1 //===- CodeGenTarget.cpp - CodeGen Target Class Wrapper ---------*- C++ -*-===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file was developed by the LLVM research group and is distributed under 6 // the University of Illinois Open Source License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This class wrap target description classes used by the various code 11 // generation TableGen backends. This makes it easier to access the data and 12 // provides a single place that needs to check it for validity. All of these 13 // classes throw exceptions on error conditions. 14 // 15 //===----------------------------------------------------------------------===// 16 17 #include "CodeGenTarget.h" 18 #include "CodeGenIntrinsics.h" 19 #include "Record.h" 20 #include "llvm/ADT/StringExtras.h" 21 #include "llvm/Support/CommandLine.h" 22 #include "llvm/Support/Streams.h" 23 #include <set> 24 #include <algorithm> 25 using namespace llvm; 26 27 static cl::opt<unsigned> 28 AsmWriterNum("asmwriternum", cl::init(0), 29 cl::desc("Make -gen-asm-writer emit assembly writer #N")); 30 31 /// getValueType - Return the MCV::ValueType that the specified TableGen record 32 /// corresponds to. 33 MVT::ValueType llvm::getValueType(Record *Rec) { 34 return (MVT::ValueType)Rec->getValueAsInt("Value"); 35 } 36 37 std::string llvm::getName(MVT::ValueType T) { 38 switch (T) { 39 case MVT::Other: return "UNKNOWN"; 40 case MVT::i1: return "MVT::i1"; 41 case MVT::i8: return "MVT::i8"; 42 case MVT::i16: return "MVT::i16"; 43 case MVT::i32: return "MVT::i32"; 44 case MVT::i64: return "MVT::i64"; 45 case MVT::i128: return "MVT::i128"; 46 case MVT::iAny: return "MVT::iAny"; 47 case MVT::fAny: return "MVT::fAny"; 48 case MVT::f32: return "MVT::f32"; 49 case MVT::f64: return "MVT::f64"; 50 case MVT::f80: return "MVT::f80"; 51 case MVT::f128: return "MVT::f128"; 52 case MVT::Flag: return "MVT::Flag"; 53 case MVT::isVoid:return "MVT::void"; 54 case MVT::v8i8: return "MVT::v8i8"; 55 case MVT::v4i16: return "MVT::v4i16"; 56 case MVT::v2i32: return "MVT::v2i32"; 57 case MVT::v1i64: return "MVT::v1i64"; 58 case MVT::v16i8: return "MVT::v16i8"; 59 case MVT::v8i16: return "MVT::v8i16"; 60 case MVT::v4i32: return "MVT::v4i32"; 61 case MVT::v2i64: return "MVT::v2i64"; 62 case MVT::v2f32: return "MVT::v2f32"; 63 case MVT::v4f32: return "MVT::v4f32"; 64 case MVT::v2f64: return "MVT::v2f64"; 65 case MVT::v3i32: return "MVT::v3i32"; 66 case MVT::v3f32: return "MVT::v3f32"; 67 case MVT::iPTR: return "TLI.getPointerTy()"; 68 default: assert(0 && "ILLEGAL VALUE TYPE!"); return ""; 69 } 70 } 71 72 std::string llvm::getEnumName(MVT::ValueType T) { 73 switch (T) { 74 case MVT::Other: return "MVT::Other"; 75 case MVT::i1: return "MVT::i1"; 76 case MVT::i8: return "MVT::i8"; 77 case MVT::i16: return "MVT::i16"; 78 case MVT::i32: return "MVT::i32"; 79 case MVT::i64: return "MVT::i64"; 80 case MVT::i128: return "MVT::i128"; 81 case MVT::iAny: return "MVT::iAny"; 82 case MVT::fAny: return "MVT::fAny"; 83 case MVT::f32: return "MVT::f32"; 84 case MVT::f64: return "MVT::f64"; 85 case MVT::f80: return "MVT::f80"; 86 case MVT::f128: return "MVT::f128"; 87 case MVT::Flag: return "MVT::Flag"; 88 case MVT::isVoid:return "MVT::isVoid"; 89 case MVT::v8i8: return "MVT::v8i8"; 90 case MVT::v4i16: return "MVT::v4i16"; 91 case MVT::v2i32: return "MVT::v2i32"; 92 case MVT::v1i64: return "MVT::v1i64"; 93 case MVT::v16i8: return "MVT::v16i8"; 94 case MVT::v8i16: return "MVT::v8i16"; 95 case MVT::v4i32: return "MVT::v4i32"; 96 case MVT::v2i64: return "MVT::v2i64"; 97 case MVT::v2f32: return "MVT::v2f32"; 98 case MVT::v4f32: return "MVT::v4f32"; 99 case MVT::v2f64: return "MVT::v2f64"; 100 case MVT::v3i32: return "MVT::v3i32"; 101 case MVT::v3f32: return "MVT::v3f32"; 102 case MVT::iPTR: return "MVT::iPTR"; 103 default: assert(0 && "ILLEGAL VALUE TYPE!"); return ""; 104 } 105 } 106 107 108 /// getTarget - Return the current instance of the Target class. 109 /// 110 CodeGenTarget::CodeGenTarget() { 111 std::vector<Record*> Targets = Records.getAllDerivedDefinitions("Target"); 112 if (Targets.size() == 0) 113 throw std::string("ERROR: No 'Target' subclasses defined!"); 114 if (Targets.size() != 1) 115 throw std::string("ERROR: Multiple subclasses of Target defined!"); 116 TargetRec = Targets[0]; 117 } 118 119 120 const std::string &CodeGenTarget::getName() const { 121 return TargetRec->getName(); 122 } 123 124 Record *CodeGenTarget::getInstructionSet() const { 125 return TargetRec->getValueAsDef("InstructionSet"); 126 } 127 128 /// getAsmWriter - Return the AssemblyWriter definition for this target. 129 /// 130 Record *CodeGenTarget::getAsmWriter() const { 131 std::vector<Record*> LI = TargetRec->getValueAsListOfDefs("AssemblyWriters"); 132 if (AsmWriterNum >= LI.size()) 133 throw "Target does not have an AsmWriter #" + utostr(AsmWriterNum) + "!"; 134 return LI[AsmWriterNum]; 135 } 136 137 void CodeGenTarget::ReadRegisters() const { 138 std::vector<Record*> Regs = Records.getAllDerivedDefinitions("Register"); 139 if (Regs.empty()) 140 throw std::string("No 'Register' subclasses defined!"); 141 142 Registers.reserve(Regs.size()); 143 Registers.assign(Regs.begin(), Regs.end()); 144 } 145 146 CodeGenRegister::CodeGenRegister(Record *R) : TheDef(R) { 147 DeclaredSpillSize = R->getValueAsInt("SpillSize"); 148 DeclaredSpillAlignment = R->getValueAsInt("SpillAlignment"); 149 } 150 151 const std::string &CodeGenRegister::getName() const { 152 return TheDef->getName(); 153 } 154 155 void CodeGenTarget::ReadRegisterClasses() const { 156 std::vector<Record*> RegClasses = 157 Records.getAllDerivedDefinitions("RegisterClass"); 158 if (RegClasses.empty()) 159 throw std::string("No 'RegisterClass' subclasses defined!"); 160 161 RegisterClasses.reserve(RegClasses.size()); 162 RegisterClasses.assign(RegClasses.begin(), RegClasses.end()); 163 } 164 165 std::vector<unsigned char> CodeGenTarget::getRegisterVTs(Record *R) const { 166 std::vector<unsigned char> Result; 167 const std::vector<CodeGenRegisterClass> &RCs = getRegisterClasses(); 168 for (unsigned i = 0, e = RCs.size(); i != e; ++i) { 169 const CodeGenRegisterClass &RC = RegisterClasses[i]; 170 for (unsigned ei = 0, ee = RC.Elements.size(); ei != ee; ++ei) { 171 if (R == RC.Elements[ei]) { 172 const std::vector<MVT::ValueType> &InVTs = RC.getValueTypes(); 173 for (unsigned i = 0, e = InVTs.size(); i != e; ++i) 174 Result.push_back(InVTs[i]); 175 } 176 } 177 } 178 return Result; 179 } 180 181 182 CodeGenRegisterClass::CodeGenRegisterClass(Record *R) : TheDef(R) { 183 // Rename anonymous register classes. 184 if (R->getName().size() > 9 && R->getName()[9] == '.') { 185 static unsigned AnonCounter = 0; 186 R->setName("AnonRegClass_"+utostr(AnonCounter++)); 187 } 188 189 std::vector<Record*> TypeList = R->getValueAsListOfDefs("RegTypes"); 190 for (unsigned i = 0, e = TypeList.size(); i != e; ++i) { 191 Record *Type = TypeList[i]; 192 if (!Type->isSubClassOf("ValueType")) 193 throw "RegTypes list member '" + Type->getName() + 194 "' does not derive from the ValueType class!"; 195 VTs.push_back(getValueType(Type)); 196 } 197 assert(!VTs.empty() && "RegisterClass must contain at least one ValueType!"); 198 199 std::vector<Record*> RegList = R->getValueAsListOfDefs("MemberList"); 200 for (unsigned i = 0, e = RegList.size(); i != e; ++i) { 201 Record *Reg = RegList[i]; 202 if (!Reg->isSubClassOf("Register")) 203 throw "Register Class member '" + Reg->getName() + 204 "' does not derive from the Register class!"; 205 Elements.push_back(Reg); 206 } 207 208 std::vector<Record*> SubRegClassList = 209 R->getValueAsListOfDefs("SubRegClassList"); 210 for (unsigned i = 0, e = SubRegClassList.size(); i != e; ++i) { 211 Record *SubRegClass = SubRegClassList[i]; 212 if (!SubRegClass->isSubClassOf("RegisterClass")) 213 throw "Register Class member '" + SubRegClass->getName() + 214 "' does not derive from the RegisterClass class!"; 215 SubRegClasses.push_back(SubRegClass); 216 } 217 218 // Allow targets to override the size in bits of the RegisterClass. 219 unsigned Size = R->getValueAsInt("Size"); 220 221 Namespace = R->getValueAsString("Namespace"); 222 SpillSize = Size ? Size : MVT::getSizeInBits(VTs[0]); 223 SpillAlignment = R->getValueAsInt("Alignment"); 224 CopyCost = R->getValueAsInt("CopyCost"); 225 MethodBodies = R->getValueAsCode("MethodBodies"); 226 MethodProtos = R->getValueAsCode("MethodProtos"); 227 } 228 229 const std::string &CodeGenRegisterClass::getName() const { 230 return TheDef->getName(); 231 } 232 233 void CodeGenTarget::ReadLegalValueTypes() const { 234 const std::vector<CodeGenRegisterClass> &RCs = getRegisterClasses(); 235 for (unsigned i = 0, e = RCs.size(); i != e; ++i) 236 for (unsigned ri = 0, re = RCs[i].VTs.size(); ri != re; ++ri) 237 LegalValueTypes.push_back(RCs[i].VTs[ri]); 238 239 // Remove duplicates. 240 std::sort(LegalValueTypes.begin(), LegalValueTypes.end()); 241 LegalValueTypes.erase(std::unique(LegalValueTypes.begin(), 242 LegalValueTypes.end()), 243 LegalValueTypes.end()); 244 } 245 246 247 void CodeGenTarget::ReadInstructions() const { 248 std::vector<Record*> Insts = Records.getAllDerivedDefinitions("Instruction"); 249 if (Insts.size() <= 2) 250 throw std::string("No 'Instruction' subclasses defined!"); 251 252 // Parse the instructions defined in the .td file. 253 std::string InstFormatName = 254 getAsmWriter()->getValueAsString("InstFormatName"); 255 256 for (unsigned i = 0, e = Insts.size(); i != e; ++i) { 257 std::string AsmStr = Insts[i]->getValueAsString(InstFormatName); 258 Instructions.insert(std::make_pair(Insts[i]->getName(), 259 CodeGenInstruction(Insts[i], AsmStr))); 260 } 261 } 262 263 /// getInstructionsByEnumValue - Return all of the instructions defined by the 264 /// target, ordered by their enum value. 265 void CodeGenTarget:: 266 getInstructionsByEnumValue(std::vector<const CodeGenInstruction*> 267 &NumberedInstructions) { 268 std::map<std::string, CodeGenInstruction>::const_iterator I; 269 I = getInstructions().find("PHI"); 270 if (I == Instructions.end()) throw "Could not find 'PHI' instruction!"; 271 const CodeGenInstruction *PHI = &I->second; 272 273 I = getInstructions().find("INLINEASM"); 274 if (I == Instructions.end()) throw "Could not find 'INLINEASM' instruction!"; 275 const CodeGenInstruction *INLINEASM = &I->second; 276 277 I = getInstructions().find("LABEL"); 278 if (I == Instructions.end()) throw "Could not find 'LABEL' instruction!"; 279 const CodeGenInstruction *LABEL = &I->second; 280 281 I = getInstructions().find("EXTRACT_SUBREG"); 282 if (I == Instructions.end()) 283 throw "Could not find 'EXTRACT_SUBREG' instruction!"; 284 const CodeGenInstruction *EXTRACT_SUBREG = &I->second; 285 286 I = getInstructions().find("INSERT_SUBREG"); 287 if (I == Instructions.end()) 288 throw "Could not find 'INSERT_SUBREG' instruction!"; 289 const CodeGenInstruction *INSERT_SUBREG = &I->second; 290 291 // Print out the rest of the instructions now. 292 NumberedInstructions.push_back(PHI); 293 NumberedInstructions.push_back(INLINEASM); 294 NumberedInstructions.push_back(LABEL); 295 NumberedInstructions.push_back(EXTRACT_SUBREG); 296 NumberedInstructions.push_back(INSERT_SUBREG); 297 for (inst_iterator II = inst_begin(), E = inst_end(); II != E; ++II) 298 if (&II->second != PHI && 299 &II->second != INLINEASM && 300 &II->second != LABEL && 301 &II->second != EXTRACT_SUBREG && 302 &II->second != INSERT_SUBREG) 303 NumberedInstructions.push_back(&II->second); 304 } 305 306 307 /// isLittleEndianEncoding - Return whether this target encodes its instruction 308 /// in little-endian format, i.e. bits laid out in the order [0..n] 309 /// 310 bool CodeGenTarget::isLittleEndianEncoding() const { 311 return getInstructionSet()->getValueAsBit("isLittleEndianEncoding"); 312 } 313 314 315 316 static void ParseConstraint(const std::string &CStr, CodeGenInstruction *I) { 317 // FIXME: Only supports TIED_TO for now. 318 std::string::size_type pos = CStr.find_first_of('='); 319 assert(pos != std::string::npos && "Unrecognized constraint"); 320 std::string Name = CStr.substr(0, pos); 321 322 // TIED_TO: $src1 = $dst 323 std::string::size_type wpos = Name.find_first_of(" \t"); 324 if (wpos == std::string::npos) 325 throw "Illegal format for tied-to constraint: '" + CStr + "'"; 326 std::string DestOpName = Name.substr(0, wpos); 327 std::pair<unsigned,unsigned> DestOp = I->ParseOperandName(DestOpName, false); 328 329 Name = CStr.substr(pos+1); 330 wpos = Name.find_first_not_of(" \t"); 331 if (wpos == std::string::npos) 332 throw "Illegal format for tied-to constraint: '" + CStr + "'"; 333 334 std::pair<unsigned,unsigned> SrcOp = 335 I->ParseOperandName(Name.substr(wpos), false); 336 if (SrcOp > DestOp) 337 throw "Illegal tied-to operand constraint '" + CStr + "'"; 338 339 340 unsigned FlatOpNo = I->getFlattenedOperandNumber(SrcOp); 341 // Build the string for the operand. 342 std::string OpConstraint = 343 "((" + utostr(FlatOpNo) + " << 16) | (1 << TOI::TIED_TO))"; 344 345 346 if (!I->OperandList[DestOp.first].Constraints[DestOp.second].empty()) 347 throw "Operand '" + DestOpName + "' cannot have multiple constraints!"; 348 I->OperandList[DestOp.first].Constraints[DestOp.second] = OpConstraint; 349 } 350 351 static void ParseConstraints(const std::string &CStr, CodeGenInstruction *I) { 352 // Make sure the constraints list for each operand is large enough to hold 353 // constraint info, even if none is present. 354 for (unsigned i = 0, e = I->OperandList.size(); i != e; ++i) 355 I->OperandList[i].Constraints.resize(I->OperandList[i].MINumOperands); 356 357 if (CStr.empty()) return; 358 359 const std::string delims(","); 360 std::string::size_type bidx, eidx; 361 362 bidx = CStr.find_first_not_of(delims); 363 while (bidx != std::string::npos) { 364 eidx = CStr.find_first_of(delims, bidx); 365 if (eidx == std::string::npos) 366 eidx = CStr.length(); 367 368 ParseConstraint(CStr.substr(bidx, eidx), I); 369 bidx = CStr.find_first_not_of(delims, eidx); 370 } 371 } 372 373 CodeGenInstruction::CodeGenInstruction(Record *R, const std::string &AsmStr) 374 : TheDef(R), AsmString(AsmStr) { 375 Name = R->getValueAsString("Name"); 376 Namespace = R->getValueAsString("Namespace"); 377 378 isReturn = R->getValueAsBit("isReturn"); 379 isBranch = R->getValueAsBit("isBranch"); 380 isBarrier = R->getValueAsBit("isBarrier"); 381 isCall = R->getValueAsBit("isCall"); 382 isLoad = R->getValueAsBit("isLoad"); 383 isStore = R->getValueAsBit("isStore"); 384 bool isTwoAddress = R->getValueAsBit("isTwoAddress"); 385 isPredicable = R->getValueAsBit("isPredicable"); 386 isConvertibleToThreeAddress = R->getValueAsBit("isConvertibleToThreeAddress"); 387 isCommutable = R->getValueAsBit("isCommutable"); 388 isTerminator = R->getValueAsBit("isTerminator"); 389 isReMaterializable = R->getValueAsBit("isReMaterializable"); 390 hasDelaySlot = R->getValueAsBit("hasDelaySlot"); 391 usesCustomDAGSchedInserter = R->getValueAsBit("usesCustomDAGSchedInserter"); 392 hasCtrlDep = R->getValueAsBit("hasCtrlDep"); 393 isNotDuplicable = R->getValueAsBit("isNotDuplicable"); 394 hasOptionalDef = false; 395 hasVariableNumberOfOperands = false; 396 397 DagInit *DI; 398 try { 399 DI = R->getValueAsDag("OutOperandList"); 400 } catch (...) { 401 // Error getting operand list, just ignore it (sparcv9). 402 AsmString.clear(); 403 OperandList.clear(); 404 return; 405 } 406 NumDefs = DI->getNumArgs(); 407 408 DagInit *IDI; 409 try { 410 IDI = R->getValueAsDag("InOperandList"); 411 } catch (...) { 412 // Error getting operand list, just ignore it (sparcv9). 413 AsmString.clear(); 414 OperandList.clear(); 415 return; 416 } 417 DI = (DagInit*)(new BinOpInit(BinOpInit::CONCAT, DI, IDI))->Fold(); 418 419 unsigned MIOperandNo = 0; 420 std::set<std::string> OperandNames; 421 for (unsigned i = 0, e = DI->getNumArgs(); i != e; ++i) { 422 DefInit *Arg = dynamic_cast<DefInit*>(DI->getArg(i)); 423 if (!Arg) 424 throw "Illegal operand for the '" + R->getName() + "' instruction!"; 425 426 Record *Rec = Arg->getDef(); 427 std::string PrintMethod = "printOperand"; 428 unsigned NumOps = 1; 429 DagInit *MIOpInfo = 0; 430 if (Rec->isSubClassOf("Operand")) { 431 PrintMethod = Rec->getValueAsString("PrintMethod"); 432 MIOpInfo = Rec->getValueAsDag("MIOperandInfo"); 433 434 // Verify that MIOpInfo has an 'ops' root value. 435 if (!dynamic_cast<DefInit*>(MIOpInfo->getOperator()) || 436 dynamic_cast<DefInit*>(MIOpInfo->getOperator()) 437 ->getDef()->getName() != "ops") 438 throw "Bad value for MIOperandInfo in operand '" + Rec->getName() + 439 "'\n"; 440 441 // If we have MIOpInfo, then we have #operands equal to number of entries 442 // in MIOperandInfo. 443 if (unsigned NumArgs = MIOpInfo->getNumArgs()) 444 NumOps = NumArgs; 445 446 if (Rec->isSubClassOf("PredicateOperand")) 447 isPredicable = true; 448 else if (Rec->isSubClassOf("OptionalDefOperand")) 449 hasOptionalDef = true; 450 } else if (Rec->getName() == "variable_ops") { 451 hasVariableNumberOfOperands = true; 452 continue; 453 } else if (!Rec->isSubClassOf("RegisterClass") && 454 Rec->getName() != "ptr_rc") 455 throw "Unknown operand class '" + Rec->getName() + 456 "' in instruction '" + R->getName() + "' instruction!"; 457 458 // Check that the operand has a name and that it's unique. 459 if (DI->getArgName(i).empty()) 460 throw "In instruction '" + R->getName() + "', operand #" + utostr(i) + 461 " has no name!"; 462 if (!OperandNames.insert(DI->getArgName(i)).second) 463 throw "In instruction '" + R->getName() + "', operand #" + utostr(i) + 464 " has the same name as a previous operand!"; 465 466 OperandList.push_back(OperandInfo(Rec, DI->getArgName(i), PrintMethod, 467 MIOperandNo, NumOps, MIOpInfo)); 468 MIOperandNo += NumOps; 469 } 470 471 // Parse Constraints. 472 ParseConstraints(R->getValueAsString("Constraints"), this); 473 474 // For backward compatibility: isTwoAddress means operand 1 is tied to 475 // operand 0. 476 if (isTwoAddress) { 477 if (!OperandList[1].Constraints[0].empty()) 478 throw R->getName() + ": cannot use isTwoAddress property: instruction " 479 "already has constraint set!"; 480 OperandList[1].Constraints[0] = "((0 << 16) | (1 << TOI::TIED_TO))"; 481 } 482 483 // Any operands with unset constraints get 0 as their constraint. 484 for (unsigned op = 0, e = OperandList.size(); op != e; ++op) 485 for (unsigned j = 0, e = OperandList[op].MINumOperands; j != e; ++j) 486 if (OperandList[op].Constraints[j].empty()) 487 OperandList[op].Constraints[j] = "0"; 488 489 // Parse the DisableEncoding field. 490 std::string DisableEncoding = R->getValueAsString("DisableEncoding"); 491 while (1) { 492 std::string OpName = getToken(DisableEncoding, " ,\t"); 493 if (OpName.empty()) break; 494 495 // Figure out which operand this is. 496 std::pair<unsigned,unsigned> Op = ParseOperandName(OpName, false); 497 498 // Mark the operand as not-to-be encoded. 499 if (Op.second >= OperandList[Op.first].DoNotEncode.size()) 500 OperandList[Op.first].DoNotEncode.resize(Op.second+1); 501 OperandList[Op.first].DoNotEncode[Op.second] = true; 502 } 503 } 504 505 506 507 /// getOperandNamed - Return the index of the operand with the specified 508 /// non-empty name. If the instruction does not have an operand with the 509 /// specified name, throw an exception. 510 /// 511 unsigned CodeGenInstruction::getOperandNamed(const std::string &Name) const { 512 assert(!Name.empty() && "Cannot search for operand with no name!"); 513 for (unsigned i = 0, e = OperandList.size(); i != e; ++i) 514 if (OperandList[i].Name == Name) return i; 515 throw "Instruction '" + TheDef->getName() + 516 "' does not have an operand named '$" + Name + "'!"; 517 } 518 519 std::pair<unsigned,unsigned> 520 CodeGenInstruction::ParseOperandName(const std::string &Op, 521 bool AllowWholeOp) { 522 if (Op.empty() || Op[0] != '$') 523 throw TheDef->getName() + ": Illegal operand name: '" + Op + "'"; 524 525 std::string OpName = Op.substr(1); 526 std::string SubOpName; 527 528 // Check to see if this is $foo.bar. 529 std::string::size_type DotIdx = OpName.find_first_of("."); 530 if (DotIdx != std::string::npos) { 531 SubOpName = OpName.substr(DotIdx+1); 532 if (SubOpName.empty()) 533 throw TheDef->getName() + ": illegal empty suboperand name in '" +Op +"'"; 534 OpName = OpName.substr(0, DotIdx); 535 } 536 537 unsigned OpIdx = getOperandNamed(OpName); 538 539 if (SubOpName.empty()) { // If no suboperand name was specified: 540 // If one was needed, throw. 541 if (OperandList[OpIdx].MINumOperands > 1 && !AllowWholeOp && 542 SubOpName.empty()) 543 throw TheDef->getName() + ": Illegal to refer to" 544 " whole operand part of complex operand '" + Op + "'"; 545 546 // Otherwise, return the operand. 547 return std::make_pair(OpIdx, 0U); 548 } 549 550 // Find the suboperand number involved. 551 DagInit *MIOpInfo = OperandList[OpIdx].MIOperandInfo; 552 if (MIOpInfo == 0) 553 throw TheDef->getName() + ": unknown suboperand name in '" + Op + "'"; 554 555 // Find the operand with the right name. 556 for (unsigned i = 0, e = MIOpInfo->getNumArgs(); i != e; ++i) 557 if (MIOpInfo->getArgName(i) == SubOpName) 558 return std::make_pair(OpIdx, i); 559 560 // Otherwise, didn't find it! 561 throw TheDef->getName() + ": unknown suboperand name in '" + Op + "'"; 562 } 563 564 565 566 567 //===----------------------------------------------------------------------===// 568 // ComplexPattern implementation 569 // 570 ComplexPattern::ComplexPattern(Record *R) { 571 Ty = ::getValueType(R->getValueAsDef("Ty")); 572 NumOperands = R->getValueAsInt("NumOperands"); 573 SelectFunc = R->getValueAsString("SelectFunc"); 574 RootNodes = R->getValueAsListOfDefs("RootNodes"); 575 576 // Parse the properties. 577 Properties = 0; 578 std::vector<Record*> PropList = R->getValueAsListOfDefs("Properties"); 579 for (unsigned i = 0, e = PropList.size(); i != e; ++i) 580 if (PropList[i]->getName() == "SDNPHasChain") { 581 Properties |= 1 << SDNPHasChain; 582 } else if (PropList[i]->getName() == "SDNPOptInFlag") { 583 Properties |= 1 << SDNPOptInFlag; 584 } else { 585 cerr << "Unsupported SD Node property '" << PropList[i]->getName() 586 << "' on ComplexPattern '" << R->getName() << "'!\n"; 587 exit(1); 588 } 589 } 590 591 //===----------------------------------------------------------------------===// 592 // CodeGenIntrinsic Implementation 593 //===----------------------------------------------------------------------===// 594 595 std::vector<CodeGenIntrinsic> llvm::LoadIntrinsics(const RecordKeeper &RC) { 596 std::vector<Record*> I = RC.getAllDerivedDefinitions("Intrinsic"); 597 598 std::vector<CodeGenIntrinsic> Result; 599 600 // If we are in the context of a target .td file, get the target info so that 601 // we can decode the current intptr_t. 602 CodeGenTarget *CGT = 0; 603 if (Records.getClass("Target") && 604 Records.getAllDerivedDefinitions("Target").size() == 1) 605 CGT = new CodeGenTarget(); 606 607 for (unsigned i = 0, e = I.size(); i != e; ++i) 608 Result.push_back(CodeGenIntrinsic(I[i], CGT)); 609 delete CGT; 610 return Result; 611 } 612 613 CodeGenIntrinsic::CodeGenIntrinsic(Record *R, CodeGenTarget *CGT) { 614 TheDef = R; 615 std::string DefName = R->getName(); 616 ModRef = WriteMem; 617 isOverloaded = false; 618 619 if (DefName.size() <= 4 || 620 std::string(DefName.begin(), DefName.begin()+4) != "int_") 621 throw "Intrinsic '" + DefName + "' does not start with 'int_'!"; 622 EnumName = std::string(DefName.begin()+4, DefName.end()); 623 if (R->getValue("GCCBuiltinName")) // Ignore a missing GCCBuiltinName field. 624 GCCBuiltinName = R->getValueAsString("GCCBuiltinName"); 625 TargetPrefix = R->getValueAsString("TargetPrefix"); 626 Name = R->getValueAsString("LLVMName"); 627 if (Name == "") { 628 // If an explicit name isn't specified, derive one from the DefName. 629 Name = "llvm."; 630 for (unsigned i = 0, e = EnumName.size(); i != e; ++i) 631 if (EnumName[i] == '_') 632 Name += '.'; 633 else 634 Name += EnumName[i]; 635 } else { 636 // Verify it starts with "llvm.". 637 if (Name.size() <= 5 || 638 std::string(Name.begin(), Name.begin()+5) != "llvm.") 639 throw "Intrinsic '" + DefName + "'s name does not start with 'llvm.'!"; 640 } 641 642 // If TargetPrefix is specified, make sure that Name starts with 643 // "llvm.<targetprefix>.". 644 if (!TargetPrefix.empty()) { 645 if (Name.size() < 6+TargetPrefix.size() || 646 std::string(Name.begin()+5, Name.begin()+6+TargetPrefix.size()) 647 != (TargetPrefix+".")) 648 throw "Intrinsic '" + DefName + "' does not start with 'llvm." + 649 TargetPrefix + ".'!"; 650 } 651 652 // Parse the list of argument types. 653 ListInit *TypeList = R->getValueAsListInit("Types"); 654 for (unsigned i = 0, e = TypeList->getSize(); i != e; ++i) { 655 Record *TyEl = TypeList->getElementAsRecord(i); 656 assert(TyEl->isSubClassOf("LLVMType") && "Expected a type!"); 657 MVT::ValueType VT = getValueType(TyEl->getValueAsDef("VT")); 658 isOverloaded |= VT == MVT::iAny || VT == MVT::fAny; 659 ArgVTs.push_back(VT); 660 ArgTypeDefs.push_back(TyEl); 661 } 662 if (ArgVTs.size() == 0) 663 throw "Intrinsic '"+DefName+"' needs at least a type for the ret value!"; 664 665 666 // Parse the intrinsic properties. 667 ListInit *PropList = R->getValueAsListInit("Properties"); 668 for (unsigned i = 0, e = PropList->getSize(); i != e; ++i) { 669 Record *Property = PropList->getElementAsRecord(i); 670 assert(Property->isSubClassOf("IntrinsicProperty") && 671 "Expected a property!"); 672 673 if (Property->getName() == "IntrNoMem") 674 ModRef = NoMem; 675 else if (Property->getName() == "IntrReadArgMem") 676 ModRef = ReadArgMem; 677 else if (Property->getName() == "IntrReadMem") 678 ModRef = ReadMem; 679 else if (Property->getName() == "IntrWriteArgMem") 680 ModRef = WriteArgMem; 681 else if (Property->getName() == "IntrWriteMem") 682 ModRef = WriteMem; 683 else 684 assert(0 && "Unknown property!"); 685 } 686 } 687