment0 = Op0->getOriginalAlignment(); 17541 unsigned OrigAlignment1 = Op1->getOriginalAlignment(); 17542 if (OrigAlignment0 == OrigAlignment1 && SrcValOffset0 != SrcValOffset1 && 17543 NumBytes0 == NumBytes1 && OrigAlignment0 > NumBytes0) { 17544 int64_t OffAlign0 = SrcValOffset0 % OrigAlignment0; 17545 int64_t OffAlign1 = SrcValOffset1 % OrigAlignment1; 17546 17547 // There is no overlap between these relatively aligned accesses of similar 17548 // size. Return no alias. 17549 if ((OffAlign0 + NumBytes0) <= OffAlign1 || 17550 (OffAlign1 + NumBytes1) <= OffAlign0) 17551 return false; 17552 } 17553 17554 bool UseAA = CombinerGlobalAA.getNumOccurrences() > 0 17555 ? CombinerGlobalAA 17556 : DAG.getSubtarget().useAA(); 17557 #ifndef NDEBUG 17558 if (CombinerAAOnlyFunc.getNumOccurrences() && 17559 CombinerAAOnlyFunc != DAG.getMachineFunction().getName()) 17560 UseAA = false; 17561 #endif 17562 17563 if (UseAA && AA && 17564 Op0->getMemOperand()->getValue() && Op1->getMemOperand()->getValue()) { 17565 // Use alias analysis information. 17566 int64_t MinOffset = std::min(SrcValOffset0, SrcValOffset1); 17567 int64_t Overlap0 = NumBytes0 + SrcValOffset0 - MinOffset; 17568 int64_t Overlap1 = NumBytes1 + SrcValOffset1 - MinOffset; 17569 AliasResult AAResult = 17570 AA->alias(MemoryLocation(Op0->getMemOperand()->getValue(), Overlap0, 17571 UseTBAA ? Op0->getAAInfo() : AAMDNodes()), 17572 MemoryLocation(Op1->getMemOperand()->getValue(), Overlap1, 17573 UseTBAA ? Op1->getAAInfo() : AAMDNodes()) ); 17574 if (AAResult == NoAlias) 17575 return false; 17576 } 17577 17578 // Otherwise we have to assume they alias. 17579 return true; 17580 } 17581 17582 /// Walk up chain skipping non-aliasing memory nodes, 17583 /// looking for aliasing nodes and adding them to the Aliases vector. 17584 void DAGCombiner::GatherAllAliases(SDNode *N, SDValue OriginalChain, 17585 SmallVectorImpl<SDValue> &Aliases) { 17586 SmallVector<SDValue, 8> Chains; // List of chains to visit. 17587 SmallPtrSet<SDNode *, 16> Visited; // Visited node set. 17588 17589 // Get alias information for node. 17590 bool IsLoad = isa<LoadSDNode>(N) && !cast<LSBaseSDNode>(N)->isVolatile(); 17591 17592 // Starting off. 17593 Chains.push_back(OriginalChain); 17594 unsigned Depth = 0; 17595 17596 // Look at each chain and determine if it is an alias. If so, add it to the 17597 // aliases list. If not, then continue up the chain looking for the next 17598 // candidate. 17599 while (!Chains.empty()) { 17600 SDValue Chain = Chains.pop_back_val(); 17601 17602 // For TokenFactor nodes, look at each operand and only continue up the 17603 // chain until we reach the depth limit. 17604 // 17605 // FIXME: The depth check could be made to return the last non-aliasing 17606 // chain we found before we hit a tokenfactor rather than the original 17607 // chain. 17608 if (Depth > TLI.getGatherAllAliasesMaxDepth()) { 17609 Aliases.clear(); 17610 Aliases.push_back(OriginalChain); 17611 return; 17612 } 17613 17614 // Don't bother if we've been before. 17615 if (!Visited.insert(Chain.getNode()).second) 17616 continue; 17617 17618 switch (Chain.getOpcode()) { 17619 case ISD::EntryToken: 17620 // Entry token is ideal chain operand, but handled in FindBetterChain. 17621 break; 17622 17623 case ISD::LOAD: 17624 case ISD::STORE: { 17625 // Get alias information for Chain. 17626 bool IsOpLoad = isa<LoadSDNode>(Chain.getNode()) && 17627 !cast<LSBaseSDNode>(Chain.getNode())->isVolatile(); 17628 17629 // If chain is alias then stop here. 17630 if (!(IsLoad && IsOpLoad) && 17631 isAlias(cast<LSBaseSDNode>(N), cast<LSBaseSDNode>(Chain.getNode()))) { 17632 Aliases.push_back(Chain); 17633 } else { 17634 // Look further up the chain. 17635 Chains.push_back(Chain.getOperand(0)); 17636 ++Depth; 17637 } 17638 break; 17639 } 17640 17641 case ISD::TokenFactor: 17642 // We have to check each of the operands of the token factor for "small" 17643 // token factors, so we queue them up. Adding the operands to the queue 17644 // (stack) in reverse order maintains the original order and increases the 17645 // likelihood that getNode will find a matching token factor (CSE.) 17646 if (Chain.getNumOperands() > 16) { 17647 Aliases.push_back(Chain); 17648 break; 17649 } 17650 for (unsigned n = Chain.getNumOperands(); n;) 17651 Chains.push_back(Chain.getOperand(--n)); 17652 ++Depth; 17653 break; 17654 17655 case ISD::CopyFromReg: 17656 // Forward past CopyFromReg. 17657 Chains.push_back(Chain.getOperand(0)); 17658 ++Depth; 17659 break; 17660 17661 default: 17662 // For all other instructions we will just have to take what we can get. 17663 Aliases.push_back(Chain); 17664 break; 17665 } 17666 } 17667 } 17668 17669 /// Walk up chain skipping non-aliasing memory nodes, looking for a better chain 17670 /// (aliasing node.) 17671 SDValue DAGCombiner::FindBetterChain(SDNode *N, SDValue OldChain) { 17672 if (OptLevel == CodeGenOpt::None) 17673 return OldChain; 17674 17675 // Ops for replacing token factor. 17676 SmallVector<SDValue, 8> Aliases; 17677 17678 // Accumulate all the aliases to this node. 17679 GatherAllAliases(N, OldChain, Aliases); 17680 17681 // If no operands then chain to entry token. 17682 if (Aliases.size() == 0) 17683 return DAG.getEntryNode(); 17684 17685 // If a single operand then chain to it. We don't need to revisit it. 17686 if (Aliases.size() == 1) 17687 return Aliases[0]; 17688 17689 // Construct a custom tailored token factor. 17690 return DAG.getNode(ISD::TokenFactor, SDLoc(N), MVT::Other, Aliases); 17691 } 17692 17693 // This function tries to collect a bunch of potentially interesting 17694 // nodes to improve the chains of, all at once. This might seem 17695 // redundant, as this function gets called when visiting every store 17696 // node, so why not let the work be done on each store as it's visited? 17697 // 17698 // I believe this is mainly important because MergeConsecutiveStores 17699 // is unable to deal with merging stores of different sizes, so unless 17700 // we improve the chains of all the potential candidates up-front 17701 // before running MergeConsecutiveStores, it might only see some of 17702 // the nodes that will eventually be candidates, and then not be able 17703 // to go from a partially-merged state to the desired final 17704 // fully-merged state. 17705 bool DAGCombiner::findBetterNeighborChains(StoreSDNode *St) { 17706 if (OptLevel == CodeGenOpt::None) 17707 return false; 17708 17709 // This holds the base pointer, index, and the offset in bytes from the base 17710 // pointer. 17711 BaseIndexOffset BasePtr = BaseIndexOffset::match(St->getBasePtr(), DAG); 17712 17713 // We must have a base and an offset. 17714 if (!BasePtr.getBase().getNode()) 17715 return false; 17716 17717 // Do not handle stores to undef base pointers. 17718 if (BasePtr.getBase().isUndef()) 17719 return false; 17720 17721 SmallVector<StoreSDNode *, 8> ChainedStores; 17722 ChainedStores.push_back(St); 17723 17724 // Walk up the chain and look for nodes with offsets from the same 17725 // base pointer. Stop when reaching an instruction with a different kind 17726 // or instruction which has a different base pointer. 17727 StoreSDNode *Index = St; 17728 while (Index) { 17729 // If the chain has more than one use, then we can't reorder the mem ops. 17730 if (Index != St && !SDValue(Index, 0)->hasOneUse()) 17731 break; 17732 17733 if (Index->isVolatile() || Index->isIndexed()) 17734 break; 17735 17736 // Find the base pointer and offset for this memory node. 17737 BaseIndexOffset Ptr = BaseIndexOffset::match(Index->getBasePtr(), DAG); 17738 17739 // Check that the base pointer is the same as the original one. 17740 if (!BasePtr.equalBaseIndex(Ptr, DAG)) 17741 break; 17742 17743 // Walk up the chain to find the next store node, ignoring any 17744 // intermediate loads. Any other kind of node will halt the loop. 17745 SDNode *NextInChain = Index->getChain().getNode(); 17746 while (true) { 17747 if (StoreSDNode *STn = dyn_cast<StoreSDNode>(NextInChain)) { 17748 // We found a store node. Use it for the next iteration. 17749 if (STn->isVolatile() || STn->isIndexed()) { 17750 Index = nullptr; 17751 break; 17752 } 17753 ChainedStores.push_back(STn); 17754 Index = STn; 17755 break; 17756 } else if (LoadSDNode *Ldn = dyn_cast<LoadSDNode>(NextInChain)) { 17757 NextInChain = Ldn->getChain().getNode(); 17758 continue; 17759 } else { 17760 Index = nullptr; 17761 break; 17762 } 17763 } // end while 17764 } 17765 17766 // At this point, ChainedStores lists all of the Store nodes 17767 // reachable by iterating up through chain nodes matching the above 17768 // conditions. For each such store identified, try to find an 17769 // earlier chain to attach the store to which won't violate the 17770 // required ordering. 17771 bool MadeChangeToSt = false; 17772 SmallVector<std::pair<StoreSDNode *, SDValue>, 8> BetterChains; 17773 17774 for (StoreSDNode *ChainedStore : ChainedStores) { 17775 SDValue Chain = ChainedStore->getChain(); 17776 SDValue BetterChain = FindBetterChain(ChainedStore, Chain); 17777 17778 if (Chain != BetterChain) { 17779 if (ChainedStore == St) 17780 MadeChangeToSt = true; 17781 BetterChains.push_back(std::make_pair(ChainedStore, BetterChain)); 17782 } 17783 } 17784 17785 // Do all replacements after finding the replacements to make to avoid making 17786 // the chains more complicated by introducing new TokenFactors. 17787 for (auto Replacement : BetterChains) 17788 replaceStoreChain(Replacement.first, Replacement.second); 17789 17790 return MadeChangeToSt; 17791 } 17792 17793 /// This is the entry point for the file. 17794 void SelectionDAG::Combine(CombineLevel Level, AliasAnalysis *AA, 17795 CodeGenOpt::Level OptLevel) { 17796 /// This is the main entry point to this class. 17797 DAGCombiner(*this, AA, OptLevel).Run(Level); 17798 } 17799