1 //===- CodeGenDAGPatterns.cpp - Read DAG patterns from .td file -----------===// 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 file implements the CodeGenDAGPatterns class, which is used to read and 11 // represent the patterns present in a .td file for instructions. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "CodeGenDAGPatterns.h" 16 #include "Record.h" 17 #include "llvm/ADT/StringExtras.h" 18 #include "llvm/Support/Debug.h" 19 #include <set> 20 #include <algorithm> 21 #include <iostream> 22 using namespace llvm; 23 24 //===----------------------------------------------------------------------===// 25 // Helpers for working with extended types. 26 27 /// FilterVTs - Filter a list of VT's according to a predicate. 28 /// 29 template<typename T> 30 static std::vector<MVT::SimpleValueType> 31 FilterVTs(const std::vector<MVT::SimpleValueType> &InVTs, T Filter) { 32 std::vector<MVT::SimpleValueType> Result; 33 for (unsigned i = 0, e = InVTs.size(); i != e; ++i) 34 if (Filter(InVTs[i])) 35 Result.push_back(InVTs[i]); 36 return Result; 37 } 38 39 template<typename T> 40 static std::vector<unsigned char> 41 FilterEVTs(const std::vector<unsigned char> &InVTs, T Filter) { 42 std::vector<unsigned char> Result; 43 for (unsigned i = 0, e = InVTs.size(); i != e; ++i) 44 if (Filter((MVT::SimpleValueType)InVTs[i])) 45 Result.push_back(InVTs[i]); 46 return Result; 47 } 48 49 static std::vector<unsigned char> 50 ConvertVTs(const std::vector<MVT::SimpleValueType> &InVTs) { 51 std::vector<unsigned char> Result; 52 for (unsigned i = 0, e = InVTs.size(); i != e; ++i) 53 Result.push_back(InVTs[i]); 54 return Result; 55 } 56 57 static inline bool isInteger(MVT::SimpleValueType VT) { 58 return EVT(VT).isInteger(); 59 } 60 61 static inline bool isFloatingPoint(MVT::SimpleValueType VT) { 62 return EVT(VT).isFloatingPoint(); 63 } 64 65 static inline bool isVector(MVT::SimpleValueType VT) { 66 return EVT(VT).isVector(); 67 } 68 69 static bool LHSIsSubsetOfRHS(const std::vector<unsigned char> &LHS, 70 const std::vector<unsigned char> &RHS) { 71 if (LHS.size() > RHS.size()) return false; 72 for (unsigned i = 0, e = LHS.size(); i != e; ++i) 73 if (std::find(RHS.begin(), RHS.end(), LHS[i]) == RHS.end()) 74 return false; 75 return true; 76 } 77 78 namespace llvm { 79 namespace EEVT { 80 /// isExtIntegerInVTs - Return true if the specified extended value type vector 81 /// contains iAny or an integer value type. 82 bool isExtIntegerInVTs(const std::vector<unsigned char> &EVTs) { 83 assert(!EVTs.empty() && "Cannot check for integer in empty ExtVT list!"); 84 return EVTs[0] == MVT::iAny || !(FilterEVTs(EVTs, isInteger).empty()); 85 } 86 87 /// isExtFloatingPointInVTs - Return true if the specified extended value type 88 /// vector contains fAny or a FP value type. 89 bool isExtFloatingPointInVTs(const std::vector<unsigned char> &EVTs) { 90 assert(!EVTs.empty() && "Cannot check for FP in empty ExtVT list!"); 91 return EVTs[0] == MVT::fAny || !(FilterEVTs(EVTs, isFloatingPoint).empty()); 92 } 93 94 /// isExtVectorInVTs - Return true if the specified extended value type 95 /// vector contains vAny or a vector value type. 96 bool isExtVectorInVTs(const std::vector<unsigned char> &EVTs) { 97 assert(!EVTs.empty() && "Cannot check for vector in empty ExtVT list!"); 98 return EVTs[0] == MVT::vAny || !(FilterEVTs(EVTs, isVector).empty()); 99 } 100 } // end namespace EEVT. 101 } // end namespace llvm. 102 103 bool RecordPtrCmp::operator()(const Record *LHS, const Record *RHS) const { 104 return LHS->getID() < RHS->getID(); 105 } 106 107 /// Dependent variable map for CodeGenDAGPattern variant generation 108 typedef std::map<std::string, int> DepVarMap; 109 110 /// Const iterator shorthand for DepVarMap 111 typedef DepVarMap::const_iterator DepVarMap_citer; 112 113 namespace { 114 void FindDepVarsOf(TreePatternNode *N, DepVarMap &DepMap) { 115 if (N->isLeaf()) { 116 if (dynamic_cast<DefInit*>(N->getLeafValue()) != NULL) { 117 DepMap[N->getName()]++; 118 } 119 } else { 120 for (size_t i = 0, e = N->getNumChildren(); i != e; ++i) 121 FindDepVarsOf(N->getChild(i), DepMap); 122 } 123 } 124 125 //! Find dependent variables within child patterns 126 /*! 127 */ 128 void FindDepVars(TreePatternNode *N, MultipleUseVarSet &DepVars) { 129 DepVarMap depcounts; 130 FindDepVarsOf(N, depcounts); 131 for (DepVarMap_citer i = depcounts.begin(); i != depcounts.end(); ++i) { 132 if (i->second > 1) { // std::pair<std::string, int> 133 DepVars.insert(i->first); 134 } 135 } 136 } 137 138 //! Dump the dependent variable set: 139 void DumpDepVars(MultipleUseVarSet &DepVars) { 140 if (DepVars.empty()) { 141 DEBUG(errs() << "<empty set>"); 142 } else { 143 DEBUG(errs() << "[ "); 144 for (MultipleUseVarSet::const_iterator i = DepVars.begin(), e = DepVars.end(); 145 i != e; ++i) { 146 DEBUG(errs() << (*i) << " "); 147 } 148 DEBUG(errs() << "]"); 149 } 150 } 151 } 152 153 //===----------------------------------------------------------------------===// 154 // PatternToMatch implementation 155 // 156 157 /// getPredicateCheck - Return a single string containing all of this 158 /// pattern's predicates concatenated with "&&" operators. 159 /// 160 std::string PatternToMatch::getPredicateCheck() const { 161 std::string PredicateCheck; 162 for (unsigned i = 0, e = Predicates->getSize(); i != e; ++i) { 163 if (DefInit *Pred = dynamic_cast<DefInit*>(Predicates->getElement(i))) { 164 Record *Def = Pred->getDef(); 165 if (!Def->isSubClassOf("Predicate")) { 166 #ifndef NDEBUG 167 Def->dump(); 168 #endif 169 assert(0 && "Unknown predicate type!"); 170 } 171 if (!PredicateCheck.empty()) 172 PredicateCheck += " && "; 173 PredicateCheck += "(" + Def->getValueAsString("CondString") + ")"; 174 } 175 } 176 177 return PredicateCheck; 178 } 179 180 //===----------------------------------------------------------------------===// 181 // SDTypeConstraint implementation 182 // 183 184 SDTypeConstraint::SDTypeConstraint(Record *R) { 185 OperandNo = R->getValueAsInt("OperandNum"); 186 187 if (R->isSubClassOf("SDTCisVT")) { 188 ConstraintType = SDTCisVT; 189 x.SDTCisVT_Info.VT = getValueType(R->getValueAsDef("VT")); 190 } else if (R->isSubClassOf("SDTCisPtrTy")) { 191 ConstraintType = SDTCisPtrTy; 192 } else if (R->isSubClassOf("SDTCisInt")) { 193 ConstraintType = SDTCisInt; 194 } else if (R->isSubClassOf("SDTCisFP")) { 195 ConstraintType = SDTCisFP; 196 } else if (R->isSubClassOf("SDTCisVec")) { 197 ConstraintType = SDTCisVec; 198 } else if (R->isSubClassOf("SDTCisSameAs")) { 199 ConstraintType = SDTCisSameAs; 200 x.SDTCisSameAs_Info.OtherOperandNum = R->getValueAsInt("OtherOperandNum"); 201 } else if (R->isSubClassOf("SDTCisVTSmallerThanOp")) { 202 ConstraintType = SDTCisVTSmallerThanOp; 203 x.SDTCisVTSmallerThanOp_Info.OtherOperandNum = 204 R->getValueAsInt("OtherOperandNum"); 205 } else if (R->isSubClassOf("SDTCisOpSmallerThanOp")) { 206 ConstraintType = SDTCisOpSmallerThanOp; 207 x.SDTCisOpSmallerThanOp_Info.BigOperandNum = 208 R->getValueAsInt("BigOperandNum"); 209 } else if (R->isSubClassOf("SDTCisEltOfVec")) { 210 ConstraintType = SDTCisEltOfVec; 211 x.SDTCisEltOfVec_Info.OtherOperandNum = 212 R->getValueAsInt("OtherOpNum"); 213 } else { 214 errs() << "Unrecognized SDTypeConstraint '" << R->getName() << "'!\n"; 215 exit(1); 216 } 217 } 218 219 /// getOperandNum - Return the node corresponding to operand #OpNo in tree 220 /// N, which has NumResults results. 221 TreePatternNode *SDTypeConstraint::getOperandNum(unsigned OpNo, 222 TreePatternNode *N, 223 unsigned NumResults) const { 224 assert(NumResults <= 1 && 225 "We only work with nodes with zero or one result so far!"); 226 227 if (OpNo >= (NumResults + N->getNumChildren())) { 228 errs() << "Invalid operand number " << OpNo << " "; 229 N->dump(); 230 errs() << '\n'; 231 exit(1); 232 } 233 234 if (OpNo < NumResults) 235 return N; // FIXME: need value # 236 else 237 return N->getChild(OpNo-NumResults); 238 } 239 240 /// ApplyTypeConstraint - Given a node in a pattern, apply this type 241 /// constraint to the nodes operands. This returns true if it makes a 242 /// change, false otherwise. If a type contradiction is found, throw an 243 /// exception. 244 bool SDTypeConstraint::ApplyTypeConstraint(TreePatternNode *N, 245 const SDNodeInfo &NodeInfo, 246 TreePattern &TP) const { 247 unsigned NumResults = NodeInfo.getNumResults(); 248 assert(NumResults <= 1 && 249 "We only work with nodes with zero or one result so far!"); 250 251 // Check that the number of operands is sane. Negative operands -> varargs. 252 if (NodeInfo.getNumOperands() >= 0) { 253 if (N->getNumChildren() != (unsigned)NodeInfo.getNumOperands()) 254 TP.error(N->getOperator()->getName() + " node requires exactly " + 255 itostr(NodeInfo.getNumOperands()) + " operands!"); 256 } 257 258 const CodeGenTarget &CGT = TP.getDAGPatterns().getTargetInfo(); 259 260 TreePatternNode *NodeToApply = getOperandNum(OperandNo, N, NumResults); 261 262 switch (ConstraintType) { 263 default: assert(0 && "Unknown constraint type!"); 264 case SDTCisVT: 265 // Operand must be a particular type. 266 return NodeToApply->UpdateNodeType(x.SDTCisVT_Info.VT, TP); 267 case SDTCisPtrTy: { 268 // Operand must be same as target pointer type. 269 return NodeToApply->UpdateNodeType(MVT::iPTR, TP); 270 } 271 case SDTCisInt: { 272 // If there is only one integer type supported, this must be it. 273 std::vector<MVT::SimpleValueType> IntVTs = 274 FilterVTs(CGT.getLegalValueTypes(), isInteger); 275 276 // If we found exactly one supported integer type, apply it. 277 if (IntVTs.size() == 1) 278 return NodeToApply->UpdateNodeType(IntVTs[0], TP); 279 return NodeToApply->UpdateNodeType(MVT::iAny, TP); 280 } 281 case SDTCisFP: { 282 // If there is only one FP type supported, this must be it. 283 std::vector<MVT::SimpleValueType> FPVTs = 284 FilterVTs(CGT.getLegalValueTypes(), isFloatingPoint); 285 286 // If we found exactly one supported FP type, apply it. 287 if (FPVTs.size() == 1) 288 return NodeToApply->UpdateNodeType(FPVTs[0], TP); 289 return NodeToApply->UpdateNodeType(MVT::fAny, TP); 290 } 291 case SDTCisVec: { 292 // If there is only one vector type supported, this must be it. 293 std::vector<MVT::SimpleValueType> VecVTs = 294 FilterVTs(CGT.getLegalValueTypes(), isVector); 295 296 // If we found exactly one supported vector type, apply it. 297 if (VecVTs.size() == 1) 298 return NodeToApply->UpdateNodeType(VecVTs[0], TP); 299 return NodeToApply->UpdateNodeType(MVT::vAny, TP); 300 } 301 case SDTCisSameAs: { 302 TreePatternNode *OtherNode = 303 getOperandNum(x.SDTCisSameAs_Info.OtherOperandNum, N, NumResults); 304 return NodeToApply->UpdateNodeType(OtherNode->getExtTypes(), TP) | 305 OtherNode->UpdateNodeType(NodeToApply->getExtTypes(), TP); 306 } 307 case SDTCisVTSmallerThanOp: { 308 // The NodeToApply must be a leaf node that is a VT. OtherOperandNum must 309 // have an integer type that is smaller than the VT. 310 if (!NodeToApply->isLeaf() || 311 !dynamic_cast<DefInit*>(NodeToApply->getLeafValue()) || 312 !static_cast<DefInit*>(NodeToApply->getLeafValue())->getDef() 313 ->isSubClassOf("ValueType")) 314 TP.error(N->getOperator()->getName() + " expects a VT operand!"); 315 MVT::SimpleValueType VT = 316 getValueType(static_cast<DefInit*>(NodeToApply->getLeafValue())->getDef()); 317 if (!isInteger(VT)) 318 TP.error(N->getOperator()->getName() + " VT operand must be integer!"); 319 320 TreePatternNode *OtherNode = 321 getOperandNum(x.SDTCisVTSmallerThanOp_Info.OtherOperandNum, N,NumResults); 322 323 // It must be integer. 324 bool MadeChange = false; 325 MadeChange |= OtherNode->UpdateNodeType(MVT::iAny, TP); 326 327 // This code only handles nodes that have one type set. Assert here so 328 // that we can change this if we ever need to deal with multiple value 329 // types at this point. 330 assert(OtherNode->getExtTypes().size() == 1 && "Node has too many types!"); 331 if (OtherNode->hasTypeSet() && OtherNode->getTypeNum(0) <= VT) 332 OtherNode->UpdateNodeType(MVT::Other, TP); // Throw an error. 333 return false; 334 } 335 case SDTCisOpSmallerThanOp: { 336 TreePatternNode *BigOperand = 337 getOperandNum(x.SDTCisOpSmallerThanOp_Info.BigOperandNum, N, NumResults); 338 339 // Both operands must be integer or FP, but we don't care which. 340 bool MadeChange = false; 341 342 // This code does not currently handle nodes which have multiple types, 343 // where some types are integer, and some are fp. Assert that this is not 344 // the case. 345 assert(!(EEVT::isExtIntegerInVTs(NodeToApply->getExtTypes()) && 346 EEVT::isExtFloatingPointInVTs(NodeToApply->getExtTypes())) && 347 !(EEVT::isExtIntegerInVTs(BigOperand->getExtTypes()) && 348 EEVT::isExtFloatingPointInVTs(BigOperand->getExtTypes())) && 349 "SDTCisOpSmallerThanOp does not handle mixed int/fp types!"); 350 if (EEVT::isExtIntegerInVTs(NodeToApply->getExtTypes())) 351 MadeChange |= BigOperand->UpdateNodeType(MVT::iAny, TP); 352 else if (EEVT::isExtFloatingPointInVTs(NodeToApply->getExtTypes())) 353 MadeChange |= BigOperand->UpdateNodeType(MVT::fAny, TP); 354 if (EEVT::isExtIntegerInVTs(BigOperand->getExtTypes())) 355 MadeChange |= NodeToApply->UpdateNodeType(MVT::iAny, TP); 356 else if (EEVT::isExtFloatingPointInVTs(BigOperand->getExtTypes())) 357 MadeChange |= NodeToApply->UpdateNodeType(MVT::fAny, TP); 358 359 std::vector<MVT::SimpleValueType> VTs = CGT.getLegalValueTypes(); 360 361 if (EEVT::isExtIntegerInVTs(NodeToApply->getExtTypes())) { 362 VTs = FilterVTs(VTs, isInteger); 363 } else if (EEVT::isExtFloatingPointInVTs(NodeToApply->getExtTypes())) { 364 VTs = FilterVTs(VTs, isFloatingPoint); 365 } else { 366 VTs.clear(); 367 } 368 369 switch (VTs.size()) { 370 default: // Too many VT's to pick from. 371 case 0: break; // No info yet. 372 case 1: 373 // Only one VT of this flavor. Cannot ever satisfy the constraints. 374 return NodeToApply->UpdateNodeType(MVT::Other, TP); // throw 375 case 2: 376 // If we have exactly two possible types, the little operand must be the 377 // small one, the big operand should be the big one. Common with 378 // float/double for example. 379 assert(VTs[0] < VTs[1] && "Should be sorted!"); 380 MadeChange |= NodeToApply->UpdateNodeType(VTs[0], TP); 381 MadeChange |= BigOperand->UpdateNodeType(VTs[1], TP); 382 break; 383 } 384 return MadeChange; 385 } 386 case SDTCisEltOfVec: { 387 TreePatternNode *OtherOperand = 388 getOperandNum(x.SDTCisEltOfVec_Info.OtherOperandNum, 389 N, NumResults); 390 if (OtherOperand->hasTypeSet()) { 391 if (!isVector(OtherOperand->getTypeNum(0))) 392 TP.error(N->getOperator()->getName() + " VT operand must be a vector!"); 393 EVT IVT = OtherOperand->getTypeNum(0); 394 IVT = IVT.getVectorElementType(); 395 return NodeToApply->UpdateNodeType(IVT.getSimpleVT().SimpleTy, TP); 396 } 397 return false; 398 } 399 } 400 return false; 401 } 402 403 //===----------------------------------------------------------------------===// 404 // SDNodeInfo implementation 405 // 406 SDNodeInfo::SDNodeInfo(Record *R) : Def(R) { 407 EnumName = R->getValueAsString("Opcode"); 408 SDClassName = R->getValueAsString("SDClass"); 409 Record *TypeProfile = R->getValueAsDef("TypeProfile"); 410 NumResults = TypeProfile->getValueAsInt("NumResults"); 411 NumOperands = TypeProfile->getValueAsInt("NumOperands"); 412 413 // Parse the properties. 414 Properties = 0; 415 std::vector<Record*> PropList = R->getValueAsListOfDefs("Properties"); 416 for (unsigned i = 0, e = PropList.size(); i != e; ++i) { 417 if (PropList[i]->getName() == "SDNPCommutative") { 418 Properties |= 1 << SDNPCommutative; 419 } else if (PropList[i]->getName() == "SDNPAssociative") { 420 Properties |= 1 << SDNPAssociative; 421 } else if (PropList[i]->getName() == "SDNPHasChain") { 422 Properties |= 1 << SDNPHasChain; 423 } else if (PropList[i]->getName() == "SDNPOutFlag") { 424 Properties |= 1 << SDNPOutFlag; 425 } else if (PropList[i]->getName() == "SDNPInFlag") { 426 Properties |= 1 << SDNPInFlag; 427 } else if (PropList[i]->getName() == "SDNPOptInFlag") { 428 Properties |= 1 << SDNPOptInFlag; 429 } else if (PropList[i]->getName() == "SDNPMayStore") { 430 Properties |= 1 << SDNPMayStore; 431 } else if (PropList[i]->getName() == "SDNPMayLoad") { 432 Properties |= 1 << SDNPMayLoad; 433 } else if (PropList[i]->getName() == "SDNPSideEffect") { 434 Properties |= 1 << SDNPSideEffect; 435 } else if (PropList[i]->getName() == "SDNPMemOperand") { 436 Properties |= 1 << SDNPMemOperand; 437 } else { 438 errs() << "Unknown SD Node property '" << PropList[i]->getName() 439 << "' on node '" << R->getName() << "'!\n"; 440 exit(1); 441 } 442 } 443 444 445 // Parse the type constraints. 446 std::vector<Record*> ConstraintList = 447 TypeProfile->getValueAsListOfDefs("Constraints"); 448 TypeConstraints.assign(ConstraintList.begin(), ConstraintList.end()); 449 } 450 451 //===----------------------------------------------------------------------===// 452 // TreePatternNode implementation 453 // 454 455 TreePatternNode::~TreePatternNode() { 456 #if 0 // FIXME: implement refcounted tree nodes! 457 for (unsigned i = 0, e = getNumChildren(); i != e; ++i) 458 delete getChild(i); 459 #endif 460 } 461 462 /// UpdateNodeType - Set the node type of N to VT if VT contains 463 /// information. If N already contains a conflicting type, then throw an 464 /// exception. This returns true if any information was updated. 465 /// 466 bool TreePatternNode::UpdateNodeType(const std::vector<unsigned char> &ExtVTs, 467 TreePattern &TP) { 468 assert(!ExtVTs.empty() && "Cannot update node type with empty type vector!"); 469 470 if (ExtVTs[0] == EEVT::isUnknown || LHSIsSubsetOfRHS(getExtTypes(), ExtVTs)) 471 return false; 472 if (isTypeCompletelyUnknown() || LHSIsSubsetOfRHS(ExtVTs, getExtTypes())) { 473 setTypes(ExtVTs); 474 return true; 475 } 476 477 if (getExtTypeNum(0) == MVT::iPTR || getExtTypeNum(0) == MVT::iPTRAny) { 478 if (ExtVTs[0] == MVT::iPTR || ExtVTs[0] == MVT::iPTRAny || 479 ExtVTs[0] == MVT::iAny) 480 return false; 481 if (EEVT::isExtIntegerInVTs(ExtVTs)) { 482 std::vector<unsigned char> FVTs = FilterEVTs(ExtVTs, isInteger); 483 if (FVTs.size()) { 484 setTypes(ExtVTs); 485 return true; 486 } 487 } 488 } 489 490 // Merge vAny with iAny/fAny. The latter include vector types so keep them 491 // as the more specific information. 492 if (ExtVTs[0] == MVT::vAny && 493 (getExtTypeNum(0) == MVT::iAny || getExtTypeNum(0) == MVT::fAny)) 494 return false; 495 if (getExtTypeNum(0) == MVT::vAny && 496 (ExtVTs[0] == MVT::iAny || ExtVTs[0] == MVT::fAny)) { 497 setTypes(ExtVTs); 498 return true; 499 } 500 501 if (ExtVTs[0] == MVT::iAny && 502 EEVT::isExtIntegerInVTs(getExtTypes())) { 503 assert(hasTypeSet() && "should be handled above!"); 504 std::vector<unsigned char> FVTs = FilterEVTs(getExtTypes(), isInteger); 505 if (getExtTypes() == FVTs) 506 return false; 507 setTypes(FVTs); 508 return true; 509 } 510 if ((ExtVTs[0] == MVT::iPTR || ExtVTs[0] == MVT::iPTRAny) && 511 EEVT::isExtIntegerInVTs(getExtTypes())) { 512 //assert(hasTypeSet() && "should be handled above!"); 513 std::vector<unsigned char> FVTs = FilterEVTs(getExtTypes(), isInteger); 514 if (getExtTypes() == FVTs) 515 return false; 516 if (FVTs.size()) { 517 setTypes(FVTs); 518 return true; 519 } 520 } 521 if (ExtVTs[0] == MVT::fAny && 522 EEVT::isExtFloatingPointInVTs(getExtTypes())) { 523 assert(hasTypeSet() && "should be handled above!"); 524 std::vector<unsigned char> FVTs = 525 FilterEVTs(getExtTypes(), isFloatingPoint); 526 if (getExtTypes() == FVTs) 527 return false; 528 setTypes(FVTs); 529 return true; 530 } 531 if (ExtVTs[0] == MVT::vAny && 532 EEVT::isExtVectorInVTs(getExtTypes())) { 533 assert(hasTypeSet() && "should be handled above!"); 534 std::vector<unsigned char> FVTs = FilterEVTs(getExtTypes(), isVector); 535 if (getExtTypes() == FVTs) 536 return false; 537 setTypes(FVTs); 538 return true; 539 } 540 541 // If we know this is an int, FP, or vector type, and we are told it is a 542 // specific one, take the advice. 543 // 544 // Similarly, we should probably set the type here to the intersection of 545 // {iAny|fAny|vAny} and ExtVTs 546 if ((getExtTypeNum(0) == MVT::iAny && 547 EEVT::isExtIntegerInVTs(ExtVTs)) || 548 (getExtTypeNum(0) == MVT::fAny && 549 EEVT::isExtFloatingPointInVTs(ExtVTs)) || 550 (getExtTypeNum(0) == MVT::vAny && 551 EEVT::isExtVectorInVTs(ExtVTs))) { 552 setTypes(ExtVTs); 553 return true; 554 } 555 if (getExtTypeNum(0) == MVT::iAny && 556 (ExtVTs[0] == MVT::iPTR || ExtVTs[0] == MVT::iPTRAny)) { 557 setTypes(ExtVTs); 558 return true; 559 } 560 561 if (isLeaf()) { 562 dump(); 563 errs() << " "; 564 TP.error("Type inference contradiction found in node!"); 565 } else { 566 TP.error("Type inference contradiction found in node " + 567 getOperator()->getName() + "!"); 568 } 569 return true; // unreachable 570 } 571 572 573 void TreePatternNode::print(raw_ostream &OS) const { 574 if (isLeaf()) { 575 OS << *getLeafValue(); 576 } else { 577 OS << "(" << getOperator()->getName(); 578 } 579 580 // FIXME: At some point we should handle printing all the value types for 581 // nodes that are multiply typed. 582 switch (getExtTypeNum(0)) { 583 case MVT::Other: OS << ":Other"; break; 584 case MVT::iAny: OS << ":iAny"; break; 585 case MVT::fAny : OS << ":fAny"; break; 586 case MVT::vAny: OS << ":vAny"; break; 587 case EEVT::isUnknown: ; /*OS << ":?";*/ break; 588 case MVT::iPTR: OS << ":iPTR"; break; 589 case MVT::iPTRAny: OS << ":iPTRAny"; break; 590 default: { 591 std::string VTName = llvm::getName(getTypeNum(0)); 592 // Strip off EVT:: prefix if present. 593 if (VTName.substr(0,5) == "MVT::") 594 VTName = VTName.substr(5); 595 OS << ":" << VTName; 596 break; 597 } 598 } 599 600 if (!isLeaf()) { 601 if (getNumChildren() != 0) { 602 OS << " "; 603 getChild(0)->print(OS); 604 for (unsigned i = 1, e = getNumChildren(); i != e; ++i) { 605 OS << ", "; 606 getChild(i)->print(OS); 607 } 608 } 609 OS << ")"; 610 } 611 612 for (unsigned i = 0, e = PredicateFns.size(); i != e; ++i) 613 OS << "<<P:" << PredicateFns[i] << ">>"; 614 if (TransformFn) 615 OS << "<<X:" << TransformFn->getName() << ">>"; 616 if (!getName().empty()) 617 OS << ":$" << getName(); 618 619 } 620 void TreePatternNode::dump() const { 621 print(errs()); 622 } 623 624 /// isIsomorphicTo - Return true if this node is recursively 625 /// isomorphic to the specified node. For this comparison, the node's 626 /// entire state is considered. The assigned name is ignored, since 627 /// nodes with differing names are considered isomorphic. However, if 628 /// the assigned name is present in the dependent variable set, then 629 /// the assigned name is considered significant and the node is 630 /// isomorphic if the names match. 631 bool TreePatternNode::isIsomorphicTo(const TreePatternNode *N, 632 const MultipleUseVarSet &DepVars) const { 633 if (N == this) return true; 634 if (N->isLeaf() != isLeaf() || getExtTypes() != N->getExtTypes() || 635 getPredicateFns() != N->getPredicateFns() || 636 getTransformFn() != N->getTransformFn()) 637 return false; 638 639 if (isLeaf()) { 640 if (DefInit *DI = dynamic_cast<DefInit*>(getLeafValue())) { 641 if (DefInit *NDI = dynamic_cast<DefInit*>(N->getLeafValue())) { 642 return ((DI->getDef() == NDI->getDef()) 643 && (DepVars.find(getName()) == DepVars.end() 644 || getName() == N->getName())); 645 } 646 } 647 return getLeafValue() == N->getLeafValue(); 648 } 649 650 if (N->getOperator() != getOperator() || 651 N->getNumChildren() != getNumChildren()) return false; 652 for (unsigned i = 0, e = getNumChildren(); i != e; ++i) 653 if (!getChild(i)->isIsomorphicTo(N->getChild(i), DepVars)) 654 return false; 655 return true; 656 } 657 658 /// clone - Make a copy of this tree and all of its children. 659 /// 660 TreePatternNode *TreePatternNode::clone() const { 661 TreePatternNode *New; 662 if (isLeaf()) { 663 New = new TreePatternNode(getLeafValue()); 664 } else { 665 std::vector<TreePatternNode*> CChildren; 666 CChildren.reserve(Children.size()); 667 for (unsigned i = 0, e = getNumChildren(); i != e; ++i) 668 CChildren.push_back(getChild(i)->clone()); 669 New = new TreePatternNode(getOperator(), CChildren); 670 } 671 New->setName(getName()); 672 New->setTypes(getExtTypes()); 673 New->setPredicateFns(getPredicateFns()); 674 New->setTransformFn(getTransformFn()); 675 return New; 676 } 677 678 /// SubstituteFormalArguments - Replace the formal arguments in this tree 679 /// with actual values specified by ArgMap. 680 void TreePatternNode:: 681 SubstituteFormalArguments(std::map<std::string, TreePatternNode*> &ArgMap) { 682 if (isLeaf()) return; 683 684 for (unsigned i = 0, e = getNumChildren(); i != e; ++i) { 685 TreePatternNode *Child = getChild(i); 686 if (Child->isLeaf()) { 687 Init *Val = Child->getLeafValue(); 688 if (dynamic_cast<DefInit*>(Val) && 689 static_cast<DefInit*>(Val)->getDef()->getName() == "node") { 690 // We found a use of a formal argument, replace it with its value. 691 TreePatternNode *NewChild = ArgMap[Child->getName()]; 692 assert(NewChild && "Couldn't find formal argument!"); 693 assert((Child->getPredicateFns().empty() || 694 NewChild->getPredicateFns() == Child->getPredicateFns()) && 695 "Non-empty child predicate clobbered!"); 696 setChild(i, NewChild); 697 } 698 } else { 699 getChild(i)->SubstituteFormalArguments(ArgMap); 700 } 701 } 702 } 703 704 705 /// InlinePatternFragments - If this pattern refers to any pattern 706 /// fragments, inline them into place, giving us a pattern without any 707 /// PatFrag references. 708 TreePatternNode *TreePatternNode::InlinePatternFragments(TreePattern &TP) { 709 if (isLeaf()) return this; // nothing to do. 710 Record *Op = getOperator(); 711 712 if (!Op->isSubClassOf("PatFrag")) { 713 // Just recursively inline children nodes. 714 for (unsigned i = 0, e = getNumChildren(); i != e; ++i) { 715 TreePatternNode *Child = getChild(i); 716 TreePatternNode *NewChild = Child->InlinePatternFragments(TP); 717 718 assert((Child->getPredicateFns().empty() || 719 NewChild->getPredicateFns() == Child->getPredicateFns()) && 720 "Non-empty child predicate clobbered!"); 721 722 setChild(i, NewChild); 723 } 724 return this; 725 } 726 727 // Otherwise, we found a reference to a fragment. First, look up its 728 // TreePattern record. 729 TreePattern *Frag = TP.getDAGPatterns().getPatternFragment(Op); 730 731 // Verify that we are passing the right number of operands. 732 if (Frag->getNumArgs() != Children.size()) 733 TP.error("'" + Op->getName() + "' fragment requires " + 734 utostr(Frag->getNumArgs()) + " operands!"); 735 736 TreePatternNode *FragTree = Frag->getOnlyTree()->clone(); 737 738 std::string Code = Op->getValueAsCode("Predicate"); 739 if (!Code.empty()) 740 FragTree->addPredicateFn("Predicate_"+Op->getName()); 741 742 // Resolve formal arguments to their actual value. 743 if (Frag->getNumArgs()) { 744 // Compute the map of formal to actual arguments. 745 std::map<std::string, TreePatternNode*> ArgMap; 746 for (unsigned i = 0, e = Frag->getNumArgs(); i != e; ++i) 747 ArgMap[Frag->getArgName(i)] = getChild(i)->InlinePatternFragments(TP); 748 749 FragTree->SubstituteFormalArguments(ArgMap); 750 } 751 752 FragTree->setName(getName()); 753 FragTree->UpdateNodeType(getExtTypes(), TP); 754 755 // Transfer in the old predicates. 756 for (unsigned i = 0, e = getPredicateFns().size(); i != e; ++i) 757 FragTree->addPredicateFn(getPredicateFns()[i]); 758 759 // Get a new copy of this fragment to stitch into here. 760 //delete this; // FIXME: implement refcounting! 761 762 // The fragment we inlined could have recursive inlining that is needed. See 763 // if there are any pattern fragments in it and inline them as needed. 764 return FragTree->InlinePatternFragments(TP); 765 } 766 767 /// getImplicitType - Check to see if the specified record has an implicit 768 /// type which should be applied to it. This will infer the type of register 769 /// references from the register file information, for example. 770 /// 771 static std::vector<unsigned char> getImplicitType(Record *R, bool NotRegisters, 772 TreePattern &TP) { 773 // Some common return values 774 std::vector<unsigned char> Unknown(1, EEVT::isUnknown); 775 std::vector<unsigned char> Other(1, MVT::Other); 776 777 // Check to see if this is a register or a register class... 778 if (R->isSubClassOf("RegisterClass")) { 779 if (NotRegisters) 780 return Unknown; 781 const CodeGenRegisterClass &RC = 782 TP.getDAGPatterns().getTargetInfo().getRegisterClass(R); 783 return ConvertVTs(RC.getValueTypes()); 784 } else if (R->isSubClassOf("PatFrag")) { 785 // Pattern fragment types will be resolved when they are inlined. 786 return Unknown; 787 } else if (R->isSubClassOf("Register")) { 788 if (NotRegisters) 789 return Unknown; 790 const CodeGenTarget &T = TP.getDAGPatterns().getTargetInfo(); 791 return T.getRegisterVTs(R); 792 } else if (R->isSubClassOf("ValueType") || R->isSubClassOf("CondCode")) { 793 // Using a VTSDNode or CondCodeSDNode. 794 return Other; 795 } else if (R->isSubClassOf("ComplexPattern")) { 796 if (NotRegisters) 797 return Unknown; 798 std::vector<unsigned char> 799 ComplexPat(1, TP.getDAGPatterns().getComplexPattern(R).getValueType()); 800 return ComplexPat; 801 } else if (R->isSubClassOf("PointerLikeRegClass")) { 802 Other[0] = MVT::iPTR; 803 return Other; 804 } else if (R->getName() == "node" || R->getName() == "srcvalue" || 805 R->getName() == "zero_reg") { 806 // Placeholder. 807 return Unknown; 808 } 809 810 TP.error("Unknown node flavor used in pattern: " + R->getName()); 811 return Other; 812 } 813 814 815 /// getIntrinsicInfo - If this node corresponds to an intrinsic, return the 816 /// CodeGenIntrinsic information for it, otherwise return a null pointer. 817 const CodeGenIntrinsic *TreePatternNode:: 818 getIntrinsicInfo(const CodeGenDAGPatterns &CDP) const { 819 if (getOperator() != CDP.get_intrinsic_void_sdnode() && 820 getOperator() != CDP.get_intrinsic_w_chain_sdnode() && 821 getOperator() != CDP.get_intrinsic_wo_chain_sdnode()) 822 return 0; 823 824 unsigned IID = 825 dynamic_cast<IntInit*>(getChild(0)->getLeafValue())->getValue(); 826 return &CDP.getIntrinsicInfo(IID); 827 } 828 829 /// isCommutativeIntrinsic - Return true if the node corresponds to a 830 /// commutative intrinsic. 831 bool 832 TreePatternNode::isCommutativeIntrinsic(const CodeGenDAGPatterns &CDP) const { 833 if (const CodeGenIntrinsic *Int = getIntrinsicInfo(CDP)) 834 return Int->isCommutative; 835 return false; 836 } 837 838 839 /// ApplyTypeConstraints - Apply all of the type constraints relevant to 840 /// this node and its children in the tree. This returns true if it makes a 841 /// change, false otherwise. If a type contradiction is found, throw an 842 /// exception. 843 bool TreePatternNode::ApplyTypeConstraints(TreePattern &TP, bool NotRegisters) { 844 CodeGenDAGPatterns &CDP = TP.getDAGPatterns(); 845 if (isLeaf()) { 846 if (DefInit *DI = dynamic_cast<DefInit*>(getLeafValue())) { 847 // If it's a regclass or something else known, include the type. 848 return UpdateNodeType(getImplicitType(DI->getDef(), NotRegisters, TP),TP); 849 } else if (IntInit *II = dynamic_cast<IntInit*>(getLeafValue())) { 850 // Int inits are always integers. :) 851 bool MadeChange = UpdateNodeType(MVT::iAny, TP); 852 853 if (hasTypeSet()) { 854 // At some point, it may make sense for this tree pattern to have 855 // multiple types. Assert here that it does not, so we revisit this 856 // code when appropriate. 857 assert(getExtTypes().size() >= 1 && "TreePattern doesn't have a type!"); 858 MVT::SimpleValueType VT = getTypeNum(0); 859 for (unsigned i = 1, e = getExtTypes().size(); i != e; ++i) 860 assert(getTypeNum(i) == VT && "TreePattern has too many types!"); 861 862 VT = getTypeNum(0); 863 if (VT != MVT::iPTR && VT != MVT::iPTRAny) { 864 unsigned Size = EVT(VT).getSizeInBits(); 865 // Make sure that the value is representable for this type. 866 if (Size < 32) { 867 int Val = (II->getValue() << (32-Size)) >> (32-Size); 868 if (Val != II->getValue()) { 869 // If sign-extended doesn't fit, does it fit as unsigned? 870 unsigned ValueMask; 871 unsigned UnsignedVal; 872 ValueMask = unsigned(~uint32_t(0UL) >> (32-Size)); 873 UnsignedVal = unsigned(II->getValue()); 874 875 if ((ValueMask & UnsignedVal) != UnsignedVal) { 876 TP.error("Integer value '" + itostr(II->getValue())+ 877 "' is out of range for type '" + 878 getEnumName(getTypeNum(0)) + "'!"); 879 } 880 } 881 } 882 } 883 } 884 885 return MadeChange; 886 } 887 return false; 888 } 889 890 // special handling for set, which isn't really an SDNode. 891 if (getOperator()->getName() == "set") { 892 assert (getNumChildren() >= 2 && "Missing RHS of a set?"); 893 unsigned NC = getNumChildren(); 894 bool MadeChange = false; 895 for (unsigned i = 0; i < NC-1; ++i) { 896 MadeChange = getChild(i)->ApplyTypeConstraints(TP, NotRegisters); 897 MadeChange |= getChild(NC-1)->ApplyTypeConstraints(TP, NotRegisters); 898 899 // Types of operands must match. 900 MadeChange |= getChild(i)->UpdateNodeType(getChild(NC-1)->getExtTypes(), 901 TP); 902 MadeChange |= getChild(NC-1)->UpdateNodeType(getChild(i)->getExtTypes(), 903 TP); 904 MadeChange |= UpdateNodeType(MVT::isVoid, TP); 905 } 906 return MadeChange; 907 } else if (getOperator()->getName() == "implicit" || 908 getOperator()->getName() == "parallel") { 909 bool MadeChange = false; 910 for (unsigned i = 0; i < getNumChildren(); ++i) 911 MadeChange = getChild(i)->ApplyTypeConstraints(TP, NotRegisters); 912 MadeChange |= UpdateNodeType(MVT::isVoid, TP); 913 return MadeChange; 914 } else if (getOperator()->getName() == "COPY_TO_REGCLASS") { 915 bool MadeChange = false; 916 MadeChange |= getChild(0)->ApplyTypeConstraints(TP, NotRegisters); 917 MadeChange |= getChild(1)->ApplyTypeConstraints(TP, NotRegisters); 918 MadeChange |= UpdateNodeType(getChild(1)->getTypeNum(0), TP); 919 return MadeChange; 920 } else if (const CodeGenIntrinsic *Int = getIntrinsicInfo(CDP)) { 921 bool MadeChange = false; 922 923 // Apply the result type to the node. 924 unsigned NumRetVTs = Int->IS.RetVTs.size(); 925 unsigned NumParamVTs = Int->IS.ParamVTs.size(); 926 927 for (unsigned i = 0, e = NumRetVTs; i != e; ++i) 928 MadeChange |= UpdateNodeType(Int->IS.RetVTs[i], TP); 929 930 if (getNumChildren() != NumParamVTs + NumRetVTs) 931 TP.error("Intrinsic '" + Int->Name + "' expects " + 932 utostr(NumParamVTs + NumRetVTs - 1) + " operands, not " + 933 utostr(getNumChildren() - 1) + " operands!"); 934 935 // Apply type info to the intrinsic ID. 936 MadeChange |= getChild(0)->UpdateNodeType(MVT::iPTR, TP); 937 938 for (unsigned i = NumRetVTs, e = getNumChildren(); i != e; ++i) { 939 MVT::SimpleValueType OpVT = Int->IS.ParamVTs[i - NumRetVTs]; 940 MadeChange |= getChild(i)->UpdateNodeType(OpVT, TP); 941 MadeChange |= getChild(i)->ApplyTypeConstraints(TP, NotRegisters); 942 } 943 return MadeChange; 944 } else if (getOperator()->isSubClassOf("SDNode")) { 945 const SDNodeInfo &NI = CDP.getSDNodeInfo(getOperator()); 946 947 bool MadeChange = NI.ApplyTypeConstraints(this, TP); 948 for (unsigned i = 0, e = getNumChildren(); i != e; ++i) 949 MadeChange |= getChild(i)->ApplyTypeConstraints(TP, NotRegisters); 950 // Branch, etc. do not produce results and top-level forms in instr pattern 951 // must have void types. 952 if (NI.getNumResults() == 0) 953 MadeChange |= UpdateNodeType(MVT::isVoid, TP); 954 955 return MadeChange; 956 } else if (getOperator()->isSubClassOf("Instruction")) { 957 const DAGInstruction &Inst = CDP.getInstruction(getOperator()); 958 bool MadeChange = false; 959 unsigned NumResults = Inst.getNumResults(); 960 961 assert(NumResults <= 1 && 962 "Only supports zero or one result instrs!"); 963 964 CodeGenInstruction &InstInfo = 965 CDP.getTargetInfo().getInstruction(getOperator()->getName()); 966 // Apply the result type to the node 967 if (NumResults == 0 || InstInfo.NumDefs == 0) { 968 MadeChange = UpdateNodeType(MVT::isVoid, TP); 969 } else { 970 Record *ResultNode = Inst.getResult(0); 971 972 if (ResultNode->isSubClassOf("PointerLikeRegClass")) { 973 std::vector<unsigned char> VT; 974 VT.push_back(MVT::iPTR); 975 MadeChange = UpdateNodeType(VT, TP); 976 } else if (ResultNode->getName() == "unknown") { 977 std::vector<unsigned char> VT; 978 VT.push_back(EEVT::isUnknown); 979 MadeChange = UpdateNodeType(VT, TP); 980 } else { 981 assert(ResultNode->isSubClassOf("RegisterClass") && 982 "Operands should be register classes!"); 983 984 const CodeGenRegisterClass &RC = 985 CDP.getTargetInfo().getRegisterClass(ResultNode); 986 MadeChange = UpdateNodeType(ConvertVTs(RC.getValueTypes()), TP); 987 } 988 } 989 990 unsigned ChildNo = 0; 991 for (unsigned i = 0, e = Inst.getNumOperands(); i != e; ++i) { 992 Record *OperandNode = Inst.getOperand(i); 993 994 // If the instruction expects a predicate or optional def operand, we 995 // codegen this by setting the operand to it's default value if it has a 996 // non-empty DefaultOps field. 997 if ((OperandNode->isSubClassOf("PredicateOperand") || 998 OperandNode->isSubClassOf("OptionalDefOperand")) && 999 !CDP.getDefaultOperand(OperandNode).DefaultOps.empty()) 1000 continue; 1001 1002 // Verify that we didn't run out of provided operands. 1003 if (ChildNo >= getNumChildren()) 1004 TP.error("Instruction '" + getOperator()->getName() + 1005 "' expects more operands than were provided."); 1006 1007 MVT::SimpleValueType VT; 1008 TreePatternNode *Child = getChild(ChildNo++); 1009 if (OperandNode->isSubClassOf("RegisterClass")) { 1010 const CodeGenRegisterClass &RC = 1011 CDP.getTargetInfo().getRegisterClass(OperandNode); 1012 MadeChange |= Child->UpdateNodeType(ConvertVTs(RC.getValueTypes()), TP); 1013 } else if (OperandNode->isSubClassOf("Operand")) { 1014 VT = getValueType(OperandNode->getValueAsDef("Type")); 1015 MadeChange |= Child->UpdateNodeType(VT, TP); 1016 } else if (OperandNode->isSubClassOf("PointerLikeRegClass")) { 1017 MadeChange |= Child->UpdateNodeType(MVT::iPTR, TP); 1018 } else if (OperandNode->getName() == "unknown") { 1019 MadeChange |= Child->UpdateNodeType(EEVT::isUnknown, TP); 1020 } else { 1021 assert(0 && "Unknown operand type!"); 1022 abort(); 1023 } 1024 MadeChange |= Child->ApplyTypeConstraints(TP, NotRegisters); 1025 } 1026 1027 if (ChildNo != getNumChildren()) 1028 TP.error("Instruction '" + getOperator()->getName() + 1029 "' was provided too many operands!"); 1030 1031 return MadeChange; 1032 } else { 1033 assert(getOperator()->isSubClassOf("SDNodeXForm") && "Unknown node type!"); 1034 1035 // Node transforms always take one operand. 1036 if (getNumChildren() != 1) 1037 TP.error("Node transform '" + getOperator()->getName() + 1038 "' requires one operand!"); 1039 1040 // If either the output or input of the xform does not have exact 1041 // type info. We assume they must be the same. Otherwise, it is perfectly 1042 // legal to transform from one type to a completely different type. 1043 if (!hasTypeSet() || !getChild(0)->hasTypeSet()) { 1044 bool MadeChange = UpdateNodeType(getChild(0)->getExtTypes(), TP); 1045 MadeChange |= getChild(0)->UpdateNodeType(getExtTypes(), TP); 1046 return MadeChange; 1047 } 1048 return false; 1049 } 1050 } 1051 1052 /// OnlyOnRHSOfCommutative - Return true if this value is only allowed on the 1053 /// RHS of a commutative operation, not the on LHS. 1054 static bool OnlyOnRHSOfCommutative(TreePatternNode *N) { 1055 if (!N->isLeaf() && N->getOperator()->getName() == "imm") 1056 return true; 1057 if (N->isLeaf() && dynamic_cast<IntInit*>(N->getLeafValue())) 1058 return true; 1059 return false; 1060 } 1061 1062 1063 /// canPatternMatch - If it is impossible for this pattern to match on this 1064 /// target, fill in Reason and return false. Otherwise, return true. This is 1065 /// used as a sanity check for .td files (to prevent people from writing stuff 1066 /// that can never possibly work), and to prevent the pattern permuter from 1067 /// generating stuff that is useless. 1068 bool TreePatternNode::canPatternMatch(std::string &Reason, 1069 const CodeGenDAGPatterns &CDP) { 1070 if (isLeaf()) return true; 1071 1072 for (unsigned i = 0, e = getNumChildren(); i != e; ++i) 1073 if (!getChild(i)->canPatternMatch(Reason, CDP)) 1074 return false; 1075 1076 // If this is an intrinsic, handle cases that would make it not match. For 1077 // example, if an operand is required to be an immediate. 1078 if (getOperator()->isSubClassOf("Intrinsic")) { 1079 // TODO: 1080 return true; 1081 } 1082 1083 // If this node is a commutative operator, check that the LHS isn't an 1084 // immediate. 1085 const SDNodeInfo &NodeInfo = CDP.getSDNodeInfo(getOperator()); 1086 bool isCommIntrinsic = isCommutativeIntrinsic(CDP); 1087 if (NodeInfo.hasProperty(SDNPCommutative) || isCommIntrinsic) { 1088 // Scan all of the operands of the node and make sure that only the last one 1089 // is a constant node, unless the RHS also is. 1090 if (!OnlyOnRHSOfCommutative(getChild(getNumChildren()-1))) { 1091 bool Skip = isCommIntrinsic ? 1 : 0; // First operand is intrinsic id. 1092 for (unsigned i = Skip, e = getNumChildren()-1; i != e; ++i) 1093 if (OnlyOnRHSOfCommutative(getChild(i))) { 1094 Reason="Immediate value must be on the RHS of commutative operators!"; 1095 return false; 1096 } 1097 } 1098 } 1099 1100 return true; 1101 } 1102 1103 //===----------------------------------------------------------------------===// 1104 // TreePattern implementation 1105 // 1106 1107 TreePattern::TreePattern(Record *TheRec, ListInit *RawPat, bool isInput, 1108 CodeGenDAGPatterns &cdp) : TheRecord(TheRec), CDP(cdp){ 1109 isInputPattern = isInput; 1110 for (unsigned i = 0, e = RawPat->getSize(); i != e; ++i) 1111 Trees.push_back(ParseTreePattern((DagInit*)RawPat->getElement(i))); 1112 } 1113 1114 TreePattern::TreePattern(Record *TheRec, DagInit *Pat, bool isInput, 1115 CodeGenDAGPatterns &cdp) : TheRecord(TheRec), CDP(cdp){ 1116 isInputPattern = isInput; 1117 Trees.push_back(ParseTreePattern(Pat)); 1118 } 1119 1120 TreePattern::TreePattern(Record *TheRec, TreePatternNode *Pat, bool isInput, 1121 CodeGenDAGPatterns &cdp) : TheRecord(TheRec), CDP(cdp){ 1122 isInputPattern = isInput; 1123 Trees.push_back(Pat); 1124 } 1125 1126 1127 1128 void TreePattern::error(const std::string &Msg) const { 1129 dump(); 1130 throw TGError(TheRecord->getLoc(), "In " + TheRecord->getName() + ": " + Msg); 1131 } 1132 1133 TreePatternNode *TreePattern::ParseTreePattern(DagInit *Dag) { 1134 DefInit *OpDef = dynamic_cast<DefInit*>(Dag->getOperator()); 1135 if (!OpDef) error("Pattern has unexpected operator type!"); 1136 Record *Operator = OpDef->getDef(); 1137 1138 if (Operator->isSubClassOf("ValueType")) { 1139 // If the operator is a ValueType, then this must be "type cast" of a leaf 1140 // node. 1141 if (Dag->getNumArgs() != 1) 1142 error("Type cast only takes one operand!"); 1143 1144 Init *Arg = Dag->getArg(0); 1145 TreePatternNode *New; 1146 if (DefInit *DI = dynamic_cast<DefInit*>(Arg)) { 1147 Record *R = DI->getDef(); 1148 if (R->isSubClassOf("SDNode") || R->isSubClassOf("PatFrag")) { 1149 Dag->setArg(0, new DagInit(DI, "", 1150 std::vector<std::pair<Init*, std::string> >())); 1151 return ParseTreePattern(Dag); 1152 } 1153 New = new TreePatternNode(DI); 1154 } else if (DagInit *DI = dynamic_cast<DagInit*>(Arg)) { 1155 New = ParseTreePattern(DI); 1156 } else if (IntInit *II = dynamic_cast<IntInit*>(Arg)) { 1157 New = new TreePatternNode(II); 1158 if (!Dag->getArgName(0).empty()) 1159 error("Constant int argument should not have a name!"); 1160 } else if (BitsInit *BI = dynamic_cast<BitsInit*>(Arg)) { 1161 // Turn this into an IntInit. 1162 Init *II = BI->convertInitializerTo(new IntRecTy()); 1163 if (II == 0 || !dynamic_cast<IntInit*>(II)) 1164 error("Bits value must be constants!"); 1165 1166 New = new TreePatternNode(dynamic_cast<IntInit*>(II)); 1167 if (!Dag->getArgName(0).empty()) 1168 error("Constant int argument should not have a name!"); 1169 } else { 1170 Arg->dump(); 1171 error("Unknown leaf value for tree pattern!"); 1172 return 0; 1173 } 1174 1175 // Apply the type cast. 1176 New->UpdateNodeType(getValueType(Operator), *this); 1177 if (New->getNumChildren() == 0) 1178 New->setName(Dag->getArgName(0)); 1179 return New; 1180 } 1181 1182 // Verify that this is something that makes sense for an operator. 1183 if (!Operator->isSubClassOf("PatFrag") && 1184 !Operator->isSubClassOf("SDNode") && 1185 !Operator->isSubClassOf("Instruction") && 1186 !Operator->isSubClassOf("SDNodeXForm") && 1187 !Operator->isSubClassOf("Intrinsic") && 1188 Operator->getName() != "set" && 1189 Operator->getName() != "implicit" && 1190 Operator->getName() != "parallel") 1191 error("Unrecognized node '" + Operator->getName() + "'!"); 1192 1193 // Check to see if this is something that is illegal in an input pattern. 1194 if (isInputPattern && (Operator->isSubClassOf("Instruction") || 1195 Operator->isSubClassOf("SDNodeXForm"))) 1196 error("Cannot use '" + Operator->getName() + "' in an input pattern!"); 1197 1198 std::vector<TreePatternNode*> Children; 1199 1200 for (unsigned i = 0, e = Dag->getNumArgs(); i != e; ++i) { 1201 Init *Arg = Dag->getArg(i); 1202 if (DagInit *DI = dynamic_cast<DagInit*>(Arg)) { 1203 Children.push_back(ParseTreePattern(DI)); 1204 if (Children.back()->getName().empty()) 1205 Children.back()->setName(Dag->getArgName(i)); 1206 } else if (DefInit *DefI = dynamic_cast<DefInit*>(Arg)) { 1207 Record *R = DefI->getDef(); 1208 // Direct reference to a leaf DagNode or PatFrag? Turn it into a 1209 // TreePatternNode if its own. 1210 if (R->isSubClassOf("SDNode") || R->isSubClassOf("PatFrag")) { 1211 Dag->setArg(i, new DagInit(DefI, "", 1212 std::vector<std::pair<Init*, std::string> >())); 1213 --i; // Revisit this node... 1214 } else { 1215 TreePatternNode *Node = new TreePatternNode(DefI); 1216 Node->setName(Dag->getArgName(i)); 1217 Children.push_back(Node); 1218 1219 // Input argument? 1220 if (R->getName() == "node") { 1221 if (Dag->getArgName(i).empty()) 1222 error("'node' argument requires a name to match with operand list"); 1223 Args.push_back(Dag->getArgName(i)); 1224 } 1225 } 1226 } else if (IntInit *II = dynamic_cast<IntInit*>(Arg)) { 1227 TreePatternNode *Node = new TreePatternNode(II); 1228 if (!Dag->getArgName(i).empty()) 1229 error("Constant int argument should not have a name!"); 1230 Children.push_back(Node); 1231 } else if (BitsInit *BI = dynamic_cast<BitsInit*>(Arg)) { 1232 // Turn this into an IntInit. 1233 Init *II = BI->convertInitializerTo(new IntRecTy()); 1234 if (II == 0 || !dynamic_cast<IntInit*>(II)) 1235 error("Bits value must be constants!"); 1236 1237 TreePatternNode *Node = new TreePatternNode(dynamic_cast<IntInit*>(II)); 1238 if (!Dag->getArgName(i).empty()) 1239 error("Constant int argument should not have a name!"); 1240 Children.push_back(Node); 1241 } else { 1242 errs() << '"'; 1243 Arg->dump(); 1244 errs() << "\": "; 1245 error("Unknown leaf value for tree pattern!"); 1246 } 1247 } 1248 1249 // If the operator is an intrinsic, then this is just syntactic sugar for for 1250 // (intrinsic_* <number>, ..children..). Pick the right intrinsic node, and 1251 // convert the intrinsic name to a number. 1252 if (Operator->isSubClassOf("Intrinsic")) { 1253 const CodeGenIntrinsic &Int = getDAGPatterns().getIntrinsic(Operator); 1254 unsigned IID = getDAGPatterns().getIntrinsicID(Operator)+1; 1255 1256 // If this intrinsic returns void, it must have side-effects and thus a 1257 // chain. 1258 if (Int.IS.RetVTs[0] == MVT::isVoid) { 1259 Operator = getDAGPatterns().get_intrinsic_void_sdnode(); 1260 } else if (Int.ModRef != CodeGenIntrinsic::NoMem) { 1261 // Has side-effects, requires chain. 1262 Operator = getDAGPatterns().get_intrinsic_w_chain_sdnode(); 1263 } else { 1264 // Otherwise, no chain. 1265 Operator = getDAGPatterns().get_intrinsic_wo_chain_sdnode(); 1266 } 1267 1268 TreePatternNode *IIDNode = new TreePatternNode(new IntInit(IID)); 1269 Children.insert(Children.begin(), IIDNode); 1270 } 1271 1272 TreePatternNode *Result = new TreePatternNode(Operator, Children); 1273 Result->setName(Dag->getName()); 1274 return Result; 1275 } 1276 1277 /// InferAllTypes - Infer/propagate as many types throughout the expression 1278 /// patterns as possible. Return true if all types are inferred, false 1279 /// otherwise. Throw an exception if a type contradiction is found. 1280 bool TreePattern::InferAllTypes() { 1281 bool MadeChange = true; 1282 while (MadeChange) { 1283 MadeChange = false; 1284 for (unsigned i = 0, e = Trees.size(); i != e; ++i) 1285 MadeChange |= Trees[i]->ApplyTypeConstraints(*this, false); 1286 } 1287 1288 bool HasUnresolvedTypes = false; 1289 for (unsigned i = 0, e = Trees.size(); i != e; ++i) 1290 HasUnresolvedTypes |= Trees[i]->ContainsUnresolvedType(); 1291 return !HasUnresolvedTypes; 1292 } 1293 1294 void TreePattern::print(raw_ostream &OS) const { 1295 OS << getRecord()->getName(); 1296 if (!Args.empty()) { 1297 OS << "(" << Args[0]; 1298 for (unsigned i = 1, e = Args.size(); i != e; ++i) 1299 OS << ", " << Args[i]; 1300 OS << ")"; 1301 } 1302 OS << ": "; 1303 1304 if (Trees.size() > 1) 1305 OS << "[\n"; 1306 for (unsigned i = 0, e = Trees.size(); i != e; ++i) { 1307 OS << "\t"; 1308 Trees[i]->print(OS); 1309 OS << "\n"; 1310 } 1311 1312 if (Trees.size() > 1) 1313 OS << "]\n"; 1314 } 1315 1316 void TreePattern::dump() const { print(errs()); } 1317 1318 //===----------------------------------------------------------------------===// 1319 // CodeGenDAGPatterns implementation 1320 // 1321 1322 // FIXME: REMOVE OSTREAM ARGUMENT 1323 CodeGenDAGPatterns::CodeGenDAGPatterns(RecordKeeper &R) : Records(R) { 1324 Intrinsics = LoadIntrinsics(Records, false); 1325 TgtIntrinsics = LoadIntrinsics(Records, true); 1326 ParseNodeInfo(); 1327 ParseNodeTransforms(); 1328 ParseComplexPatterns(); 1329 ParsePatternFragments(); 1330 ParseDefaultOperands(); 1331 ParseInstructions(); 1332 ParsePatterns(); 1333 1334 // Generate variants. For example, commutative patterns can match 1335 // multiple ways. Add them to PatternsToMatch as well. 1336 GenerateVariants(); 1337 1338 // Infer instruction flags. For example, we can detect loads, 1339 // stores, and side effects in many cases by examining an 1340 // instruction's pattern. 1341 InferInstructionFlags(); 1342 } 1343 1344 CodeGenDAGPatterns::~CodeGenDAGPatterns() { 1345 for (pf_iterator I = PatternFragments.begin(), 1346 E = PatternFragments.end(); I != E; ++I) 1347 delete I->second; 1348 } 1349 1350 1351 Record *CodeGenDAGPatterns::getSDNodeNamed(const std::string &Name) const { 1352 Record *N = Records.getDef(Name); 1353 if (!N || !N->isSubClassOf("SDNode")) { 1354 errs() << "Error getting SDNode '" << Name << "'!\n"; 1355 exit(1); 1356 } 1357 return N; 1358 } 1359 1360 // Parse all of the SDNode definitions for the target, populating SDNodes. 1361 void CodeGenDAGPatterns::ParseNodeInfo() { 1362 std::vector<Record*> Nodes = Records.getAllDerivedDefinitions("SDNode"); 1363 while (!Nodes.empty()) { 1364 SDNodes.insert(std::make_pair(Nodes.back(), Nodes.back())); 1365 Nodes.pop_back(); 1366 } 1367 1368 // Get the builtin intrinsic nodes. 1369 intrinsic_void_sdnode = getSDNodeNamed("intrinsic_void"); 1370 intrinsic_w_chain_sdnode = getSDNodeNamed("intrinsic_w_chain"); 1371 intrinsic_wo_chain_sdnode = getSDNodeNamed("intrinsic_wo_chain"); 1372 } 1373 1374 /// ParseNodeTransforms - Parse all SDNodeXForm instances into the SDNodeXForms 1375 /// map, and emit them to the file as functions. 1376 void CodeGenDAGPatterns::ParseNodeTransforms() { 1377 std::vector<Record*> Xforms = Records.getAllDerivedDefinitions("SDNodeXForm"); 1378 while (!Xforms.empty()) { 1379 Record *XFormNode = Xforms.back(); 1380 Record *SDNode = XFormNode->getValueAsDef("Opcode"); 1381 std::string Code = XFormNode->getValueAsCode("XFormFunction"); 1382 SDNodeXForms.insert(std::make_pair(XFormNode, NodeXForm(SDNode, Code))); 1383 1384 Xforms.pop_back(); 1385 } 1386 } 1387 1388 void CodeGenDAGPatterns::ParseComplexPatterns() { 1389 std::vector<Record*> AMs = Records.getAllDerivedDefinitions("ComplexPattern"); 1390 while (!AMs.empty()) { 1391 ComplexPatterns.insert(std::make_pair(AMs.back(), AMs.back())); 1392 AMs.pop_back(); 1393 } 1394 } 1395 1396 1397 /// ParsePatternFragments - Parse all of the PatFrag definitions in the .td 1398 /// file, building up the PatternFragments map. After we've collected them all, 1399 /// inline fragments together as necessary, so that there are no references left 1400 /// inside a pattern fragment to a pattern fragment. 1401 /// 1402 void CodeGenDAGPatterns::ParsePatternFragments() { 1403 std::vector<Record*> Fragments = Records.getAllDerivedDefinitions("PatFrag"); 1404 1405 // First step, parse all of the fragments. 1406 for (unsigned i = 0, e = Fragments.size(); i != e; ++i) { 1407 DagInit *Tree = Fragments[i]->getValueAsDag("Fragment"); 1408 TreePattern *P = new TreePattern(Fragments[i], Tree, true, *this); 1409 PatternFragments[Fragments[i]] = P; 1410 1411 // Validate the argument list, converting it to set, to discard duplicates. 1412 std::vector<std::string> &Args = P->getArgList(); 1413 std::set<std::string> OperandsSet(Args.begin(), Args.end()); 1414 1415 if (OperandsSet.count("")) 1416 P->error("Cannot have unnamed 'node' values in pattern fragment!"); 1417 1418 // Parse the operands list. 1419 DagInit *OpsList = Fragments[i]->getValueAsDag("Operands"); 1420 DefInit *OpsOp = dynamic_cast<DefInit*>(OpsList->getOperator()); 1421 // Special cases: ops == outs == ins. Different names are used to 1422 // improve readability. 1423 if (!OpsOp || 1424 (OpsOp->getDef()->getName() != "ops" && 1425 OpsOp->getDef()->getName() != "outs" && 1426 OpsOp->getDef()->getName() != "ins")) 1427 P->error("Operands list should start with '(ops ... '!"); 1428 1429 // Copy over the arguments. 1430 Args.clear(); 1431 for (unsigned j = 0, e = OpsList->getNumArgs(); j != e; ++j) { 1432 if (!dynamic_cast<DefInit*>(OpsList->getArg(j)) || 1433 static_cast<DefInit*>(OpsList->getArg(j))-> 1434 getDef()->getName() != "node") 1435 P->error("Operands list should all be 'node' values."); 1436 if (OpsList->getArgName(j).empty()) 1437 P->error("Operands list should have names for each operand!"); 1438 if (!OperandsSet.count(OpsList->getArgName(j))) 1439 P->error("'" + OpsList->getArgName(j) + 1440 "' does not occur in pattern or was multiply specified!"); 1441 OperandsSet.erase(OpsList->getArgName(j)); 1442 Args.push_back(OpsList->getArgName(j)); 1443 } 1444 1445 if (!OperandsSet.empty()) 1446 P->error("Operands list does not contain an entry for operand '" + 1447 *OperandsSet.begin() + "'!"); 1448 1449 // If there is a code init for this fragment, keep track of the fact that 1450 // this fragment uses it. 1451 std::string Code = Fragments[i]->getValueAsCode("Predicate"); 1452 if (!Code.empty()) 1453 P->getOnlyTree()->addPredicateFn("Predicate_"+Fragments[i]->getName()); 1454 1455 // If there is a node transformation corresponding to this, keep track of 1456 // it. 1457 Record *Transform = Fragments[i]->getValueAsDef("OperandTransform"); 1458 if (!getSDNodeTransform(Transform).second.empty()) // not noop xform? 1459 P->getOnlyTree()->setTransformFn(Transform); 1460 } 1461 1462 // Now that we've parsed all of the tree fragments, do a closure on them so 1463 // that there are not references to PatFrags left inside of them. 1464 for (unsigned i = 0, e = Fragments.size(); i != e; ++i) { 1465 TreePattern *ThePat = PatternFragments[Fragments[i]]; 1466 ThePat->InlinePatternFragments(); 1467 1468 // Infer as many types as possible. Don't worry about it if we don't infer 1469 // all of them, some may depend on the inputs of the pattern. 1470 try { 1471 ThePat->InferAllTypes(); 1472 } catch (...) { 1473 // If this pattern fragment is not supported by this target (no types can 1474 // satisfy its constraints), just ignore it. If the bogus pattern is 1475 // actually used by instructions, the type consistency error will be 1476 // reported there. 1477 } 1478 1479 // If debugging, print out the pattern fragment result. 1480 DEBUG(ThePat->dump()); 1481 } 1482 } 1483 1484 void CodeGenDAGPatterns::ParseDefaultOperands() { 1485 std::vector<Record*> DefaultOps[2]; 1486 DefaultOps[0] = Records.getAllDerivedDefinitions("PredicateOperand"); 1487 DefaultOps[1] = Records.getAllDerivedDefinitions("OptionalDefOperand"); 1488 1489 // Find some SDNode. 1490 assert(!SDNodes.empty() && "No SDNodes parsed?"); 1491 Init *SomeSDNode = new DefInit(SDNodes.begin()->first); 1492 1493 for (unsigned iter = 0; iter != 2; ++iter) { 1494 for (unsigned i = 0, e = DefaultOps[iter].size(); i != e; ++i) { 1495 DagInit *DefaultInfo = DefaultOps[iter][i]->getValueAsDag("DefaultOps"); 1496 1497 // Clone the DefaultInfo dag node, changing the operator from 'ops' to 1498 // SomeSDnode so that we can parse this. 1499 std::vector<std::pair<Init*, std::string> > Ops; 1500 for (unsigned op = 0, e = DefaultInfo->getNumArgs(); op != e; ++op) 1501 Ops.push_back(std::make_pair(DefaultInfo->getArg(op), 1502 DefaultInfo->getArgName(op))); 1503 DagInit *DI = new DagInit(SomeSDNode, "", Ops); 1504 1505 // Create a TreePattern to parse this. 1506 TreePattern P(DefaultOps[iter][i], DI, false, *this); 1507 assert(P.getNumTrees() == 1 && "This ctor can only produce one tree!"); 1508 1509 // Copy the operands over into a DAGDefaultOperand. 1510 DAGDefaultOperand DefaultOpInfo; 1511 1512 TreePatternNode *T = P.getTree(0); 1513 for (unsigned op = 0, e = T->getNumChildren(); op != e; ++op) { 1514 TreePatternNode *TPN = T->getChild(op); 1515 while (TPN->ApplyTypeConstraints(P, false)) 1516 /* Resolve all types */; 1517 1518 if (TPN->ContainsUnresolvedType()) { 1519 if (iter == 0) 1520 throw "Value #" + utostr(i) + " of PredicateOperand '" + 1521 DefaultOps[iter][i]->getName() + "' doesn't have a concrete type!"; 1522 else 1523 throw "Value #" + utostr(i) + " of OptionalDefOperand '" + 1524 DefaultOps[iter][i]->getName() + "' doesn't have a concrete type!"; 1525 } 1526 DefaultOpInfo.DefaultOps.push_back(TPN); 1527 } 1528 1529 // Insert it into the DefaultOperands map so we can find it later. 1530 DefaultOperands[DefaultOps[iter][i]] = DefaultOpInfo; 1531 } 1532 } 1533 } 1534 1535 /// HandleUse - Given "Pat" a leaf in the pattern, check to see if it is an 1536 /// instruction input. Return true if this is a real use. 1537 static bool HandleUse(TreePattern *I, TreePatternNode *Pat, 1538 std::map<std::string, TreePatternNode*> &InstInputs, 1539 std::vector<Record*> &InstImpInputs) { 1540 // No name -> not interesting. 1541 if (Pat->getName().empty()) { 1542 if (Pat->isLeaf()) { 1543 DefInit *DI = dynamic_cast<DefInit*>(Pat->getLeafValue()); 1544 if (DI && DI->getDef()->isSubClassOf("RegisterClass")) 1545 I->error("Input " + DI->getDef()->getName() + " must be named!"); 1546 else if (DI && DI->getDef()->isSubClassOf("Register")) 1547 InstImpInputs.push_back(DI->getDef()); 1548 } 1549 return false; 1550 } 1551 1552 Record *Rec; 1553 if (Pat->isLeaf()) { 1554 DefInit *DI = dynamic_cast<DefInit*>(Pat->getLeafValue()); 1555 if (!DI) I->error("Input $" + Pat->getName() + " must be an identifier!"); 1556 Rec = DI->getDef(); 1557 } else { 1558 Rec = Pat->getOperator(); 1559 } 1560 1561 // SRCVALUE nodes are ignored. 1562 if (Rec->getName() == "srcvalue") 1563 return false; 1564 1565 TreePatternNode *&Slot = InstInputs[Pat->getName()]; 1566 if (!Slot) { 1567 Slot = Pat; 1568 } else { 1569 Record *SlotRec; 1570 if (Slot->isLeaf()) { 1571 SlotRec = dynamic_cast<DefInit*>(Slot->getLeafValue())->getDef(); 1572 } else { 1573 assert(Slot->getNumChildren() == 0 && "can't be a use with children!"); 1574 SlotRec = Slot->getOperator(); 1575 } 1576 1577 // Ensure that the inputs agree if we've already seen this input. 1578 if (Rec != SlotRec) 1579 I->error("All $" + Pat->getName() + " inputs must agree with each other"); 1580 if (Slot->getExtTypes() != Pat->getExtTypes()) 1581 I->error("All $" + Pat->getName() + " inputs must agree with each other"); 1582 } 1583 return true; 1584 } 1585 1586 /// FindPatternInputsAndOutputs - Scan the specified TreePatternNode (which is 1587 /// part of "I", the instruction), computing the set of inputs and outputs of 1588 /// the pattern. Report errors if we see anything naughty. 1589 void CodeGenDAGPatterns:: 1590 FindPatternInputsAndOutputs(TreePattern *I, TreePatternNode *Pat, 1591 std::map<std::string, TreePatternNode*> &InstInputs, 1592 std::map<std::string, TreePatternNode*>&InstResults, 1593 std::vector<Record*> &InstImpInputs, 1594 std::vector<Record*> &InstImpResults) { 1595 if (Pat->isLeaf()) { 1596 bool isUse = HandleUse(I, Pat, InstInputs, InstImpInputs); 1597 if (!isUse && Pat->getTransformFn()) 1598 I->error("Cannot specify a transform function for a non-input value!"); 1599 return; 1600 } else if (Pat->getOperator()->getName() == "implicit") { 1601 for (unsigned i = 0, e = Pat->getNumChildren(); i != e; ++i) { 1602 TreePatternNode *Dest = Pat->getChild(i); 1603 if (!Dest->isLeaf()) 1604 I->error("implicitly defined value should be a register!"); 1605 1606 DefInit *Val = dynamic_cast<DefInit*>(Dest->getLeafValue()); 1607 if (!Val || !Val->getDef()->isSubClassOf("Register")) 1608 I->error("implicitly defined value should be a register!"); 1609 InstImpResults.push_back(Val->getDef()); 1610 } 1611 return; 1612 } else if (Pat->getOperator()->getName() != "set") { 1613 // If this is not a set, verify that the children nodes are not void typed, 1614 // and recurse. 1615 for (unsigned i = 0, e = Pat->getNumChildren(); i != e; ++i) { 1616 if (Pat->getChild(i)->getExtTypeNum(0) == MVT::isVoid) 1617 I->error("Cannot have void nodes inside of patterns!"); 1618 FindPatternInputsAndOutputs(I, Pat->getChild(i), InstInputs, InstResults, 1619 InstImpInputs, InstImpResults); 1620 } 1621 1622 // If this is a non-leaf node with no children, treat it basically as if 1623 // it were a leaf. This handles nodes like (imm). 1624 bool isUse = HandleUse(I, Pat, InstInputs, InstImpInputs); 1625 1626 if (!isUse && Pat->getTransformFn()) 1627 I->error("Cannot specify a transform function for a non-input value!"); 1628 return; 1629 } 1630 1631 // Otherwise, this is a set, validate and collect instruction results. 1632 if (Pat->getNumChildren() == 0) 1633 I->error("set requires operands!"); 1634 1635 if (Pat->getTransformFn()) 1636 I->error("Cannot specify a transform function on a set node!"); 1637 1638 // Check the set destinations. 1639 unsigned NumDests = Pat->getNumChildren()-1; 1640 for (unsigned i = 0; i != NumDests; ++i) { 1641 TreePatternNode *Dest = Pat->getChild(i); 1642 if (!Dest->isLeaf()) 1643 I->error("set destination should be a register!"); 1644 1645 DefInit *Val = dynamic_cast<DefInit*>(Dest->getLeafValue()); 1646 if (!Val) 1647 I->error("set destination should be a register!"); 1648 1649 if (Val->getDef()->isSubClassOf("RegisterClass") || 1650 Val->getDef()->isSubClassOf("PointerLikeRegClass")) { 1651 if (Dest->getName().empty()) 1652 I->error("set destination must have a name!"); 1653 if (InstResults.count(Dest->getName())) 1654 I->error("cannot set '" + Dest->getName() +"' multiple times"); 1655 InstResults[Dest->getName()] = Dest; 1656 } else if (Val->getDef()->isSubClassOf("Register")) { 1657 InstImpResults.push_back(Val->getDef()); 1658 } else { 1659 I->error("set destination should be a register!"); 1660 } 1661 } 1662 1663 // Verify and collect info from the computation. 1664 FindPatternInputsAndOutputs(I, Pat->getChild(NumDests), 1665 InstInputs, InstResults, 1666 InstImpInputs, InstImpResults); 1667 } 1668 1669 //===----------------------------------------------------------------------===// 1670 // Instruction Analysis 1671 //===----------------------------------------------------------------------===// 1672 1673 class InstAnalyzer { 1674 const CodeGenDAGPatterns &CDP; 1675 bool &mayStore; 1676 bool &mayLoad; 1677 bool &HasSideEffects; 1678 public: 1679 InstAnalyzer(const CodeGenDAGPatterns &cdp, 1680 bool &maystore, bool &mayload, bool &hse) 1681 : CDP(cdp), mayStore(maystore), mayLoad(mayload), HasSideEffects(hse){ 1682 } 1683 1684 /// Analyze - Analyze the specified instruction, returning true if the 1685 /// instruction had a pattern. 1686 bool Analyze(Record *InstRecord) { 1687 const TreePattern *Pattern = CDP.getInstruction(InstRecord).getPattern(); 1688 if (Pattern == 0) { 1689 HasSideEffects = 1; 1690 return false; // No pattern. 1691 } 1692 1693 // FIXME: Assume only the first tree is the pattern. The others are clobber 1694 // nodes. 1695 AnalyzeNode(Pattern->getTree(0)); 1696 return true; 1697 } 1698 1699 private: 1700 void AnalyzeNode(const TreePatternNode *N) { 1701 if (N->isLeaf()) { 1702 if (DefInit *DI = dynamic_cast<DefInit*>(N->getLeafValue())) { 1703 Record *LeafRec = DI->getDef(); 1704 // Handle ComplexPattern leaves. 1705 if (LeafRec->isSubClassOf("ComplexPattern")) { 1706 const ComplexPattern &CP = CDP.getComplexPattern(LeafRec); 1707 if (CP.hasProperty(SDNPMayStore)) mayStore = true; 1708 if (CP.hasProperty(SDNPMayLoad)) mayLoad = true; 1709 if (CP.hasProperty(SDNPSideEffect)) HasSideEffects = true; 1710 } 1711 } 1712 return; 1713 } 1714 1715 // Analyze children. 1716 for (unsigned i = 0, e = N->getNumChildren(); i != e; ++i) 1717 AnalyzeNode(N->getChild(i)); 1718 1719 // Ignore set nodes, which are not SDNodes. 1720 if (N->getOperator()->getName() == "set") 1721 return; 1722 1723 // Get information about the SDNode for the operator. 1724 const SDNodeInfo &OpInfo = CDP.getSDNodeInfo(N->getOperator()); 1725 1726 // Notice properties of the node. 1727 if (OpInfo.hasProperty(SDNPMayStore)) mayStore = true; 1728 if (OpInfo.hasProperty(SDNPMayLoad)) mayLoad = true; 1729 if (OpInfo.hasProperty(SDNPSideEffect)) HasSideEffects = true; 1730 1731 if (const CodeGenIntrinsic *IntInfo = N->getIntrinsicInfo(CDP)) { 1732 // If this is an intrinsic, analyze it. 1733 if (IntInfo->ModRef >= CodeGenIntrinsic::ReadArgMem) 1734 mayLoad = true;// These may load memory. 1735 1736 if (IntInfo->ModRef >= CodeGenIntrinsic::WriteArgMem) 1737 mayStore = true;// Intrinsics that can write to memory are 'mayStore'. 1738 1739 if (IntInfo->ModRef >= CodeGenIntrinsic::WriteMem) 1740 // WriteMem intrinsics can have other strange effects. 1741 HasSideEffects = true; 1742 } 1743 } 1744 1745 }; 1746 1747 static void InferFromPattern(const CodeGenInstruction &Inst, 1748 bool &MayStore, bool &MayLoad, 1749 bool &HasSideEffects, 1750 const CodeGenDAGPatterns &CDP) { 1751 MayStore = MayLoad = HasSideEffects = false; 1752 1753 bool HadPattern = 1754 InstAnalyzer(CDP, MayStore, MayLoad, HasSideEffects).Analyze(Inst.TheDef); 1755 1756 // InstAnalyzer only correctly analyzes mayStore/mayLoad so far. 1757 if (Inst.mayStore) { // If the .td file explicitly sets mayStore, use it. 1758 // If we decided that this is a store from the pattern, then the .td file 1759 // entry is redundant. 1760 if (MayStore) 1761 fprintf(stderr, 1762 "Warning: mayStore flag explicitly set on instruction '%s'" 1763 " but flag already inferred from pattern.\n", 1764 Inst.TheDef->getName().c_str()); 1765 MayStore = true; 1766 } 1767 1768 if (Inst.mayLoad) { // If the .td file explicitly sets mayLoad, use it. 1769 // If we decided that this is a load from the pattern, then the .td file 1770 // entry is redundant. 1771 if (MayLoad) 1772 fprintf(stderr, 1773 "Warning: mayLoad flag explicitly set on instruction '%s'" 1774 " but flag already inferred from pattern.\n", 1775 Inst.TheDef->getName().c_str()); 1776 MayLoad = true; 1777 } 1778 1779 if (Inst.neverHasSideEffects) { 1780 if (HadPattern) 1781 fprintf(stderr, "Warning: neverHasSideEffects set on instruction '%s' " 1782 "which already has a pattern\n", Inst.TheDef->getName().c_str()); 1783 HasSideEffects = false; 1784 } 1785 1786 if (Inst.hasSideEffects) { 1787 if (HasSideEffects) 1788 fprintf(stderr, "Warning: hasSideEffects set on instruction '%s' " 1789 "which already inferred this.\n", Inst.TheDef->getName().c_str()); 1790 HasSideEffects = true; 1791 } 1792 } 1793 1794 /// ParseInstructions - Parse all of the instructions, inlining and resolving 1795 /// any fragments involved. This populates the Instructions list with fully 1796 /// resolved instructions. 1797 void CodeGenDAGPatterns::ParseInstructions() { 1798 std::vector<Record*> Instrs = Records.getAllDerivedDefinitions("Instruction"); 1799 1800 for (unsigned i = 0, e = Instrs.size(); i != e; ++i) { 1801 ListInit *LI = 0; 1802 1803 if (dynamic_cast<ListInit*>(Instrs[i]->getValueInit("Pattern"))) 1804 LI = Instrs[i]->getValueAsListInit("Pattern"); 1805 1806 // If there is no pattern, only collect minimal information about the 1807 // instruction for its operand list. We have to assume that there is one 1808 // result, as we have no detailed info. 1809 if (!LI || LI->getSize() == 0) { 1810 std::vector<Record*> Results; 1811 std::vector<Record*> Operands; 1812 1813 CodeGenInstruction &InstInfo =Target.getInstruction(Instrs[i]->getName()); 1814 1815 if (InstInfo.OperandList.size() != 0) { 1816 if (InstInfo.NumDefs == 0) { 1817 // These produce no results 1818 for (unsigned j = 0, e = InstInfo.OperandList.size(); j < e; ++j) 1819 Operands.push_back(InstInfo.OperandList[j].Rec); 1820 } else { 1821 // Assume the first operand is the result. 1822 Results.push_back(InstInfo.OperandList[0].Rec); 1823 1824 // The rest are inputs. 1825 for (unsigned j = 1, e = InstInfo.OperandList.size(); j < e; ++j) 1826 Operands.push_back(InstInfo.OperandList[j].Rec); 1827 } 1828 } 1829 1830 // Create and insert the instruction. 1831 std::vector<Record*> ImpResults; 1832 std::vector<Record*> ImpOperands; 1833 Instructions.insert(std::make_pair(Instrs[i], 1834 DAGInstruction(0, Results, Operands, ImpResults, 1835 ImpOperands))); 1836 continue; // no pattern. 1837 } 1838 1839 // Parse the instruction. 1840 TreePattern *I = new TreePattern(Instrs[i], LI, true, *this); 1841 // Inline pattern fragments into it. 1842 I->InlinePatternFragments(); 1843 1844 // Infer as many types as possible. If we cannot infer all of them, we can 1845 // never do anything with this instruction pattern: report it to the user. 1846 if (!I->InferAllTypes()) 1847 I->error("Could not infer all types in pattern!"); 1848 1849 // InstInputs - Keep track of all of the inputs of the instruction, along 1850 // with the record they are declared as. 1851 std::map<std::string, TreePatternNode*> InstInputs; 1852 1853 // InstResults - Keep track of all the virtual registers that are 'set' 1854 // in the instruction, including what reg class they are. 1855 std::map<std::string, TreePatternNode*> InstResults; 1856 1857 std::vector<Record*> InstImpInputs; 1858 std::vector<Record*> InstImpResults; 1859 1860 // Verify that the top-level forms in the instruction are of void type, and 1861 // fill in the InstResults map. 1862 for (unsigned j = 0, e = I->getNumTrees(); j != e; ++j) { 1863 TreePatternNode *Pat = I->getTree(j); 1864 if (Pat->getExtTypeNum(0) != MVT::isVoid) 1865 I->error("Top-level forms in instruction pattern should have" 1866 " void types"); 1867 1868 // Find inputs and outputs, and verify the structure of the uses/defs. 1869 FindPatternInputsAndOutputs(I, Pat, InstInputs, InstResults, 1870 InstImpInputs, InstImpResults); 1871 } 1872 1873 // Now that we have inputs and outputs of the pattern, inspect the operands 1874 // list for the instruction. This determines the order that operands are 1875 // added to the machine instruction the node corresponds to. 1876 unsigned NumResults = InstResults.size(); 1877 1878 // Parse the operands list from the (ops) list, validating it. 1879 assert(I->getArgList().empty() && "Args list should still be empty here!"); 1880 CodeGenInstruction &CGI = Target.getInstruction(Instrs[i]->getName()); 1881 1882 // Check that all of the results occur first in the list. 1883 std::vector<Record*> Results; 1884 TreePatternNode *Res0Node = NULL; 1885 for (unsigned i = 0; i != NumResults; ++i) { 1886 if (i == CGI.OperandList.size()) 1887 I->error("'" + InstResults.begin()->first + 1888 "' set but does not appear in operand list!"); 1889 const std::string &OpName = CGI.OperandList[i].Name; 1890 1891 // Check that it exists in InstResults. 1892 TreePatternNode *RNode = InstResults[OpName]; 1893 if (RNode == 0) 1894 I->error("Operand $" + OpName + " does not exist in operand list!"); 1895 1896 if (i == 0) 1897 Res0Node = RNode; 1898 Record *R = dynamic_cast<DefInit*>(RNode->getLeafValue())->getDef(); 1899 if (R == 0) 1900 I->error("Operand $" + OpName + " should be a set destination: all " 1901 "outputs must occur before inputs in operand list!"); 1902 1903 if (CGI.OperandList[i].Rec != R) 1904 I->error("Operand $" + OpName + " class mismatch!"); 1905 1906 // Remember the return type. 1907 Results.push_back(CGI.OperandList[i].Rec); 1908 1909 // Okay, this one checks out. 1910 InstResults.erase(OpName); 1911 } 1912 1913 // Loop over the inputs next. Make a copy of InstInputs so we can destroy 1914 // the copy while we're checking the inputs. 1915 std::map<std::string, TreePatternNode*> InstInputsCheck(InstInputs); 1916 1917 std::vector<TreePatternNode*> ResultNodeOperands; 1918 std::vector<Record*> Operands; 1919 for (unsigned i = NumResults, e = CGI.OperandList.size(); i != e; ++i) { 1920 CodeGenInstruction::OperandInfo &Op = CGI.OperandList[i]; 1921 const std::string &OpName = Op.Name; 1922 if (OpName.empty()) 1923 I->error("Operand #" + utostr(i) + " in operands list has no name!"); 1924 1925 if (!InstInputsCheck.count(OpName)) { 1926 // If this is an predicate operand or optional def operand with an 1927 // DefaultOps set filled in, we can ignore this. When we codegen it, 1928 // we will do so as always executed. 1929 if (Op.Rec->isSubClassOf("PredicateOperand") || 1930 Op.Rec->isSubClassOf("OptionalDefOperand")) { 1931 // Does it have a non-empty DefaultOps field? If so, ignore this 1932 // operand. 1933 if (!getDefaultOperand(Op.Rec).DefaultOps.empty()) 1934 continue; 1935 } 1936 I->error("Operand $" + OpName + 1937 " does not appear in the instruction pattern"); 1938 } 1939 TreePatternNode *InVal = InstInputsCheck[OpName]; 1940 InstInputsCheck.erase(OpName); // It occurred, remove from map. 1941 1942 if (InVal->isLeaf() && 1943 dynamic_cast<DefInit*>(InVal->getLeafValue())) { 1944 Record *InRec = static_cast<DefInit*>(InVal->getLeafValue())->getDef(); 1945 if (Op.Rec != InRec && !InRec->isSubClassOf("ComplexPattern")) 1946 I->error("Operand $" + OpName + "'s register class disagrees" 1947 " between the operand and pattern"); 1948 } 1949 Operands.push_back(Op.Rec); 1950 1951 // Construct the result for the dest-pattern operand list. 1952 TreePatternNode *OpNode = InVal->clone(); 1953 1954 // No predicate is useful on the result. 1955 OpNode->clearPredicateFns(); 1956 1957 // Promote the xform function to be an explicit node if set. 1958 if (Record *Xform = OpNode->getTransformFn()) { 1959 OpNode->setTransformFn(0); 1960 std::vector<TreePatternNode*> Children; 1961 Children.push_back(OpNode); 1962 OpNode = new TreePatternNode(Xform, Children); 1963 } 1964 1965 ResultNodeOperands.push_back(OpNode); 1966 } 1967 1968 if (!InstInputsCheck.empty()) 1969 I->error("Input operand $" + InstInputsCheck.begin()->first + 1970 " occurs in pattern but not in operands list!"); 1971 1972 TreePatternNode *ResultPattern = 1973 new TreePatternNode(I->getRecord(), ResultNodeOperands); 1974 // Copy fully inferred output node type to instruction result pattern. 1975 if (NumResults > 0) 1976 ResultPattern->setTypes(Res0Node->getExtTypes()); 1977 1978 // Create and insert the instruction. 1979 // FIXME: InstImpResults and InstImpInputs should not be part of 1980 // DAGInstruction. 1981 DAGInstruction TheInst(I, Results, Operands, InstImpResults, InstImpInputs); 1982 Instructions.insert(std::make_pair(I->getRecord(), TheInst)); 1983 1984 // Use a temporary tree pattern to infer all types and make sure that the 1985 // constructed result is correct. This depends on the instruction already 1986 // being inserted into the Instructions map. 1987 TreePattern Temp(I->getRecord(), ResultPattern, false, *this); 1988 Temp.InferAllTypes(); 1989 1990 DAGInstruction &TheInsertedInst = Instructions.find(I->getRecord())->second; 1991 TheInsertedInst.setResultPattern(Temp.getOnlyTree()); 1992 1993 DEBUG(I->dump()); 1994 } 1995 1996 // If we can, convert the instructions to be patterns that are matched! 1997 for (std::map<Record*, DAGInstruction, RecordPtrCmp>::iterator II = 1998 Instructions.begin(), 1999 E = Instructions.end(); II != E; ++II) { 2000 DAGInstruction &TheInst = II->second; 2001 const TreePattern *I = TheInst.getPattern(); 2002 if (I == 0) continue; // No pattern. 2003 2004 // FIXME: Assume only the first tree is the pattern. The others are clobber 2005 // nodes. 2006 TreePatternNode *Pattern = I->getTree(0); 2007 TreePatternNode *SrcPattern; 2008 if (Pattern->getOperator()->getName() == "set") { 2009 SrcPattern = Pattern->getChild(Pattern->getNumChildren()-1)->clone(); 2010 } else{ 2011 // Not a set (store or something?) 2012 SrcPattern = Pattern; 2013 } 2014 2015 std::string Reason; 2016 if (!SrcPattern->canPatternMatch(Reason, *this)) 2017 I->error("Instruction can never match: " + Reason); 2018 2019 Record *Instr = II->first; 2020 TreePatternNode *DstPattern = TheInst.getResultPattern(); 2021 PatternsToMatch. 2022 push_back(PatternToMatch(Instr->getValueAsListInit("Predicates"), 2023 SrcPattern, DstPattern, TheInst.getImpResults(), 2024 Instr->getValueAsInt("AddedComplexity"))); 2025 } 2026 } 2027 2028 2029 void CodeGenDAGPatterns::InferInstructionFlags() { 2030 std::map<std::string, CodeGenInstruction> &InstrDescs = 2031 Target.getInstructions(); 2032 for (std::map<std::string, CodeGenInstruction>::iterator 2033 II = InstrDescs.begin(), E = InstrDescs.end(); II != E; ++II) { 2034 CodeGenInstruction &InstInfo = II->second; 2035 // Determine properties of the instruction from its pattern. 2036 bool MayStore, MayLoad, HasSideEffects; 2037 InferFromPattern(InstInfo, MayStore, MayLoad, HasSideEffects, *this); 2038 InstInfo.mayStore = MayStore; 2039 InstInfo.mayLoad = MayLoad; 2040 InstInfo.hasSideEffects = HasSideEffects; 2041 } 2042 } 2043 2044 void CodeGenDAGPatterns::ParsePatterns() { 2045 std::vector<Record*> Patterns = Records.getAllDerivedDefinitions("Pattern"); 2046 2047 for (unsigned i = 0, e = Patterns.size(); i != e; ++i) { 2048 DagInit *Tree = Patterns[i]->getValueAsDag("PatternToMatch"); 2049 DefInit *OpDef = dynamic_cast<DefInit*>(Tree->getOperator()); 2050 Record *Operator = OpDef->getDef(); 2051 TreePattern *Pattern; 2052 if (Operator->getName() != "parallel") 2053 Pattern = new TreePattern(Patterns[i], Tree, true, *this); 2054 else { 2055 std::vector<Init*> Values; 2056 RecTy *ListTy = 0; 2057 for (unsigned j = 0, ee = Tree->getNumArgs(); j != ee; ++j) { 2058 Values.push_back(Tree->getArg(j)); 2059 TypedInit *TArg = dynamic_cast<TypedInit*>(Tree->getArg(j)); 2060 if (TArg == 0) { 2061 errs() << "In dag: " << Tree->getAsString(); 2062 errs() << " -- Untyped argument in pattern\n"; 2063 assert(0 && "Untyped argument in pattern"); 2064 } 2065 if (ListTy != 0) { 2066 ListTy = resolveTypes(ListTy, TArg->getType()); 2067 if (ListTy == 0) { 2068 errs() << "In dag: " << Tree->getAsString(); 2069 errs() << " -- Incompatible types in pattern arguments\n"; 2070 assert(0 && "Incompatible types in pattern arguments"); 2071 } 2072 } 2073 else { 2074 ListTy = TArg->getType(); 2075 } 2076 } 2077 ListInit *LI = new ListInit(Values, new ListRecTy(ListTy)); 2078 Pattern = new TreePattern(Patterns[i], LI, true, *this); 2079 } 2080 2081 // Inline pattern fragments into it. 2082 Pattern->InlinePatternFragments(); 2083 2084 ListInit *LI = Patterns[i]->getValueAsListInit("ResultInstrs"); 2085 if (LI->getSize() == 0) continue; // no pattern. 2086 2087 // Parse the instruction. 2088 TreePattern *Result = new TreePattern(Patterns[i], LI, false, *this); 2089 2090 // Inline pattern fragments into it. 2091 Result->InlinePatternFragments(); 2092 2093 if (Result->getNumTrees() != 1) 2094 Result->error("Cannot handle instructions producing instructions " 2095 "with temporaries yet!"); 2096 2097 bool IterateInference; 2098 bool InferredAllPatternTypes, InferredAllResultTypes; 2099 do { 2100 // Infer as many types as possible. If we cannot infer all of them, we 2101 // can never do anything with this pattern: report it to the user. 2102 InferredAllPatternTypes = Pattern->InferAllTypes(); 2103 2104 // Infer as many types as possible. If we cannot infer all of them, we 2105 // can never do anything with this pattern: report it to the user. 2106 InferredAllResultTypes = Result->InferAllTypes(); 2107 2108 // Apply the type of the result to the source pattern. This helps us 2109 // resolve cases where the input type is known to be a pointer type (which 2110 // is considered resolved), but the result knows it needs to be 32- or 2111 // 64-bits. Infer the other way for good measure. 2112 IterateInference = Pattern->getTree(0)-> 2113 UpdateNodeType(Result->getTree(0)->getExtTypes(), *Result); 2114 IterateInference |= Result->getTree(0)-> 2115 UpdateNodeType(Pattern->getTree(0)->getExtTypes(), *Result); 2116 } while (IterateInference); 2117 2118 // Verify that we inferred enough types that we can do something with the 2119 // pattern and result. If these fire the user has to add type casts. 2120 if (!InferredAllPatternTypes) 2121 Pattern->error("Could not infer all types in pattern!"); 2122 if (!InferredAllResultTypes) 2123 Result->error("Could not infer all types in pattern result!"); 2124 2125 // Validate that the input pattern is correct. 2126 std::map<std::string, TreePatternNode*> InstInputs; 2127 std::map<std::string, TreePatternNode*> InstResults; 2128 std::vector<Record*> InstImpInputs; 2129 std::vector<Record*> InstImpResults; 2130 for (unsigned j = 0, ee = Pattern->getNumTrees(); j != ee; ++j) 2131 FindPatternInputsAndOutputs(Pattern, Pattern->getTree(j), 2132 InstInputs, InstResults, 2133 InstImpInputs, InstImpResults); 2134 2135 // Promote the xform function to be an explicit node if set. 2136 TreePatternNode *DstPattern = Result->getOnlyTree(); 2137 std::vector<TreePatternNode*> ResultNodeOperands; 2138 for (unsigned ii = 0, ee = DstPattern->getNumChildren(); ii != ee; ++ii) { 2139 TreePatternNode *OpNode = DstPattern->getChild(ii); 2140 if (Record *Xform = OpNode->getTransformFn()) { 2141 OpNode->setTransformFn(0); 2142 std::vector<TreePatternNode*> Children; 2143 Children.push_back(OpNode); 2144 OpNode = new TreePatternNode(Xform, Children); 2145 } 2146 ResultNodeOperands.push_back(OpNode); 2147 } 2148 DstPattern = Result->getOnlyTree(); 2149 if (!DstPattern->isLeaf()) 2150 DstPattern = new TreePatternNode(DstPattern->getOperator(), 2151 ResultNodeOperands); 2152 DstPattern->setTypes(Result->getOnlyTree()->getExtTypes()); 2153 TreePattern Temp(Result->getRecord(), DstPattern, false, *this); 2154 Temp.InferAllTypes(); 2155 2156 std::string Reason; 2157 if (!Pattern->getTree(0)->canPatternMatch(Reason, *this)) 2158 Pattern->error("Pattern can never match: " + Reason); 2159 2160 PatternsToMatch. 2161 push_back(PatternToMatch(Patterns[i]->getValueAsListInit("Predicates"), 2162 Pattern->getTree(0), 2163 Temp.getOnlyTree(), InstImpResults, 2164 Patterns[i]->getValueAsInt("AddedComplexity"))); 2165 } 2166 } 2167 2168 /// CombineChildVariants - Given a bunch of permutations of each child of the 2169 /// 'operator' node, put them together in all possible ways. 2170 static void CombineChildVariants(TreePatternNode *Orig, 2171 const std::vector<std::vector<TreePatternNode*> > &ChildVariants, 2172 std::vector<TreePatternNode*> &OutVariants, 2173 CodeGenDAGPatterns &CDP, 2174 const MultipleUseVarSet &DepVars) { 2175 // Make sure that each operand has at least one variant to choose from. 2176 for (unsigned i = 0, e = ChildVariants.size(); i != e; ++i) 2177 if (ChildVariants[i].empty()) 2178 return; 2179 2180 // The end result is an all-pairs construction of the resultant pattern. 2181 std::vector<unsigned> Idxs; 2182 Idxs.resize(ChildVariants.size()); 2183 bool NotDone; 2184 do { 2185 #ifndef NDEBUG 2186 if (DebugFlag && !Idxs.empty()) { 2187 errs() << Orig->getOperator()->getName() << ": Idxs = [ "; 2188 for (unsigned i = 0; i < Idxs.size(); ++i) { 2189 errs() << Idxs[i] << " "; 2190 } 2191 errs() << "]\n"; 2192 } 2193 #endif 2194 // Create the variant and add it to the output list. 2195 std::vector<TreePatternNode*> NewChildren; 2196 for (unsigned i = 0, e = ChildVariants.size(); i != e; ++i) 2197 NewChildren.push_back(ChildVariants[i][Idxs[i]]); 2198 TreePatternNode *R = new TreePatternNode(Orig->getOperator(), NewChildren); 2199 2200 // Copy over properties. 2201 R->setName(Orig->getName()); 2202 R->setPredicateFns(Orig->getPredicateFns()); 2203 R->setTransformFn(Orig->getTransformFn()); 2204 R->setTypes(Orig->getExtTypes()); 2205 2206 // If this pattern cannot match, do not include it as a variant. 2207 std::string ErrString; 2208 if (!R->canPatternMatch(ErrString, CDP)) { 2209 delete R; 2210 } else { 2211 bool AlreadyExists = false; 2212 2213 // Scan to see if this pattern has already been emitted. We can get 2214 // duplication due to things like commuting: 2215 // (and GPRC:$a, GPRC:$b) -> (and GPRC:$b, GPRC:$a) 2216 // which are the same pattern. Ignore the dups. 2217 for (unsigned i = 0, e = OutVariants.size(); i != e; ++i) 2218 if (R->isIsomorphicTo(OutVariants[i], DepVars)) { 2219 AlreadyExists = true; 2220 break; 2221 } 2222 2223 if (AlreadyExists) 2224 delete R; 2225 else 2226 OutVariants.push_back(R); 2227 } 2228 2229 // Increment indices to the next permutation by incrementing the 2230 // indicies from last index backward, e.g., generate the sequence 2231 // [0, 0], [0, 1], [1, 0], [1, 1]. 2232 int IdxsIdx; 2233 for (IdxsIdx = Idxs.size() - 1; IdxsIdx >= 0; --IdxsIdx) { 2234 if (++Idxs[IdxsIdx] == ChildVariants[IdxsIdx].size()) 2235 Idxs[IdxsIdx] = 0; 2236 else 2237 break; 2238 } 2239 NotDone = (IdxsIdx >= 0); 2240 } while (NotDone); 2241 } 2242 2243 /// CombineChildVariants - A helper function for binary operators. 2244 /// 2245 static void CombineChildVariants(TreePatternNode *Orig, 2246 const std::vector<TreePatternNode*> &LHS, 2247 const std::vector<TreePatternNode*> &RHS, 2248 std::vector<TreePatternNode*> &OutVariants, 2249 CodeGenDAGPatterns &CDP, 2250 const MultipleUseVarSet &DepVars) { 2251 std::vector<std::vector<TreePatternNode*> > ChildVariants; 2252 ChildVariants.push_back(LHS); 2253 ChildVariants.push_back(RHS); 2254 CombineChildVariants(Orig, ChildVariants, OutVariants, CDP, DepVars); 2255 } 2256 2257 2258 static void GatherChildrenOfAssociativeOpcode(TreePatternNode *N, 2259 std::vector<TreePatternNode *> &Children) { 2260 assert(N->getNumChildren()==2 &&"Associative but doesn't have 2 children!"); 2261 Record *Operator = N->getOperator(); 2262 2263 // Only permit raw nodes. 2264 if (!N->getName().empty() || !N->getPredicateFns().empty() || 2265 N->getTransformFn()) { 2266 Children.push_back(N); 2267 return; 2268 } 2269 2270 if (N->getChild(0)->isLeaf() || N->getChild(0)->getOperator() != Operator) 2271 Children.push_back(N->getChild(0)); 2272 else 2273 GatherChildrenOfAssociativeOpcode(N->getChild(0), Children); 2274 2275 if (N->getChild(1)->isLeaf() || N->getChild(1)->getOperator() != Operator) 2276 Children.push_back(N->getChild(1)); 2277 else 2278 GatherChildrenOfAssociativeOpcode(N->getChild(1), Children); 2279 } 2280 2281 /// GenerateVariantsOf - Given a pattern N, generate all permutations we can of 2282 /// the (potentially recursive) pattern by using algebraic laws. 2283 /// 2284 static void GenerateVariantsOf(TreePatternNode *N, 2285 std::vector<TreePatternNode*> &OutVariants, 2286 CodeGenDAGPatterns &CDP, 2287 const MultipleUseVarSet &DepVars) { 2288 // We cannot permute leaves. 2289 if (N->isLeaf()) { 2290 OutVariants.push_back(N); 2291 return; 2292 } 2293 2294 // Look up interesting info about the node. 2295 const SDNodeInfo &NodeInfo = CDP.getSDNodeInfo(N->getOperator()); 2296 2297 // If this node is associative, re-associate. 2298 if (NodeInfo.hasProperty(SDNPAssociative)) { 2299 // Re-associate by pulling together all of the linked operators 2300 std::vector<TreePatternNode*> MaximalChildren; 2301 GatherChildrenOfAssociativeOpcode(N, MaximalChildren); 2302 2303 // Only handle child sizes of 3. Otherwise we'll end up trying too many 2304 // permutations. 2305 if (MaximalChildren.size() == 3) { 2306 // Find the variants of all of our maximal children. 2307 std::vector<TreePatternNode*> AVariants, BVariants, CVariants; 2308 GenerateVariantsOf(MaximalChildren[0], AVariants, CDP, DepVars); 2309 GenerateVariantsOf(MaximalChildren[1], BVariants, CDP, DepVars); 2310 GenerateVariantsOf(MaximalChildren[2], CVariants, CDP, DepVars); 2311 2312 // There are only two ways we can permute the tree: 2313 // (A op B) op C and A op (B op C) 2314 // Within these forms, we can also permute A/B/C. 2315 2316 // Generate legal pair permutations of A/B/C. 2317 std::vector<TreePatternNode*> ABVariants; 2318 std::vector<TreePatternNode*> BAVariants; 2319 std::vector<TreePatternNode*> ACVariants; 2320 std::vector<TreePatternNode*> CAVariants; 2321 std::vector<TreePatternNode*> BCVariants; 2322 std::vector<TreePatternNode*> CBVariants; 2323 CombineChildVariants(N, AVariants, BVariants, ABVariants, CDP, DepVars); 2324 CombineChildVariants(N, BVariants, AVariants, BAVariants, CDP, DepVars); 2325 CombineChildVariants(N, AVariants, CVariants, ACVariants, CDP, DepVars); 2326 CombineChildVariants(N, CVariants, AVariants, CAVariants, CDP, DepVars); 2327 CombineChildVariants(N, BVariants, CVariants, BCVariants, CDP, DepVars); 2328 CombineChildVariants(N, CVariants, BVariants, CBVariants, CDP, DepVars); 2329 2330 // Combine those into the result: (x op x) op x 2331 CombineChildVariants(N, ABVariants, CVariants, OutVariants, CDP, DepVars); 2332 CombineChildVariants(N, BAVariants, CVariants, OutVariants, CDP, DepVars); 2333 CombineChildVariants(N, ACVariants, BVariants, OutVariants, CDP, DepVars); 2334 CombineChildVariants(N, CAVariants, BVariants, OutVariants, CDP, DepVars); 2335 CombineChildVariants(N, BCVariants, AVariants, OutVariants, CDP, DepVars); 2336 CombineChildVariants(N, CBVariants, AVariants, OutVariants, CDP, DepVars); 2337 2338 // Combine those into the result: x op (x op x) 2339 CombineChildVariants(N, CVariants, ABVariants, OutVariants, CDP, DepVars); 2340 CombineChildVariants(N, CVariants, BAVariants, OutVariants, CDP, DepVars); 2341 CombineChildVariants(N, BVariants, ACVariants, OutVariants, CDP, DepVars); 2342 CombineChildVariants(N, BVariants, CAVariants, OutVariants, CDP, DepVars); 2343 CombineChildVariants(N, AVariants, BCVariants, OutVariants, CDP, DepVars); 2344 CombineChildVariants(N, AVariants, CBVariants, OutVariants, CDP, DepVars); 2345 return; 2346 } 2347 } 2348 2349 // Compute permutations of all children. 2350 std::vector<std::vector<TreePatternNode*> > ChildVariants; 2351 ChildVariants.resize(N->getNumChildren()); 2352 for (unsigned i = 0, e = N->getNumChildren(); i != e; ++i) 2353 GenerateVariantsOf(N->getChild(i), ChildVariants[i], CDP, DepVars); 2354 2355 // Build all permutations based on how the children were formed. 2356 CombineChildVariants(N, ChildVariants, OutVariants, CDP, DepVars); 2357 2358 // If this node is commutative, consider the commuted order. 2359 bool isCommIntrinsic = N->isCommutativeIntrinsic(CDP); 2360 if (NodeInfo.hasProperty(SDNPCommutative) || isCommIntrinsic) { 2361 assert((N->getNumChildren()==2 || isCommIntrinsic) && 2362 "Commutative but doesn't have 2 children!"); 2363 // Don't count children which are actually register references. 2364 unsigned NC = 0; 2365 for (unsigned i = 0, e = N->getNumChildren(); i != e; ++i) { 2366 TreePatternNode *Child = N->getChild(i); 2367 if (Child->isLeaf()) 2368 if (DefInit *DI = dynamic_cast<DefInit*>(Child->getLeafValue())) { 2369 Record *RR = DI->getDef(); 2370 if (RR->isSubClassOf("Register")) 2371 continue; 2372 } 2373 NC++; 2374 } 2375 // Consider the commuted order. 2376 if (isCommIntrinsic) { 2377 // Commutative intrinsic. First operand is the intrinsic id, 2nd and 3rd 2378 // operands are the commutative operands, and there might be more operands 2379 // after those. 2380 assert(NC >= 3 && 2381 "Commutative intrinsic should have at least 3 childrean!"); 2382 std::vector<std::vector<TreePatternNode*> > Variants; 2383 Variants.push_back(ChildVariants[0]); // Intrinsic id. 2384 Variants.push_back(ChildVariants[2]); 2385 Variants.push_back(ChildVariants[1]); 2386 for (unsigned i = 3; i != NC; ++i) 2387 Variants.push_back(ChildVariants[i]); 2388 CombineChildVariants(N, Variants, OutVariants, CDP, DepVars); 2389 } else if (NC == 2) 2390 CombineChildVariants(N, ChildVariants[1], ChildVariants[0], 2391 OutVariants, CDP, DepVars); 2392 } 2393 } 2394 2395 2396 // GenerateVariants - Generate variants. For example, commutative patterns can 2397 // match multiple ways. Add them to PatternsToMatch as well. 2398 void CodeGenDAGPatterns::GenerateVariants() { 2399 DEBUG(errs() << "Generating instruction variants.\n"); 2400 2401 // Loop over all of the patterns we've collected, checking to see if we can 2402 // generate variants of the instruction, through the exploitation of 2403 // identities. This permits the target to provide aggressive matching without 2404 // the .td file having to contain tons of variants of instructions. 2405 // 2406 // Note that this loop adds new patterns to the PatternsToMatch list, but we 2407 // intentionally do not reconsider these. Any variants of added patterns have 2408 // already been added. 2409 // 2410 for (unsigned i = 0, e = PatternsToMatch.size(); i != e; ++i) { 2411 MultipleUseVarSet DepVars; 2412 std::vector<TreePatternNode*> Variants; 2413 FindDepVars(PatternsToMatch[i].getSrcPattern(), DepVars); 2414 DEBUG(errs() << "Dependent/multiply used variables: "); 2415 DEBUG(DumpDepVars(DepVars)); 2416 DEBUG(errs() << "\n"); 2417 GenerateVariantsOf(PatternsToMatch[i].getSrcPattern(), Variants, *this, DepVars); 2418 2419 assert(!Variants.empty() && "Must create at least original variant!"); 2420 Variants.erase(Variants.begin()); // Remove the original pattern. 2421 2422 if (Variants.empty()) // No variants for this pattern. 2423 continue; 2424 2425 DEBUG(errs() << "FOUND VARIANTS OF: "; 2426 PatternsToMatch[i].getSrcPattern()->dump(); 2427 errs() << "\n"); 2428 2429 for (unsigned v = 0, e = Variants.size(); v != e; ++v) { 2430 TreePatternNode *Variant = Variants[v]; 2431 2432 DEBUG(errs() << " VAR#" << v << ": "; 2433 Variant->dump(); 2434 errs() << "\n"); 2435 2436 // Scan to see if an instruction or explicit pattern already matches this. 2437 bool AlreadyExists = false; 2438 for (unsigned p = 0, e = PatternsToMatch.size(); p != e; ++p) { 2439 // Skip if the top level predicates do not match. 2440 if (PatternsToMatch[i].getPredicates() != 2441 PatternsToMatch[p].getPredicates()) 2442 continue; 2443 // Check to see if this variant already exists. 2444 if (Variant->isIsomorphicTo(PatternsToMatch[p].getSrcPattern(), DepVars)) { 2445 DEBUG(errs() << " *** ALREADY EXISTS, ignoring variant.\n"); 2446 AlreadyExists = true; 2447 break; 2448 } 2449 } 2450 // If we already have it, ignore the variant. 2451 if (AlreadyExists) continue; 2452 2453 // Otherwise, add it to the list of patterns we have. 2454 PatternsToMatch. 2455 push_back(PatternToMatch(PatternsToMatch[i].getPredicates(), 2456 Variant, PatternsToMatch[i].getDstPattern(), 2457 PatternsToMatch[i].getDstRegs(), 2458 PatternsToMatch[i].getAddedComplexity())); 2459 } 2460 2461 DEBUG(errs() << "\n"); 2462 } 2463 } 2464 2465