1 //===-- TargetLowering.cpp - Implement the TargetLowering class -----------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This implements the TargetLowering class. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/Target/TargetLowering.h" 15 #include "llvm/ADT/BitVector.h" 16 #include "llvm/ADT/STLExtras.h" 17 #include "llvm/CodeGen/CallingConvLower.h" 18 #include "llvm/CodeGen/MachineFrameInfo.h" 19 #include "llvm/CodeGen/MachineFunction.h" 20 #include "llvm/CodeGen/MachineJumpTableInfo.h" 21 #include "llvm/CodeGen/MachineRegisterInfo.h" 22 #include "llvm/CodeGen/SelectionDAG.h" 23 #include "llvm/IR/DataLayout.h" 24 #include "llvm/IR/DerivedTypes.h" 25 #include "llvm/IR/GlobalVariable.h" 26 #include "llvm/IR/LLVMContext.h" 27 #include "llvm/MC/MCAsmInfo.h" 28 #include "llvm/MC/MCExpr.h" 29 #include "llvm/Support/ErrorHandling.h" 30 #include "llvm/Support/KnownBits.h" 31 #include "llvm/Support/MathExtras.h" 32 #include "llvm/Target/TargetLoweringObjectFile.h" 33 #include "llvm/Target/TargetMachine.h" 34 #include "llvm/Target/TargetRegisterInfo.h" 35 #include "llvm/Target/TargetSubtargetInfo.h" 36 #include <cctype> 37 using namespace llvm; 38 39 /// NOTE: The TargetMachine owns TLOF. 40 TargetLowering::TargetLowering(const TargetMachine &tm) 41 : TargetLoweringBase(tm) {} 42 43 const char *TargetLowering::getTargetNodeName(unsigned Opcode) const { 44 return nullptr; 45 } 46 47 bool TargetLowering::isPositionIndependent() const { 48 return getTargetMachine().isPositionIndependent(); 49 } 50 51 /// Check whether a given call node is in tail position within its function. If 52 /// so, it sets Chain to the input chain of the tail call. 53 bool TargetLowering::isInTailCallPosition(SelectionDAG &DAG, SDNode *Node, 54 SDValue &Chain) const { 55 const Function *F = DAG.getMachineFunction().getFunction(); 56 57 // Conservatively require the attributes of the call to match those of 58 // the return. Ignore noalias because it doesn't affect the call sequence. 59 AttributeList CallerAttrs = F->getAttributes(); 60 if (AttrBuilder(CallerAttrs, AttributeList::ReturnIndex) 61 .removeAttribute(Attribute::NoAlias) 62 .hasAttributes()) 63 return false; 64 65 // It's not safe to eliminate the sign / zero extension of the return value. 66 if (CallerAttrs.hasAttribute(AttributeList::ReturnIndex, Attribute::ZExt) || 67 CallerAttrs.hasAttribute(AttributeList::ReturnIndex, Attribute::SExt)) 68 return false; 69 70 // Check if the only use is a function return node. 71 return isUsedByReturnOnly(Node, Chain); 72 } 73 74 bool TargetLowering::parametersInCSRMatch(const MachineRegisterInfo &MRI, 75 const uint32_t *CallerPreservedMask, 76 const SmallVectorImpl<CCValAssign> &ArgLocs, 77 const SmallVectorImpl<SDValue> &OutVals) const { 78 for (unsigned I = 0, E = ArgLocs.size(); I != E; ++I) { 79 const CCValAssign &ArgLoc = ArgLocs[I]; 80 if (!ArgLoc.isRegLoc()) 81 continue; 82 unsigned Reg = ArgLoc.getLocReg(); 83 // Only look at callee saved registers. 84 if (MachineOperand::clobbersPhysReg(CallerPreservedMask, Reg)) 85 continue; 86 // Check that we pass the value used for the caller. 87 // (We look for a CopyFromReg reading a virtual register that is used 88 // for the function live-in value of register Reg) 89 SDValue Value = OutVals[I]; 90 if (Value->getOpcode() != ISD::CopyFromReg) 91 return false; 92 unsigned ArgReg = cast<RegisterSDNode>(Value->getOperand(1))->getReg(); 93 if (MRI.getLiveInPhysReg(ArgReg) != Reg) 94 return false; 95 } 96 return true; 97 } 98 99 /// \brief Set CallLoweringInfo attribute flags based on a call instruction 100 /// and called function attributes. 101 void TargetLoweringBase::ArgListEntry::setAttributes(ImmutableCallSite *CS, 102 unsigned ArgIdx) { 103 IsSExt = CS->paramHasAttr(ArgIdx, Attribute::SExt); 104 IsZExt = CS->paramHasAttr(ArgIdx, Attribute::ZExt); 105 IsInReg = CS->paramHasAttr(ArgIdx, Attribute::InReg); 106 IsSRet = CS->paramHasAttr(ArgIdx, Attribute::StructRet); 107 IsNest = CS->paramHasAttr(ArgIdx, Attribute::Nest); 108 IsByVal = CS->paramHasAttr(ArgIdx, Attribute::ByVal); 109 IsInAlloca = CS->paramHasAttr(ArgIdx, Attribute::InAlloca); 110 IsReturned = CS->paramHasAttr(ArgIdx, Attribute::Returned); 111 IsSwiftSelf = CS->paramHasAttr(ArgIdx, Attribute::SwiftSelf); 112 IsSwiftError = CS->paramHasAttr(ArgIdx, Attribute::SwiftError); 113 Alignment = CS->getParamAlignment(ArgIdx); 114 } 115 116 /// Generate a libcall taking the given operands as arguments and returning a 117 /// result of type RetVT. 118 std::pair<SDValue, SDValue> 119 TargetLowering::makeLibCall(SelectionDAG &DAG, RTLIB::Libcall LC, EVT RetVT, 120 ArrayRef<SDValue> Ops, bool isSigned, 121 const SDLoc &dl, bool doesNotReturn, 122 bool isReturnValueUsed) const { 123 TargetLowering::ArgListTy Args; 124 Args.reserve(Ops.size()); 125 126 TargetLowering::ArgListEntry Entry; 127 for (SDValue Op : Ops) { 128 Entry.Node = Op; 129 Entry.Ty = Entry.Node.getValueType().getTypeForEVT(*DAG.getContext()); 130 Entry.IsSExt = shouldSignExtendTypeInLibCall(Op.getValueType(), isSigned); 131 Entry.IsZExt = !shouldSignExtendTypeInLibCall(Op.getValueType(), isSigned); 132 Args.push_back(Entry); 133 } 134 135 if (LC == RTLIB::UNKNOWN_LIBCALL) 136 report_fatal_error("Unsupported library call operation!"); 137 SDValue Callee = DAG.getExternalSymbol(getLibcallName(LC), 138 getPointerTy(DAG.getDataLayout())); 139 140 Type *RetTy = RetVT.getTypeForEVT(*DAG.getContext()); 141 TargetLowering::CallLoweringInfo CLI(DAG); 142 bool signExtend = shouldSignExtendTypeInLibCall(RetVT, isSigned); 143 CLI.setDebugLoc(dl) 144 .setChain(DAG.getEntryNode()) 145 .setLibCallee(getLibcallCallingConv(LC), RetTy, Callee, std::move(Args)) 146 .setNoReturn(doesNotReturn) 147 .setDiscardResult(!isReturnValueUsed) 148 .setSExtResult(signExtend) 149 .setZExtResult(!signExtend); 150 return LowerCallTo(CLI); 151 } 152 153 /// Soften the operands of a comparison. This code is shared among BR_CC, 154 /// SELECT_CC, and SETCC handlers. 155 void TargetLowering::softenSetCCOperands(SelectionDAG &DAG, EVT VT, 156 SDValue &NewLHS, SDValue &NewRHS, 157 ISD::CondCode &CCCode, 158 const SDLoc &dl) const { 159 assert((VT == MVT::f32 || VT == MVT::f64 || VT == MVT::f128 || VT == MVT::ppcf128) 160 && "Unsupported setcc type!"); 161 162 // Expand into one or more soft-fp libcall(s). 163 RTLIB::Libcall LC1 = RTLIB::UNKNOWN_LIBCALL, LC2 = RTLIB::UNKNOWN_LIBCALL; 164 bool ShouldInvertCC = false; 165 switch (CCCode) { 166 case ISD::SETEQ: 167 case ISD::SETOEQ: 168 LC1 = (VT == MVT::f32) ? RTLIB::OEQ_F32 : 169 (VT == MVT::f64) ? RTLIB::OEQ_F64 : 170 (VT == MVT::f128) ? RTLIB::OEQ_F128 : RTLIB::OEQ_PPCF128; 171 break; 172 case ISD::SETNE: 173 case ISD::SETUNE: 174 LC1 = (VT == MVT::f32) ? RTLIB::UNE_F32 : 175 (VT == MVT::f64) ? RTLIB::UNE_F64 : 176 (VT == MVT::f128) ? RTLIB::UNE_F128 : RTLIB::UNE_PPCF128; 177 break; 178 case ISD::SETGE: 179 case ISD::SETOGE: 180 LC1 = (VT == MVT::f32) ? RTLIB::OGE_F32 : 181 (VT == MVT::f64) ? RTLIB::OGE_F64 : 182 (VT == MVT::f128) ? RTLIB::OGE_F128 : RTLIB::OGE_PPCF128; 183 break; 184 case ISD::SETLT: 185 case ISD::SETOLT: 186 LC1 = (VT == MVT::f32) ? RTLIB::OLT_F32 : 187 (VT == MVT::f64) ? RTLIB::OLT_F64 : 188 (VT == MVT::f128) ? RTLIB::OLT_F128 : RTLIB::OLT_PPCF128; 189 break; 190 case ISD::SETLE: 191 case ISD::SETOLE: 192 LC1 = (VT == MVT::f32) ? RTLIB::OLE_F32 : 193 (VT == MVT::f64) ? RTLIB::OLE_F64 : 194 (VT == MVT::f128) ? RTLIB::OLE_F128 : RTLIB::OLE_PPCF128; 195 break; 196 case ISD::SETGT: 197 case ISD::SETOGT: 198 LC1 = (VT == MVT::f32) ? RTLIB::OGT_F32 : 199 (VT == MVT::f64) ? RTLIB::OGT_F64 : 200 (VT == MVT::f128) ? RTLIB::OGT_F128 : RTLIB::OGT_PPCF128; 201 break; 202 case ISD::SETUO: 203 LC1 = (VT == MVT::f32) ? RTLIB::UO_F32 : 204 (VT == MVT::f64) ? RTLIB::UO_F64 : 205 (VT == MVT::f128) ? RTLIB::UO_F128 : RTLIB::UO_PPCF128; 206 break; 207 case ISD::SETO: 208 LC1 = (VT == MVT::f32) ? RTLIB::O_F32 : 209 (VT == MVT::f64) ? RTLIB::O_F64 : 210 (VT == MVT::f128) ? RTLIB::O_F128 : RTLIB::O_PPCF128; 211 break; 212 case ISD::SETONE: 213 // SETONE = SETOLT | SETOGT 214 LC1 = (VT == MVT::f32) ? RTLIB::OLT_F32 : 215 (VT == MVT::f64) ? RTLIB::OLT_F64 : 216 (VT == MVT::f128) ? RTLIB::OLT_F128 : RTLIB::OLT_PPCF128; 217 LC2 = (VT == MVT::f32) ? RTLIB::OGT_F32 : 218 (VT == MVT::f64) ? RTLIB::OGT_F64 : 219 (VT == MVT::f128) ? RTLIB::OGT_F128 : RTLIB::OGT_PPCF128; 220 break; 221 case ISD::SETUEQ: 222 LC1 = (VT == MVT::f32) ? RTLIB::UO_F32 : 223 (VT == MVT::f64) ? RTLIB::UO_F64 : 224 (VT == MVT::f128) ? RTLIB::UO_F128 : RTLIB::UO_PPCF128; 225 LC2 = (VT == MVT::f32) ? RTLIB::OEQ_F32 : 226 (VT == MVT::f64) ? RTLIB::OEQ_F64 : 227 (VT == MVT::f128) ? RTLIB::OEQ_F128 : RTLIB::OEQ_PPCF128; 228 break; 229 default: 230 // Invert CC for unordered comparisons 231 ShouldInvertCC = true; 232 switch (CCCode) { 233 case ISD::SETULT: 234 LC1 = (VT == MVT::f32) ? RTLIB::OGE_F32 : 235 (VT == MVT::f64) ? RTLIB::OGE_F64 : 236 (VT == MVT::f128) ? RTLIB::OGE_F128 : RTLIB::OGE_PPCF128; 237 break; 238 case ISD::SETULE: 239 LC1 = (VT == MVT::f32) ? RTLIB::OGT_F32 : 240 (VT == MVT::f64) ? RTLIB::OGT_F64 : 241 (VT == MVT::f128) ? RTLIB::OGT_F128 : RTLIB::OGT_PPCF128; 242 break; 243 case ISD::SETUGT: 244 LC1 = (VT == MVT::f32) ? RTLIB::OLE_F32 : 245 (VT == MVT::f64) ? RTLIB::OLE_F64 : 246 (VT == MVT::f128) ? RTLIB::OLE_F128 : RTLIB::OLE_PPCF128; 247 break; 248 case ISD::SETUGE: 249 LC1 = (VT == MVT::f32) ? RTLIB::OLT_F32 : 250 (VT == MVT::f64) ? RTLIB::OLT_F64 : 251 (VT == MVT::f128) ? RTLIB::OLT_F128 : RTLIB::OLT_PPCF128; 252 break; 253 default: llvm_unreachable("Do not know how to soften this setcc!"); 254 } 255 } 256 257 // Use the target specific return value for comparions lib calls. 258 EVT RetVT = getCmpLibcallReturnType(); 259 SDValue Ops[2] = {NewLHS, NewRHS}; 260 NewLHS = makeLibCall(DAG, LC1, RetVT, Ops, false /*sign irrelevant*/, 261 dl).first; 262 NewRHS = DAG.getConstant(0, dl, RetVT); 263 264 CCCode = getCmpLibcallCC(LC1); 265 if (ShouldInvertCC) 266 CCCode = getSetCCInverse(CCCode, /*isInteger=*/true); 267 268 if (LC2 != RTLIB::UNKNOWN_LIBCALL) { 269 SDValue Tmp = DAG.getNode( 270 ISD::SETCC, dl, 271 getSetCCResultType(DAG.getDataLayout(), *DAG.getContext(), RetVT), 272 NewLHS, NewRHS, DAG.getCondCode(CCCode)); 273 NewLHS = makeLibCall(DAG, LC2, RetVT, Ops, false/*sign irrelevant*/, 274 dl).first; 275 NewLHS = DAG.getNode( 276 ISD::SETCC, dl, 277 getSetCCResultType(DAG.getDataLayout(), *DAG.getContext(), RetVT), 278 NewLHS, NewRHS, DAG.getCondCode(getCmpLibcallCC(LC2))); 279 NewLHS = DAG.getNode(ISD::OR, dl, Tmp.getValueType(), Tmp, NewLHS); 280 NewRHS = SDValue(); 281 } 282 } 283 284 /// Return the entry encoding for a jump table in the current function. The 285 /// returned value is a member of the MachineJumpTableInfo::JTEntryKind enum. 286 unsigned TargetLowering::getJumpTableEncoding() const { 287 // In non-pic modes, just use the address of a block. 288 if (!isPositionIndependent()) 289 return MachineJumpTableInfo::EK_BlockAddress; 290 291 // In PIC mode, if the target supports a GPRel32 directive, use it. 292 if (getTargetMachine().getMCAsmInfo()->getGPRel32Directive() != nullptr) 293 return MachineJumpTableInfo::EK_GPRel32BlockAddress; 294 295 // Otherwise, use a label difference. 296 return MachineJumpTableInfo::EK_LabelDifference32; 297 } 298 299 SDValue TargetLowering::getPICJumpTableRelocBase(SDValue Table, 300 SelectionDAG &DAG) const { 301 // If our PIC model is GP relative, use the global offset table as the base. 302 unsigned JTEncoding = getJumpTableEncoding(); 303 304 if ((JTEncoding == MachineJumpTableInfo::EK_GPRel64BlockAddress) || 305 (JTEncoding == MachineJumpTableInfo::EK_GPRel32BlockAddress)) 306 return DAG.getGLOBAL_OFFSET_TABLE(getPointerTy(DAG.getDataLayout())); 307 308 return Table; 309 } 310 311 /// This returns the relocation base for the given PIC jumptable, the same as 312 /// getPICJumpTableRelocBase, but as an MCExpr. 313 const MCExpr * 314 TargetLowering::getPICJumpTableRelocBaseExpr(const MachineFunction *MF, 315 unsigned JTI,MCContext &Ctx) const{ 316 // The normal PIC reloc base is the label at the start of the jump table. 317 return MCSymbolRefExpr::create(MF->getJTISymbol(JTI, Ctx), Ctx); 318 } 319 320 bool 321 TargetLowering::isOffsetFoldingLegal(const GlobalAddressSDNode *GA) const { 322 const TargetMachine &TM = getTargetMachine(); 323 const GlobalValue *GV = GA->getGlobal(); 324 325 // If the address is not even local to this DSO we will have to load it from 326 // a got and then add the offset. 327 if (!TM.shouldAssumeDSOLocal(*GV->getParent(), GV)) 328 return false; 329 330 // If the code is position independent we will have to add a base register. 331 if (isPositionIndependent()) 332 return false; 333 334 // Otherwise we can do it. 335 return true; 336 } 337 338 //===----------------------------------------------------------------------===// 339 // Optimization Methods 340 //===----------------------------------------------------------------------===// 341 342 /// If the specified instruction has a constant integer operand and there are 343 /// bits set in that constant that are not demanded, then clear those bits and 344 /// return true. 345 bool TargetLowering::ShrinkDemandedConstant(SDValue Op, const APInt &Demanded, 346 TargetLoweringOpt &TLO) const { 347 SelectionDAG &DAG = TLO.DAG; 348 SDLoc DL(Op); 349 unsigned Opcode = Op.getOpcode(); 350 351 // Do target-specific constant optimization. 352 if (targetShrinkDemandedConstant(Op, Demanded, TLO)) 353 return TLO.New.getNode(); 354 355 // FIXME: ISD::SELECT, ISD::SELECT_CC 356 switch (Opcode) { 357 default: 358 break; 359 case ISD::XOR: 360 case ISD::AND: 361 case ISD::OR: { 362 auto *Op1C = dyn_cast<ConstantSDNode>(Op.getOperand(1)); 363 if (!Op1C) 364 return false; 365 366 // If this is a 'not' op, don't touch it because that's a canonical form. 367 const APInt &C = Op1C->getAPIntValue(); 368 if (Opcode == ISD::XOR && Demanded.isSubsetOf(C)) 369 return false; 370 371 if (!C.isSubsetOf(Demanded)) { 372 EVT VT = Op.getValueType(); 373 SDValue NewC = DAG.getConstant(Demanded & C, DL, VT); 374 SDValue NewOp = DAG.getNode(Opcode, DL, VT, Op.getOperand(0), NewC); 375 return TLO.CombineTo(Op, NewOp); 376 } 377 378 break; 379 } 380 } 381 382 return false; 383 } 384 385 /// Convert x+y to (VT)((SmallVT)x+(SmallVT)y) if the casts are free. 386 /// This uses isZExtFree and ZERO_EXTEND for the widening cast, but it could be 387 /// generalized for targets with other types of implicit widening casts. 388 bool TargetLowering::ShrinkDemandedOp(SDValue Op, unsigned BitWidth, 389 const APInt &Demanded, 390 TargetLoweringOpt &TLO) const { 391 assert(Op.getNumOperands() == 2 && 392 "ShrinkDemandedOp only supports binary operators!"); 393 assert(Op.getNode()->getNumValues() == 1 && 394 "ShrinkDemandedOp only supports nodes with one result!"); 395 396 SelectionDAG &DAG = TLO.DAG; 397 SDLoc dl(Op); 398 399 // Early return, as this function cannot handle vector types. 400 if (Op.getValueType().isVector()) 401 return false; 402 403 // Don't do this if the node has another user, which may require the 404 // full value. 405 if (!Op.getNode()->hasOneUse()) 406 return false; 407 408 // Search for the smallest integer type with free casts to and from 409 // Op's type. For expedience, just check power-of-2 integer types. 410 const TargetLowering &TLI = DAG.getTargetLoweringInfo(); 411 unsigned DemandedSize = Demanded.getActiveBits(); 412 unsigned SmallVTBits = DemandedSize; 413 if (!isPowerOf2_32(SmallVTBits)) 414 SmallVTBits = NextPowerOf2(SmallVTBits); 415 for (; SmallVTBits < BitWidth; SmallVTBits = NextPowerOf2(SmallVTBits)) { 416 EVT SmallVT = EVT::getIntegerVT(*DAG.getContext(), SmallVTBits); 417 if (TLI.isTruncateFree(Op.getValueType(), SmallVT) && 418 TLI.isZExtFree(SmallVT, Op.getValueType())) { 419 // We found a type with free casts. 420 SDValue X = DAG.getNode( 421 Op.getOpcode(), dl, SmallVT, 422 DAG.getNode(ISD::TRUNCATE, dl, SmallVT, Op.getOperand(0)), 423 DAG.getNode(ISD::TRUNCATE, dl, SmallVT, Op.getOperand(1))); 424 assert(DemandedSize <= SmallVTBits && "Narrowed below demanded bits?"); 425 SDValue Z = DAG.getNode(ISD::ANY_EXTEND, dl, Op.getValueType(), X); 426 return TLO.CombineTo(Op, Z); 427 } 428 } 429 return false; 430 } 431 432 bool 433 TargetLowering::SimplifyDemandedBits(SDNode *User, unsigned OpIdx, 434 const APInt &Demanded, 435 DAGCombinerInfo &DCI, 436 TargetLoweringOpt &TLO) const { 437 SDValue Op = User->getOperand(OpIdx); 438 KnownBits Known; 439 440 if (!SimplifyDemandedBits(Op, Demanded, Known, TLO, 0, true)) 441 return false; 442 443 444 // Old will not always be the same as Op. For example: 445 // 446 // Demanded = 0xffffff 447 // Op = i64 truncate (i32 and x, 0xffffff) 448 // In this case simplify demand bits will want to replace the 'and' node 449 // with the value 'x', which will give us: 450 // Old = i32 and x, 0xffffff 451 // New = x 452 if (TLO.Old.hasOneUse()) { 453 // For the one use case, we just commit the change. 454 DCI.CommitTargetLoweringOpt(TLO); 455 return true; 456 } 457 458 // If Old has more than one use then it must be Op, because the 459 // AssumeSingleUse flag is not propogated to recursive calls of 460 // SimplifyDemanded bits, so the only node with multiple use that 461 // it will attempt to combine will be opt. 462 assert(TLO.Old == Op); 463 464 SmallVector <SDValue, 4> NewOps; 465 for (unsigned i = 0, e = User->getNumOperands(); i != e; ++i) { 466 if (i == OpIdx) { 467 NewOps.push_back(TLO.New); 468 continue; 469 } 470 NewOps.push_back(User->getOperand(i)); 471 } 472 TLO.DAG.UpdateNodeOperands(User, NewOps); 473 // Op has less users now, so we may be able to perform additional combines 474 // with it. 475 DCI.AddToWorklist(Op.getNode()); 476 // User's operands have been updated, so we may be able to do new combines 477 // with it. 478 DCI.AddToWorklist(User); 479 return true; 480 } 481 482 bool TargetLowering::SimplifyDemandedBits(SDValue Op, const APInt &DemandedMask, 483 DAGCombinerInfo &DCI) const { 484 485 SelectionDAG &DAG = DCI.DAG; 486 TargetLoweringOpt TLO(DAG, !DCI.isBeforeLegalize(), 487 !DCI.isBeforeLegalizeOps()); 488 KnownBits Known; 489 490 bool Simplified = SimplifyDemandedBits(Op, DemandedMask, Known, TLO); 491 if (Simplified) 492 DCI.CommitTargetLoweringOpt(TLO); 493 return Simplified; 494 } 495 496 /// Look at Op. At this point, we know that only the DemandedMask bits of the 497 /// result of Op are ever used downstream. If we can use this information to 498 /// simplify Op, create a new simplified DAG node and return true, returning the 499 /// original and new nodes in Old and New. Otherwise, analyze the expression and 500 /// return a mask of Known bits for the expression (used to simplify the 501 /// caller). The Known bits may only be accurate for those bits in the 502 /// DemandedMask. 503 bool TargetLowering::SimplifyDemandedBits(SDValue Op, 504 const APInt &DemandedMask, 505 KnownBits &Known, 506 TargetLoweringOpt &TLO, 507 unsigned Depth, 508 bool AssumeSingleUse) const { 509 unsigned BitWidth = DemandedMask.getBitWidth(); 510 assert(Op.getScalarValueSizeInBits() == BitWidth && 511 "Mask size mismatches value type size!"); 512 APInt NewMask = DemandedMask; 513 SDLoc dl(Op); 514 auto &DL = TLO.DAG.getDataLayout(); 515 516 // Don't know anything. 517 Known = KnownBits(BitWidth); 518 519 // Other users may use these bits. 520 if (!Op.getNode()->hasOneUse() && !AssumeSingleUse) { 521 if (Depth != 0) { 522 // If not at the root, Just compute the Known bits to 523 // simplify things downstream. 524 TLO.DAG.computeKnownBits(Op, Known, Depth); 525 return false; 526 } 527 // If this is the root being simplified, allow it to have multiple uses, 528 // just set the NewMask to all bits. 529 NewMask = APInt::getAllOnesValue(BitWidth); 530 } else if (DemandedMask == 0) { 531 // Not demanding any bits from Op. 532 if (!Op.isUndef()) 533 return TLO.CombineTo(Op, TLO.DAG.getUNDEF(Op.getValueType())); 534 return false; 535 } else if (Depth == 6) { // Limit search depth. 536 return false; 537 } 538 539 KnownBits Known2, KnownOut; 540 switch (Op.getOpcode()) { 541 case ISD::Constant: 542 // We know all of the bits for a constant! 543 Known.One = cast<ConstantSDNode>(Op)->getAPIntValue(); 544 Known.Zero = ~Known.One; 545 return false; // Don't fall through, will infinitely loop. 546 case ISD::BUILD_VECTOR: 547 // Collect the known bits that are shared by every constant vector element. 548 Known.Zero.setAllBits(); Known.One.setAllBits(); 549 for (SDValue SrcOp : Op->ops()) { 550 if (!isa<ConstantSDNode>(SrcOp)) { 551 // We can only handle all constant values - bail out with no known bits. 552 Known = KnownBits(BitWidth); 553 return false; 554 } 555 Known2.One = cast<ConstantSDNode>(SrcOp)->getAPIntValue(); 556 Known2.Zero = ~Known2.One; 557 558 // BUILD_VECTOR can implicitly truncate sources, we must handle this. 559 if (Known2.One.getBitWidth() != BitWidth) { 560 assert(Known2.getBitWidth() > BitWidth && 561 "Expected BUILD_VECTOR implicit truncation"); 562 Known2 = Known2.trunc(BitWidth); 563 } 564 565 // Known bits are the values that are shared by every element. 566 // TODO: support per-element known bits. 567 Known.One &= Known2.One; 568 Known.Zero &= Known2.Zero; 569 } 570 return false; // Don't fall through, will infinitely loop. 571 case ISD::AND: 572 // If the RHS is a constant, check to see if the LHS would be zero without 573 // using the bits from the RHS. Below, we use knowledge about the RHS to 574 // simplify the LHS, here we're using information from the LHS to simplify 575 // the RHS. 576 if (ConstantSDNode *RHSC = isConstOrConstSplat(Op.getOperand(1))) { 577 SDValue Op0 = Op.getOperand(0); 578 KnownBits LHSKnown; 579 // Do not increment Depth here; that can cause an infinite loop. 580 TLO.DAG.computeKnownBits(Op0, LHSKnown, Depth); 581 // If the LHS already has zeros where RHSC does, this and is dead. 582 if ((LHSKnown.Zero & NewMask) == (~RHSC->getAPIntValue() & NewMask)) 583 return TLO.CombineTo(Op, Op0); 584 585 // If any of the set bits in the RHS are known zero on the LHS, shrink 586 // the constant. 587 if (ShrinkDemandedConstant(Op, ~LHSKnown.Zero & NewMask, TLO)) 588 return true; 589 590 // Bitwise-not (xor X, -1) is a special case: we don't usually shrink its 591 // constant, but if this 'and' is only clearing bits that were just set by 592 // the xor, then this 'and' can be eliminated by shrinking the mask of 593 // the xor. For example, for a 32-bit X: 594 // and (xor (srl X, 31), -1), 1 --> xor (srl X, 31), 1 595 if (isBitwiseNot(Op0) && Op0.hasOneUse() && 596 LHSKnown.One == ~RHSC->getAPIntValue()) { 597 SDValue Xor = TLO.DAG.getNode(ISD::XOR, dl, Op.getValueType(), 598 Op0.getOperand(0), Op.getOperand(1)); 599 return TLO.CombineTo(Op, Xor); 600 } 601 } 602 603 if (SimplifyDemandedBits(Op.getOperand(1), NewMask, Known, TLO, Depth+1)) 604 return true; 605 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 606 if (SimplifyDemandedBits(Op.getOperand(0), ~Known.Zero & NewMask, 607 Known2, TLO, Depth+1)) 608 return true; 609 assert(!Known2.hasConflict() && "Bits known to be one AND zero?"); 610 611 // If all of the demanded bits are known one on one side, return the other. 612 // These bits cannot contribute to the result of the 'and'. 613 if (NewMask.isSubsetOf(Known2.Zero | Known.One)) 614 return TLO.CombineTo(Op, Op.getOperand(0)); 615 if (NewMask.isSubsetOf(Known.Zero | Known2.One)) 616 return TLO.CombineTo(Op, Op.getOperand(1)); 617 // If all of the demanded bits in the inputs are known zeros, return zero. 618 if (NewMask.isSubsetOf(Known.Zero | Known2.Zero)) 619 return TLO.CombineTo(Op, TLO.DAG.getConstant(0, dl, Op.getValueType())); 620 // If the RHS is a constant, see if we can simplify it. 621 if (ShrinkDemandedConstant(Op, ~Known2.Zero & NewMask, TLO)) 622 return true; 623 // If the operation can be done in a smaller type, do so. 624 if (ShrinkDemandedOp(Op, BitWidth, NewMask, TLO)) 625 return true; 626 627 // Output known-1 bits are only known if set in both the LHS & RHS. 628 Known.One &= Known2.One; 629 // Output known-0 are known to be clear if zero in either the LHS | RHS. 630 Known.Zero |= Known2.Zero; 631 break; 632 case ISD::OR: 633 if (SimplifyDemandedBits(Op.getOperand(1), NewMask, Known, TLO, Depth+1)) 634 return true; 635 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 636 if (SimplifyDemandedBits(Op.getOperand(0), ~Known.One & NewMask, 637 Known2, TLO, Depth+1)) 638 return true; 639 assert(!Known2.hasConflict() && "Bits known to be one AND zero?"); 640 641 // If all of the demanded bits are known zero on one side, return the other. 642 // These bits cannot contribute to the result of the 'or'. 643 if (NewMask.isSubsetOf(Known2.One | Known.Zero)) 644 return TLO.CombineTo(Op, Op.getOperand(0)); 645 if (NewMask.isSubsetOf(Known.One | Known2.Zero)) 646 return TLO.CombineTo(Op, Op.getOperand(1)); 647 // If the RHS is a constant, see if we can simplify it. 648 if (ShrinkDemandedConstant(Op, NewMask, TLO)) 649 return true; 650 // If the operation can be done in a smaller type, do so. 651 if (ShrinkDemandedOp(Op, BitWidth, NewMask, TLO)) 652 return true; 653 654 // Output known-0 bits are only known if clear in both the LHS & RHS. 655 Known.Zero &= Known2.Zero; 656 // Output known-1 are known to be set if set in either the LHS | RHS. 657 Known.One |= Known2.One; 658 break; 659 case ISD::XOR: { 660 if (SimplifyDemandedBits(Op.getOperand(1), NewMask, Known, TLO, Depth+1)) 661 return true; 662 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 663 if (SimplifyDemandedBits(Op.getOperand(0), NewMask, Known2, TLO, Depth+1)) 664 return true; 665 assert(!Known2.hasConflict() && "Bits known to be one AND zero?"); 666 667 // If all of the demanded bits are known zero on one side, return the other. 668 // These bits cannot contribute to the result of the 'xor'. 669 if (NewMask.isSubsetOf(Known.Zero)) 670 return TLO.CombineTo(Op, Op.getOperand(0)); 671 if (NewMask.isSubsetOf(Known2.Zero)) 672 return TLO.CombineTo(Op, Op.getOperand(1)); 673 // If the operation can be done in a smaller type, do so. 674 if (ShrinkDemandedOp(Op, BitWidth, NewMask, TLO)) 675 return true; 676 677 // If all of the unknown bits are known to be zero on one side or the other 678 // (but not both) turn this into an *inclusive* or. 679 // e.g. (A & C1)^(B & C2) -> (A & C1)|(B & C2) iff C1&C2 == 0 680 if ((NewMask & ~Known.Zero & ~Known2.Zero) == 0) 681 return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::OR, dl, Op.getValueType(), 682 Op.getOperand(0), 683 Op.getOperand(1))); 684 685 // Output known-0 bits are known if clear or set in both the LHS & RHS. 686 KnownOut.Zero = (Known.Zero & Known2.Zero) | (Known.One & Known2.One); 687 // Output known-1 are known to be set if set in only one of the LHS, RHS. 688 KnownOut.One = (Known.Zero & Known2.One) | (Known.One & Known2.Zero); 689 690 // If all of the demanded bits on one side are known, and all of the set 691 // bits on that side are also known to be set on the other side, turn this 692 // into an AND, as we know the bits will be cleared. 693 // e.g. (X | C1) ^ C2 --> (X | C1) & ~C2 iff (C1&C2) == C2 694 // NB: it is okay if more bits are known than are requested 695 if (NewMask.isSubsetOf(Known.Zero|Known.One)) { // all known on one side 696 if (Known.One == Known2.One) { // set bits are the same on both sides 697 EVT VT = Op.getValueType(); 698 SDValue ANDC = TLO.DAG.getConstant(~Known.One & NewMask, dl, VT); 699 return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::AND, dl, VT, 700 Op.getOperand(0), ANDC)); 701 } 702 } 703 704 // If the RHS is a constant, see if we can change it. Don't alter a -1 705 // constant because that's a 'not' op, and that is better for combining and 706 // codegen. 707 ConstantSDNode *C = isConstOrConstSplat(Op.getOperand(1)); 708 if (C && !C->isAllOnesValue()) { 709 if (NewMask.isSubsetOf(C->getAPIntValue())) { 710 // We're flipping all demanded bits. Flip the undemanded bits too. 711 SDValue New = TLO.DAG.getNOT(dl, Op.getOperand(0), Op.getValueType()); 712 return TLO.CombineTo(Op, New); 713 } 714 // If we can't turn this into a 'not', try to shrink the constant. 715 if (ShrinkDemandedConstant(Op, NewMask, TLO)) 716 return true; 717 } 718 719 Known = std::move(KnownOut); 720 break; 721 } 722 case ISD::SELECT: 723 if (SimplifyDemandedBits(Op.getOperand(2), NewMask, Known, TLO, Depth+1)) 724 return true; 725 if (SimplifyDemandedBits(Op.getOperand(1), NewMask, Known2, TLO, Depth+1)) 726 return true; 727 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 728 assert(!Known2.hasConflict() && "Bits known to be one AND zero?"); 729 730 // If the operands are constants, see if we can simplify them. 731 if (ShrinkDemandedConstant(Op, NewMask, TLO)) 732 return true; 733 734 // Only known if known in both the LHS and RHS. 735 Known.One &= Known2.One; 736 Known.Zero &= Known2.Zero; 737 break; 738 case ISD::SELECT_CC: 739 if (SimplifyDemandedBits(Op.getOperand(3), NewMask, Known, TLO, Depth+1)) 740 return true; 741 if (SimplifyDemandedBits(Op.getOperand(2), NewMask, Known2, TLO, Depth+1)) 742 return true; 743 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 744 assert(!Known2.hasConflict() && "Bits known to be one AND zero?"); 745 746 // If the operands are constants, see if we can simplify them. 747 if (ShrinkDemandedConstant(Op, NewMask, TLO)) 748 return true; 749 750 // Only known if known in both the LHS and RHS. 751 Known.One &= Known2.One; 752 Known.Zero &= Known2.Zero; 753 break; 754 case ISD::SETCC: { 755 SDValue Op0 = Op.getOperand(0); 756 SDValue Op1 = Op.getOperand(1); 757 ISD::CondCode CC = cast<CondCodeSDNode>(Op.getOperand(2))->get(); 758 // If (1) we only need the sign-bit, (2) the setcc operands are the same 759 // width as the setcc result, and (3) the result of a setcc conforms to 0 or 760 // -1, we may be able to bypass the setcc. 761 if (NewMask.isSignMask() && Op0.getScalarValueSizeInBits() == BitWidth && 762 getBooleanContents(Op.getValueType()) == 763 BooleanContent::ZeroOrNegativeOneBooleanContent) { 764 // If we're testing X < 0, then this compare isn't needed - just use X! 765 // FIXME: We're limiting to integer types here, but this should also work 766 // if we don't care about FP signed-zero. The use of SETLT with FP means 767 // that we don't care about NaNs. 768 if (CC == ISD::SETLT && Op1.getValueType().isInteger() && 769 (isNullConstant(Op1) || ISD::isBuildVectorAllZeros(Op1.getNode()))) 770 return TLO.CombineTo(Op, Op0); 771 772 // TODO: Should we check for other forms of sign-bit comparisons? 773 // Examples: X <= -1, X >= 0 774 } 775 if (getBooleanContents(Op0.getValueType()) == 776 TargetLowering::ZeroOrOneBooleanContent && 777 BitWidth > 1) 778 Known.Zero.setBitsFrom(1); 779 break; 780 } 781 case ISD::SHL: 782 if (ConstantSDNode *SA = isConstOrConstSplat(Op.getOperand(1))) { 783 SDValue InOp = Op.getOperand(0); 784 785 // If the shift count is an invalid immediate, don't do anything. 786 if (SA->getAPIntValue().uge(BitWidth)) 787 break; 788 789 unsigned ShAmt = SA->getZExtValue(); 790 791 // If this is ((X >>u C1) << ShAmt), see if we can simplify this into a 792 // single shift. We can do this if the bottom bits (which are shifted 793 // out) are never demanded. 794 if (InOp.getOpcode() == ISD::SRL) { 795 if (ConstantSDNode *SA2 = isConstOrConstSplat(InOp.getOperand(1))) { 796 if (ShAmt && (NewMask & APInt::getLowBitsSet(BitWidth, ShAmt)) == 0) { 797 if (SA2->getAPIntValue().ult(BitWidth)) { 798 unsigned C1 = SA2->getZExtValue(); 799 unsigned Opc = ISD::SHL; 800 int Diff = ShAmt-C1; 801 if (Diff < 0) { 802 Diff = -Diff; 803 Opc = ISD::SRL; 804 } 805 806 SDValue NewSA = 807 TLO.DAG.getConstant(Diff, dl, Op.getOperand(1).getValueType()); 808 EVT VT = Op.getValueType(); 809 return TLO.CombineTo(Op, TLO.DAG.getNode(Opc, dl, VT, 810 InOp.getOperand(0), 811 NewSA)); 812 } 813 } 814 } 815 } 816 817 if (SimplifyDemandedBits(InOp, NewMask.lshr(ShAmt), Known, TLO, Depth+1)) 818 return true; 819 820 // Convert (shl (anyext x, c)) to (anyext (shl x, c)) if the high bits 821 // are not demanded. This will likely allow the anyext to be folded away. 822 if (InOp.getNode()->getOpcode() == ISD::ANY_EXTEND) { 823 SDValue InnerOp = InOp.getOperand(0); 824 EVT InnerVT = InnerOp.getValueType(); 825 unsigned InnerBits = InnerVT.getScalarSizeInBits(); 826 if (ShAmt < InnerBits && NewMask.getActiveBits() <= InnerBits && 827 isTypeDesirableForOp(ISD::SHL, InnerVT)) { 828 EVT ShTy = getShiftAmountTy(InnerVT, DL); 829 if (!APInt(BitWidth, ShAmt).isIntN(ShTy.getSizeInBits())) 830 ShTy = InnerVT; 831 SDValue NarrowShl = 832 TLO.DAG.getNode(ISD::SHL, dl, InnerVT, InnerOp, 833 TLO.DAG.getConstant(ShAmt, dl, ShTy)); 834 return 835 TLO.CombineTo(Op, 836 TLO.DAG.getNode(ISD::ANY_EXTEND, dl, Op.getValueType(), 837 NarrowShl)); 838 } 839 // Repeat the SHL optimization above in cases where an extension 840 // intervenes: (shl (anyext (shr x, c1)), c2) to 841 // (shl (anyext x), c2-c1). This requires that the bottom c1 bits 842 // aren't demanded (as above) and that the shifted upper c1 bits of 843 // x aren't demanded. 844 if (InOp.hasOneUse() && InnerOp.getOpcode() == ISD::SRL && 845 InnerOp.hasOneUse()) { 846 if (ConstantSDNode *SA2 = isConstOrConstSplat(InnerOp.getOperand(1))) { 847 unsigned InnerShAmt = SA2->getLimitedValue(InnerBits); 848 if (InnerShAmt < ShAmt && 849 InnerShAmt < InnerBits && 850 NewMask.getActiveBits() <= (InnerBits - InnerShAmt + ShAmt) && 851 NewMask.countTrailingZeros() >= ShAmt) { 852 SDValue NewSA = 853 TLO.DAG.getConstant(ShAmt - InnerShAmt, dl, 854 Op.getOperand(1).getValueType()); 855 EVT VT = Op.getValueType(); 856 SDValue NewExt = TLO.DAG.getNode(ISD::ANY_EXTEND, dl, VT, 857 InnerOp.getOperand(0)); 858 return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::SHL, dl, VT, 859 NewExt, NewSA)); 860 } 861 } 862 } 863 } 864 865 Known.Zero <<= ShAmt; 866 Known.One <<= ShAmt; 867 // low bits known zero. 868 Known.Zero.setLowBits(ShAmt); 869 } 870 break; 871 case ISD::SRL: 872 if (ConstantSDNode *SA = isConstOrConstSplat(Op.getOperand(1))) { 873 SDValue InOp = Op.getOperand(0); 874 875 // If the shift count is an invalid immediate, don't do anything. 876 if (SA->getAPIntValue().uge(BitWidth)) 877 break; 878 879 unsigned ShAmt = SA->getZExtValue(); 880 APInt InDemandedMask = (NewMask << ShAmt); 881 882 // If the shift is exact, then it does demand the low bits (and knows that 883 // they are zero). 884 if (Op->getFlags().hasExact()) 885 InDemandedMask.setLowBits(ShAmt); 886 887 // If this is ((X << C1) >>u ShAmt), see if we can simplify this into a 888 // single shift. We can do this if the top bits (which are shifted out) 889 // are never demanded. 890 if (InOp.getOpcode() == ISD::SHL) { 891 if (ConstantSDNode *SA2 = isConstOrConstSplat(InOp.getOperand(1))) { 892 if (ShAmt && 893 (NewMask & APInt::getHighBitsSet(BitWidth, ShAmt)) == 0) { 894 if (SA2->getAPIntValue().ult(BitWidth)) { 895 unsigned C1 = SA2->getZExtValue(); 896 unsigned Opc = ISD::SRL; 897 int Diff = ShAmt-C1; 898 if (Diff < 0) { 899 Diff = -Diff; 900 Opc = ISD::SHL; 901 } 902 903 SDValue NewSA = 904 TLO.DAG.getConstant(Diff, dl, Op.getOperand(1).getValueType()); 905 EVT VT = Op.getValueType(); 906 return TLO.CombineTo(Op, TLO.DAG.getNode(Opc, dl, VT, 907 InOp.getOperand(0), 908 NewSA)); 909 } 910 } 911 } 912 } 913 914 // Compute the new bits that are at the top now. 915 if (SimplifyDemandedBits(InOp, InDemandedMask, Known, TLO, Depth+1)) 916 return true; 917 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 918 Known.Zero.lshrInPlace(ShAmt); 919 Known.One.lshrInPlace(ShAmt); 920 921 Known.Zero.setHighBits(ShAmt); // High bits known zero. 922 } 923 break; 924 case ISD::SRA: 925 // If this is an arithmetic shift right and only the low-bit is set, we can 926 // always convert this into a logical shr, even if the shift amount is 927 // variable. The low bit of the shift cannot be an input sign bit unless 928 // the shift amount is >= the size of the datatype, which is undefined. 929 if (NewMask.isOneValue()) 930 return TLO.CombineTo(Op, 931 TLO.DAG.getNode(ISD::SRL, dl, Op.getValueType(), 932 Op.getOperand(0), Op.getOperand(1))); 933 934 if (ConstantSDNode *SA = isConstOrConstSplat(Op.getOperand(1))) { 935 EVT VT = Op.getValueType(); 936 937 // If the shift count is an invalid immediate, don't do anything. 938 if (SA->getAPIntValue().uge(BitWidth)) 939 break; 940 941 unsigned ShAmt = SA->getZExtValue(); 942 APInt InDemandedMask = (NewMask << ShAmt); 943 944 // If the shift is exact, then it does demand the low bits (and knows that 945 // they are zero). 946 if (Op->getFlags().hasExact()) 947 InDemandedMask.setLowBits(ShAmt); 948 949 // If any of the demanded bits are produced by the sign extension, we also 950 // demand the input sign bit. 951 if (NewMask.countLeadingZeros() < ShAmt) 952 InDemandedMask.setSignBit(); 953 954 if (SimplifyDemandedBits(Op.getOperand(0), InDemandedMask, Known, TLO, 955 Depth+1)) 956 return true; 957 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 958 Known.Zero.lshrInPlace(ShAmt); 959 Known.One.lshrInPlace(ShAmt); 960 961 // If the input sign bit is known to be zero, or if none of the top bits 962 // are demanded, turn this into an unsigned shift right. 963 if (Known.Zero[BitWidth - ShAmt - 1] || 964 NewMask.countLeadingZeros() >= ShAmt) { 965 SDNodeFlags Flags; 966 Flags.setExact(Op->getFlags().hasExact()); 967 return TLO.CombineTo(Op, 968 TLO.DAG.getNode(ISD::SRL, dl, VT, Op.getOperand(0), 969 Op.getOperand(1), Flags)); 970 } 971 972 int Log2 = NewMask.exactLogBase2(); 973 if (Log2 >= 0) { 974 // The bit must come from the sign. 975 SDValue NewSA = 976 TLO.DAG.getConstant(BitWidth - 1 - Log2, dl, 977 Op.getOperand(1).getValueType()); 978 return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::SRL, dl, VT, 979 Op.getOperand(0), NewSA)); 980 } 981 982 if (Known.One[BitWidth - ShAmt - 1]) 983 // New bits are known one. 984 Known.One.setHighBits(ShAmt); 985 } 986 break; 987 case ISD::SIGN_EXTEND_INREG: { 988 EVT ExVT = cast<VTSDNode>(Op.getOperand(1))->getVT(); 989 990 APInt MsbMask = APInt::getHighBitsSet(BitWidth, 1); 991 // If we only care about the highest bit, don't bother shifting right. 992 if (MsbMask == NewMask) { 993 unsigned ShAmt = ExVT.getScalarSizeInBits(); 994 SDValue InOp = Op.getOperand(0); 995 unsigned VTBits = Op->getValueType(0).getScalarSizeInBits(); 996 bool AlreadySignExtended = 997 TLO.DAG.ComputeNumSignBits(InOp) >= VTBits-ShAmt+1; 998 // However if the input is already sign extended we expect the sign 999 // extension to be dropped altogether later and do not simplify. 1000 if (!AlreadySignExtended) { 1001 // Compute the correct shift amount type, which must be getShiftAmountTy 1002 // for scalar types after legalization. 1003 EVT ShiftAmtTy = Op.getValueType(); 1004 if (TLO.LegalTypes() && !ShiftAmtTy.isVector()) 1005 ShiftAmtTy = getShiftAmountTy(ShiftAmtTy, DL); 1006 1007 SDValue ShiftAmt = TLO.DAG.getConstant(BitWidth - ShAmt, dl, 1008 ShiftAmtTy); 1009 return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::SHL, dl, 1010 Op.getValueType(), InOp, 1011 ShiftAmt)); 1012 } 1013 } 1014 1015 // Sign extension. Compute the demanded bits in the result that are not 1016 // present in the input. 1017 APInt NewBits = 1018 APInt::getHighBitsSet(BitWidth, 1019 BitWidth - ExVT.getScalarSizeInBits()); 1020 1021 // If none of the extended bits are demanded, eliminate the sextinreg. 1022 if ((NewBits & NewMask) == 0) 1023 return TLO.CombineTo(Op, Op.getOperand(0)); 1024 1025 APInt InSignBit = 1026 APInt::getSignMask(ExVT.getScalarSizeInBits()).zext(BitWidth); 1027 APInt InputDemandedBits = 1028 APInt::getLowBitsSet(BitWidth, 1029 ExVT.getScalarSizeInBits()) & 1030 NewMask; 1031 1032 // Since the sign extended bits are demanded, we know that the sign 1033 // bit is demanded. 1034 InputDemandedBits |= InSignBit; 1035 1036 if (SimplifyDemandedBits(Op.getOperand(0), InputDemandedBits, 1037 Known, TLO, Depth+1)) 1038 return true; 1039 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 1040 1041 // If the sign bit of the input is known set or clear, then we know the 1042 // top bits of the result. 1043 1044 // If the input sign bit is known zero, convert this into a zero extension. 1045 if (Known.Zero.intersects(InSignBit)) 1046 return TLO.CombineTo(Op, TLO.DAG.getZeroExtendInReg( 1047 Op.getOperand(0), dl, ExVT.getScalarType())); 1048 1049 if (Known.One.intersects(InSignBit)) { // Input sign bit known set 1050 Known.One |= NewBits; 1051 Known.Zero &= ~NewBits; 1052 } else { // Input sign bit unknown 1053 Known.Zero &= ~NewBits; 1054 Known.One &= ~NewBits; 1055 } 1056 break; 1057 } 1058 case ISD::BUILD_PAIR: { 1059 EVT HalfVT = Op.getOperand(0).getValueType(); 1060 unsigned HalfBitWidth = HalfVT.getScalarSizeInBits(); 1061 1062 APInt MaskLo = NewMask.getLoBits(HalfBitWidth).trunc(HalfBitWidth); 1063 APInt MaskHi = NewMask.getHiBits(HalfBitWidth).trunc(HalfBitWidth); 1064 1065 KnownBits KnownLo, KnownHi; 1066 1067 if (SimplifyDemandedBits(Op.getOperand(0), MaskLo, KnownLo, TLO, Depth + 1)) 1068 return true; 1069 1070 if (SimplifyDemandedBits(Op.getOperand(1), MaskHi, KnownHi, TLO, Depth + 1)) 1071 return true; 1072 1073 Known.Zero = KnownLo.Zero.zext(BitWidth) | 1074 KnownHi.Zero.zext(BitWidth).shl(HalfBitWidth); 1075 1076 Known.One = KnownLo.One.zext(BitWidth) | 1077 KnownHi.One.zext(BitWidth).shl(HalfBitWidth); 1078 break; 1079 } 1080 case ISD::ZERO_EXTEND: { 1081 unsigned OperandBitWidth = Op.getOperand(0).getScalarValueSizeInBits(); 1082 1083 // If none of the top bits are demanded, convert this into an any_extend. 1084 if (NewMask.getActiveBits() <= OperandBitWidth) 1085 return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::ANY_EXTEND, dl, 1086 Op.getValueType(), 1087 Op.getOperand(0))); 1088 1089 APInt InMask = NewMask.trunc(OperandBitWidth); 1090 if (SimplifyDemandedBits(Op.getOperand(0), InMask, Known, TLO, Depth+1)) 1091 return true; 1092 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 1093 Known = Known.zext(BitWidth); 1094 Known.Zero.setBitsFrom(OperandBitWidth); 1095 break; 1096 } 1097 case ISD::SIGN_EXTEND: { 1098 unsigned InBits = Op.getOperand(0).getValueType().getScalarSizeInBits(); 1099 1100 // If none of the top bits are demanded, convert this into an any_extend. 1101 if (NewMask.getActiveBits() <= InBits) 1102 return TLO.CombineTo(Op,TLO.DAG.getNode(ISD::ANY_EXTEND, dl, 1103 Op.getValueType(), 1104 Op.getOperand(0))); 1105 1106 // Since some of the sign extended bits are demanded, we know that the sign 1107 // bit is demanded. 1108 APInt InDemandedBits = NewMask.trunc(InBits); 1109 InDemandedBits.setBit(InBits - 1); 1110 1111 if (SimplifyDemandedBits(Op.getOperand(0), InDemandedBits, Known, TLO, 1112 Depth+1)) 1113 return true; 1114 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 1115 // If the sign bit is known one, the top bits match. 1116 Known = Known.sext(BitWidth); 1117 1118 // If the sign bit is known zero, convert this to a zero extend. 1119 if (Known.isNonNegative()) 1120 return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::ZERO_EXTEND, dl, 1121 Op.getValueType(), 1122 Op.getOperand(0))); 1123 break; 1124 } 1125 case ISD::ANY_EXTEND: { 1126 unsigned OperandBitWidth = Op.getOperand(0).getScalarValueSizeInBits(); 1127 APInt InMask = NewMask.trunc(OperandBitWidth); 1128 if (SimplifyDemandedBits(Op.getOperand(0), InMask, Known, TLO, Depth+1)) 1129 return true; 1130 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 1131 Known = Known.zext(BitWidth); 1132 break; 1133 } 1134 case ISD::TRUNCATE: { 1135 // Simplify the input, using demanded bit information, and compute the known 1136 // zero/one bits live out. 1137 unsigned OperandBitWidth = Op.getOperand(0).getScalarValueSizeInBits(); 1138 APInt TruncMask = NewMask.zext(OperandBitWidth); 1139 if (SimplifyDemandedBits(Op.getOperand(0), TruncMask, Known, TLO, Depth+1)) 1140 return true; 1141 Known = Known.trunc(BitWidth); 1142 1143 // If the input is only used by this truncate, see if we can shrink it based 1144 // on the known demanded bits. 1145 if (Op.getOperand(0).getNode()->hasOneUse()) { 1146 SDValue In = Op.getOperand(0); 1147 switch (In.getOpcode()) { 1148 default: break; 1149 case ISD::SRL: 1150 // Shrink SRL by a constant if none of the high bits shifted in are 1151 // demanded. 1152 if (TLO.LegalTypes() && 1153 !isTypeDesirableForOp(ISD::SRL, Op.getValueType())) 1154 // Do not turn (vt1 truncate (vt2 srl)) into (vt1 srl) if vt1 is 1155 // undesirable. 1156 break; 1157 ConstantSDNode *ShAmt = dyn_cast<ConstantSDNode>(In.getOperand(1)); 1158 if (!ShAmt) 1159 break; 1160 SDValue Shift = In.getOperand(1); 1161 if (TLO.LegalTypes()) { 1162 uint64_t ShVal = ShAmt->getZExtValue(); 1163 Shift = TLO.DAG.getConstant(ShVal, dl, 1164 getShiftAmountTy(Op.getValueType(), DL)); 1165 } 1166 1167 if (ShAmt->getZExtValue() < BitWidth) { 1168 APInt HighBits = APInt::getHighBitsSet(OperandBitWidth, 1169 OperandBitWidth - BitWidth); 1170 HighBits.lshrInPlace(ShAmt->getZExtValue()); 1171 HighBits = HighBits.trunc(BitWidth); 1172 1173 if (!(HighBits & NewMask)) { 1174 // None of the shifted in bits are needed. Add a truncate of the 1175 // shift input, then shift it. 1176 SDValue NewTrunc = TLO.DAG.getNode(ISD::TRUNCATE, dl, 1177 Op.getValueType(), 1178 In.getOperand(0)); 1179 return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::SRL, dl, 1180 Op.getValueType(), 1181 NewTrunc, 1182 Shift)); 1183 } 1184 } 1185 break; 1186 } 1187 } 1188 1189 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 1190 break; 1191 } 1192 case ISD::AssertZext: { 1193 // AssertZext demands all of the high bits, plus any of the low bits 1194 // demanded by its users. 1195 EVT VT = cast<VTSDNode>(Op.getOperand(1))->getVT(); 1196 APInt InMask = APInt::getLowBitsSet(BitWidth, 1197 VT.getSizeInBits()); 1198 if (SimplifyDemandedBits(Op.getOperand(0), ~InMask | NewMask, 1199 Known, TLO, Depth+1)) 1200 return true; 1201 assert(!Known.hasConflict() && "Bits known to be one AND zero?"); 1202 1203 Known.Zero |= ~InMask; 1204 break; 1205 } 1206 case ISD::BITCAST: 1207 // If this is an FP->Int bitcast and if the sign bit is the only 1208 // thing demanded, turn this into a FGETSIGN. 1209 if (!TLO.LegalOperations() && 1210 !Op.getValueType().isVector() && 1211 !Op.getOperand(0).getValueType().isVector() && 1212 NewMask == APInt::getSignMask(Op.getValueSizeInBits()) && 1213 Op.getOperand(0).getValueType().isFloatingPoint()) { 1214 bool OpVTLegal = isOperationLegalOrCustom(ISD::FGETSIGN, Op.getValueType()); 1215 bool i32Legal = isOperationLegalOrCustom(ISD::FGETSIGN, MVT::i32); 1216 if ((OpVTLegal || i32Legal) && Op.getValueType().isSimple() && 1217 Op.getOperand(0).getValueType() != MVT::f128) { 1218 // Cannot eliminate/lower SHL for f128 yet. 1219 EVT Ty = OpVTLegal ? Op.getValueType() : MVT::i32; 1220 // Make a FGETSIGN + SHL to move the sign bit into the appropriate 1221 // place. We expect the SHL to be eliminated by other optimizations. 1222 SDValue Sign = TLO.DAG.getNode(ISD::FGETSIGN, dl, Ty, Op.getOperand(0)); 1223 unsigned OpVTSizeInBits = Op.getValueSizeInBits(); 1224 if (!OpVTLegal && OpVTSizeInBits > 32) 1225 Sign = TLO.DAG.getNode(ISD::ZERO_EXTEND, dl, Op.getValueType(), Sign); 1226 unsigned ShVal = Op.getValueSizeInBits() - 1; 1227 SDValue ShAmt = TLO.DAG.getConstant(ShVal, dl, Op.getValueType()); 1228 return TLO.CombineTo(Op, TLO.DAG.getNode(ISD::SHL, dl, 1229 Op.getValueType(), 1230 Sign, ShAmt)); 1231 } 1232 } 1233 break; 1234 case ISD::ADD: 1235 case ISD::MUL: 1236 case ISD::SUB: { 1237 // Add, Sub, and Mul don't demand any bits in positions beyond that 1238 // of the highest bit demanded of them. 1239 APInt LoMask = APInt::getLowBitsSet(BitWidth, 1240 BitWidth - NewMask.countLeadingZeros()); 1241 if (SimplifyDemandedBits(Op.getOperand(0), LoMask, Known2, TLO, Depth+1) || 1242 SimplifyDemandedBits(Op.getOperand(1), LoMask, Known2, TLO, Depth+1) || 1243 // See if the operation should be performed at a smaller bit width. 1244 ShrinkDemandedOp(Op, BitWidth, NewMask, TLO)) { 1245 SDNodeFlags Flags = Op.getNode()->getFlags(); 1246 if (Flags.hasNoSignedWrap() || Flags.hasNoUnsignedWrap()) { 1247 // Disable the nsw and nuw flags. We can no longer guarantee that we 1248 // won't wrap after simplification. 1249 Flags.setNoSignedWrap(false); 1250 Flags.setNoUnsignedWrap(false); 1251 SDValue NewOp = TLO.DAG.getNode(Op.getOpcode(), dl, Op.getValueType(), 1252 Op.getOperand(0), Op.getOperand(1), 1253 Flags); 1254 return TLO.CombineTo(Op, NewOp); 1255 } 1256 return true; 1257 } 1258 LLVM_FALLTHROUGH; 1259 } 1260 default: 1261 // Just use computeKnownBits to compute output bits. 1262 TLO.DAG.computeKnownBits(Op, Known, Depth); 1263 break; 1264 } 1265 1266 // If we know the value of all of the demanded bits, return this as a 1267 // constant. 1268 if (NewMask.isSubsetOf(Known.Zero|Known.One)) { 1269 // Avoid folding to a constant if any OpaqueConstant is involved. 1270 const SDNode *N = Op.getNode(); 1271 for (SDNodeIterator I = SDNodeIterator::begin(N), 1272 E = SDNodeIterator::end(N); I != E; ++I) { 1273 SDNode *Op = *I; 1274 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op)) 1275 if (C->isOpaque()) 1276 return false; 1277 } 1278 return TLO.CombineTo(Op, 1279 TLO.DAG.getConstant(Known.One, dl, Op.getValueType())); 1280 } 1281 1282 return false; 1283 } 1284 1285 /// Determine which of the bits specified in Mask are known to be either zero or 1286 /// one and return them in the Known. 1287 void TargetLowering::computeKnownBitsForTargetNode(const SDValue Op, 1288 KnownBits &Known, 1289 const APInt &DemandedElts, 1290 const SelectionDAG &DAG, 1291 unsigned Depth) const { 1292 assert((Op.getOpcode() >= ISD::BUILTIN_OP_END || 1293 Op.getOpcode() == ISD::INTRINSIC_WO_CHAIN || 1294 Op.getOpcode() == ISD::INTRINSIC_W_CHAIN || 1295 Op.getOpcode() == ISD::INTRINSIC_VOID) && 1296 "Should use MaskedValueIsZero if you don't know whether Op" 1297 " is a target node!"); 1298 Known.resetAll(); 1299 } 1300 1301 /// This method can be implemented by targets that want to expose additional 1302 /// information about sign bits to the DAG Combiner. 1303 unsigned TargetLowering::ComputeNumSignBitsForTargetNode(SDValue Op, 1304 const APInt &, 1305 const SelectionDAG &, 1306 unsigned Depth) const { 1307 assert((Op.getOpcode() >= ISD::BUILTIN_OP_END || 1308 Op.getOpcode() == ISD::INTRINSIC_WO_CHAIN || 1309 Op.getOpcode() == ISD::INTRINSIC_W_CHAIN || 1310 Op.getOpcode() == ISD::INTRINSIC_VOID) && 1311 "Should use ComputeNumSignBits if you don't know whether Op" 1312 " is a target node!"); 1313 return 1; 1314 } 1315 1316 // FIXME: Ideally, this would use ISD::isConstantSplatVector(), but that must 1317 // work with truncating build vectors and vectors with elements of less than 1318 // 8 bits. 1319 bool TargetLowering::isConstTrueVal(const SDNode *N) const { 1320 if (!N) 1321 return false; 1322 1323 APInt CVal; 1324 if (auto *CN = dyn_cast<ConstantSDNode>(N)) { 1325 CVal = CN->getAPIntValue(); 1326 } else if (auto *BV = dyn_cast<BuildVectorSDNode>(N)) { 1327 auto *CN = BV->getConstantSplatNode(); 1328 if (!CN) 1329 return false; 1330 1331 // If this is a truncating build vector, truncate the splat value. 1332 // Otherwise, we may fail to match the expected values below. 1333 unsigned BVEltWidth = BV->getValueType(0).getScalarSizeInBits(); 1334 CVal = CN->getAPIntValue(); 1335 if (BVEltWidth < CVal.getBitWidth()) 1336 CVal = CVal.trunc(BVEltWidth); 1337 } else { 1338 return false; 1339 } 1340 1341 switch (getBooleanContents(N->getValueType(0))) { 1342 case UndefinedBooleanContent: 1343 return CVal[0]; 1344 case ZeroOrOneBooleanContent: 1345 return CVal.isOneValue(); 1346 case ZeroOrNegativeOneBooleanContent: 1347 return CVal.isAllOnesValue(); 1348 } 1349 1350 llvm_unreachable("Invalid boolean contents"); 1351 } 1352 1353 SDValue TargetLowering::getConstTrueVal(SelectionDAG &DAG, EVT VT, 1354 const SDLoc &DL) const { 1355 unsigned ElementWidth = VT.getScalarSizeInBits(); 1356 APInt TrueInt = 1357 getBooleanContents(VT) == TargetLowering::ZeroOrOneBooleanContent 1358 ? APInt(ElementWidth, 1) 1359 : APInt::getAllOnesValue(ElementWidth); 1360 return DAG.getConstant(TrueInt, DL, VT); 1361 } 1362 1363 bool TargetLowering::isConstFalseVal(const SDNode *N) const { 1364 if (!N) 1365 return false; 1366 1367 const ConstantSDNode *CN = dyn_cast<ConstantSDNode>(N); 1368 if (!CN) { 1369 const BuildVectorSDNode *BV = dyn_cast<BuildVectorSDNode>(N); 1370 if (!BV) 1371 return false; 1372 1373 // Only interested in constant splats, we don't care about undef 1374 // elements in identifying boolean constants and getConstantSplatNode 1375 // returns NULL if all ops are undef; 1376 CN = BV->getConstantSplatNode(); 1377 if (!CN) 1378 return false; 1379 } 1380 1381 if (getBooleanContents(N->getValueType(0)) == UndefinedBooleanContent) 1382 return !CN->getAPIntValue()[0]; 1383 1384 return CN->isNullValue(); 1385 } 1386 1387 bool TargetLowering::isExtendedTrueVal(const ConstantSDNode *N, EVT VT, 1388 bool SExt) const { 1389 if (VT == MVT::i1) 1390 return N->isOne(); 1391 1392 TargetLowering::BooleanContent Cnt = getBooleanContents(VT); 1393 switch (Cnt) { 1394 case TargetLowering::ZeroOrOneBooleanContent: 1395 // An extended value of 1 is always true, unless its original type is i1, 1396 // in which case it will be sign extended to -1. 1397 return (N->isOne() && !SExt) || (SExt && (N->getValueType(0) != MVT::i1)); 1398 case TargetLowering::UndefinedBooleanContent: 1399 case TargetLowering::ZeroOrNegativeOneBooleanContent: 1400 return N->isAllOnesValue() && SExt; 1401 } 1402 llvm_unreachable("Unexpected enumeration."); 1403 } 1404 1405 /// This helper function of SimplifySetCC tries to optimize the comparison when 1406 /// either operand of the SetCC node is a bitwise-and instruction. 1407 SDValue TargetLowering::simplifySetCCWithAnd(EVT VT, SDValue N0, SDValue N1, 1408 ISD::CondCode Cond, 1409 DAGCombinerInfo &DCI, 1410 const SDLoc &DL) const { 1411 // Match these patterns in any of their permutations: 1412 // (X & Y) == Y 1413 // (X & Y) != Y 1414 if (N1.getOpcode() == ISD::AND && N0.getOpcode() != ISD::AND) 1415 std::swap(N0, N1); 1416 1417 EVT OpVT = N0.getValueType(); 1418 if (N0.getOpcode() != ISD::AND || !OpVT.isInteger() || 1419 (Cond != ISD::SETEQ && Cond != ISD::SETNE)) 1420 return SDValue(); 1421 1422 SDValue X, Y; 1423 if (N0.getOperand(0) == N1) { 1424 X = N0.getOperand(1); 1425 Y = N0.getOperand(0); 1426 } else if (N0.getOperand(1) == N1) { 1427 X = N0.getOperand(0); 1428 Y = N0.getOperand(1); 1429 } else { 1430 return SDValue(); 1431 } 1432 1433 SelectionDAG &DAG = DCI.DAG; 1434 SDValue Zero = DAG.getConstant(0, DL, OpVT); 1435 if (DAG.isKnownToBeAPowerOfTwo(Y)) { 1436 // Simplify X & Y == Y to X & Y != 0 if Y has exactly one bit set. 1437 // Note that where Y is variable and is known to have at most one bit set 1438 // (for example, if it is Z & 1) we cannot do this; the expressions are not 1439 // equivalent when Y == 0. 1440 Cond = ISD::getSetCCInverse(Cond, /*isInteger=*/true); 1441 if (DCI.isBeforeLegalizeOps() || 1442 isCondCodeLegal(Cond, N0.getSimpleValueType())) 1443 return DAG.getSetCC(DL, VT, N0, Zero, Cond); 1444 } else if (N0.hasOneUse() && hasAndNotCompare(Y)) { 1445 // If the target supports an 'and-not' or 'and-complement' logic operation, 1446 // try to use that to make a comparison operation more efficient. 1447 // But don't do this transform if the mask is a single bit because there are 1448 // more efficient ways to deal with that case (for example, 'bt' on x86 or 1449 // 'rlwinm' on PPC). 1450 1451 // Bail out if the compare operand that we want to turn into a zero is 1452 // already a zero (otherwise, infinite loop). 1453 auto *YConst = dyn_cast<ConstantSDNode>(Y); 1454 if (YConst && YConst->isNullValue()) 1455 return SDValue(); 1456 1457 // Transform this into: ~X & Y == 0. 1458 SDValue NotX = DAG.getNOT(SDLoc(X), X, OpVT); 1459 SDValue NewAnd = DAG.getNode(ISD::AND, SDLoc(N0), OpVT, NotX, Y); 1460 return DAG.getSetCC(DL, VT, NewAnd, Zero, Cond); 1461 } 1462 1463 return SDValue(); 1464 } 1465 1466 /// Try to simplify a setcc built with the specified operands and cc. If it is 1467 /// unable to simplify it, return a null SDValue. 1468 SDValue TargetLowering::SimplifySetCC(EVT VT, SDValue N0, SDValue N1, 1469 ISD::CondCode Cond, bool foldBooleans, 1470 DAGCombinerInfo &DCI, 1471 const SDLoc &dl) const { 1472 SelectionDAG &DAG = DCI.DAG; 1473 1474 // These setcc operations always fold. 1475 switch (Cond) { 1476 default: break; 1477 case ISD::SETFALSE: 1478 case ISD::SETFALSE2: return DAG.getConstant(0, dl, VT); 1479 case ISD::SETTRUE: 1480 case ISD::SETTRUE2: { 1481 TargetLowering::BooleanContent Cnt = 1482 getBooleanContents(N0->getValueType(0)); 1483 return DAG.getConstant( 1484 Cnt == TargetLowering::ZeroOrNegativeOneBooleanContent ? -1ULL : 1, dl, 1485 VT); 1486 } 1487 } 1488 1489 // Ensure that the constant occurs on the RHS and fold constant comparisons. 1490 ISD::CondCode SwappedCC = ISD::getSetCCSwappedOperands(Cond); 1491 if (isa<ConstantSDNode>(N0.getNode()) && 1492 (DCI.isBeforeLegalizeOps() || 1493 isCondCodeLegal(SwappedCC, N0.getSimpleValueType()))) 1494 return DAG.getSetCC(dl, VT, N1, N0, SwappedCC); 1495 1496 if (auto *N1C = dyn_cast<ConstantSDNode>(N1.getNode())) { 1497 const APInt &C1 = N1C->getAPIntValue(); 1498 1499 // If the LHS is '(srl (ctlz x), 5)', the RHS is 0/1, and this is an 1500 // equality comparison, then we're just comparing whether X itself is 1501 // zero. 1502 if (N0.getOpcode() == ISD::SRL && (C1.isNullValue() || C1.isOneValue()) && 1503 N0.getOperand(0).getOpcode() == ISD::CTLZ && 1504 N0.getOperand(1).getOpcode() == ISD::Constant) { 1505 const APInt &ShAmt 1506 = cast<ConstantSDNode>(N0.getOperand(1))->getAPIntValue(); 1507 if ((Cond == ISD::SETEQ || Cond == ISD::SETNE) && 1508 ShAmt == Log2_32(N0.getValueSizeInBits())) { 1509 if ((C1 == 0) == (Cond == ISD::SETEQ)) { 1510 // (srl (ctlz x), 5) == 0 -> X != 0 1511 // (srl (ctlz x), 5) != 1 -> X != 0 1512 Cond = ISD::SETNE; 1513 } else { 1514 // (srl (ctlz x), 5) != 0 -> X == 0 1515 // (srl (ctlz x), 5) == 1 -> X == 0 1516 Cond = ISD::SETEQ; 1517 } 1518 SDValue Zero = DAG.getConstant(0, dl, N0.getValueType()); 1519 return DAG.getSetCC(dl, VT, N0.getOperand(0).getOperand(0), 1520 Zero, Cond); 1521 } 1522 } 1523 1524 SDValue CTPOP = N0; 1525 // Look through truncs that don't change the value of a ctpop. 1526 if (N0.hasOneUse() && N0.getOpcode() == ISD::TRUNCATE) 1527 CTPOP = N0.getOperand(0); 1528 1529 if (CTPOP.hasOneUse() && CTPOP.getOpcode() == ISD::CTPOP && 1530 (N0 == CTPOP || 1531 N0.getValueSizeInBits() > Log2_32_Ceil(CTPOP.getValueSizeInBits()))) { 1532 EVT CTVT = CTPOP.getValueType(); 1533 SDValue CTOp = CTPOP.getOperand(0); 1534 1535 // (ctpop x) u< 2 -> (x & x-1) == 0 1536 // (ctpop x) u> 1 -> (x & x-1) != 0 1537 if ((Cond == ISD::SETULT && C1 == 2) || (Cond == ISD::SETUGT && C1 == 1)){ 1538 SDValue Sub = DAG.getNode(ISD::SUB, dl, CTVT, CTOp, 1539 DAG.getConstant(1, dl, CTVT)); 1540 SDValue And = DAG.getNode(ISD::AND, dl, CTVT, CTOp, Sub); 1541 ISD::CondCode CC = Cond == ISD::SETULT ? ISD::SETEQ : ISD::SETNE; 1542 return DAG.getSetCC(dl, VT, And, DAG.getConstant(0, dl, CTVT), CC); 1543 } 1544 1545 // TODO: (ctpop x) == 1 -> x && (x & x-1) == 0 iff ctpop is illegal. 1546 } 1547 1548 // (zext x) == C --> x == (trunc C) 1549 // (sext x) == C --> x == (trunc C) 1550 if ((Cond == ISD::SETEQ || Cond == ISD::SETNE) && 1551 DCI.isBeforeLegalize() && N0->hasOneUse()) { 1552 unsigned MinBits = N0.getValueSizeInBits(); 1553 SDValue PreExt; 1554 bool Signed = false; 1555 if (N0->getOpcode() == ISD::ZERO_EXTEND) { 1556 // ZExt 1557 MinBits = N0->getOperand(0).getValueSizeInBits(); 1558 PreExt = N0->getOperand(0); 1559 } else if (N0->getOpcode() == ISD::AND) { 1560 // DAGCombine turns costly ZExts into ANDs 1561 if (auto *C = dyn_cast<ConstantSDNode>(N0->getOperand(1))) 1562 if ((C->getAPIntValue()+1).isPowerOf2()) { 1563 MinBits = C->getAPIntValue().countTrailingOnes(); 1564 PreExt = N0->getOperand(0); 1565 } 1566 } else if (N0->getOpcode() == ISD::SIGN_EXTEND) { 1567 // SExt 1568 MinBits = N0->getOperand(0).getValueSizeInBits(); 1569 PreExt = N0->getOperand(0); 1570 Signed = true; 1571 } else if (auto *LN0 = dyn_cast<LoadSDNode>(N0)) { 1572 // ZEXTLOAD / SEXTLOAD 1573 if (LN0->getExtensionType() == ISD::ZEXTLOAD) { 1574 MinBits = LN0->getMemoryVT().getSizeInBits(); 1575 PreExt = N0; 1576 } else if (LN0->getExtensionType() == ISD::SEXTLOAD) { 1577 Signed = true; 1578 MinBits = LN0->getMemoryVT().getSizeInBits(); 1579 PreExt = N0; 1580 } 1581 } 1582 1583 // Figure out how many bits we need to preserve this constant. 1584 unsigned ReqdBits = Signed ? 1585 C1.getBitWidth() - C1.getNumSignBits() + 1 : 1586 C1.getActiveBits(); 1587 1588 // Make sure we're not losing bits from the constant. 1589 if (MinBits > 0 && 1590 MinBits < C1.getBitWidth() && 1591 MinBits >= ReqdBits) { 1592 EVT MinVT = EVT::getIntegerVT(*DAG.getContext(), MinBits); 1593 if (isTypeDesirableForOp(ISD::SETCC, MinVT)) { 1594 // Will get folded away. 1595 SDValue Trunc = DAG.getNode(ISD::TRUNCATE, dl, MinVT, PreExt); 1596 if (MinBits == 1 && C1 == 1) 1597 // Invert the condition. 1598 return DAG.getSetCC(dl, VT, Trunc, DAG.getConstant(0, dl, MVT::i1), 1599 Cond == ISD::SETEQ ? ISD::SETNE : ISD::SETEQ); 1600 SDValue C = DAG.getConstant(C1.trunc(MinBits), dl, MinVT); 1601 return DAG.getSetCC(dl, VT, Trunc, C, Cond); 1602 } 1603 1604 // If truncating the setcc operands is not desirable, we can still 1605 // simplify the expression in some cases: 1606 // setcc ([sz]ext (setcc x, y, cc)), 0, setne) -> setcc (x, y, cc) 1607 // setcc ([sz]ext (setcc x, y, cc)), 0, seteq) -> setcc (x, y, inv(cc)) 1608 // setcc (zext (setcc x, y, cc)), 1, setne) -> setcc (x, y, inv(cc)) 1609 // setcc (zext (setcc x, y, cc)), 1, seteq) -> setcc (x, y, cc) 1610 // setcc (sext (setcc x, y, cc)), -1, setne) -> setcc (x, y, inv(cc)) 1611 // setcc (sext (setcc x, y, cc)), -1, seteq) -> setcc (x, y, cc) 1612 SDValue TopSetCC = N0->getOperand(0); 1613 unsigned N0Opc = N0->getOpcode(); 1614 bool SExt = (N0Opc == ISD::SIGN_EXTEND); 1615 if (TopSetCC.getValueType() == MVT::i1 && VT == MVT::i1 && 1616 TopSetCC.getOpcode() == ISD::SETCC && 1617 (N0Opc == ISD::ZERO_EXTEND || N0Opc == ISD::SIGN_EXTEND) && 1618 (isConstFalseVal(N1C) || 1619 isExtendedTrueVal(N1C, N0->getValueType(0), SExt))) { 1620 1621 bool Inverse = (N1C->isNullValue() && Cond == ISD::SETEQ) || 1622 (!N1C->isNullValue() && Cond == ISD::SETNE); 1623 1624 if (!Inverse) 1625 return TopSetCC; 1626 1627 ISD::CondCode InvCond = ISD::getSetCCInverse( 1628 cast<CondCodeSDNode>(TopSetCC.getOperand(2))->get(), 1629 TopSetCC.getOperand(0).getValueType().isInteger()); 1630 return DAG.getSetCC(dl, VT, TopSetCC.getOperand(0), 1631 TopSetCC.getOperand(1), 1632 InvCond); 1633 } 1634 } 1635 } 1636 1637 // If the LHS is '(and load, const)', the RHS is 0, the test is for 1638 // equality or unsigned, and all 1 bits of the const are in the same 1639 // partial word, see if we can shorten the load. 1640 if (DCI.isBeforeLegalize() && 1641 !ISD::isSignedIntSetCC(Cond) && 1642 N0.getOpcode() == ISD::AND && C1 == 0 && 1643 N0.getNode()->hasOneUse() && 1644 isa<LoadSDNode>(N0.getOperand(0)) && 1645 N0.getOperand(0).getNode()->hasOneUse() && 1646 isa<ConstantSDNode>(N0.getOperand(1))) { 1647 LoadSDNode *Lod = cast<LoadSDNode>(N0.getOperand(0)); 1648 APInt bestMask; 1649 unsigned bestWidth = 0, bestOffset = 0; 1650 if (!Lod->isVolatile() && Lod->isUnindexed()) { 1651 unsigned origWidth = N0.getValueSizeInBits(); 1652 unsigned maskWidth = origWidth; 1653 // We can narrow (e.g.) 16-bit extending loads on 32-bit target to 1654 // 8 bits, but have to be careful... 1655 if (Lod->getExtensionType() != ISD::NON_EXTLOAD) 1656 origWidth = Lod->getMemoryVT().getSizeInBits(); 1657 const APInt &Mask = 1658 cast<ConstantSDNode>(N0.getOperand(1))->getAPIntValue(); 1659 for (unsigned width = origWidth / 2; width>=8; width /= 2) { 1660 APInt newMask = APInt::getLowBitsSet(maskWidth, width); 1661 for (unsigned offset=0; offset<origWidth/width; offset++) { 1662 if (Mask.isSubsetOf(newMask)) { 1663 if (DAG.getDataLayout().isLittleEndian()) 1664 bestOffset = (uint64_t)offset * (width/8); 1665 else 1666 bestOffset = (origWidth/width - offset - 1) * (width/8); 1667 bestMask = Mask.lshr(offset * (width/8) * 8); 1668 bestWidth = width; 1669 break; 1670 } 1671 newMask <<= width; 1672 } 1673 } 1674 } 1675 if (bestWidth) { 1676 EVT newVT = EVT::getIntegerVT(*DAG.getContext(), bestWidth); 1677 if (newVT.isRound()) { 1678 EVT PtrType = Lod->getOperand(1).getValueType(); 1679 SDValue Ptr = Lod->getBasePtr(); 1680 if (bestOffset != 0) 1681 Ptr = DAG.getNode(ISD::ADD, dl, PtrType, Lod->getBasePtr(), 1682 DAG.getConstant(bestOffset, dl, PtrType)); 1683 unsigned NewAlign = MinAlign(Lod->getAlignment(), bestOffset); 1684 SDValue NewLoad = DAG.getLoad( 1685 newVT, dl, Lod->getChain(), Ptr, 1686 Lod->getPointerInfo().getWithOffset(bestOffset), NewAlign); 1687 return DAG.getSetCC(dl, VT, 1688 DAG.getNode(ISD::AND, dl, newVT, NewLoad, 1689 DAG.getConstant(bestMask.trunc(bestWidth), 1690 dl, newVT)), 1691 DAG.getConstant(0LL, dl, newVT), Cond); 1692 } 1693 } 1694 } 1695 1696 // If the LHS is a ZERO_EXTEND, perform the comparison on the input. 1697 if (N0.getOpcode() == ISD::ZERO_EXTEND) { 1698 unsigned InSize = N0.getOperand(0).getValueSizeInBits(); 1699 1700 // If the comparison constant has bits in the upper part, the 1701 // zero-extended value could never match. 1702 if (C1.intersects(APInt::getHighBitsSet(C1.getBitWidth(), 1703 C1.getBitWidth() - InSize))) { 1704 switch (Cond) { 1705 case ISD::SETUGT: 1706 case ISD::SETUGE: 1707 case ISD::SETEQ: 1708 return DAG.getConstant(0, dl, VT); 1709 case ISD::SETULT: 1710 case ISD::SETULE: 1711 case ISD::SETNE: 1712 return DAG.getConstant(1, dl, VT); 1713 case ISD::SETGT: 1714 case ISD::SETGE: 1715 // True if the sign bit of C1 is set. 1716 return DAG.getConstant(C1.isNegative(), dl, VT); 1717 case ISD::SETLT: 1718 case ISD::SETLE: 1719 // True if the sign bit of C1 isn't set. 1720 return DAG.getConstant(C1.isNonNegative(), dl, VT); 1721 default: 1722 break; 1723 } 1724 } 1725 1726 // Otherwise, we can perform the comparison with the low bits. 1727 switch (Cond) { 1728 case ISD::SETEQ: 1729 case ISD::SETNE: 1730 case ISD::SETUGT: 1731 case ISD::SETUGE: 1732 case ISD::SETULT: 1733 case ISD::SETULE: { 1734 EVT newVT = N0.getOperand(0).getValueType(); 1735 if (DCI.isBeforeLegalizeOps() || 1736 (isOperationLegal(ISD::SETCC, newVT) && 1737 getCondCodeAction(Cond, newVT.getSimpleVT()) == Legal)) { 1738 EVT NewSetCCVT = 1739 getSetCCResultType(DAG.getDataLayout(), *DAG.getContext(), newVT); 1740 SDValue NewConst = DAG.getConstant(C1.trunc(InSize), dl, newVT); 1741 1742 SDValue NewSetCC = DAG.getSetCC(dl, NewSetCCVT, N0.getOperand(0), 1743 NewConst, Cond); 1744 return DAG.getBoolExtOrTrunc(NewSetCC, dl, VT, N0.getValueType()); 1745 } 1746 break; 1747 } 1748 default: 1749 break; // todo, be more careful with signed comparisons 1750 } 1751 } else if (N0.getOpcode() == ISD::SIGN_EXTEND_INREG && 1752 (Cond == ISD::SETEQ || Cond == ISD::SETNE)) { 1753 EVT ExtSrcTy = cast<VTSDNode>(N0.getOperand(1))->getVT(); 1754 unsigned ExtSrcTyBits = ExtSrcTy.getSizeInBits(); 1755 EVT ExtDstTy = N0.getValueType(); 1756 unsigned ExtDstTyBits = ExtDstTy.getSizeInBits(); 1757 1758 // If the constant doesn't fit into the number of bits for the source of 1759 // the sign extension, it is impossible for both sides to be equal. 1760 if (C1.getMinSignedBits() > ExtSrcTyBits) 1761 return DAG.getConstant(Cond == ISD::SETNE, dl, VT); 1762 1763 SDValue ZextOp; 1764 EVT Op0Ty = N0.getOperand(0).getValueType(); 1765 if (Op0Ty == ExtSrcTy) { 1766 ZextOp = N0.getOperand(0); 1767 } else { 1768 APInt Imm = APInt::getLowBitsSet(ExtDstTyBits, ExtSrcTyBits); 1769 ZextOp = DAG.getNode(ISD::AND, dl, Op0Ty, N0.getOperand(0), 1770 DAG.getConstant(Imm, dl, Op0Ty)); 1771 } 1772 if (!DCI.isCalledByLegalizer()) 1773 DCI.AddToWorklist(ZextOp.getNode()); 1774 // Otherwise, make this a use of a zext. 1775 return DAG.getSetCC(dl, VT, ZextOp, 1776 DAG.getConstant(C1 & APInt::getLowBitsSet( 1777 ExtDstTyBits, 1778 ExtSrcTyBits), 1779 dl, ExtDstTy), 1780 Cond); 1781 } else if ((N1C->isNullValue() || N1C->isOne()) && 1782 (Cond == ISD::SETEQ || Cond == ISD::SETNE)) { 1783 // SETCC (SETCC), [0|1], [EQ|NE] -> SETCC 1784 if (N0.getOpcode() == ISD::SETCC && 1785 isTypeLegal(VT) && VT.bitsLE(N0.getValueType())) { 1786 bool TrueWhenTrue = (Cond == ISD::SETEQ) ^ (!N1C->isOne()); 1787 if (TrueWhenTrue) 1788 return DAG.getNode(ISD::TRUNCATE, dl, VT, N0); 1789 // Invert the condition. 1790 ISD::CondCode CC = cast<CondCodeSDNode>(N0.getOperand(2))->get(); 1791 CC = ISD::getSetCCInverse(CC, 1792 N0.getOperand(0).getValueType().isInteger()); 1793 if (DCI.isBeforeLegalizeOps() || 1794 isCondCodeLegal(CC, N0.getOperand(0).getSimpleValueType())) 1795 return DAG.getSetCC(dl, VT, N0.getOperand(0), N0.getOperand(1), CC); 1796 } 1797 1798 if ((N0.getOpcode() == ISD::XOR || 1799 (N0.getOpcode() == ISD::AND && 1800 N0.getOperand(0).getOpcode() == ISD::XOR && 1801 N0.getOperand(1) == N0.getOperand(0).getOperand(1))) && 1802 isa<ConstantSDNode>(N0.getOperand(1)) && 1803 cast<ConstantSDNode>(N0.getOperand(1))->isOne()) { 1804 // If this is (X^1) == 0/1, swap the RHS and eliminate the xor. We 1805 // can only do this if the top bits are known zero. 1806 unsigned BitWidth = N0.getValueSizeInBits(); 1807 if (DAG.MaskedValueIsZero(N0, 1808 APInt::getHighBitsSet(BitWidth, 1809 BitWidth-1))) { 1810 // Okay, get the un-inverted input value. 1811 SDValue Val; 1812 if (N0.getOpcode() == ISD::XOR) { 1813 Val = N0.getOperand(0); 1814 } else { 1815 assert(N0.getOpcode() == ISD::AND && 1816 N0.getOperand(0).getOpcode() == ISD::XOR); 1817 // ((X^1)&1)^1 -> X & 1 1818 Val = DAG.getNode(ISD::AND, dl, N0.getValueType(), 1819 N0.getOperand(0).getOperand(0), 1820 N0.getOperand(1)); 1821 } 1822 1823 return DAG.getSetCC(dl, VT, Val, N1, 1824 Cond == ISD::SETEQ ? ISD::SETNE : ISD::SETEQ); 1825 } 1826 } else if (N1C->isOne() && 1827 (VT == MVT::i1 || 1828 getBooleanContents(N0->getValueType(0)) == 1829 ZeroOrOneBooleanContent)) { 1830 SDValue Op0 = N0; 1831 if (Op0.getOpcode() == ISD::TRUNCATE) 1832 Op0 = Op0.getOperand(0); 1833 1834 if ((Op0.getOpcode() == ISD::XOR) && 1835 Op0.getOperand(0).getOpcode() == ISD::SETCC && 1836 Op0.getOperand(1).getOpcode() == ISD::SETCC) { 1837 // (xor (setcc), (setcc)) == / != 1 -> (setcc) != / == (setcc) 1838 Cond = (Cond == ISD::SETEQ) ? ISD::SETNE : ISD::SETEQ; 1839 return DAG.getSetCC(dl, VT, Op0.getOperand(0), Op0.getOperand(1), 1840 Cond); 1841 } 1842 if (Op0.getOpcode() == ISD::AND && 1843 isa<ConstantSDNode>(Op0.getOperand(1)) && 1844 cast<ConstantSDNode>(Op0.getOperand(1))->isOne()) { 1845 // If this is (X&1) == / != 1, normalize it to (X&1) != / == 0. 1846 if (Op0.getValueType().bitsGT(VT)) 1847 Op0 = DAG.getNode(ISD::AND, dl, VT, 1848 DAG.getNode(ISD::TRUNCATE, dl, VT, Op0.getOperand(0)), 1849 DAG.getConstant(1, dl, VT)); 1850 else if (Op0.getValueType().bitsLT(VT)) 1851 Op0 = DAG.getNode(ISD::AND, dl, VT, 1852 DAG.getNode(ISD::ANY_EXTEND, dl, VT, Op0.getOperand(0)), 1853 DAG.getConstant(1, dl, VT)); 1854 1855 return DAG.getSetCC(dl, VT, Op0, 1856 DAG.getConstant(0, dl, Op0.getValueType()), 1857 Cond == ISD::SETEQ ? ISD::SETNE : ISD::SETEQ); 1858 } 1859 if (Op0.getOpcode() == ISD::AssertZext && 1860 cast<VTSDNode>(Op0.getOperand(1))->getVT() == MVT::i1) 1861 return DAG.getSetCC(dl, VT, Op0, 1862 DAG.getConstant(0, dl, Op0.getValueType()), 1863 Cond == ISD::SETEQ ? ISD::SETNE : ISD::SETEQ); 1864 } 1865 } 1866 1867 APInt MinVal, MaxVal; 1868 unsigned OperandBitSize = N1C->getValueType(0).getSizeInBits(); 1869 if (ISD::isSignedIntSetCC(Cond)) { 1870 MinVal = APInt::getSignedMinValue(OperandBitSize); 1871 MaxVal = APInt::getSignedMaxValue(OperandBitSize); 1872 } else { 1873 MinVal = APInt::getMinValue(OperandBitSize); 1874 MaxVal = APInt::getMaxValue(OperandBitSize); 1875 } 1876 1877 // Canonicalize GE/LE comparisons to use GT/LT comparisons. 1878 if (Cond == ISD::SETGE || Cond == ISD::SETUGE) { 1879 // X >= MIN --> true 1880 if (C1 == MinVal) 1881 return DAG.getConstant(1, dl, VT); 1882 1883 // X >= C0 --> X > (C0 - 1) 1884 APInt C = C1 - 1; 1885 ISD::CondCode NewCC = (Cond == ISD::SETGE) ? ISD::SETGT : ISD::SETUGT; 1886 if ((DCI.isBeforeLegalizeOps() || 1887 isCondCodeLegal(NewCC, VT.getSimpleVT())) && 1888 (!N1C->isOpaque() || (N1C->isOpaque() && C.getBitWidth() <= 64 && 1889 isLegalICmpImmediate(C.getSExtValue())))) { 1890 return DAG.getSetCC(dl, VT, N0, 1891 DAG.getConstant(C, dl, N1.getValueType()), 1892 NewCC); 1893 } 1894 } 1895 1896 if (Cond == ISD::SETLE || Cond == ISD::SETULE) { 1897 // X <= MAX --> true 1898 if (C1 == MaxVal) 1899 return DAG.getConstant(1, dl, VT); 1900 1901 // X <= C0 --> X < (C0 + 1) 1902 APInt C = C1 + 1; 1903 ISD::CondCode NewCC = (Cond == ISD::SETLE) ? ISD::SETLT : ISD::SETULT; 1904 if ((DCI.isBeforeLegalizeOps() || 1905 isCondCodeLegal(NewCC, VT.getSimpleVT())) && 1906 (!N1C->isOpaque() || (N1C->isOpaque() && C.getBitWidth() <= 64 && 1907 isLegalICmpImmediate(C.getSExtValue())))) { 1908 return DAG.getSetCC(dl, VT, N0, 1909 DAG.getConstant(C, dl, N1.getValueType()), 1910 NewCC); 1911 } 1912 } 1913 1914 if ((Cond == ISD::SETLT || Cond == ISD::SETULT) && C1 == MinVal) 1915 return DAG.getConstant(0, dl, VT); // X < MIN --> false 1916 if ((Cond == ISD::SETGE || Cond == ISD::SETUGE) && C1 == MinVal) 1917 return DAG.getConstant(1, dl, VT); // X >= MIN --> true 1918 if ((Cond == ISD::SETGT || Cond == ISD::SETUGT) && C1 == MaxVal) 1919 return DAG.getConstant(0, dl, VT); // X > MAX --> false 1920 if ((Cond == ISD::SETLE || Cond == ISD::SETULE) && C1 == MaxVal) 1921 return DAG.getConstant(1, dl, VT); // X <= MAX --> true 1922 1923 // Canonicalize setgt X, Min --> setne X, Min 1924 if ((Cond == ISD::SETGT || Cond == ISD::SETUGT) && C1 == MinVal) 1925 return DAG.getSetCC(dl, VT, N0, N1, ISD::SETNE); 1926 // Canonicalize setlt X, Max --> setne X, Max 1927 if ((Cond == ISD::SETLT || Cond == ISD::SETULT) && C1 == MaxVal) 1928 return DAG.getSetCC(dl, VT, N0, N1, ISD::SETNE); 1929 1930 // If we have setult X, 1, turn it into seteq X, 0 1931 if ((Cond == ISD::SETLT || Cond == ISD::SETULT) && C1 == MinVal+1) 1932 return DAG.getSetCC(dl, VT, N0, 1933 DAG.getConstant(MinVal, dl, N0.getValueType()), 1934 ISD::SETEQ); 1935 // If we have setugt X, Max-1, turn it into seteq X, Max 1936 if ((Cond == ISD::SETGT || Cond == ISD::SETUGT) && C1 == MaxVal-1) 1937 return DAG.getSetCC(dl, VT, N0, 1938 DAG.getConstant(MaxVal, dl, N0.getValueType()), 1939 ISD::SETEQ); 1940 1941 // If we have "setcc X, C0", check to see if we can shrink the immediate 1942 // by changing cc. 1943 1944 // SETUGT X, SINTMAX -> SETLT X, 0 1945 if (Cond == ISD::SETUGT && 1946 C1 == APInt::getSignedMaxValue(OperandBitSize)) 1947 return DAG.getSetCC(dl, VT, N0, 1948 DAG.getConstant(0, dl, N1.getValueType()), 1949 ISD::SETLT); 1950 1951 // SETULT X, SINTMIN -> SETGT X, -1 1952 if (Cond == ISD::SETULT && 1953 C1 == APInt::getSignedMinValue(OperandBitSize)) { 1954 SDValue ConstMinusOne = 1955 DAG.getConstant(APInt::getAllOnesValue(OperandBitSize), dl, 1956 N1.getValueType()); 1957 return DAG.getSetCC(dl, VT, N0, ConstMinusOne, ISD::SETGT); 1958 } 1959 1960 // Fold bit comparisons when we can. 1961 if ((Cond == ISD::SETEQ || Cond == ISD::SETNE) && 1962 (VT == N0.getValueType() || 1963 (isTypeLegal(VT) && VT.bitsLE(N0.getValueType()))) && 1964 N0.getOpcode() == ISD::AND) { 1965 auto &DL = DAG.getDataLayout(); 1966 if (auto *AndRHS = dyn_cast<ConstantSDNode>(N0.getOperand(1))) { 1967 EVT ShiftTy = DCI.isBeforeLegalize() 1968 ? getPointerTy(DL) 1969 : getShiftAmountTy(N0.getValueType(), DL); 1970 if (Cond == ISD::SETNE && C1 == 0) {// (X & 8) != 0 --> (X & 8) >> 3 1971 // Perform the xform if the AND RHS is a single bit. 1972 if (AndRHS->getAPIntValue().isPowerOf2()) { 1973 return DAG.getNode(ISD::TRUNCATE, dl, VT, 1974 DAG.getNode(ISD::SRL, dl, N0.getValueType(), N0, 1975 DAG.getConstant(AndRHS->getAPIntValue().logBase2(), dl, 1976 ShiftTy))); 1977 } 1978 } else if (Cond == ISD::SETEQ && C1 == AndRHS->getAPIntValue()) { 1979 // (X & 8) == 8 --> (X & 8) >> 3 1980 // Perform the xform if C1 is a single bit. 1981 if (C1.isPowerOf2()) { 1982 return DAG.getNode(ISD::TRUNCATE, dl, VT, 1983 DAG.getNode(ISD::SRL, dl, N0.getValueType(), N0, 1984 DAG.getConstant(C1.logBase2(), dl, 1985 ShiftTy))); 1986 } 1987 } 1988 } 1989 } 1990 1991 if (C1.getMinSignedBits() <= 64 && 1992 !isLegalICmpImmediate(C1.getSExtValue())) { 1993 // (X & -256) == 256 -> (X >> 8) == 1 1994 if ((Cond == ISD::SETEQ || Cond == ISD::SETNE) && 1995 N0.getOpcode() == ISD::AND && N0.hasOneUse()) { 1996 if (auto *AndRHS = dyn_cast<ConstantSDNode>(N0.getOperand(1))) { 1997 const APInt &AndRHSC = AndRHS->getAPIntValue(); 1998 if ((-AndRHSC).isPowerOf2() && (AndRHSC & C1) == C1) { 1999 unsigned ShiftBits = AndRHSC.countTrailingZeros(); 2000 auto &DL = DAG.getDataLayout(); 2001 EVT ShiftTy = DCI.isBeforeLegalize() 2002 ? getPointerTy(DL) 2003 : getShiftAmountTy(N0.getValueType(), DL); 2004 EVT CmpTy = N0.getValueType(); 2005 SDValue Shift = DAG.getNode(ISD::SRL, dl, CmpTy, N0.getOperand(0), 2006 DAG.getConstant(ShiftBits, dl, 2007 ShiftTy)); 2008 SDValue CmpRHS = DAG.getConstant(C1.lshr(ShiftBits), dl, CmpTy); 2009 return DAG.getSetCC(dl, VT, Shift, CmpRHS, Cond); 2010 } 2011 } 2012 } else if (Cond == ISD::SETULT || Cond == ISD::SETUGE || 2013 Cond == ISD::SETULE || Cond == ISD::SETUGT) { 2014 bool AdjOne = (Cond == ISD::SETULE || Cond == ISD::SETUGT); 2015 // X < 0x100000000 -> (X >> 32) < 1 2016 // X >= 0x100000000 -> (X >> 32) >= 1 2017 // X <= 0x0ffffffff -> (X >> 32) < 1 2018 // X > 0x0ffffffff -> (X >> 32) >= 1 2019 unsigned ShiftBits; 2020 APInt NewC = C1; 2021 ISD::CondCode NewCond = Cond; 2022 if (AdjOne) { 2023 ShiftBits = C1.countTrailingOnes(); 2024 NewC = NewC + 1; 2025 NewCond = (Cond == ISD::SETULE) ? ISD::SETULT : ISD::SETUGE; 2026 } else { 2027 ShiftBits = C1.countTrailingZeros(); 2028 } 2029 NewC.lshrInPlace(ShiftBits); 2030 if (ShiftBits && NewC.getMinSignedBits() <= 64 && 2031 isLegalICmpImmediate(NewC.getSExtValue())) { 2032 auto &DL = DAG.getDataLayout(); 2033 EVT ShiftTy = DCI.isBeforeLegalize() 2034 ? getPointerTy(DL) 2035 : getShiftAmountTy(N0.getValueType(), DL); 2036 EVT CmpTy = N0.getValueType(); 2037 SDValue Shift = DAG.getNode(ISD::SRL, dl, CmpTy, N0, 2038 DAG.getConstant(ShiftBits, dl, ShiftTy)); 2039 SDValue CmpRHS = DAG.getConstant(NewC, dl, CmpTy); 2040 return DAG.getSetCC(dl, VT, Shift, CmpRHS, NewCond); 2041 } 2042 } 2043 } 2044 } 2045 2046 if (isa<ConstantFPSDNode>(N0.getNode())) { 2047 // Constant fold or commute setcc. 2048 SDValue O = DAG.FoldSetCC(VT, N0, N1, Cond, dl); 2049 if (O.getNode()) return O; 2050 } else if (auto *CFP = dyn_cast<ConstantFPSDNode>(N1.getNode())) { 2051 // If the RHS of an FP comparison is a constant, simplify it away in 2052 // some cases. 2053 if (CFP->getValueAPF().isNaN()) { 2054 // If an operand is known to be a nan, we can fold it. 2055 switch (ISD::getUnorderedFlavor(Cond)) { 2056 default: llvm_unreachable("Unknown flavor!"); 2057 case 0: // Known false. 2058 return DAG.getConstant(0, dl, VT); 2059 case 1: // Known true. 2060 return DAG.getConstant(1, dl, VT); 2061 case 2: // Undefined. 2062 return DAG.getUNDEF(VT); 2063 } 2064 } 2065 2066 // Otherwise, we know the RHS is not a NaN. Simplify the node to drop the 2067 // constant if knowing that the operand is non-nan is enough. We prefer to 2068 // have SETO(x,x) instead of SETO(x, 0.0) because this avoids having to 2069 // materialize 0.0. 2070 if (Cond == ISD::SETO || Cond == ISD::SETUO) 2071 return DAG.getSetCC(dl, VT, N0, N0, Cond); 2072 2073 // setcc (fneg x), C -> setcc swap(pred) x, -C 2074 if (N0.getOpcode() == ISD::FNEG) { 2075 ISD::CondCode SwapCond = ISD::getSetCCSwappedOperands(Cond); 2076 if (DCI.isBeforeLegalizeOps() || 2077 isCondCodeLegal(SwapCond, N0.getSimpleValueType())) { 2078 SDValue NegN1 = DAG.getNode(ISD::FNEG, dl, N0.getValueType(), N1); 2079 return DAG.getSetCC(dl, VT, N0.getOperand(0), NegN1, SwapCond); 2080 } 2081 } 2082 2083 // If the condition is not legal, see if we can find an equivalent one 2084 // which is legal. 2085 if (!isCondCodeLegal(Cond, N0.getSimpleValueType())) { 2086 // If the comparison was an awkward floating-point == or != and one of 2087 // the comparison operands is infinity or negative infinity, convert the 2088 // condition to a less-awkward <= or >=. 2089 if (CFP->getValueAPF().isInfinity()) { 2090 if (CFP->getValueAPF().isNegative()) { 2091 if (Cond == ISD::SETOEQ && 2092 isCondCodeLegal(ISD::SETOLE, N0.getSimpleValueType())) 2093 return DAG.getSetCC(dl, VT, N0, N1, ISD::SETOLE); 2094 if (Cond == ISD::SETUEQ && 2095 isCondCodeLegal(ISD::SETOLE, N0.getSimpleValueType())) 2096 return DAG.getSetCC(dl, VT, N0, N1, ISD::SETULE); 2097 if (Cond == ISD::SETUNE && 2098 isCondCodeLegal(ISD::SETUGT, N0.getSimpleValueType())) 2099 return DAG.getSetCC(dl, VT, N0, N1, ISD::SETUGT); 2100 if (Cond == ISD::SETONE && 2101 isCondCodeLegal(ISD::SETUGT, N0.getSimpleValueType())) 2102 return DAG.getSetCC(dl, VT, N0, N1, ISD::SETOGT); 2103 } else { 2104 if (Cond == ISD::SETOEQ && 2105 isCondCodeLegal(ISD::SETOGE, N0.getSimpleValueType())) 2106 return DAG.getSetCC(dl, VT, N0, N1, ISD::SETOGE); 2107 if (Cond == ISD::SETUEQ && 2108 isCondCodeLegal(ISD::SETOGE, N0.getSimpleValueType())) 2109 return DAG.getSetCC(dl, VT, N0, N1, ISD::SETUGE); 2110 if (Cond == ISD::SETUNE && 2111 isCondCodeLegal(ISD::SETULT, N0.getSimpleValueType())) 2112 return DAG.getSetCC(dl, VT, N0, N1, ISD::SETULT); 2113 if (Cond == ISD::SETONE && 2114 isCondCodeLegal(ISD::SETULT, N0.getSimpleValueType())) 2115 return DAG.getSetCC(dl, VT, N0, N1, ISD::SETOLT); 2116 } 2117 } 2118 } 2119 } 2120 2121 if (N0 == N1) { 2122 // The sext(setcc()) => setcc() optimization relies on the appropriate 2123 // constant being emitted. 2124 uint64_t EqVal = 0; 2125 switch (getBooleanContents(N0.getValueType())) { 2126 case UndefinedBooleanContent: 2127 case ZeroOrOneBooleanContent: 2128 EqVal = ISD::isTrueWhenEqual(Cond); 2129 break; 2130 case ZeroOrNegativeOneBooleanContent: 2131 EqVal = ISD::isTrueWhenEqual(Cond) ? -1 : 0; 2132 break; 2133 } 2134 2135 // We can always fold X == X for integer setcc's. 2136 if (N0.getValueType().isInteger()) { 2137 return DAG.getConstant(EqVal, dl, VT); 2138 } 2139 unsigned UOF = ISD::getUnorderedFlavor(Cond); 2140 if (UOF == 2) // FP operators that are undefined on NaNs. 2141 return DAG.getConstant(EqVal, dl, VT); 2142 if (UOF == unsigned(ISD::isTrueWhenEqual(Cond))) 2143 return DAG.getConstant(EqVal, dl, VT); 2144 // Otherwise, we can't fold it. However, we can simplify it to SETUO/SETO 2145 // if it is not already. 2146 ISD::CondCode NewCond = UOF == 0 ? ISD::SETO : ISD::SETUO; 2147 if (NewCond != Cond && (DCI.isBeforeLegalizeOps() || 2148 getCondCodeAction(NewCond, N0.getSimpleValueType()) == Legal)) 2149 return DAG.getSetCC(dl, VT, N0, N1, NewCond); 2150 } 2151 2152 if ((Cond == ISD::SETEQ || Cond == ISD::SETNE) && 2153 N0.getValueType().isInteger()) { 2154 if (N0.getOpcode() == ISD::ADD || N0.getOpcode() == ISD::SUB || 2155 N0.getOpcode() == ISD::XOR) { 2156 // Simplify (X+Y) == (X+Z) --> Y == Z 2157 if (N0.getOpcode() == N1.getOpcode()) { 2158 if (N0.getOperand(0) == N1.getOperand(0)) 2159 return DAG.getSetCC(dl, VT, N0.getOperand(1), N1.getOperand(1), Cond); 2160 if (N0.getOperand(1) == N1.getOperand(1)) 2161 return DAG.getSetCC(dl, VT, N0.getOperand(0), N1.getOperand(0), Cond); 2162 if (isCommutativeBinOp(N0.getOpcode())) { 2163 // If X op Y == Y op X, try other combinations. 2164 if (N0.getOperand(0) == N1.getOperand(1)) 2165 return DAG.getSetCC(dl, VT, N0.getOperand(1), N1.getOperand(0), 2166 Cond); 2167 if (N0.getOperand(1) == N1.getOperand(0)) 2168 return DAG.getSetCC(dl, VT, N0.getOperand(0), N1.getOperand(1), 2169 Cond); 2170 } 2171 } 2172 2173 // If RHS is a legal immediate value for a compare instruction, we need 2174 // to be careful about increasing register pressure needlessly. 2175 bool LegalRHSImm = false; 2176 2177 if (auto *RHSC = dyn_cast<ConstantSDNode>(N1)) { 2178 if (auto *LHSR = dyn_cast<ConstantSDNode>(N0.getOperand(1))) { 2179 // Turn (X+C1) == C2 --> X == C2-C1 2180 if (N0.getOpcode() == ISD::ADD && N0.getNode()->hasOneUse()) { 2181 return DAG.getSetCC(dl, VT, N0.getOperand(0), 2182 DAG.getConstant(RHSC->getAPIntValue()- 2183 LHSR->getAPIntValue(), 2184 dl, N0.getValueType()), Cond); 2185 } 2186 2187 // Turn (X^C1) == C2 into X == C1^C2 iff X&~C1 = 0. 2188 if (N0.getOpcode() == ISD::XOR) 2189 // If we know that all of the inverted bits are zero, don't bother 2190 // performing the inversion. 2191 if (DAG.MaskedValueIsZero(N0.getOperand(0), ~LHSR->getAPIntValue())) 2192 return 2193 DAG.getSetCC(dl, VT, N0.getOperand(0), 2194 DAG.getConstant(LHSR->getAPIntValue() ^ 2195 RHSC->getAPIntValue(), 2196 dl, N0.getValueType()), 2197 Cond); 2198 } 2199 2200 // Turn (C1-X) == C2 --> X == C1-C2 2201 if (auto *SUBC = dyn_cast<ConstantSDNode>(N0.getOperand(0))) { 2202 if (N0.getOpcode() == ISD::SUB && N0.getNode()->hasOneUse()) { 2203 return 2204 DAG.getSetCC(dl, VT, N0.getOperand(1), 2205 DAG.getConstant(SUBC->getAPIntValue() - 2206 RHSC->getAPIntValue(), 2207 dl, N0.getValueType()), 2208 Cond); 2209 } 2210 } 2211 2212 // Could RHSC fold directly into a compare? 2213 if (RHSC->getValueType(0).getSizeInBits() <= 64) 2214 LegalRHSImm = isLegalICmpImmediate(RHSC->getSExtValue()); 2215 } 2216 2217 // Simplify (X+Z) == X --> Z == 0 2218 // Don't do this if X is an immediate that can fold into a cmp 2219 // instruction and X+Z has other uses. It could be an induction variable 2220 // chain, and the transform would increase register pressure. 2221 if (!LegalRHSImm || N0.getNode()->hasOneUse()) { 2222 if (N0.getOperand(0) == N1) 2223 return DAG.getSetCC(dl, VT, N0.getOperand(1), 2224 DAG.getConstant(0, dl, N0.getValueType()), Cond); 2225 if (N0.getOperand(1) == N1) { 2226 if (isCommutativeBinOp(N0.getOpcode())) 2227 return DAG.getSetCC(dl, VT, N0.getOperand(0), 2228 DAG.getConstant(0, dl, N0.getValueType()), 2229 Cond); 2230 if (N0.getNode()->hasOneUse()) { 2231 assert(N0.getOpcode() == ISD::SUB && "Unexpected operation!"); 2232 auto &DL = DAG.getDataLayout(); 2233 // (Z-X) == X --> Z == X<<1 2234 SDValue SH = DAG.getNode( 2235 ISD::SHL, dl, N1.getValueType(), N1, 2236 DAG.getConstant(1, dl, 2237 getShiftAmountTy(N1.getValueType(), DL))); 2238 if (!DCI.isCalledByLegalizer()) 2239 DCI.AddToWorklist(SH.getNode()); 2240 return DAG.getSetCC(dl, VT, N0.getOperand(0), SH, Cond); 2241 } 2242 } 2243 } 2244 } 2245 2246 if (N1.getOpcode() == ISD::ADD || N1.getOpcode() == ISD::SUB || 2247 N1.getOpcode() == ISD::XOR) { 2248 // Simplify X == (X+Z) --> Z == 0 2249 if (N1.getOperand(0) == N0) 2250 return DAG.getSetCC(dl, VT, N1.getOperand(1), 2251 DAG.getConstant(0, dl, N1.getValueType()), Cond); 2252 if (N1.getOperand(1) == N0) { 2253 if (isCommutativeBinOp(N1.getOpcode())) 2254 return DAG.getSetCC(dl, VT, N1.getOperand(0), 2255 DAG.getConstant(0, dl, N1.getValueType()), Cond); 2256 if (N1.getNode()->hasOneUse()) { 2257 assert(N1.getOpcode() == ISD::SUB && "Unexpected operation!"); 2258 auto &DL = DAG.getDataLayout(); 2259 // X == (Z-X) --> X<<1 == Z 2260 SDValue SH = DAG.getNode( 2261 ISD::SHL, dl, N1.getValueType(), N0, 2262 DAG.getConstant(1, dl, getShiftAmountTy(N0.getValueType(), DL))); 2263 if (!DCI.isCalledByLegalizer()) 2264 DCI.AddToWorklist(SH.getNode()); 2265 return DAG.getSetCC(dl, VT, SH, N1.getOperand(0), Cond); 2266 } 2267 } 2268 } 2269 2270 if (SDValue V = simplifySetCCWithAnd(VT, N0, N1, Cond, DCI, dl)) 2271 return V; 2272 } 2273 2274 // Fold away ALL boolean setcc's. 2275 SDValue Temp; 2276 if (N0.getValueType() == MVT::i1 && foldBooleans) { 2277 switch (Cond) { 2278 default: llvm_unreachable("Unknown integer setcc!"); 2279 case ISD::SETEQ: // X == Y -> ~(X^Y) 2280 Temp = DAG.getNode(ISD::XOR, dl, MVT::i1, N0, N1); 2281 N0 = DAG.getNOT(dl, Temp, MVT::i1); 2282 if (!DCI.isCalledByLegalizer()) 2283 DCI.AddToWorklist(Temp.getNode()); 2284 break; 2285 case ISD::SETNE: // X != Y --> (X^Y) 2286 N0 = DAG.getNode(ISD::XOR, dl, MVT::i1, N0, N1); 2287 break; 2288 case ISD::SETGT: // X >s Y --> X == 0 & Y == 1 --> ~X & Y 2289 case ISD::SETULT: // X <u Y --> X == 0 & Y == 1 --> ~X & Y 2290 Temp = DAG.getNOT(dl, N0, MVT::i1); 2291 N0 = DAG.getNode(ISD::AND, dl, MVT::i1, N1, Temp); 2292 if (!DCI.isCalledByLegalizer()) 2293 DCI.AddToWorklist(Temp.getNode()); 2294 break; 2295 case ISD::SETLT: // X <s Y --> X == 1 & Y == 0 --> ~Y & X 2296 case ISD::SETUGT: // X >u Y --> X == 1 & Y == 0 --> ~Y & X 2297 Temp = DAG.getNOT(dl, N1, MVT::i1); 2298 N0 = DAG.getNode(ISD::AND, dl, MVT::i1, N0, Temp); 2299 if (!DCI.isCalledByLegalizer()) 2300 DCI.AddToWorklist(Temp.getNode()); 2301 break; 2302 case ISD::SETULE: // X <=u Y --> X == 0 | Y == 1 --> ~X | Y 2303 case ISD::SETGE: // X >=s Y --> X == 0 | Y == 1 --> ~X | Y 2304 Temp = DAG.getNOT(dl, N0, MVT::i1); 2305 N0 = DAG.getNode(ISD::OR, dl, MVT::i1, N1, Temp); 2306 if (!DCI.isCalledByLegalizer()) 2307 DCI.AddToWorklist(Temp.getNode()); 2308 break; 2309 case ISD::SETUGE: // X >=u Y --> X == 1 | Y == 0 --> ~Y | X 2310 case ISD::SETLE: // X <=s Y --> X == 1 | Y == 0 --> ~Y | X 2311 Temp = DAG.getNOT(dl, N1, MVT::i1); 2312 N0 = DAG.getNode(ISD::OR, dl, MVT::i1, N0, Temp); 2313 break; 2314 } 2315 if (VT != MVT::i1) { 2316 if (!DCI.isCalledByLegalizer()) 2317 DCI.AddToWorklist(N0.getNode()); 2318 // FIXME: If running after legalize, we probably can't do this. 2319 N0 = DAG.getNode(ISD::ZERO_EXTEND, dl, VT, N0); 2320 } 2321 return N0; 2322 } 2323 2324 // Could not fold it. 2325 return SDValue(); 2326 } 2327 2328 /// Returns true (and the GlobalValue and the offset) if the node is a 2329 /// GlobalAddress + offset. 2330 bool TargetLowering::isGAPlusOffset(SDNode *N, const GlobalValue *&GA, 2331 int64_t &Offset) const { 2332 if (auto *GASD = dyn_cast<GlobalAddressSDNode>(N)) { 2333 GA = GASD->getGlobal(); 2334 Offset += GASD->getOffset(); 2335 return true; 2336 } 2337 2338 if (N->getOpcode() == ISD::ADD) { 2339 SDValue N1 = N->getOperand(0); 2340 SDValue N2 = N->getOperand(1); 2341 if (isGAPlusOffset(N1.getNode(), GA, Offset)) { 2342 if (auto *V = dyn_cast<ConstantSDNode>(N2)) { 2343 Offset += V->getSExtValue(); 2344 return true; 2345 } 2346 } else if (isGAPlusOffset(N2.getNode(), GA, Offset)) { 2347 if (auto *V = dyn_cast<ConstantSDNode>(N1)) { 2348 Offset += V->getSExtValue(); 2349 return true; 2350 } 2351 } 2352 } 2353 2354 return false; 2355 } 2356 2357 SDValue TargetLowering::PerformDAGCombine(SDNode *N, 2358 DAGCombinerInfo &DCI) const { 2359 // Default implementation: no optimization. 2360 return SDValue(); 2361 } 2362 2363 //===----------------------------------------------------------------------===// 2364 // Inline Assembler Implementation Methods 2365 //===----------------------------------------------------------------------===// 2366 2367 TargetLowering::ConstraintType 2368 TargetLowering::getConstraintType(StringRef Constraint) const { 2369 unsigned S = Constraint.size(); 2370 2371 if (S == 1) { 2372 switch (Constraint[0]) { 2373 default: break; 2374 case 'r': return C_RegisterClass; 2375 case 'm': // memory 2376 case 'o': // offsetable 2377 case 'V': // not offsetable 2378 return C_Memory; 2379 case 'i': // Simple Integer or Relocatable Constant 2380 case 'n': // Simple Integer 2381 case 'E': // Floating Point Constant 2382 case 'F': // Floating Point Constant 2383 case 's': // Relocatable Constant 2384 case 'p': // Address. 2385 case 'X': // Allow ANY value. 2386 case 'I': // Target registers. 2387 case 'J': 2388 case 'K': 2389 case 'L': 2390 case 'M': 2391 case 'N': 2392 case 'O': 2393 case 'P': 2394 case '<': 2395 case '>': 2396 return C_Other; 2397 } 2398 } 2399 2400 if (S > 1 && Constraint[0] == '{' && Constraint[S-1] == '}') { 2401 if (S == 8 && Constraint.substr(1, 6) == "memory") // "{memory}" 2402 return C_Memory; 2403 return C_Register; 2404 } 2405 return C_Unknown; 2406 } 2407 2408 /// Try to replace an X constraint, which matches anything, with another that 2409 /// has more specific requirements based on the type of the corresponding 2410 /// operand. 2411 const char *TargetLowering::LowerXConstraint(EVT ConstraintVT) const{ 2412 if (ConstraintVT.isInteger()) 2413 return "r"; 2414 if (ConstraintVT.isFloatingPoint()) 2415 return "f"; // works for many targets 2416 return nullptr; 2417 } 2418 2419 /// Lower the specified operand into the Ops vector. 2420 /// If it is invalid, don't add anything to Ops. 2421 void TargetLowering::LowerAsmOperandForConstraint(SDValue Op, 2422 std::string &Constraint, 2423 std::vector<SDValue> &Ops, 2424 SelectionDAG &DAG) const { 2425 2426 if (Constraint.length() > 1) return; 2427 2428 char ConstraintLetter = Constraint[0]; 2429 switch (ConstraintLetter) { 2430 default: break; 2431 case 'X': // Allows any operand; labels (basic block) use this. 2432 if (Op.getOpcode() == ISD::BasicBlock) { 2433 Ops.push_back(Op); 2434 return; 2435 } 2436 LLVM_FALLTHROUGH; 2437 case 'i': // Simple Integer or Relocatable Constant 2438 case 'n': // Simple Integer 2439 case 's': { // Relocatable Constant 2440 // These operands are interested in values of the form (GV+C), where C may 2441 // be folded in as an offset of GV, or it may be explicitly added. Also, it 2442 // is possible and fine if either GV or C are missing. 2443 ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op); 2444 GlobalAddressSDNode *GA = dyn_cast<GlobalAddressSDNode>(Op); 2445 2446 // If we have "(add GV, C)", pull out GV/C 2447 if (Op.getOpcode() == ISD::ADD) { 2448 C = dyn_cast<ConstantSDNode>(Op.getOperand(1)); 2449 GA = dyn_cast<GlobalAddressSDNode>(Op.getOperand(0)); 2450 if (!C || !GA) { 2451 C = dyn_cast<ConstantSDNode>(Op.getOperand(0)); 2452 GA = dyn_cast<GlobalAddressSDNode>(Op.getOperand(1)); 2453 } 2454 if (!C || !GA) { 2455 C = nullptr; 2456 GA = nullptr; 2457 } 2458 } 2459 2460 // If we find a valid operand, map to the TargetXXX version so that the 2461 // value itself doesn't get selected. 2462 if (GA) { // Either &GV or &GV+C 2463 if (ConstraintLetter != 'n') { 2464 int64_t Offs = GA->getOffset(); 2465 if (C) Offs += C->getZExtValue(); 2466 Ops.push_back(DAG.getTargetGlobalAddress(GA->getGlobal(), 2467 C ? SDLoc(C) : SDLoc(), 2468 Op.getValueType(), Offs)); 2469 } 2470 return; 2471 } 2472 if (C) { // just C, no GV. 2473 // Simple constants are not allowed for 's'. 2474 if (ConstraintLetter != 's') { 2475 // gcc prints these as sign extended. Sign extend value to 64 bits 2476 // now; without this it would get ZExt'd later in 2477 // ScheduleDAGSDNodes::EmitNode, which is very generic. 2478 Ops.push_back(DAG.getTargetConstant(C->getSExtValue(), 2479 SDLoc(C), MVT::i64)); 2480 } 2481 return; 2482 } 2483 break; 2484 } 2485 } 2486 } 2487 2488 std::pair<unsigned, const TargetRegisterClass *> 2489 TargetLowering::getRegForInlineAsmConstraint(const TargetRegisterInfo *RI, 2490 StringRef Constraint, 2491 MVT VT) const { 2492 if (Constraint.empty() || Constraint[0] != '{') 2493 return std::make_pair(0u, static_cast<TargetRegisterClass*>(nullptr)); 2494 assert(*(Constraint.end()-1) == '}' && "Not a brace enclosed constraint?"); 2495 2496 // Remove the braces from around the name. 2497 StringRef RegName(Constraint.data()+1, Constraint.size()-2); 2498 2499 std::pair<unsigned, const TargetRegisterClass*> R = 2500 std::make_pair(0u, static_cast<const TargetRegisterClass*>(nullptr)); 2501 2502 // Figure out which register class contains this reg. 2503 for (const TargetRegisterClass *RC : RI->regclasses()) { 2504 // If none of the value types for this register class are valid, we 2505 // can't use it. For example, 64-bit reg classes on 32-bit targets. 2506 if (!isLegalRC(*RI, *RC)) 2507 continue; 2508 2509 for (TargetRegisterClass::iterator I = RC->begin(), E = RC->end(); 2510 I != E; ++I) { 2511 if (RegName.equals_lower(RI->getRegAsmName(*I))) { 2512 std::pair<unsigned, const TargetRegisterClass*> S = 2513 std::make_pair(*I, RC); 2514 2515 // If this register class has the requested value type, return it, 2516 // otherwise keep searching and return the first class found 2517 // if no other is found which explicitly has the requested type. 2518 if (RI->isTypeLegalForClass(*RC, VT)) 2519 return S; 2520 if (!R.second) 2521 R = S; 2522 } 2523 } 2524 } 2525 2526 return R; 2527 } 2528 2529 //===----------------------------------------------------------------------===// 2530 // Constraint Selection. 2531 2532 /// Return true of this is an input operand that is a matching constraint like 2533 /// "4". 2534 bool TargetLowering::AsmOperandInfo::isMatchingInputConstraint() const { 2535 assert(!ConstraintCode.empty() && "No known constraint!"); 2536 return isdigit(static_cast<unsigned char>(ConstraintCode[0])); 2537 } 2538 2539 /// If this is an input matching constraint, this method returns the output 2540 /// operand it matches. 2541 unsigned TargetLowering::AsmOperandInfo::getMatchedOperand() const { 2542 assert(!ConstraintCode.empty() && "No known constraint!"); 2543 return atoi(ConstraintCode.c_str()); 2544 } 2545 2546 /// Split up the constraint string from the inline assembly value into the 2547 /// specific constraints and their prefixes, and also tie in the associated 2548 /// operand values. 2549 /// If this returns an empty vector, and if the constraint string itself 2550 /// isn't empty, there was an error parsing. 2551 TargetLowering::AsmOperandInfoVector 2552 TargetLowering::ParseConstraints(const DataLayout &DL, 2553 const TargetRegisterInfo *TRI, 2554 ImmutableCallSite CS) const { 2555 /// Information about all of the constraints. 2556 AsmOperandInfoVector ConstraintOperands; 2557 const InlineAsm *IA = cast<InlineAsm>(CS.getCalledValue()); 2558 unsigned maCount = 0; // Largest number of multiple alternative constraints. 2559 2560 // Do a prepass over the constraints, canonicalizing them, and building up the 2561 // ConstraintOperands list. 2562 unsigned ArgNo = 0; // ArgNo - The argument of the CallInst. 2563 unsigned ResNo = 0; // ResNo - The result number of the next output. 2564 2565 for (InlineAsm::ConstraintInfo &CI : IA->ParseConstraints()) { 2566 ConstraintOperands.emplace_back(std::move(CI)); 2567 AsmOperandInfo &OpInfo = ConstraintOperands.back(); 2568 2569 // Update multiple alternative constraint count. 2570 if (OpInfo.multipleAlternatives.size() > maCount) 2571 maCount = OpInfo.multipleAlternatives.size(); 2572 2573 OpInfo.ConstraintVT = MVT::Other; 2574 2575 // Compute the value type for each operand. 2576 switch (OpInfo.Type) { 2577 case InlineAsm::isOutput: 2578 // Indirect outputs just consume an argument. 2579 if (OpInfo.isIndirect) { 2580 OpInfo.CallOperandVal = const_cast<Value *>(CS.getArgument(ArgNo++)); 2581 break; 2582 } 2583 2584 // The return value of the call is this value. As such, there is no 2585 // corresponding argument. 2586 assert(!CS.getType()->isVoidTy() && 2587 "Bad inline asm!"); 2588 if (StructType *STy = dyn_cast<StructType>(CS.getType())) { 2589 OpInfo.ConstraintVT = 2590 getSimpleValueType(DL, STy->getElementType(ResNo)); 2591 } else { 2592 assert(ResNo == 0 && "Asm only has one result!"); 2593 OpInfo.ConstraintVT = getSimpleValueType(DL, CS.getType()); 2594 } 2595 ++ResNo; 2596 break; 2597 case InlineAsm::isInput: 2598 OpInfo.CallOperandVal = const_cast<Value *>(CS.getArgument(ArgNo++)); 2599 break; 2600 case InlineAsm::isClobber: 2601 // Nothing to do. 2602 break; 2603 } 2604 2605 if (OpInfo.CallOperandVal) { 2606 llvm::Type *OpTy = OpInfo.CallOperandVal->getType(); 2607 if (OpInfo.isIndirect) { 2608 llvm::PointerType *PtrTy = dyn_cast<PointerType>(OpTy); 2609 if (!PtrTy) 2610 report_fatal_error("Indirect operand for inline asm not a pointer!"); 2611 OpTy = PtrTy->getElementType(); 2612 } 2613 2614 // Look for vector wrapped in a struct. e.g. { <16 x i8> }. 2615 if (StructType *STy = dyn_cast<StructType>(OpTy)) 2616 if (STy->getNumElements() == 1) 2617 OpTy = STy->getElementType(0); 2618 2619 // If OpTy is not a single value, it may be a struct/union that we 2620 // can tile with integers. 2621 if (!OpTy->isSingleValueType() && OpTy->isSized()) { 2622 unsigned BitSize = DL.getTypeSizeInBits(OpTy); 2623 switch (BitSize) { 2624 default: break; 2625 case 1: 2626 case 8: 2627 case 16: 2628 case 32: 2629 case 64: 2630 case 128: 2631 OpInfo.ConstraintVT = 2632 MVT::getVT(IntegerType::get(OpTy->getContext(), BitSize), true); 2633 break; 2634 } 2635 } else if (PointerType *PT = dyn_cast<PointerType>(OpTy)) { 2636 unsigned PtrSize = DL.getPointerSizeInBits(PT->getAddressSpace()); 2637 OpInfo.ConstraintVT = MVT::getIntegerVT(PtrSize); 2638 } else { 2639 OpInfo.ConstraintVT = MVT::getVT(OpTy, true); 2640 } 2641 } 2642 } 2643 2644 // If we have multiple alternative constraints, select the best alternative. 2645 if (!ConstraintOperands.empty()) { 2646 if (maCount) { 2647 unsigned bestMAIndex = 0; 2648 int bestWeight = -1; 2649 // weight: -1 = invalid match, and 0 = so-so match to 5 = good match. 2650 int weight = -1; 2651 unsigned maIndex; 2652 // Compute the sums of the weights for each alternative, keeping track 2653 // of the best (highest weight) one so far. 2654 for (maIndex = 0; maIndex < maCount; ++maIndex) { 2655 int weightSum = 0; 2656 for (unsigned cIndex = 0, eIndex = ConstraintOperands.size(); 2657 cIndex != eIndex; ++cIndex) { 2658 AsmOperandInfo& OpInfo = ConstraintOperands[cIndex]; 2659 if (OpInfo.Type == InlineAsm::isClobber) 2660 continue; 2661 2662 // If this is an output operand with a matching input operand, 2663 // look up the matching input. If their types mismatch, e.g. one 2664 // is an integer, the other is floating point, or their sizes are 2665 // different, flag it as an maCantMatch. 2666 if (OpInfo.hasMatchingInput()) { 2667 AsmOperandInfo &Input = ConstraintOperands[OpInfo.MatchingInput]; 2668 if (OpInfo.ConstraintVT != Input.ConstraintVT) { 2669 if ((OpInfo.ConstraintVT.isInteger() != 2670 Input.ConstraintVT.isInteger()) || 2671 (OpInfo.ConstraintVT.getSizeInBits() != 2672 Input.ConstraintVT.getSizeInBits())) { 2673 weightSum = -1; // Can't match. 2674 break; 2675 } 2676 } 2677 } 2678 weight = getMultipleConstraintMatchWeight(OpInfo, maIndex); 2679 if (weight == -1) { 2680 weightSum = -1; 2681 break; 2682 } 2683 weightSum += weight; 2684 } 2685 // Update best. 2686 if (weightSum > bestWeight) { 2687 bestWeight = weightSum; 2688 bestMAIndex = maIndex; 2689 } 2690 } 2691 2692 // Now select chosen alternative in each constraint. 2693 for (unsigned cIndex = 0, eIndex = ConstraintOperands.size(); 2694 cIndex != eIndex; ++cIndex) { 2695 AsmOperandInfo& cInfo = ConstraintOperands[cIndex]; 2696 if (cInfo.Type == InlineAsm::isClobber) 2697 continue; 2698 cInfo.selectAlternative(bestMAIndex); 2699 } 2700 } 2701 } 2702 2703 // Check and hook up tied operands, choose constraint code to use. 2704 for (unsigned cIndex = 0, eIndex = ConstraintOperands.size(); 2705 cIndex != eIndex; ++cIndex) { 2706 AsmOperandInfo& OpInfo = ConstraintOperands[cIndex]; 2707 2708 // If this is an output operand with a matching input operand, look up the 2709 // matching input. If their types mismatch, e.g. one is an integer, the 2710 // other is floating point, or their sizes are different, flag it as an 2711 // error. 2712 if (OpInfo.hasMatchingInput()) { 2713 AsmOperandInfo &Input = ConstraintOperands[OpInfo.MatchingInput]; 2714 2715 if (OpInfo.ConstraintVT != Input.ConstraintVT) { 2716 std::pair<unsigned, const TargetRegisterClass *> MatchRC = 2717 getRegForInlineAsmConstraint(TRI, OpInfo.ConstraintCode, 2718 OpInfo.ConstraintVT); 2719 std::pair<unsigned, const TargetRegisterClass *> InputRC = 2720 getRegForInlineAsmConstraint(TRI, Input.ConstraintCode, 2721 Input.ConstraintVT); 2722 if ((OpInfo.ConstraintVT.isInteger() != 2723 Input.ConstraintVT.isInteger()) || 2724 (MatchRC.second != InputRC.second)) { 2725 report_fatal_error("Unsupported asm: input constraint" 2726 " with a matching output constraint of" 2727 " incompatible type!"); 2728 } 2729 } 2730 } 2731 } 2732 2733 return ConstraintOperands; 2734 } 2735 2736 /// Return an integer indicating how general CT is. 2737 static unsigned getConstraintGenerality(TargetLowering::ConstraintType CT) { 2738 switch (CT) { 2739 case TargetLowering::C_Other: 2740 case TargetLowering::C_Unknown: 2741 return 0; 2742 case TargetLowering::C_Register: 2743 return 1; 2744 case TargetLowering::C_RegisterClass: 2745 return 2; 2746 case TargetLowering::C_Memory: 2747 return 3; 2748 } 2749 llvm_unreachable("Invalid constraint type"); 2750 } 2751 2752 /// Examine constraint type and operand type and determine a weight value. 2753 /// This object must already have been set up with the operand type 2754 /// and the current alternative constraint selected. 2755 TargetLowering::ConstraintWeight 2756 TargetLowering::getMultipleConstraintMatchWeight( 2757 AsmOperandInfo &info, int maIndex) const { 2758 InlineAsm::ConstraintCodeVector *rCodes; 2759 if (maIndex >= (int)info.multipleAlternatives.size()) 2760 rCodes = &info.Codes; 2761 else 2762 rCodes = &info.multipleAlternatives[maIndex].Codes; 2763 ConstraintWeight BestWeight = CW_Invalid; 2764 2765 // Loop over the options, keeping track of the most general one. 2766 for (unsigned i = 0, e = rCodes->size(); i != e; ++i) { 2767 ConstraintWeight weight = 2768 getSingleConstraintMatchWeight(info, (*rCodes)[i].c_str()); 2769 if (weight > BestWeight) 2770 BestWeight = weight; 2771 } 2772 2773 return BestWeight; 2774 } 2775 2776 /// Examine constraint type and operand type and determine a weight value. 2777 /// This object must already have been set up with the operand type 2778 /// and the current alternative constraint selected. 2779 TargetLowering::ConstraintWeight 2780 TargetLowering::getSingleConstraintMatchWeight( 2781 AsmOperandInfo &info, const char *constraint) const { 2782 ConstraintWeight weight = CW_Invalid; 2783 Value *CallOperandVal = info.CallOperandVal; 2784 // If we don't have a value, we can't do a match, 2785 // but allow it at the lowest weight. 2786 if (!CallOperandVal) 2787 return CW_Default; 2788 // Look at the constraint type. 2789 switch (*constraint) { 2790 case 'i': // immediate integer. 2791 case 'n': // immediate integer with a known value. 2792 if (isa<ConstantInt>(CallOperandVal)) 2793 weight = CW_Constant; 2794 break; 2795 case 's': // non-explicit intregal immediate. 2796 if (isa<GlobalValue>(CallOperandVal)) 2797 weight = CW_Constant; 2798 break; 2799 case 'E': // immediate float if host format. 2800 case 'F': // immediate float. 2801 if (isa<ConstantFP>(CallOperandVal)) 2802 weight = CW_Constant; 2803 break; 2804 case '<': // memory operand with autodecrement. 2805 case '>': // memory operand with autoincrement. 2806 case 'm': // memory operand. 2807 case 'o': // offsettable memory operand 2808 case 'V': // non-offsettable memory operand 2809 weight = CW_Memory; 2810 break; 2811 case 'r': // general register. 2812 case 'g': // general register, memory operand or immediate integer. 2813 // note: Clang converts "g" to "imr". 2814 if (CallOperandVal->getType()->isIntegerTy()) 2815 weight = CW_Register; 2816 break; 2817 case 'X': // any operand. 2818 default: 2819 weight = CW_Default; 2820 break; 2821 } 2822 return weight; 2823 } 2824 2825 /// If there are multiple different constraints that we could pick for this 2826 /// operand (e.g. "imr") try to pick the 'best' one. 2827 /// This is somewhat tricky: constraints fall into four classes: 2828 /// Other -> immediates and magic values 2829 /// Register -> one specific register 2830 /// RegisterClass -> a group of regs 2831 /// Memory -> memory 2832 /// Ideally, we would pick the most specific constraint possible: if we have 2833 /// something that fits into a register, we would pick it. The problem here 2834 /// is that if we have something that could either be in a register or in 2835 /// memory that use of the register could cause selection of *other* 2836 /// operands to fail: they might only succeed if we pick memory. Because of 2837 /// this the heuristic we use is: 2838 /// 2839 /// 1) If there is an 'other' constraint, and if the operand is valid for 2840 /// that constraint, use it. This makes us take advantage of 'i' 2841 /// constraints when available. 2842 /// 2) Otherwise, pick the most general constraint present. This prefers 2843 /// 'm' over 'r', for example. 2844 /// 2845 static void ChooseConstraint(TargetLowering::AsmOperandInfo &OpInfo, 2846 const TargetLowering &TLI, 2847 SDValue Op, SelectionDAG *DAG) { 2848 assert(OpInfo.Codes.size() > 1 && "Doesn't have multiple constraint options"); 2849 unsigned BestIdx = 0; 2850 TargetLowering::ConstraintType BestType = TargetLowering::C_Unknown; 2851 int BestGenerality = -1; 2852 2853 // Loop over the options, keeping track of the most general one. 2854 for (unsigned i = 0, e = OpInfo.Codes.size(); i != e; ++i) { 2855 TargetLowering::ConstraintType CType = 2856 TLI.getConstraintType(OpInfo.Codes[i]); 2857 2858 // If this is an 'other' constraint, see if the operand is valid for it. 2859 // For example, on X86 we might have an 'rI' constraint. If the operand 2860 // is an integer in the range [0..31] we want to use I (saving a load 2861 // of a register), otherwise we must use 'r'. 2862 if (CType == TargetLowering::C_Other && Op.getNode()) { 2863 assert(OpInfo.Codes[i].size() == 1 && 2864 "Unhandled multi-letter 'other' constraint"); 2865 std::vector<SDValue> ResultOps; 2866 TLI.LowerAsmOperandForConstraint(Op, OpInfo.Codes[i], 2867 ResultOps, *DAG); 2868 if (!ResultOps.empty()) { 2869 BestType = CType; 2870 BestIdx = i; 2871 break; 2872 } 2873 } 2874 2875 // Things with matching constraints can only be registers, per gcc 2876 // documentation. This mainly affects "g" constraints. 2877 if (CType == TargetLowering::C_Memory && OpInfo.hasMatchingInput()) 2878 continue; 2879 2880 // This constraint letter is more general than the previous one, use it. 2881 int Generality = getConstraintGenerality(CType); 2882 if (Generality > BestGenerality) { 2883 BestType = CType; 2884 BestIdx = i; 2885 BestGenerality = Generality; 2886 } 2887 } 2888 2889 OpInfo.ConstraintCode = OpInfo.Codes[BestIdx]; 2890 OpInfo.ConstraintType = BestType; 2891 } 2892 2893 /// Determines the constraint code and constraint type to use for the specific 2894 /// AsmOperandInfo, setting OpInfo.ConstraintCode and OpInfo.ConstraintType. 2895 void TargetLowering::ComputeConstraintToUse(AsmOperandInfo &OpInfo, 2896 SDValue Op, 2897 SelectionDAG *DAG) const { 2898 assert(!OpInfo.Codes.empty() && "Must have at least one constraint"); 2899 2900 // Single-letter constraints ('r') are very common. 2901 if (OpInfo.Codes.size() == 1) { 2902 OpInfo.ConstraintCode = OpInfo.Codes[0]; 2903 OpInfo.ConstraintType = getConstraintType(OpInfo.ConstraintCode); 2904 } else { 2905 ChooseConstraint(OpInfo, *this, Op, DAG); 2906 } 2907 2908 // 'X' matches anything. 2909 if (OpInfo.ConstraintCode == "X" && OpInfo.CallOperandVal) { 2910 // Labels and constants are handled elsewhere ('X' is the only thing 2911 // that matches labels). For Functions, the type here is the type of 2912 // the result, which is not what we want to look at; leave them alone. 2913 Value *v = OpInfo.CallOperandVal; 2914 if (isa<BasicBlock>(v) || isa<ConstantInt>(v) || isa<Function>(v)) { 2915 OpInfo.CallOperandVal = v; 2916 return; 2917 } 2918 2919 // Otherwise, try to resolve it to something we know about by looking at 2920 // the actual operand type. 2921 if (const char *Repl = LowerXConstraint(OpInfo.ConstraintVT)) { 2922 OpInfo.ConstraintCode = Repl; 2923 OpInfo.ConstraintType = getConstraintType(OpInfo.ConstraintCode); 2924 } 2925 } 2926 } 2927 2928 /// \brief Given an exact SDIV by a constant, create a multiplication 2929 /// with the multiplicative inverse of the constant. 2930 static SDValue BuildExactSDIV(const TargetLowering &TLI, SDValue Op1, APInt d, 2931 const SDLoc &dl, SelectionDAG &DAG, 2932 std::vector<SDNode *> &Created) { 2933 assert(d != 0 && "Division by zero!"); 2934 2935 // Shift the value upfront if it is even, so the LSB is one. 2936 unsigned ShAmt = d.countTrailingZeros(); 2937 if (ShAmt) { 2938 // TODO: For UDIV use SRL instead of SRA. 2939 SDValue Amt = 2940 DAG.getConstant(ShAmt, dl, TLI.getShiftAmountTy(Op1.getValueType(), 2941 DAG.getDataLayout())); 2942 SDNodeFlags Flags; 2943 Flags.setExact(true); 2944 Op1 = DAG.getNode(ISD::SRA, dl, Op1.getValueType(), Op1, Amt, Flags); 2945 Created.push_back(Op1.getNode()); 2946 d.ashrInPlace(ShAmt); 2947 } 2948 2949 // Calculate the multiplicative inverse, using Newton's method. 2950 APInt t, xn = d; 2951 while ((t = d*xn) != 1) 2952 xn *= APInt(d.getBitWidth(), 2) - t; 2953 2954 SDValue Op2 = DAG.getConstant(xn, dl, Op1.getValueType()); 2955 SDValue Mul = DAG.getNode(ISD::MUL, dl, Op1.getValueType(), Op1, Op2); 2956 Created.push_back(Mul.getNode()); 2957 return Mul; 2958 } 2959 2960 SDValue TargetLowering::BuildSDIVPow2(SDNode *N, const APInt &Divisor, 2961 SelectionDAG &DAG, 2962 std::vector<SDNode *> *Created) const { 2963 AttributeList Attr = DAG.getMachineFunction().getFunction()->getAttributes(); 2964 const TargetLowering &TLI = DAG.getTargetLoweringInfo(); 2965 if (TLI.isIntDivCheap(N->getValueType(0), Attr)) 2966 return SDValue(N,0); // Lower SDIV as SDIV 2967 return SDValue(); 2968 } 2969 2970 /// \brief Given an ISD::SDIV node expressing a divide by constant, 2971 /// return a DAG expression to select that will generate the same value by 2972 /// multiplying by a magic number. 2973 /// Ref: "Hacker's Delight" or "The PowerPC Compiler Writer's Guide". 2974 SDValue TargetLowering::BuildSDIV(SDNode *N, const APInt &Divisor, 2975 SelectionDAG &DAG, bool IsAfterLegalization, 2976 std::vector<SDNode *> *Created) const { 2977 assert(Created && "No vector to hold sdiv ops."); 2978 2979 EVT VT = N->getValueType(0); 2980 SDLoc dl(N); 2981 2982 // Check to see if we can do this. 2983 // FIXME: We should be more aggressive here. 2984 if (!isTypeLegal(VT)) 2985 return SDValue(); 2986 2987 // If the sdiv has an 'exact' bit we can use a simpler lowering. 2988 if (N->getFlags().hasExact()) 2989 return BuildExactSDIV(*this, N->getOperand(0), Divisor, dl, DAG, *Created); 2990 2991 APInt::ms magics = Divisor.magic(); 2992 2993 // Multiply the numerator (operand 0) by the magic value 2994 // FIXME: We should support doing a MUL in a wider type 2995 SDValue Q; 2996 if (IsAfterLegalization ? isOperationLegal(ISD::MULHS, VT) : 2997 isOperationLegalOrCustom(ISD::MULHS, VT)) 2998 Q = DAG.getNode(ISD::MULHS, dl, VT, N->getOperand(0), 2999 DAG.getConstant(magics.m, dl, VT)); 3000 else if (IsAfterLegalization ? isOperationLegal(ISD::SMUL_LOHI, VT) : 3001 isOperationLegalOrCustom(ISD::SMUL_LOHI, VT)) 3002 Q = SDValue(DAG.getNode(ISD::SMUL_LOHI, dl, DAG.getVTList(VT, VT), 3003 N->getOperand(0), 3004 DAG.getConstant(magics.m, dl, VT)).getNode(), 1); 3005 else 3006 return SDValue(); // No mulhs or equvialent 3007 // If d > 0 and m < 0, add the numerator 3008 if (Divisor.isStrictlyPositive() && magics.m.isNegative()) { 3009 Q = DAG.getNode(ISD::ADD, dl, VT, Q, N->getOperand(0)); 3010 Created->push_back(Q.getNode()); 3011 } 3012 // If d < 0 and m > 0, subtract the numerator. 3013 if (Divisor.isNegative() && magics.m.isStrictlyPositive()) { 3014 Q = DAG.getNode(ISD::SUB, dl, VT, Q, N->getOperand(0)); 3015 Created->push_back(Q.getNode()); 3016 } 3017 auto &DL = DAG.getDataLayout(); 3018 // Shift right algebraic if shift value is nonzero 3019 if (magics.s > 0) { 3020 Q = DAG.getNode( 3021 ISD::SRA, dl, VT, Q, 3022 DAG.getConstant(magics.s, dl, getShiftAmountTy(Q.getValueType(), DL))); 3023 Created->push_back(Q.getNode()); 3024 } 3025 // Extract the sign bit and add it to the quotient 3026 SDValue T = 3027 DAG.getNode(ISD::SRL, dl, VT, Q, 3028 DAG.getConstant(VT.getScalarSizeInBits() - 1, dl, 3029 getShiftAmountTy(Q.getValueType(), DL))); 3030 Created->push_back(T.getNode()); 3031 return DAG.getNode(ISD::ADD, dl, VT, Q, T); 3032 } 3033 3034 /// \brief Given an ISD::UDIV node expressing a divide by constant, 3035 /// return a DAG expression to select that will generate the same value by 3036 /// multiplying by a magic number. 3037 /// Ref: "Hacker's Delight" or "The PowerPC Compiler Writer's Guide". 3038 SDValue TargetLowering::BuildUDIV(SDNode *N, const APInt &Divisor, 3039 SelectionDAG &DAG, bool IsAfterLegalization, 3040 std::vector<SDNode *> *Created) const { 3041 assert(Created && "No vector to hold udiv ops."); 3042 3043 EVT VT = N->getValueType(0); 3044 SDLoc dl(N); 3045 auto &DL = DAG.getDataLayout(); 3046 3047 // Check to see if we can do this. 3048 // FIXME: We should be more aggressive here. 3049 if (!isTypeLegal(VT)) 3050 return SDValue(); 3051 3052 // FIXME: We should use a narrower constant when the upper 3053 // bits are known to be zero. 3054 APInt::mu magics = Divisor.magicu(); 3055 3056 SDValue Q = N->getOperand(0); 3057 3058 // If the divisor is even, we can avoid using the expensive fixup by shifting 3059 // the divided value upfront. 3060 if (magics.a != 0 && !Divisor[0]) { 3061 unsigned Shift = Divisor.countTrailingZeros(); 3062 Q = DAG.getNode( 3063 ISD::SRL, dl, VT, Q, 3064 DAG.getConstant(Shift, dl, getShiftAmountTy(Q.getValueType(), DL))); 3065 Created->push_back(Q.getNode()); 3066 3067 // Get magic number for the shifted divisor. 3068 magics = Divisor.lshr(Shift).magicu(Shift); 3069 assert(magics.a == 0 && "Should use cheap fixup now"); 3070 } 3071 3072 // Multiply the numerator (operand 0) by the magic value 3073 // FIXME: We should support doing a MUL in a wider type 3074 if (IsAfterLegalization ? isOperationLegal(ISD::MULHU, VT) : 3075 isOperationLegalOrCustom(ISD::MULHU, VT)) 3076 Q = DAG.getNode(ISD::MULHU, dl, VT, Q, DAG.getConstant(magics.m, dl, VT)); 3077 else if (IsAfterLegalization ? isOperationLegal(ISD::UMUL_LOHI, VT) : 3078 isOperationLegalOrCustom(ISD::UMUL_LOHI, VT)) 3079 Q = SDValue(DAG.getNode(ISD::UMUL_LOHI, dl, DAG.getVTList(VT, VT), Q, 3080 DAG.getConstant(magics.m, dl, VT)).getNode(), 1); 3081 else 3082 return SDValue(); // No mulhu or equivalent 3083 3084 Created->push_back(Q.getNode()); 3085 3086 if (magics.a == 0) { 3087 assert(magics.s < Divisor.getBitWidth() && 3088 "We shouldn't generate an undefined shift!"); 3089 return DAG.getNode( 3090 ISD::SRL, dl, VT, Q, 3091 DAG.getConstant(magics.s, dl, getShiftAmountTy(Q.getValueType(), DL))); 3092 } else { 3093 SDValue NPQ = DAG.getNode(ISD::SUB, dl, VT, N->getOperand(0), Q); 3094 Created->push_back(NPQ.getNode()); 3095 NPQ = DAG.getNode( 3096 ISD::SRL, dl, VT, NPQ, 3097 DAG.getConstant(1, dl, getShiftAmountTy(NPQ.getValueType(), DL))); 3098 Created->push_back(NPQ.getNode()); 3099 NPQ = DAG.getNode(ISD::ADD, dl, VT, NPQ, Q); 3100 Created->push_back(NPQ.getNode()); 3101 return DAG.getNode( 3102 ISD::SRL, dl, VT, NPQ, 3103 DAG.getConstant(magics.s - 1, dl, 3104 getShiftAmountTy(NPQ.getValueType(), DL))); 3105 } 3106 } 3107 3108 bool TargetLowering:: 3109 verifyReturnAddressArgumentIsConstant(SDValue Op, SelectionDAG &DAG) const { 3110 if (!isa<ConstantSDNode>(Op.getOperand(0))) { 3111 DAG.getContext()->emitError("argument to '__builtin_return_address' must " 3112 "be a constant integer"); 3113 return true; 3114 } 3115 3116 return false; 3117 } 3118 3119 //===----------------------------------------------------------------------===// 3120 // Legalization Utilities 3121 //===----------------------------------------------------------------------===// 3122 3123 bool TargetLowering::expandMUL_LOHI(unsigned Opcode, EVT VT, SDLoc dl, 3124 SDValue LHS, SDValue RHS, 3125 SmallVectorImpl<SDValue> &Result, 3126 EVT HiLoVT, SelectionDAG &DAG, 3127 MulExpansionKind Kind, SDValue LL, 3128 SDValue LH, SDValue RL, SDValue RH) const { 3129 assert(Opcode == ISD::MUL || Opcode == ISD::UMUL_LOHI || 3130 Opcode == ISD::SMUL_LOHI); 3131 3132 bool HasMULHS = (Kind == MulExpansionKind::Always) || 3133 isOperationLegalOrCustom(ISD::MULHS, HiLoVT); 3134 bool HasMULHU = (Kind == MulExpansionKind::Always) || 3135 isOperationLegalOrCustom(ISD::MULHU, HiLoVT); 3136 bool HasSMUL_LOHI = (Kind == MulExpansionKind::Always) || 3137 isOperationLegalOrCustom(ISD::SMUL_LOHI, HiLoVT); 3138 bool HasUMUL_LOHI = (Kind == MulExpansionKind::Always) || 3139 isOperationLegalOrCustom(ISD::UMUL_LOHI, HiLoVT); 3140 3141 if (!HasMULHU && !HasMULHS && !HasUMUL_LOHI && !HasSMUL_LOHI) 3142 return false; 3143 3144 unsigned OuterBitSize = VT.getScalarSizeInBits(); 3145 unsigned InnerBitSize = HiLoVT.getScalarSizeInBits(); 3146 unsigned LHSSB = DAG.ComputeNumSignBits(LHS); 3147 unsigned RHSSB = DAG.ComputeNumSignBits(RHS); 3148 3149 // LL, LH, RL, and RH must be either all NULL or all set to a value. 3150 assert((LL.getNode() && LH.getNode() && RL.getNode() && RH.getNode()) || 3151 (!LL.getNode() && !LH.getNode() && !RL.getNode() && !RH.getNode())); 3152 3153 SDVTList VTs = DAG.getVTList(HiLoVT, HiLoVT); 3154 auto MakeMUL_LOHI = [&](SDValue L, SDValue R, SDValue &Lo, SDValue &Hi, 3155 bool Signed) -> bool { 3156 if ((Signed && HasSMUL_LOHI) || (!Signed && HasUMUL_LOHI)) { 3157 Lo = DAG.getNode(Signed ? ISD::SMUL_LOHI : ISD::UMUL_LOHI, dl, VTs, L, R); 3158 Hi = SDValue(Lo.getNode(), 1); 3159 return true; 3160 } 3161 if ((Signed && HasMULHS) || (!Signed && HasMULHU)) { 3162 Lo = DAG.getNode(ISD::MUL, dl, HiLoVT, L, R); 3163 Hi = DAG.getNode(Signed ? ISD::MULHS : ISD::MULHU, dl, HiLoVT, L, R); 3164 return true; 3165 } 3166 return false; 3167 }; 3168 3169 SDValue Lo, Hi; 3170 3171 if (!LL.getNode() && !RL.getNode() && 3172 isOperationLegalOrCustom(ISD::TRUNCATE, HiLoVT)) { 3173 LL = DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, LHS); 3174 RL = DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, RHS); 3175 } 3176 3177 if (!LL.getNode()) 3178 return false; 3179 3180 APInt HighMask = APInt::getHighBitsSet(OuterBitSize, InnerBitSize); 3181 if (DAG.MaskedValueIsZero(LHS, HighMask) && 3182 DAG.MaskedValueIsZero(RHS, HighMask)) { 3183 // The inputs are both zero-extended. 3184 if (MakeMUL_LOHI(LL, RL, Lo, Hi, false)) { 3185 Result.push_back(Lo); 3186 Result.push_back(Hi); 3187 if (Opcode != ISD::MUL) { 3188 SDValue Zero = DAG.getConstant(0, dl, HiLoVT); 3189 Result.push_back(Zero); 3190 Result.push_back(Zero); 3191 } 3192 return true; 3193 } 3194 } 3195 3196 if (!VT.isVector() && Opcode == ISD::MUL && LHSSB > InnerBitSize && 3197 RHSSB > InnerBitSize) { 3198 // The input values are both sign-extended. 3199 // TODO non-MUL case? 3200 if (MakeMUL_LOHI(LL, RL, Lo, Hi, true)) { 3201 Result.push_back(Lo); 3202 Result.push_back(Hi); 3203 return true; 3204 } 3205 } 3206 3207 unsigned ShiftAmount = OuterBitSize - InnerBitSize; 3208 EVT ShiftAmountTy = getShiftAmountTy(VT, DAG.getDataLayout()); 3209 if (APInt::getMaxValue(ShiftAmountTy.getSizeInBits()).ult(ShiftAmount)) { 3210 // FIXME getShiftAmountTy does not always return a sensible result when VT 3211 // is an illegal type, and so the type may be too small to fit the shift 3212 // amount. Override it with i32. The shift will have to be legalized. 3213 ShiftAmountTy = MVT::i32; 3214 } 3215 SDValue Shift = DAG.getConstant(ShiftAmount, dl, ShiftAmountTy); 3216 3217 if (!LH.getNode() && !RH.getNode() && 3218 isOperationLegalOrCustom(ISD::SRL, VT) && 3219 isOperationLegalOrCustom(ISD::TRUNCATE, HiLoVT)) { 3220 LH = DAG.getNode(ISD::SRL, dl, VT, LHS, Shift); 3221 LH = DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, LH); 3222 RH = DAG.getNode(ISD::SRL, dl, VT, RHS, Shift); 3223 RH = DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, RH); 3224 } 3225 3226 if (!LH.getNode()) 3227 return false; 3228 3229 if (!MakeMUL_LOHI(LL, RL, Lo, Hi, false)) 3230 return false; 3231 3232 Result.push_back(Lo); 3233 3234 if (Opcode == ISD::MUL) { 3235 RH = DAG.getNode(ISD::MUL, dl, HiLoVT, LL, RH); 3236 LH = DAG.getNode(ISD::MUL, dl, HiLoVT, LH, RL); 3237 Hi = DAG.getNode(ISD::ADD, dl, HiLoVT, Hi, RH); 3238 Hi = DAG.getNode(ISD::ADD, dl, HiLoVT, Hi, LH); 3239 Result.push_back(Hi); 3240 return true; 3241 } 3242 3243 // Compute the full width result. 3244 auto Merge = [&](SDValue Lo, SDValue Hi) -> SDValue { 3245 Lo = DAG.getNode(ISD::ZERO_EXTEND, dl, VT, Lo); 3246 Hi = DAG.getNode(ISD::ZERO_EXTEND, dl, VT, Hi); 3247 Hi = DAG.getNode(ISD::SHL, dl, VT, Hi, Shift); 3248 return DAG.getNode(ISD::OR, dl, VT, Lo, Hi); 3249 }; 3250 3251 SDValue Next = DAG.getNode(ISD::ZERO_EXTEND, dl, VT, Hi); 3252 if (!MakeMUL_LOHI(LL, RH, Lo, Hi, false)) 3253 return false; 3254 3255 // This is effectively the add part of a multiply-add of half-sized operands, 3256 // so it cannot overflow. 3257 Next = DAG.getNode(ISD::ADD, dl, VT, Next, Merge(Lo, Hi)); 3258 3259 if (!MakeMUL_LOHI(LH, RL, Lo, Hi, false)) 3260 return false; 3261 3262 Next = DAG.getNode(ISD::ADDC, dl, DAG.getVTList(VT, MVT::Glue), Next, 3263 Merge(Lo, Hi)); 3264 3265 SDValue Carry = Next.getValue(1); 3266 Result.push_back(DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, Next)); 3267 Next = DAG.getNode(ISD::SRL, dl, VT, Next, Shift); 3268 3269 if (!MakeMUL_LOHI(LH, RH, Lo, Hi, Opcode == ISD::SMUL_LOHI)) 3270 return false; 3271 3272 SDValue Zero = DAG.getConstant(0, dl, HiLoVT); 3273 Hi = DAG.getNode(ISD::ADDE, dl, DAG.getVTList(HiLoVT, MVT::Glue), Hi, Zero, 3274 Carry); 3275 Next = DAG.getNode(ISD::ADD, dl, VT, Next, Merge(Lo, Hi)); 3276 3277 if (Opcode == ISD::SMUL_LOHI) { 3278 SDValue NextSub = DAG.getNode(ISD::SUB, dl, VT, Next, 3279 DAG.getNode(ISD::ZERO_EXTEND, dl, VT, RL)); 3280 Next = DAG.getSelectCC(dl, LH, Zero, NextSub, Next, ISD::SETLT); 3281 3282 NextSub = DAG.getNode(ISD::SUB, dl, VT, Next, 3283 DAG.getNode(ISD::ZERO_EXTEND, dl, VT, LL)); 3284 Next = DAG.getSelectCC(dl, RH, Zero, NextSub, Next, ISD::SETLT); 3285 } 3286 3287 Result.push_back(DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, Next)); 3288 Next = DAG.getNode(ISD::SRL, dl, VT, Next, Shift); 3289 Result.push_back(DAG.getNode(ISD::TRUNCATE, dl, HiLoVT, Next)); 3290 return true; 3291 } 3292 3293 bool TargetLowering::expandMUL(SDNode *N, SDValue &Lo, SDValue &Hi, EVT HiLoVT, 3294 SelectionDAG &DAG, MulExpansionKind Kind, 3295 SDValue LL, SDValue LH, SDValue RL, 3296 SDValue RH) const { 3297 SmallVector<SDValue, 2> Result; 3298 bool Ok = expandMUL_LOHI(N->getOpcode(), N->getValueType(0), N, 3299 N->getOperand(0), N->getOperand(1), Result, HiLoVT, 3300 DAG, Kind, LL, LH, RL, RH); 3301 if (Ok) { 3302 assert(Result.size() == 2); 3303 Lo = Result[0]; 3304 Hi = Result[1]; 3305 } 3306 return Ok; 3307 } 3308 3309 bool TargetLowering::expandFP_TO_SINT(SDNode *Node, SDValue &Result, 3310 SelectionDAG &DAG) const { 3311 EVT VT = Node->getOperand(0).getValueType(); 3312 EVT NVT = Node->getValueType(0); 3313 SDLoc dl(SDValue(Node, 0)); 3314 3315 // FIXME: Only f32 to i64 conversions are supported. 3316 if (VT != MVT::f32 || NVT != MVT::i64) 3317 return false; 3318 3319 // Expand f32 -> i64 conversion 3320 // This algorithm comes from compiler-rt's implementation of fixsfdi: 3321 // https://github.com/llvm-mirror/compiler-rt/blob/master/lib/builtins/fixsfdi.c 3322 EVT IntVT = EVT::getIntegerVT(*DAG.getContext(), 3323 VT.getSizeInBits()); 3324 SDValue ExponentMask = DAG.getConstant(0x7F800000, dl, IntVT); 3325 SDValue ExponentLoBit = DAG.getConstant(23, dl, IntVT); 3326 SDValue Bias = DAG.getConstant(127, dl, IntVT); 3327 SDValue SignMask = DAG.getConstant(APInt::getSignMask(VT.getSizeInBits()), dl, 3328 IntVT); 3329 SDValue SignLowBit = DAG.getConstant(VT.getSizeInBits() - 1, dl, IntVT); 3330 SDValue MantissaMask = DAG.getConstant(0x007FFFFF, dl, IntVT); 3331 3332 SDValue Bits = DAG.getNode(ISD::BITCAST, dl, IntVT, Node->getOperand(0)); 3333 3334 auto &DL = DAG.getDataLayout(); 3335 SDValue ExponentBits = DAG.getNode( 3336 ISD::SRL, dl, IntVT, DAG.getNode(ISD::AND, dl, IntVT, Bits, ExponentMask), 3337 DAG.getZExtOrTrunc(ExponentLoBit, dl, getShiftAmountTy(IntVT, DL))); 3338 SDValue Exponent = DAG.getNode(ISD::SUB, dl, IntVT, ExponentBits, Bias); 3339 3340 SDValue Sign = DAG.getNode( 3341 ISD::SRA, dl, IntVT, DAG.getNode(ISD::AND, dl, IntVT, Bits, SignMask), 3342 DAG.getZExtOrTrunc(SignLowBit, dl, getShiftAmountTy(IntVT, DL))); 3343 Sign = DAG.getSExtOrTrunc(Sign, dl, NVT); 3344 3345 SDValue R = DAG.getNode(ISD::OR, dl, IntVT, 3346 DAG.getNode(ISD::AND, dl, IntVT, Bits, MantissaMask), 3347 DAG.getConstant(0x00800000, dl, IntVT)); 3348 3349 R = DAG.getZExtOrTrunc(R, dl, NVT); 3350 3351 R = DAG.getSelectCC( 3352 dl, Exponent, ExponentLoBit, 3353 DAG.getNode(ISD::SHL, dl, NVT, R, 3354 DAG.getZExtOrTrunc( 3355 DAG.getNode(ISD::SUB, dl, IntVT, Exponent, ExponentLoBit), 3356 dl, getShiftAmountTy(IntVT, DL))), 3357 DAG.getNode(ISD::SRL, dl, NVT, R, 3358 DAG.getZExtOrTrunc( 3359 DAG.getNode(ISD::SUB, dl, IntVT, ExponentLoBit, Exponent), 3360 dl, getShiftAmountTy(IntVT, DL))), 3361 ISD::SETGT); 3362 3363 SDValue Ret = DAG.getNode(ISD::SUB, dl, NVT, 3364 DAG.getNode(ISD::XOR, dl, NVT, R, Sign), 3365 Sign); 3366 3367 Result = DAG.getSelectCC(dl, Exponent, DAG.getConstant(0, dl, IntVT), 3368 DAG.getConstant(0, dl, NVT), Ret, ISD::SETLT); 3369 return true; 3370 } 3371 3372 SDValue TargetLowering::scalarizeVectorLoad(LoadSDNode *LD, 3373 SelectionDAG &DAG) const { 3374 SDLoc SL(LD); 3375 SDValue Chain = LD->getChain(); 3376 SDValue BasePTR = LD->getBasePtr(); 3377 EVT SrcVT = LD->getMemoryVT(); 3378 ISD::LoadExtType ExtType = LD->getExtensionType(); 3379 3380 unsigned NumElem = SrcVT.getVectorNumElements(); 3381 3382 EVT SrcEltVT = SrcVT.getScalarType(); 3383 EVT DstEltVT = LD->getValueType(0).getScalarType(); 3384 3385 unsigned Stride = SrcEltVT.getSizeInBits() / 8; 3386 assert(SrcEltVT.isByteSized()); 3387 3388 EVT PtrVT = BasePTR.getValueType(); 3389 3390 SmallVector<SDValue, 8> Vals; 3391 SmallVector<SDValue, 8> LoadChains; 3392 3393 for (unsigned Idx = 0; Idx < NumElem; ++Idx) { 3394 SDValue ScalarLoad = 3395 DAG.getExtLoad(ExtType, SL, DstEltVT, Chain, BasePTR, 3396 LD->getPointerInfo().getWithOffset(Idx * Stride), 3397 SrcEltVT, MinAlign(LD->getAlignment(), Idx * Stride), 3398 LD->getMemOperand()->getFlags(), LD->getAAInfo()); 3399 3400 BasePTR = DAG.getNode(ISD::ADD, SL, PtrVT, BasePTR, 3401 DAG.getConstant(Stride, SL, PtrVT)); 3402 3403 Vals.push_back(ScalarLoad.getValue(0)); 3404 LoadChains.push_back(ScalarLoad.getValue(1)); 3405 } 3406 3407 SDValue NewChain = DAG.getNode(ISD::TokenFactor, SL, MVT::Other, LoadChains); 3408 SDValue Value = DAG.getBuildVector(LD->getValueType(0), SL, Vals); 3409 3410 return DAG.getMergeValues({ Value, NewChain }, SL); 3411 } 3412 3413 // FIXME: This relies on each element having a byte size, otherwise the stride 3414 // is 0 and just overwrites the same location. ExpandStore currently expects 3415 // this broken behavior. 3416 SDValue TargetLowering::scalarizeVectorStore(StoreSDNode *ST, 3417 SelectionDAG &DAG) const { 3418 SDLoc SL(ST); 3419 3420 SDValue Chain = ST->getChain(); 3421 SDValue BasePtr = ST->getBasePtr(); 3422 SDValue Value = ST->getValue(); 3423 EVT StVT = ST->getMemoryVT(); 3424 3425 // The type of the data we want to save 3426 EVT RegVT = Value.getValueType(); 3427 EVT RegSclVT = RegVT.getScalarType(); 3428 3429 // The type of data as saved in memory. 3430 EVT MemSclVT = StVT.getScalarType(); 3431 3432 EVT PtrVT = BasePtr.getValueType(); 3433 3434 // Store Stride in bytes 3435 unsigned Stride = MemSclVT.getSizeInBits() / 8; 3436 EVT IdxVT = getVectorIdxTy(DAG.getDataLayout()); 3437 unsigned NumElem = StVT.getVectorNumElements(); 3438 3439 // Extract each of the elements from the original vector and save them into 3440 // memory individually. 3441 SmallVector<SDValue, 8> Stores; 3442 for (unsigned Idx = 0; Idx < NumElem; ++Idx) { 3443 SDValue Elt = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, SL, RegSclVT, Value, 3444 DAG.getConstant(Idx, SL, IdxVT)); 3445 3446 SDValue Ptr = DAG.getNode(ISD::ADD, SL, PtrVT, BasePtr, 3447 DAG.getConstant(Idx * Stride, SL, PtrVT)); 3448 3449 // This scalar TruncStore may be illegal, but we legalize it later. 3450 SDValue Store = DAG.getTruncStore( 3451 Chain, SL, Elt, Ptr, ST->getPointerInfo().getWithOffset(Idx * Stride), 3452 MemSclVT, MinAlign(ST->getAlignment(), Idx * Stride), 3453 ST->getMemOperand()->getFlags(), ST->getAAInfo()); 3454 3455 Stores.push_back(Store); 3456 } 3457 3458 return DAG.getNode(ISD::TokenFactor, SL, MVT::Other, Stores); 3459 } 3460 3461 std::pair<SDValue, SDValue> 3462 TargetLowering::expandUnalignedLoad(LoadSDNode *LD, SelectionDAG &DAG) const { 3463 assert(LD->getAddressingMode() == ISD::UNINDEXED && 3464 "unaligned indexed loads not implemented!"); 3465 SDValue Chain = LD->getChain(); 3466 SDValue Ptr = LD->getBasePtr(); 3467 EVT VT = LD->getValueType(0); 3468 EVT LoadedVT = LD->getMemoryVT(); 3469 SDLoc dl(LD); 3470 auto &MF = DAG.getMachineFunction(); 3471 if (VT.isFloatingPoint() || VT.isVector()) { 3472 EVT intVT = EVT::getIntegerVT(*DAG.getContext(), LoadedVT.getSizeInBits()); 3473 if (isTypeLegal(intVT) && isTypeLegal(LoadedVT)) { 3474 if (!isOperationLegalOrCustom(ISD::LOAD, intVT)) { 3475 // Scalarize the load and let the individual components be handled. 3476 SDValue Scalarized = scalarizeVectorLoad(LD, DAG); 3477 return std::make_pair(Scalarized.getValue(0), Scalarized.getValue(1)); 3478 } 3479 3480 // Expand to a (misaligned) integer load of the same size, 3481 // then bitconvert to floating point or vector. 3482 SDValue newLoad = DAG.getLoad(intVT, dl, Chain, Ptr, 3483 LD->getMemOperand()); 3484 SDValue Result = DAG.getNode(ISD::BITCAST, dl, LoadedVT, newLoad); 3485 if (LoadedVT != VT) 3486 Result = DAG.getNode(VT.isFloatingPoint() ? ISD::FP_EXTEND : 3487 ISD::ANY_EXTEND, dl, VT, Result); 3488 3489 return std::make_pair(Result, newLoad.getValue(1)); 3490 } 3491 3492 // Copy the value to a (aligned) stack slot using (unaligned) integer 3493 // loads and stores, then do a (aligned) load from the stack slot. 3494 MVT RegVT = getRegisterType(*DAG.getContext(), intVT); 3495 unsigned LoadedBytes = LoadedVT.getSizeInBits() / 8; 3496 unsigned RegBytes = RegVT.getSizeInBits() / 8; 3497 unsigned NumRegs = (LoadedBytes + RegBytes - 1) / RegBytes; 3498 3499 // Make sure the stack slot is also aligned for the register type. 3500 SDValue StackBase = DAG.CreateStackTemporary(LoadedVT, RegVT); 3501 auto FrameIndex = cast<FrameIndexSDNode>(StackBase.getNode())->getIndex(); 3502 SmallVector<SDValue, 8> Stores; 3503 SDValue StackPtr = StackBase; 3504 unsigned Offset = 0; 3505 3506 EVT PtrVT = Ptr.getValueType(); 3507 EVT StackPtrVT = StackPtr.getValueType(); 3508 3509 SDValue PtrIncrement = DAG.getConstant(RegBytes, dl, PtrVT); 3510 SDValue StackPtrIncrement = DAG.getConstant(RegBytes, dl, StackPtrVT); 3511 3512 // Do all but one copies using the full register width. 3513 for (unsigned i = 1; i < NumRegs; i++) { 3514 // Load one integer register's worth from the original location. 3515 SDValue Load = DAG.getLoad( 3516 RegVT, dl, Chain, Ptr, LD->getPointerInfo().getWithOffset(Offset), 3517 MinAlign(LD->getAlignment(), Offset), LD->getMemOperand()->getFlags(), 3518 LD->getAAInfo()); 3519 // Follow the load with a store to the stack slot. Remember the store. 3520 Stores.push_back(DAG.getStore( 3521 Load.getValue(1), dl, Load, StackPtr, 3522 MachinePointerInfo::getFixedStack(MF, FrameIndex, Offset))); 3523 // Increment the pointers. 3524 Offset += RegBytes; 3525 Ptr = DAG.getNode(ISD::ADD, dl, PtrVT, Ptr, PtrIncrement); 3526 StackPtr = DAG.getNode(ISD::ADD, dl, StackPtrVT, StackPtr, 3527 StackPtrIncrement); 3528 } 3529 3530 // The last copy may be partial. Do an extending load. 3531 EVT MemVT = EVT::getIntegerVT(*DAG.getContext(), 3532 8 * (LoadedBytes - Offset)); 3533 SDValue Load = 3534 DAG.getExtLoad(ISD::EXTLOAD, dl, RegVT, Chain, Ptr, 3535 LD->getPointerInfo().getWithOffset(Offset), MemVT, 3536 MinAlign(LD->getAlignment(), Offset), 3537 LD->getMemOperand()->getFlags(), LD->getAAInfo()); 3538 // Follow the load with a store to the stack slot. Remember the store. 3539 // On big-endian machines this requires a truncating store to ensure 3540 // that the bits end up in the right place. 3541 Stores.push_back(DAG.getTruncStore( 3542 Load.getValue(1), dl, Load, StackPtr, 3543 MachinePointerInfo::getFixedStack(MF, FrameIndex, Offset), MemVT)); 3544 3545 // The order of the stores doesn't matter - say it with a TokenFactor. 3546 SDValue TF = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, Stores); 3547 3548 // Finally, perform the original load only redirected to the stack slot. 3549 Load = DAG.getExtLoad(LD->getExtensionType(), dl, VT, TF, StackBase, 3550 MachinePointerInfo::getFixedStack(MF, FrameIndex, 0), 3551 LoadedVT); 3552 3553 // Callers expect a MERGE_VALUES node. 3554 return std::make_pair(Load, TF); 3555 } 3556 3557 assert(LoadedVT.isInteger() && !LoadedVT.isVector() && 3558 "Unaligned load of unsupported type."); 3559 3560 // Compute the new VT that is half the size of the old one. This is an 3561 // integer MVT. 3562 unsigned NumBits = LoadedVT.getSizeInBits(); 3563 EVT NewLoadedVT; 3564 NewLoadedVT = EVT::getIntegerVT(*DAG.getContext(), NumBits/2); 3565 NumBits >>= 1; 3566 3567 unsigned Alignment = LD->getAlignment(); 3568 unsigned IncrementSize = NumBits / 8; 3569 ISD::LoadExtType HiExtType = LD->getExtensionType(); 3570 3571 // If the original load is NON_EXTLOAD, the hi part load must be ZEXTLOAD. 3572 if (HiExtType == ISD::NON_EXTLOAD) 3573 HiExtType = ISD::ZEXTLOAD; 3574 3575 // Load the value in two parts 3576 SDValue Lo, Hi; 3577 if (DAG.getDataLayout().isLittleEndian()) { 3578 Lo = DAG.getExtLoad(ISD::ZEXTLOAD, dl, VT, Chain, Ptr, LD->getPointerInfo(), 3579 NewLoadedVT, Alignment, LD->getMemOperand()->getFlags(), 3580 LD->getAAInfo()); 3581 Ptr = DAG.getNode(ISD::ADD, dl, Ptr.getValueType(), Ptr, 3582 DAG.getConstant(IncrementSize, dl, Ptr.getValueType())); 3583 Hi = DAG.getExtLoad(HiExtType, dl, VT, Chain, Ptr, 3584 LD->getPointerInfo().getWithOffset(IncrementSize), 3585 NewLoadedVT, MinAlign(Alignment, IncrementSize), 3586 LD->getMemOperand()->getFlags(), LD->getAAInfo()); 3587 } else { 3588 Hi = DAG.getExtLoad(HiExtType, dl, VT, Chain, Ptr, LD->getPointerInfo(), 3589 NewLoadedVT, Alignment, LD->getMemOperand()->getFlags(), 3590 LD->getAAInfo()); 3591 Ptr = DAG.getNode(ISD::ADD, dl, Ptr.getValueType(), Ptr, 3592 DAG.getConstant(IncrementSize, dl, Ptr.getValueType())); 3593 Lo = DAG.getExtLoad(ISD::ZEXTLOAD, dl, VT, Chain, Ptr, 3594 LD->getPointerInfo().getWithOffset(IncrementSize), 3595 NewLoadedVT, MinAlign(Alignment, IncrementSize), 3596 LD->getMemOperand()->getFlags(), LD->getAAInfo()); 3597 } 3598 3599 // aggregate the two parts 3600 SDValue ShiftAmount = 3601 DAG.getConstant(NumBits, dl, getShiftAmountTy(Hi.getValueType(), 3602 DAG.getDataLayout())); 3603 SDValue Result = DAG.getNode(ISD::SHL, dl, VT, Hi, ShiftAmount); 3604 Result = DAG.getNode(ISD::OR, dl, VT, Result, Lo); 3605 3606 SDValue TF = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, Lo.getValue(1), 3607 Hi.getValue(1)); 3608 3609 return std::make_pair(Result, TF); 3610 } 3611 3612 SDValue TargetLowering::expandUnalignedStore(StoreSDNode *ST, 3613 SelectionDAG &DAG) const { 3614 assert(ST->getAddressingMode() == ISD::UNINDEXED && 3615 "unaligned indexed stores not implemented!"); 3616 SDValue Chain = ST->getChain(); 3617 SDValue Ptr = ST->getBasePtr(); 3618 SDValue Val = ST->getValue(); 3619 EVT VT = Val.getValueType(); 3620 int Alignment = ST->getAlignment(); 3621 auto &MF = DAG.getMachineFunction(); 3622 3623 SDLoc dl(ST); 3624 if (ST->getMemoryVT().isFloatingPoint() || 3625 ST->getMemoryVT().isVector()) { 3626 EVT intVT = EVT::getIntegerVT(*DAG.getContext(), VT.getSizeInBits()); 3627 if (isTypeLegal(intVT)) { 3628 if (!isOperationLegalOrCustom(ISD::STORE, intVT)) { 3629 // Scalarize the store and let the individual components be handled. 3630 SDValue Result = scalarizeVectorStore(ST, DAG); 3631 3632 return Result; 3633 } 3634 // Expand to a bitconvert of the value to the integer type of the 3635 // same size, then a (misaligned) int store. 3636 // FIXME: Does not handle truncating floating point stores! 3637 SDValue Result = DAG.getNode(ISD::BITCAST, dl, intVT, Val); 3638 Result = DAG.getStore(Chain, dl, Result, Ptr, ST->getPointerInfo(), 3639 Alignment, ST->getMemOperand()->getFlags()); 3640 return Result; 3641 } 3642 // Do a (aligned) store to a stack slot, then copy from the stack slot 3643 // to the final destination using (unaligned) integer loads and stores. 3644 EVT StoredVT = ST->getMemoryVT(); 3645 MVT RegVT = 3646 getRegisterType(*DAG.getContext(), 3647 EVT::getIntegerVT(*DAG.getContext(), 3648 StoredVT.getSizeInBits())); 3649 EVT PtrVT = Ptr.getValueType(); 3650 unsigned StoredBytes = StoredVT.getSizeInBits() / 8; 3651 unsigned RegBytes = RegVT.getSizeInBits() / 8; 3652 unsigned NumRegs = (StoredBytes + RegBytes - 1) / RegBytes; 3653 3654 // Make sure the stack slot is also aligned for the register type. 3655 SDValue StackPtr = DAG.CreateStackTemporary(StoredVT, RegVT); 3656 auto FrameIndex = cast<FrameIndexSDNode>(StackPtr.getNode())->getIndex(); 3657 3658 // Perform the original store, only redirected to the stack slot. 3659 SDValue Store = DAG.getTruncStore( 3660 Chain, dl, Val, StackPtr, 3661 MachinePointerInfo::getFixedStack(MF, FrameIndex, 0), StoredVT); 3662 3663 EVT StackPtrVT = StackPtr.getValueType(); 3664 3665 SDValue PtrIncrement = DAG.getConstant(RegBytes, dl, PtrVT); 3666 SDValue StackPtrIncrement = DAG.getConstant(RegBytes, dl, StackPtrVT); 3667 SmallVector<SDValue, 8> Stores; 3668 unsigned Offset = 0; 3669 3670 // Do all but one copies using the full register width. 3671 for (unsigned i = 1; i < NumRegs; i++) { 3672 // Load one integer register's worth from the stack slot. 3673 SDValue Load = DAG.getLoad( 3674 RegVT, dl, Store, StackPtr, 3675 MachinePointerInfo::getFixedStack(MF, FrameIndex, Offset)); 3676 // Store it to the final location. Remember the store. 3677 Stores.push_back(DAG.getStore(Load.getValue(1), dl, Load, Ptr, 3678 ST->getPointerInfo().getWithOffset(Offset), 3679 MinAlign(ST->getAlignment(), Offset), 3680 ST->getMemOperand()->getFlags())); 3681 // Increment the pointers. 3682 Offset += RegBytes; 3683 StackPtr = DAG.getNode(ISD::ADD, dl, StackPtrVT, 3684 StackPtr, StackPtrIncrement); 3685 Ptr = DAG.getNode(ISD::ADD, dl, PtrVT, Ptr, PtrIncrement); 3686 } 3687 3688 // The last store may be partial. Do a truncating store. On big-endian 3689 // machines this requires an extending load from the stack slot to ensure 3690 // that the bits are in the right place. 3691 EVT MemVT = EVT::getIntegerVT(*DAG.getContext(), 3692 8 * (StoredBytes - Offset)); 3693 3694 // Load from the stack slot. 3695 SDValue Load = DAG.getExtLoad( 3696 ISD::EXTLOAD, dl, RegVT, Store, StackPtr, 3697 MachinePointerInfo::getFixedStack(MF, FrameIndex, Offset), MemVT); 3698 3699 Stores.push_back( 3700 DAG.getTruncStore(Load.getValue(1), dl, Load, Ptr, 3701 ST->getPointerInfo().getWithOffset(Offset), MemVT, 3702 MinAlign(ST->getAlignment(), Offset), 3703 ST->getMemOperand()->getFlags(), ST->getAAInfo())); 3704 // The order of the stores doesn't matter - say it with a TokenFactor. 3705 SDValue Result = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, Stores); 3706 return Result; 3707 } 3708 3709 assert(ST->getMemoryVT().isInteger() && 3710 !ST->getMemoryVT().isVector() && 3711 "Unaligned store of unknown type."); 3712 // Get the half-size VT 3713 EVT NewStoredVT = ST->getMemoryVT().getHalfSizedIntegerVT(*DAG.getContext()); 3714 int NumBits = NewStoredVT.getSizeInBits(); 3715 int IncrementSize = NumBits / 8; 3716 3717 // Divide the stored value in two parts. 3718 SDValue ShiftAmount = 3719 DAG.getConstant(NumBits, dl, getShiftAmountTy(Val.getValueType(), 3720 DAG.getDataLayout())); 3721 SDValue Lo = Val; 3722 SDValue Hi = DAG.getNode(ISD::SRL, dl, VT, Val, ShiftAmount); 3723 3724 // Store the two parts 3725 SDValue Store1, Store2; 3726 Store1 = DAG.getTruncStore(Chain, dl, 3727 DAG.getDataLayout().isLittleEndian() ? Lo : Hi, 3728 Ptr, ST->getPointerInfo(), NewStoredVT, Alignment, 3729 ST->getMemOperand()->getFlags()); 3730 3731 EVT PtrVT = Ptr.getValueType(); 3732 Ptr = DAG.getNode(ISD::ADD, dl, PtrVT, Ptr, 3733 DAG.getConstant(IncrementSize, dl, PtrVT)); 3734 Alignment = MinAlign(Alignment, IncrementSize); 3735 Store2 = DAG.getTruncStore( 3736 Chain, dl, DAG.getDataLayout().isLittleEndian() ? Hi : Lo, Ptr, 3737 ST->getPointerInfo().getWithOffset(IncrementSize), NewStoredVT, Alignment, 3738 ST->getMemOperand()->getFlags(), ST->getAAInfo()); 3739 3740 SDValue Result = 3741 DAG.getNode(ISD::TokenFactor, dl, MVT::Other, Store1, Store2); 3742 return Result; 3743 } 3744 3745 SDValue 3746 TargetLowering::IncrementMemoryAddress(SDValue Addr, SDValue Mask, 3747 const SDLoc &DL, EVT DataVT, 3748 SelectionDAG &DAG, 3749 bool IsCompressedMemory) const { 3750 SDValue Increment; 3751 EVT AddrVT = Addr.getValueType(); 3752 EVT MaskVT = Mask.getValueType(); 3753 assert(DataVT.getVectorNumElements() == MaskVT.getVectorNumElements() && 3754 "Incompatible types of Data and Mask"); 3755 if (IsCompressedMemory) { 3756 // Incrementing the pointer according to number of '1's in the mask. 3757 EVT MaskIntVT = EVT::getIntegerVT(*DAG.getContext(), MaskVT.getSizeInBits()); 3758 SDValue MaskInIntReg = DAG.getBitcast(MaskIntVT, Mask); 3759 if (MaskIntVT.getSizeInBits() < 32) { 3760 MaskInIntReg = DAG.getNode(ISD::ZERO_EXTEND, DL, MVT::i32, MaskInIntReg); 3761 MaskIntVT = MVT::i32; 3762 } 3763 3764 // Count '1's with POPCNT. 3765 Increment = DAG.getNode(ISD::CTPOP, DL, MaskIntVT, MaskInIntReg); 3766 Increment = DAG.getZExtOrTrunc(Increment, DL, AddrVT); 3767 // Scale is an element size in bytes. 3768 SDValue Scale = DAG.getConstant(DataVT.getScalarSizeInBits() / 8, DL, 3769 AddrVT); 3770 Increment = DAG.getNode(ISD::MUL, DL, AddrVT, Increment, Scale); 3771 } else 3772 Increment = DAG.getConstant(DataVT.getSizeInBits() / 8, DL, AddrVT); 3773 3774 return DAG.getNode(ISD::ADD, DL, AddrVT, Addr, Increment); 3775 } 3776 3777 static SDValue clampDynamicVectorIndex(SelectionDAG &DAG, 3778 SDValue Idx, 3779 EVT VecVT, 3780 const SDLoc &dl) { 3781 if (isa<ConstantSDNode>(Idx)) 3782 return Idx; 3783 3784 EVT IdxVT = Idx.getValueType(); 3785 unsigned NElts = VecVT.getVectorNumElements(); 3786 if (isPowerOf2_32(NElts)) { 3787 APInt Imm = APInt::getLowBitsSet(IdxVT.getSizeInBits(), 3788 Log2_32(NElts)); 3789 return DAG.getNode(ISD::AND, dl, IdxVT, Idx, 3790 DAG.getConstant(Imm, dl, IdxVT)); 3791 } 3792 3793 return DAG.getNode(ISD::UMIN, dl, IdxVT, Idx, 3794 DAG.getConstant(NElts - 1, dl, IdxVT)); 3795 } 3796 3797 SDValue TargetLowering::getVectorElementPointer(SelectionDAG &DAG, 3798 SDValue VecPtr, EVT VecVT, 3799 SDValue Index) const { 3800 SDLoc dl(Index); 3801 // Make sure the index type is big enough to compute in. 3802 Index = DAG.getZExtOrTrunc(Index, dl, getPointerTy(DAG.getDataLayout())); 3803 3804 EVT EltVT = VecVT.getVectorElementType(); 3805 3806 // Calculate the element offset and add it to the pointer. 3807 unsigned EltSize = EltVT.getSizeInBits() / 8; // FIXME: should be ABI size. 3808 assert(EltSize * 8 == EltVT.getSizeInBits() && 3809 "Converting bits to bytes lost precision"); 3810 3811 Index = clampDynamicVectorIndex(DAG, Index, VecVT, dl); 3812 3813 EVT IdxVT = Index.getValueType(); 3814 3815 Index = DAG.getNode(ISD::MUL, dl, IdxVT, Index, 3816 DAG.getConstant(EltSize, dl, IdxVT)); 3817 return DAG.getNode(ISD::ADD, dl, IdxVT, Index, VecPtr); 3818 } 3819 3820 //===----------------------------------------------------------------------===// 3821 // Implementation of Emulated TLS Model 3822 //===----------------------------------------------------------------------===// 3823 3824 SDValue TargetLowering::LowerToTLSEmulatedModel(const GlobalAddressSDNode *GA, 3825 SelectionDAG &DAG) const { 3826 // Access to address of TLS varialbe xyz is lowered to a function call: 3827 // __emutls_get_address( address of global variable named "__emutls_v.xyz" ) 3828 EVT PtrVT = getPointerTy(DAG.getDataLayout()); 3829 PointerType *VoidPtrType = Type::getInt8PtrTy(*DAG.getContext()); 3830 SDLoc dl(GA); 3831 3832 ArgListTy Args; 3833 ArgListEntry Entry; 3834 std::string NameString = ("__emutls_v." + GA->getGlobal()->getName()).str(); 3835 Module *VariableModule = const_cast<Module*>(GA->getGlobal()->getParent()); 3836 StringRef EmuTlsVarName(NameString); 3837 GlobalVariable *EmuTlsVar = VariableModule->getNamedGlobal(EmuTlsVarName); 3838 assert(EmuTlsVar && "Cannot find EmuTlsVar "); 3839 Entry.Node = DAG.getGlobalAddress(EmuTlsVar, dl, PtrVT); 3840 Entry.Ty = VoidPtrType; 3841 Args.push_back(Entry); 3842 3843 SDValue EmuTlsGetAddr = DAG.getExternalSymbol("__emutls_get_address", PtrVT); 3844 3845 TargetLowering::CallLoweringInfo CLI(DAG); 3846 CLI.setDebugLoc(dl).setChain(DAG.getEntryNode()); 3847 CLI.setLibCallee(CallingConv::C, VoidPtrType, EmuTlsGetAddr, std::move(Args)); 3848 std::pair<SDValue, SDValue> CallResult = LowerCallTo(CLI); 3849 3850 // TLSADDR will be codegen'ed as call. Inform MFI that function has calls. 3851 // At last for X86 targets, maybe good for other targets too? 3852 MachineFrameInfo &MFI = DAG.getMachineFunction().getFrameInfo(); 3853 MFI.setAdjustsStack(true); // Is this only for X86 target? 3854 MFI.setHasCalls(true); 3855 3856 assert((GA->getOffset() == 0) && 3857 "Emulated TLS must have zero offset in GlobalAddressSDNode"); 3858 return CallResult.first; 3859 } 3860 3861 SDValue TargetLowering::lowerCmpEqZeroToCtlzSrl(SDValue Op, 3862 SelectionDAG &DAG) const { 3863 assert((Op->getOpcode() == ISD::SETCC) && "Input has to be a SETCC node."); 3864 if (!isCtlzFast()) 3865 return SDValue(); 3866 ISD::CondCode CC = cast<CondCodeSDNode>(Op.getOperand(2))->get(); 3867 SDLoc dl(Op); 3868 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op.getOperand(1))) { 3869 if (C->isNullValue() && CC == ISD::SETEQ) { 3870 EVT VT = Op.getOperand(0).getValueType(); 3871 SDValue Zext = Op.getOperand(0); 3872 if (VT.bitsLT(MVT::i32)) { 3873 VT = MVT::i32; 3874 Zext = DAG.getNode(ISD::ZERO_EXTEND, dl, VT, Op.getOperand(0)); 3875 } 3876 unsigned Log2b = Log2_32(VT.getSizeInBits()); 3877 SDValue Clz = DAG.getNode(ISD::CTLZ, dl, VT, Zext); 3878 SDValue Scc = DAG.getNode(ISD::SRL, dl, VT, Clz, 3879 DAG.getConstant(Log2b, dl, MVT::i32)); 3880 return DAG.getNode(ISD::TRUNCATE, dl, MVT::i32, Scc); 3881 } 3882 } 3883 return SDValue(); 3884 } 3885