1 //===- MIParser.cpp - Machine instructions parser implementation ----------===// 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 parsing of machine instructions. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "MIParser.h" 15 #include "MILexer.h" 16 #include "llvm/ADT/StringMap.h" 17 #include "llvm/ADT/StringSwitch.h" 18 #include "llvm/AsmParser/Parser.h" 19 #include "llvm/AsmParser/SlotMapping.h" 20 #include "llvm/CodeGen/MachineBasicBlock.h" 21 #include "llvm/CodeGen/MachineFrameInfo.h" 22 #include "llvm/CodeGen/MachineFunction.h" 23 #include "llvm/CodeGen/MachineInstr.h" 24 #include "llvm/CodeGen/MachineInstrBuilder.h" 25 #include "llvm/CodeGen/MachineMemOperand.h" 26 #include "llvm/CodeGen/MachineModuleInfo.h" 27 #include "llvm/CodeGen/MachineRegisterInfo.h" 28 #include "llvm/IR/Constants.h" 29 #include "llvm/IR/Instructions.h" 30 #include "llvm/IR/Intrinsics.h" 31 #include "llvm/IR/Module.h" 32 #include "llvm/IR/ModuleSlotTracker.h" 33 #include "llvm/IR/ValueSymbolTable.h" 34 #include "llvm/Support/SourceMgr.h" 35 #include "llvm/Support/raw_ostream.h" 36 #include "llvm/Target/TargetInstrInfo.h" 37 #include "llvm/Target/TargetIntrinsicInfo.h" 38 #include "llvm/Target/TargetSubtargetInfo.h" 39 40 using namespace llvm; 41 42 PerFunctionMIParsingState::PerFunctionMIParsingState(MachineFunction &MF, 43 SourceMgr &SM, const SlotMapping &IRSlots) 44 : MF(MF), SM(&SM), IRSlots(IRSlots) { 45 } 46 47 namespace { 48 49 /// A wrapper struct around the 'MachineOperand' struct that includes a source 50 /// range and other attributes. 51 struct ParsedMachineOperand { 52 MachineOperand Operand; 53 StringRef::iterator Begin; 54 StringRef::iterator End; 55 Optional<unsigned> TiedDefIdx; 56 57 ParsedMachineOperand(const MachineOperand &Operand, StringRef::iterator Begin, 58 StringRef::iterator End, Optional<unsigned> &TiedDefIdx) 59 : Operand(Operand), Begin(Begin), End(End), TiedDefIdx(TiedDefIdx) { 60 if (TiedDefIdx) 61 assert(Operand.isReg() && Operand.isUse() && 62 "Only used register operands can be tied"); 63 } 64 }; 65 66 class MIParser { 67 MachineFunction &MF; 68 SMDiagnostic &Error; 69 StringRef Source, CurrentSource; 70 MIToken Token; 71 const PerFunctionMIParsingState &PFS; 72 /// Maps from instruction names to op codes. 73 StringMap<unsigned> Names2InstrOpCodes; 74 /// Maps from register names to registers. 75 StringMap<unsigned> Names2Regs; 76 /// Maps from register mask names to register masks. 77 StringMap<const uint32_t *> Names2RegMasks; 78 /// Maps from subregister names to subregister indices. 79 StringMap<unsigned> Names2SubRegIndices; 80 /// Maps from slot numbers to function's unnamed basic blocks. 81 DenseMap<unsigned, const BasicBlock *> Slots2BasicBlocks; 82 /// Maps from slot numbers to function's unnamed values. 83 DenseMap<unsigned, const Value *> Slots2Values; 84 /// Maps from target index names to target indices. 85 StringMap<int> Names2TargetIndices; 86 /// Maps from direct target flag names to the direct target flag values. 87 StringMap<unsigned> Names2DirectTargetFlags; 88 /// Maps from direct target flag names to the bitmask target flag values. 89 StringMap<unsigned> Names2BitmaskTargetFlags; 90 91 public: 92 MIParser(const PerFunctionMIParsingState &PFS, SMDiagnostic &Error, 93 StringRef Source); 94 95 /// \p SkipChar gives the number of characters to skip before looking 96 /// for the next token. 97 void lex(unsigned SkipChar = 0); 98 99 /// Report an error at the current location with the given message. 100 /// 101 /// This function always return true. 102 bool error(const Twine &Msg); 103 104 /// Report an error at the given location with the given message. 105 /// 106 /// This function always return true. 107 bool error(StringRef::iterator Loc, const Twine &Msg); 108 109 bool 110 parseBasicBlockDefinitions(DenseMap<unsigned, MachineBasicBlock *> &MBBSlots); 111 bool parseBasicBlocks(); 112 bool parse(MachineInstr *&MI); 113 bool parseStandaloneMBB(MachineBasicBlock *&MBB); 114 bool parseStandaloneNamedRegister(unsigned &Reg); 115 bool parseStandaloneVirtualRegister(unsigned &Reg); 116 bool parseStandaloneStackObject(int &FI); 117 bool parseStandaloneMDNode(MDNode *&Node); 118 119 bool 120 parseBasicBlockDefinition(DenseMap<unsigned, MachineBasicBlock *> &MBBSlots); 121 bool parseBasicBlock(MachineBasicBlock &MBB); 122 bool parseBasicBlockLiveins(MachineBasicBlock &MBB); 123 bool parseBasicBlockSuccessors(MachineBasicBlock &MBB); 124 125 bool parseRegister(unsigned &Reg); 126 bool parseRegisterFlag(unsigned &Flags); 127 bool parseSubRegisterIndex(unsigned &SubReg); 128 bool parseRegisterTiedDefIndex(unsigned &TiedDefIdx); 129 bool parseSize(unsigned &Size); 130 bool parseRegisterOperand(MachineOperand &Dest, 131 Optional<unsigned> &TiedDefIdx, bool IsDef = false); 132 bool parseImmediateOperand(MachineOperand &Dest); 133 bool parseIRConstant(StringRef::iterator Loc, StringRef Source, 134 const Constant *&C); 135 bool parseIRConstant(StringRef::iterator Loc, const Constant *&C); 136 bool parseLowLevelType(StringRef::iterator Loc, LLT &Ty); 137 bool parseTypedImmediateOperand(MachineOperand &Dest); 138 bool parseFPImmediateOperand(MachineOperand &Dest); 139 bool parseMBBReference(MachineBasicBlock *&MBB); 140 bool parseMBBOperand(MachineOperand &Dest); 141 bool parseStackFrameIndex(int &FI); 142 bool parseStackObjectOperand(MachineOperand &Dest); 143 bool parseFixedStackFrameIndex(int &FI); 144 bool parseFixedStackObjectOperand(MachineOperand &Dest); 145 bool parseGlobalValue(GlobalValue *&GV); 146 bool parseGlobalAddressOperand(MachineOperand &Dest); 147 bool parseConstantPoolIndexOperand(MachineOperand &Dest); 148 bool parseSubRegisterIndexOperand(MachineOperand &Dest); 149 bool parseJumpTableIndexOperand(MachineOperand &Dest); 150 bool parseExternalSymbolOperand(MachineOperand &Dest); 151 bool parseMDNode(MDNode *&Node); 152 bool parseMetadataOperand(MachineOperand &Dest); 153 bool parseCFIOffset(int &Offset); 154 bool parseCFIRegister(unsigned &Reg); 155 bool parseCFIOperand(MachineOperand &Dest); 156 bool parseIRBlock(BasicBlock *&BB, const Function &F); 157 bool parseBlockAddressOperand(MachineOperand &Dest); 158 bool parseIntrinsicOperand(MachineOperand &Dest); 159 bool parsePredicateOperand(MachineOperand &Dest); 160 bool parseTargetIndexOperand(MachineOperand &Dest); 161 bool parseLiveoutRegisterMaskOperand(MachineOperand &Dest); 162 bool parseMachineOperand(MachineOperand &Dest, 163 Optional<unsigned> &TiedDefIdx); 164 bool parseMachineOperandAndTargetFlags(MachineOperand &Dest, 165 Optional<unsigned> &TiedDefIdx); 166 bool parseOffset(int64_t &Offset); 167 bool parseAlignment(unsigned &Alignment); 168 bool parseOperandsOffset(MachineOperand &Op); 169 bool parseIRValue(const Value *&V); 170 bool parseMemoryOperandFlag(MachineMemOperand::Flags &Flags); 171 bool parseMemoryPseudoSourceValue(const PseudoSourceValue *&PSV); 172 bool parseMachinePointerInfo(MachinePointerInfo &Dest); 173 bool parseMachineMemoryOperand(MachineMemOperand *&Dest); 174 175 private: 176 /// Convert the integer literal in the current token into an unsigned integer. 177 /// 178 /// Return true if an error occurred. 179 bool getUnsigned(unsigned &Result); 180 181 /// Convert the integer literal in the current token into an uint64. 182 /// 183 /// Return true if an error occurred. 184 bool getUint64(uint64_t &Result); 185 186 /// If the current token is of the given kind, consume it and return false. 187 /// Otherwise report an error and return true. 188 bool expectAndConsume(MIToken::TokenKind TokenKind); 189 190 /// If the current token is of the given kind, consume it and return true. 191 /// Otherwise return false. 192 bool consumeIfPresent(MIToken::TokenKind TokenKind); 193 194 void initNames2InstrOpCodes(); 195 196 /// Try to convert an instruction name to an opcode. Return true if the 197 /// instruction name is invalid. 198 bool parseInstrName(StringRef InstrName, unsigned &OpCode); 199 200 bool parseInstruction(unsigned &OpCode, unsigned &Flags); 201 202 bool assignRegisterTies(MachineInstr &MI, 203 ArrayRef<ParsedMachineOperand> Operands); 204 205 bool verifyImplicitOperands(ArrayRef<ParsedMachineOperand> Operands, 206 const MCInstrDesc &MCID); 207 208 void initNames2Regs(); 209 210 /// Try to convert a register name to a register number. Return true if the 211 /// register name is invalid. 212 bool getRegisterByName(StringRef RegName, unsigned &Reg); 213 214 void initNames2RegMasks(); 215 216 /// Check if the given identifier is a name of a register mask. 217 /// 218 /// Return null if the identifier isn't a register mask. 219 const uint32_t *getRegMask(StringRef Identifier); 220 221 void initNames2SubRegIndices(); 222 223 /// Check if the given identifier is a name of a subregister index. 224 /// 225 /// Return 0 if the name isn't a subregister index class. 226 unsigned getSubRegIndex(StringRef Name); 227 228 const BasicBlock *getIRBlock(unsigned Slot); 229 const BasicBlock *getIRBlock(unsigned Slot, const Function &F); 230 231 const Value *getIRValue(unsigned Slot); 232 233 void initNames2TargetIndices(); 234 235 /// Try to convert a name of target index to the corresponding target index. 236 /// 237 /// Return true if the name isn't a name of a target index. 238 bool getTargetIndex(StringRef Name, int &Index); 239 240 void initNames2DirectTargetFlags(); 241 242 /// Try to convert a name of a direct target flag to the corresponding 243 /// target flag. 244 /// 245 /// Return true if the name isn't a name of a direct flag. 246 bool getDirectTargetFlag(StringRef Name, unsigned &Flag); 247 248 void initNames2BitmaskTargetFlags(); 249 250 /// Try to convert a name of a bitmask target flag to the corresponding 251 /// target flag. 252 /// 253 /// Return true if the name isn't a name of a bitmask target flag. 254 bool getBitmaskTargetFlag(StringRef Name, unsigned &Flag); 255 }; 256 257 } // end anonymous namespace 258 259 MIParser::MIParser(const PerFunctionMIParsingState &PFS, SMDiagnostic &Error, 260 StringRef Source) 261 : MF(PFS.MF), Error(Error), Source(Source), CurrentSource(Source), PFS(PFS) 262 {} 263 264 void MIParser::lex(unsigned SkipChar) { 265 CurrentSource = lexMIToken( 266 CurrentSource.data() + SkipChar, Token, 267 [this](StringRef::iterator Loc, const Twine &Msg) { error(Loc, Msg); }); 268 } 269 270 bool MIParser::error(const Twine &Msg) { return error(Token.location(), Msg); } 271 272 bool MIParser::error(StringRef::iterator Loc, const Twine &Msg) { 273 const SourceMgr &SM = *PFS.SM; 274 assert(Loc >= Source.data() && Loc <= (Source.data() + Source.size())); 275 const MemoryBuffer &Buffer = *SM.getMemoryBuffer(SM.getMainFileID()); 276 if (Loc >= Buffer.getBufferStart() && Loc <= Buffer.getBufferEnd()) { 277 // Create an ordinary diagnostic when the source manager's buffer is the 278 // source string. 279 Error = SM.GetMessage(SMLoc::getFromPointer(Loc), SourceMgr::DK_Error, Msg); 280 return true; 281 } 282 // Create a diagnostic for a YAML string literal. 283 Error = SMDiagnostic(SM, SMLoc(), Buffer.getBufferIdentifier(), 1, 284 Loc - Source.data(), SourceMgr::DK_Error, Msg.str(), 285 Source, None, None); 286 return true; 287 } 288 289 static const char *toString(MIToken::TokenKind TokenKind) { 290 switch (TokenKind) { 291 case MIToken::comma: 292 return "','"; 293 case MIToken::equal: 294 return "'='"; 295 case MIToken::colon: 296 return "':'"; 297 case MIToken::lparen: 298 return "'('"; 299 case MIToken::rparen: 300 return "')'"; 301 default: 302 return "<unknown token>"; 303 } 304 } 305 306 bool MIParser::expectAndConsume(MIToken::TokenKind TokenKind) { 307 if (Token.isNot(TokenKind)) 308 return error(Twine("expected ") + toString(TokenKind)); 309 lex(); 310 return false; 311 } 312 313 bool MIParser::consumeIfPresent(MIToken::TokenKind TokenKind) { 314 if (Token.isNot(TokenKind)) 315 return false; 316 lex(); 317 return true; 318 } 319 320 bool MIParser::parseBasicBlockDefinition( 321 DenseMap<unsigned, MachineBasicBlock *> &MBBSlots) { 322 assert(Token.is(MIToken::MachineBasicBlockLabel)); 323 unsigned ID = 0; 324 if (getUnsigned(ID)) 325 return true; 326 auto Loc = Token.location(); 327 auto Name = Token.stringValue(); 328 lex(); 329 bool HasAddressTaken = false; 330 bool IsLandingPad = false; 331 unsigned Alignment = 0; 332 BasicBlock *BB = nullptr; 333 if (consumeIfPresent(MIToken::lparen)) { 334 do { 335 // TODO: Report an error when multiple same attributes are specified. 336 switch (Token.kind()) { 337 case MIToken::kw_address_taken: 338 HasAddressTaken = true; 339 lex(); 340 break; 341 case MIToken::kw_landing_pad: 342 IsLandingPad = true; 343 lex(); 344 break; 345 case MIToken::kw_align: 346 if (parseAlignment(Alignment)) 347 return true; 348 break; 349 case MIToken::IRBlock: 350 // TODO: Report an error when both name and ir block are specified. 351 if (parseIRBlock(BB, *MF.getFunction())) 352 return true; 353 lex(); 354 break; 355 default: 356 break; 357 } 358 } while (consumeIfPresent(MIToken::comma)); 359 if (expectAndConsume(MIToken::rparen)) 360 return true; 361 } 362 if (expectAndConsume(MIToken::colon)) 363 return true; 364 365 if (!Name.empty()) { 366 BB = dyn_cast_or_null<BasicBlock>( 367 MF.getFunction()->getValueSymbolTable().lookup(Name)); 368 if (!BB) 369 return error(Loc, Twine("basic block '") + Name + 370 "' is not defined in the function '" + 371 MF.getName() + "'"); 372 } 373 auto *MBB = MF.CreateMachineBasicBlock(BB); 374 MF.insert(MF.end(), MBB); 375 bool WasInserted = MBBSlots.insert(std::make_pair(ID, MBB)).second; 376 if (!WasInserted) 377 return error(Loc, Twine("redefinition of machine basic block with id #") + 378 Twine(ID)); 379 if (Alignment) 380 MBB->setAlignment(Alignment); 381 if (HasAddressTaken) 382 MBB->setHasAddressTaken(); 383 MBB->setIsEHPad(IsLandingPad); 384 return false; 385 } 386 387 bool MIParser::parseBasicBlockDefinitions( 388 DenseMap<unsigned, MachineBasicBlock *> &MBBSlots) { 389 lex(); 390 // Skip until the first machine basic block. 391 while (Token.is(MIToken::Newline)) 392 lex(); 393 if (Token.isErrorOrEOF()) 394 return Token.isError(); 395 if (Token.isNot(MIToken::MachineBasicBlockLabel)) 396 return error("expected a basic block definition before instructions"); 397 unsigned BraceDepth = 0; 398 do { 399 if (parseBasicBlockDefinition(MBBSlots)) 400 return true; 401 bool IsAfterNewline = false; 402 // Skip until the next machine basic block. 403 while (true) { 404 if ((Token.is(MIToken::MachineBasicBlockLabel) && IsAfterNewline) || 405 Token.isErrorOrEOF()) 406 break; 407 else if (Token.is(MIToken::MachineBasicBlockLabel)) 408 return error("basic block definition should be located at the start of " 409 "the line"); 410 else if (consumeIfPresent(MIToken::Newline)) { 411 IsAfterNewline = true; 412 continue; 413 } 414 IsAfterNewline = false; 415 if (Token.is(MIToken::lbrace)) 416 ++BraceDepth; 417 if (Token.is(MIToken::rbrace)) { 418 if (!BraceDepth) 419 return error("extraneous closing brace ('}')"); 420 --BraceDepth; 421 } 422 lex(); 423 } 424 // Verify that we closed all of the '{' at the end of a file or a block. 425 if (!Token.isError() && BraceDepth) 426 return error("expected '}'"); // FIXME: Report a note that shows '{'. 427 } while (!Token.isErrorOrEOF()); 428 return Token.isError(); 429 } 430 431 bool MIParser::parseBasicBlockLiveins(MachineBasicBlock &MBB) { 432 assert(Token.is(MIToken::kw_liveins)); 433 lex(); 434 if (expectAndConsume(MIToken::colon)) 435 return true; 436 if (Token.isNewlineOrEOF()) // Allow an empty list of liveins. 437 return false; 438 do { 439 if (Token.isNot(MIToken::NamedRegister)) 440 return error("expected a named register"); 441 unsigned Reg = 0; 442 if (parseRegister(Reg)) 443 return true; 444 MBB.addLiveIn(Reg); 445 lex(); 446 } while (consumeIfPresent(MIToken::comma)); 447 return false; 448 } 449 450 bool MIParser::parseBasicBlockSuccessors(MachineBasicBlock &MBB) { 451 assert(Token.is(MIToken::kw_successors)); 452 lex(); 453 if (expectAndConsume(MIToken::colon)) 454 return true; 455 if (Token.isNewlineOrEOF()) // Allow an empty list of successors. 456 return false; 457 do { 458 if (Token.isNot(MIToken::MachineBasicBlock)) 459 return error("expected a machine basic block reference"); 460 MachineBasicBlock *SuccMBB = nullptr; 461 if (parseMBBReference(SuccMBB)) 462 return true; 463 lex(); 464 unsigned Weight = 0; 465 if (consumeIfPresent(MIToken::lparen)) { 466 if (Token.isNot(MIToken::IntegerLiteral)) 467 return error("expected an integer literal after '('"); 468 if (getUnsigned(Weight)) 469 return true; 470 lex(); 471 if (expectAndConsume(MIToken::rparen)) 472 return true; 473 } 474 MBB.addSuccessor(SuccMBB, BranchProbability::getRaw(Weight)); 475 } while (consumeIfPresent(MIToken::comma)); 476 MBB.normalizeSuccProbs(); 477 return false; 478 } 479 480 bool MIParser::parseBasicBlock(MachineBasicBlock &MBB) { 481 // Skip the definition. 482 assert(Token.is(MIToken::MachineBasicBlockLabel)); 483 lex(); 484 if (consumeIfPresent(MIToken::lparen)) { 485 while (Token.isNot(MIToken::rparen) && !Token.isErrorOrEOF()) 486 lex(); 487 consumeIfPresent(MIToken::rparen); 488 } 489 consumeIfPresent(MIToken::colon); 490 491 // Parse the liveins and successors. 492 // N.B: Multiple lists of successors and liveins are allowed and they're 493 // merged into one. 494 // Example: 495 // liveins: %edi 496 // liveins: %esi 497 // 498 // is equivalent to 499 // liveins: %edi, %esi 500 while (true) { 501 if (Token.is(MIToken::kw_successors)) { 502 if (parseBasicBlockSuccessors(MBB)) 503 return true; 504 } else if (Token.is(MIToken::kw_liveins)) { 505 if (parseBasicBlockLiveins(MBB)) 506 return true; 507 } else if (consumeIfPresent(MIToken::Newline)) { 508 continue; 509 } else 510 break; 511 if (!Token.isNewlineOrEOF()) 512 return error("expected line break at the end of a list"); 513 lex(); 514 } 515 516 // Parse the instructions. 517 bool IsInBundle = false; 518 MachineInstr *PrevMI = nullptr; 519 while (true) { 520 if (Token.is(MIToken::MachineBasicBlockLabel) || Token.is(MIToken::Eof)) 521 return false; 522 else if (consumeIfPresent(MIToken::Newline)) 523 continue; 524 if (consumeIfPresent(MIToken::rbrace)) { 525 // The first parsing pass should verify that all closing '}' have an 526 // opening '{'. 527 assert(IsInBundle); 528 IsInBundle = false; 529 continue; 530 } 531 MachineInstr *MI = nullptr; 532 if (parse(MI)) 533 return true; 534 MBB.insert(MBB.end(), MI); 535 if (IsInBundle) { 536 PrevMI->setFlag(MachineInstr::BundledSucc); 537 MI->setFlag(MachineInstr::BundledPred); 538 } 539 PrevMI = MI; 540 if (Token.is(MIToken::lbrace)) { 541 if (IsInBundle) 542 return error("nested instruction bundles are not allowed"); 543 lex(); 544 // This instruction is the start of the bundle. 545 MI->setFlag(MachineInstr::BundledSucc); 546 IsInBundle = true; 547 if (!Token.is(MIToken::Newline)) 548 // The next instruction can be on the same line. 549 continue; 550 } 551 assert(Token.isNewlineOrEOF() && "MI is not fully parsed"); 552 lex(); 553 } 554 return false; 555 } 556 557 bool MIParser::parseBasicBlocks() { 558 lex(); 559 // Skip until the first machine basic block. 560 while (Token.is(MIToken::Newline)) 561 lex(); 562 if (Token.isErrorOrEOF()) 563 return Token.isError(); 564 // The first parsing pass should have verified that this token is a MBB label 565 // in the 'parseBasicBlockDefinitions' method. 566 assert(Token.is(MIToken::MachineBasicBlockLabel)); 567 do { 568 MachineBasicBlock *MBB = nullptr; 569 if (parseMBBReference(MBB)) 570 return true; 571 if (parseBasicBlock(*MBB)) 572 return true; 573 // The method 'parseBasicBlock' should parse the whole block until the next 574 // block or the end of file. 575 assert(Token.is(MIToken::MachineBasicBlockLabel) || Token.is(MIToken::Eof)); 576 } while (Token.isNot(MIToken::Eof)); 577 return false; 578 } 579 580 bool MIParser::parse(MachineInstr *&MI) { 581 // Parse any register operands before '=' 582 MachineOperand MO = MachineOperand::CreateImm(0); 583 SmallVector<ParsedMachineOperand, 8> Operands; 584 while (Token.isRegister() || Token.isRegisterFlag()) { 585 auto Loc = Token.location(); 586 Optional<unsigned> TiedDefIdx; 587 if (parseRegisterOperand(MO, TiedDefIdx, /*IsDef=*/true)) 588 return true; 589 Operands.push_back( 590 ParsedMachineOperand(MO, Loc, Token.location(), TiedDefIdx)); 591 if (Token.isNot(MIToken::comma)) 592 break; 593 lex(); 594 } 595 if (!Operands.empty() && expectAndConsume(MIToken::equal)) 596 return true; 597 598 unsigned OpCode, Flags = 0; 599 if (Token.isError() || parseInstruction(OpCode, Flags)) 600 return true; 601 602 // Parse the remaining machine operands. 603 while (!Token.isNewlineOrEOF() && Token.isNot(MIToken::kw_debug_location) && 604 Token.isNot(MIToken::coloncolon) && Token.isNot(MIToken::lbrace)) { 605 auto Loc = Token.location(); 606 Optional<unsigned> TiedDefIdx; 607 if (parseMachineOperandAndTargetFlags(MO, TiedDefIdx)) 608 return true; 609 Operands.push_back( 610 ParsedMachineOperand(MO, Loc, Token.location(), TiedDefIdx)); 611 if (Token.isNewlineOrEOF() || Token.is(MIToken::coloncolon) || 612 Token.is(MIToken::lbrace)) 613 break; 614 if (Token.isNot(MIToken::comma)) 615 return error("expected ',' before the next machine operand"); 616 lex(); 617 } 618 619 DebugLoc DebugLocation; 620 if (Token.is(MIToken::kw_debug_location)) { 621 lex(); 622 if (Token.isNot(MIToken::exclaim)) 623 return error("expected a metadata node after 'debug-location'"); 624 MDNode *Node = nullptr; 625 if (parseMDNode(Node)) 626 return true; 627 DebugLocation = DebugLoc(Node); 628 } 629 630 // Parse the machine memory operands. 631 SmallVector<MachineMemOperand *, 2> MemOperands; 632 if (Token.is(MIToken::coloncolon)) { 633 lex(); 634 while (!Token.isNewlineOrEOF()) { 635 MachineMemOperand *MemOp = nullptr; 636 if (parseMachineMemoryOperand(MemOp)) 637 return true; 638 MemOperands.push_back(MemOp); 639 if (Token.isNewlineOrEOF()) 640 break; 641 if (Token.isNot(MIToken::comma)) 642 return error("expected ',' before the next machine memory operand"); 643 lex(); 644 } 645 } 646 647 const auto &MCID = MF.getSubtarget().getInstrInfo()->get(OpCode); 648 if (!MCID.isVariadic()) { 649 // FIXME: Move the implicit operand verification to the machine verifier. 650 if (verifyImplicitOperands(Operands, MCID)) 651 return true; 652 } 653 654 // TODO: Check for extraneous machine operands. 655 MI = MF.CreateMachineInstr(MCID, DebugLocation, /*NoImplicit=*/true); 656 MI->setFlags(Flags); 657 for (const auto &Operand : Operands) 658 MI->addOperand(MF, Operand.Operand); 659 if (assignRegisterTies(*MI, Operands)) 660 return true; 661 if (MemOperands.empty()) 662 return false; 663 MachineInstr::mmo_iterator MemRefs = 664 MF.allocateMemRefsArray(MemOperands.size()); 665 std::copy(MemOperands.begin(), MemOperands.end(), MemRefs); 666 MI->setMemRefs(MemRefs, MemRefs + MemOperands.size()); 667 return false; 668 } 669 670 bool MIParser::parseStandaloneMBB(MachineBasicBlock *&MBB) { 671 lex(); 672 if (Token.isNot(MIToken::MachineBasicBlock)) 673 return error("expected a machine basic block reference"); 674 if (parseMBBReference(MBB)) 675 return true; 676 lex(); 677 if (Token.isNot(MIToken::Eof)) 678 return error( 679 "expected end of string after the machine basic block reference"); 680 return false; 681 } 682 683 bool MIParser::parseStandaloneNamedRegister(unsigned &Reg) { 684 lex(); 685 if (Token.isNot(MIToken::NamedRegister)) 686 return error("expected a named register"); 687 if (parseRegister(Reg)) 688 return true; 689 lex(); 690 if (Token.isNot(MIToken::Eof)) 691 return error("expected end of string after the register reference"); 692 return false; 693 } 694 695 bool MIParser::parseStandaloneVirtualRegister(unsigned &Reg) { 696 lex(); 697 if (Token.isNot(MIToken::VirtualRegister)) 698 return error("expected a virtual register"); 699 if (parseRegister(Reg)) 700 return true; 701 lex(); 702 if (Token.isNot(MIToken::Eof)) 703 return error("expected end of string after the register reference"); 704 return false; 705 } 706 707 bool MIParser::parseStandaloneStackObject(int &FI) { 708 lex(); 709 if (Token.isNot(MIToken::StackObject)) 710 return error("expected a stack object"); 711 if (parseStackFrameIndex(FI)) 712 return true; 713 if (Token.isNot(MIToken::Eof)) 714 return error("expected end of string after the stack object reference"); 715 return false; 716 } 717 718 bool MIParser::parseStandaloneMDNode(MDNode *&Node) { 719 lex(); 720 if (Token.isNot(MIToken::exclaim)) 721 return error("expected a metadata node"); 722 if (parseMDNode(Node)) 723 return true; 724 if (Token.isNot(MIToken::Eof)) 725 return error("expected end of string after the metadata node"); 726 return false; 727 } 728 729 static const char *printImplicitRegisterFlag(const MachineOperand &MO) { 730 assert(MO.isImplicit()); 731 return MO.isDef() ? "implicit-def" : "implicit"; 732 } 733 734 static std::string getRegisterName(const TargetRegisterInfo *TRI, 735 unsigned Reg) { 736 assert(TargetRegisterInfo::isPhysicalRegister(Reg) && "expected phys reg"); 737 return StringRef(TRI->getName(Reg)).lower(); 738 } 739 740 /// Return true if the parsed machine operands contain a given machine operand. 741 static bool isImplicitOperandIn(const MachineOperand &ImplicitOperand, 742 ArrayRef<ParsedMachineOperand> Operands) { 743 for (const auto &I : Operands) { 744 if (ImplicitOperand.isIdenticalTo(I.Operand)) 745 return true; 746 } 747 return false; 748 } 749 750 bool MIParser::verifyImplicitOperands(ArrayRef<ParsedMachineOperand> Operands, 751 const MCInstrDesc &MCID) { 752 if (MCID.isCall()) 753 // We can't verify call instructions as they can contain arbitrary implicit 754 // register and register mask operands. 755 return false; 756 757 // Gather all the expected implicit operands. 758 SmallVector<MachineOperand, 4> ImplicitOperands; 759 if (MCID.ImplicitDefs) 760 for (const MCPhysReg *ImpDefs = MCID.getImplicitDefs(); *ImpDefs; ++ImpDefs) 761 ImplicitOperands.push_back( 762 MachineOperand::CreateReg(*ImpDefs, true, true)); 763 if (MCID.ImplicitUses) 764 for (const MCPhysReg *ImpUses = MCID.getImplicitUses(); *ImpUses; ++ImpUses) 765 ImplicitOperands.push_back( 766 MachineOperand::CreateReg(*ImpUses, false, true)); 767 768 const auto *TRI = MF.getSubtarget().getRegisterInfo(); 769 assert(TRI && "Expected target register info"); 770 for (const auto &I : ImplicitOperands) { 771 if (isImplicitOperandIn(I, Operands)) 772 continue; 773 return error(Operands.empty() ? Token.location() : Operands.back().End, 774 Twine("missing implicit register operand '") + 775 printImplicitRegisterFlag(I) + " %" + 776 getRegisterName(TRI, I.getReg()) + "'"); 777 } 778 return false; 779 } 780 781 bool MIParser::parseInstruction(unsigned &OpCode, unsigned &Flags) { 782 if (Token.is(MIToken::kw_frame_setup)) { 783 Flags |= MachineInstr::FrameSetup; 784 lex(); 785 } 786 if (Token.isNot(MIToken::Identifier)) 787 return error("expected a machine instruction"); 788 StringRef InstrName = Token.stringValue(); 789 if (parseInstrName(InstrName, OpCode)) 790 return error(Twine("unknown machine instruction name '") + InstrName + "'"); 791 lex(); 792 return false; 793 } 794 795 bool MIParser::parseRegister(unsigned &Reg) { 796 switch (Token.kind()) { 797 case MIToken::underscore: 798 Reg = 0; 799 break; 800 case MIToken::NamedRegister: { 801 StringRef Name = Token.stringValue(); 802 if (getRegisterByName(Name, Reg)) 803 return error(Twine("unknown register name '") + Name + "'"); 804 break; 805 } 806 case MIToken::VirtualRegister: { 807 unsigned ID; 808 if (getUnsigned(ID)) 809 return true; 810 const auto RegInfo = PFS.VirtualRegisterSlots.find(ID); 811 if (RegInfo == PFS.VirtualRegisterSlots.end()) 812 return error(Twine("use of undefined virtual register '%") + Twine(ID) + 813 "'"); 814 Reg = RegInfo->second; 815 break; 816 } 817 // TODO: Parse other register kinds. 818 default: 819 llvm_unreachable("The current token should be a register"); 820 } 821 return false; 822 } 823 824 bool MIParser::parseRegisterFlag(unsigned &Flags) { 825 const unsigned OldFlags = Flags; 826 switch (Token.kind()) { 827 case MIToken::kw_implicit: 828 Flags |= RegState::Implicit; 829 break; 830 case MIToken::kw_implicit_define: 831 Flags |= RegState::ImplicitDefine; 832 break; 833 case MIToken::kw_def: 834 Flags |= RegState::Define; 835 break; 836 case MIToken::kw_dead: 837 Flags |= RegState::Dead; 838 break; 839 case MIToken::kw_killed: 840 Flags |= RegState::Kill; 841 break; 842 case MIToken::kw_undef: 843 Flags |= RegState::Undef; 844 break; 845 case MIToken::kw_internal: 846 Flags |= RegState::InternalRead; 847 break; 848 case MIToken::kw_early_clobber: 849 Flags |= RegState::EarlyClobber; 850 break; 851 case MIToken::kw_debug_use: 852 Flags |= RegState::Debug; 853 break; 854 default: 855 llvm_unreachable("The current token should be a register flag"); 856 } 857 if (OldFlags == Flags) 858 // We know that the same flag is specified more than once when the flags 859 // weren't modified. 860 return error("duplicate '" + Token.stringValue() + "' register flag"); 861 lex(); 862 return false; 863 } 864 865 bool MIParser::parseSubRegisterIndex(unsigned &SubReg) { 866 assert(Token.is(MIToken::dot)); 867 lex(); 868 if (Token.isNot(MIToken::Identifier)) 869 return error("expected a subregister index after '.'"); 870 auto Name = Token.stringValue(); 871 SubReg = getSubRegIndex(Name); 872 if (!SubReg) 873 return error(Twine("use of unknown subregister index '") + Name + "'"); 874 lex(); 875 return false; 876 } 877 878 bool MIParser::parseRegisterTiedDefIndex(unsigned &TiedDefIdx) { 879 if (!consumeIfPresent(MIToken::kw_tied_def)) 880 return error("expected 'tied-def' after '('"); 881 if (Token.isNot(MIToken::IntegerLiteral)) 882 return error("expected an integer literal after 'tied-def'"); 883 if (getUnsigned(TiedDefIdx)) 884 return true; 885 lex(); 886 if (expectAndConsume(MIToken::rparen)) 887 return true; 888 return false; 889 } 890 891 bool MIParser::parseSize(unsigned &Size) { 892 if (Token.isNot(MIToken::IntegerLiteral)) 893 return error("expected an integer literal for the size"); 894 if (getUnsigned(Size)) 895 return true; 896 lex(); 897 if (expectAndConsume(MIToken::rparen)) 898 return true; 899 return false; 900 } 901 902 bool MIParser::assignRegisterTies(MachineInstr &MI, 903 ArrayRef<ParsedMachineOperand> Operands) { 904 SmallVector<std::pair<unsigned, unsigned>, 4> TiedRegisterPairs; 905 for (unsigned I = 0, E = Operands.size(); I != E; ++I) { 906 if (!Operands[I].TiedDefIdx) 907 continue; 908 // The parser ensures that this operand is a register use, so we just have 909 // to check the tied-def operand. 910 unsigned DefIdx = Operands[I].TiedDefIdx.getValue(); 911 if (DefIdx >= E) 912 return error(Operands[I].Begin, 913 Twine("use of invalid tied-def operand index '" + 914 Twine(DefIdx) + "'; instruction has only ") + 915 Twine(E) + " operands"); 916 const auto &DefOperand = Operands[DefIdx].Operand; 917 if (!DefOperand.isReg() || !DefOperand.isDef()) 918 // FIXME: add note with the def operand. 919 return error(Operands[I].Begin, 920 Twine("use of invalid tied-def operand index '") + 921 Twine(DefIdx) + "'; the operand #" + Twine(DefIdx) + 922 " isn't a defined register"); 923 // Check that the tied-def operand wasn't tied elsewhere. 924 for (const auto &TiedPair : TiedRegisterPairs) { 925 if (TiedPair.first == DefIdx) 926 return error(Operands[I].Begin, 927 Twine("the tied-def operand #") + Twine(DefIdx) + 928 " is already tied with another register operand"); 929 } 930 TiedRegisterPairs.push_back(std::make_pair(DefIdx, I)); 931 } 932 // FIXME: Verify that for non INLINEASM instructions, the def and use tied 933 // indices must be less than tied max. 934 for (const auto &TiedPair : TiedRegisterPairs) 935 MI.tieOperands(TiedPair.first, TiedPair.second); 936 return false; 937 } 938 939 bool MIParser::parseRegisterOperand(MachineOperand &Dest, 940 Optional<unsigned> &TiedDefIdx, 941 bool IsDef) { 942 unsigned Reg; 943 unsigned Flags = IsDef ? RegState::Define : 0; 944 while (Token.isRegisterFlag()) { 945 if (parseRegisterFlag(Flags)) 946 return true; 947 } 948 if (!Token.isRegister()) 949 return error("expected a register after register flags"); 950 if (parseRegister(Reg)) 951 return true; 952 lex(); 953 unsigned SubReg = 0; 954 if (Token.is(MIToken::dot)) { 955 if (parseSubRegisterIndex(SubReg)) 956 return true; 957 if (!TargetRegisterInfo::isVirtualRegister(Reg)) 958 return error("subregister index expects a virtual register"); 959 } 960 if ((Flags & RegState::Define) == 0) { 961 if (consumeIfPresent(MIToken::lparen)) { 962 unsigned Idx; 963 if (parseRegisterTiedDefIndex(Idx)) 964 return true; 965 TiedDefIdx = Idx; 966 } 967 } else if (consumeIfPresent(MIToken::lparen)) { 968 MachineRegisterInfo &MRI = MF.getRegInfo(); 969 970 // Virtual registers may have a size with GlobalISel. 971 if (!TargetRegisterInfo::isVirtualRegister(Reg)) 972 return error("unexpected size on physical register"); 973 if (MRI.getRegClassOrRegBank(Reg).is<const TargetRegisterClass *>()) 974 return error("unexpected size on non-generic virtual register"); 975 976 LLT Ty; 977 if (parseLowLevelType(Token.location(), Ty)) 978 return true; 979 980 if (expectAndConsume(MIToken::rparen)) 981 return true; 982 983 MRI.setType(Reg, Ty); 984 } else if (PFS.GenericVRegs.count(Reg)) { 985 // Generic virtual registers must have a size. 986 // If we end up here this means the size hasn't been specified and 987 // this is bad! 988 return error("generic virtual registers must have a size"); 989 } 990 Dest = MachineOperand::CreateReg( 991 Reg, Flags & RegState::Define, Flags & RegState::Implicit, 992 Flags & RegState::Kill, Flags & RegState::Dead, Flags & RegState::Undef, 993 Flags & RegState::EarlyClobber, SubReg, Flags & RegState::Debug, 994 Flags & RegState::InternalRead); 995 return false; 996 } 997 998 bool MIParser::parseImmediateOperand(MachineOperand &Dest) { 999 assert(Token.is(MIToken::IntegerLiteral)); 1000 const APSInt &Int = Token.integerValue(); 1001 if (Int.getMinSignedBits() > 64) 1002 return error("integer literal is too large to be an immediate operand"); 1003 Dest = MachineOperand::CreateImm(Int.getExtValue()); 1004 lex(); 1005 return false; 1006 } 1007 1008 bool MIParser::parseIRConstant(StringRef::iterator Loc, StringRef StringValue, 1009 const Constant *&C) { 1010 auto Source = StringValue.str(); // The source has to be null terminated. 1011 SMDiagnostic Err; 1012 C = parseConstantValue(Source.c_str(), Err, *MF.getFunction()->getParent(), 1013 &PFS.IRSlots); 1014 if (!C) 1015 return error(Loc + Err.getColumnNo(), Err.getMessage()); 1016 return false; 1017 } 1018 1019 bool MIParser::parseIRConstant(StringRef::iterator Loc, const Constant *&C) { 1020 if (parseIRConstant(Loc, StringRef(Loc, Token.range().end() - Loc), C)) 1021 return true; 1022 lex(); 1023 return false; 1024 } 1025 1026 bool MIParser::parseLowLevelType(StringRef::iterator Loc, LLT &Ty) { 1027 if (Token.is(MIToken::Identifier) && Token.stringValue() == "unsized") { 1028 lex(); 1029 Ty = LLT::unsized(); 1030 return false; 1031 } else if (Token.is(MIToken::ScalarType)) { 1032 Ty = LLT::scalar(APSInt(Token.range().drop_front()).getZExtValue()); 1033 lex(); 1034 return false; 1035 } else if (Token.is(MIToken::PointerType)) { 1036 Ty = LLT::pointer(APSInt(Token.range().drop_front()).getZExtValue()); 1037 lex(); 1038 return false; 1039 } 1040 1041 // Now we're looking for a vector. 1042 if (Token.isNot(MIToken::less)) 1043 return error(Loc, 1044 "expected unsized, pN, sN or <N x sM> for GlobalISel type"); 1045 1046 lex(); 1047 1048 if (Token.isNot(MIToken::IntegerLiteral)) 1049 return error(Loc, "expected <N x sM> for vctor type"); 1050 uint64_t NumElements = Token.integerValue().getZExtValue(); 1051 lex(); 1052 1053 if (Token.isNot(MIToken::Identifier) || Token.stringValue() != "x") 1054 return error(Loc, "expected '<N x sM>' for vector type"); 1055 lex(); 1056 1057 if (Token.isNot(MIToken::ScalarType)) 1058 return error(Loc, "expected '<N x sM>' for vector type"); 1059 uint64_t ScalarSize = APSInt(Token.range().drop_front()).getZExtValue(); 1060 lex(); 1061 1062 if (Token.isNot(MIToken::greater)) 1063 return error(Loc, "expected '<N x sM>' for vector type"); 1064 lex(); 1065 1066 Ty = LLT::vector(NumElements, ScalarSize); 1067 return false; 1068 } 1069 1070 bool MIParser::parseTypedImmediateOperand(MachineOperand &Dest) { 1071 assert(Token.is(MIToken::IntegerType)); 1072 auto Loc = Token.location(); 1073 lex(); 1074 if (Token.isNot(MIToken::IntegerLiteral)) 1075 return error("expected an integer literal"); 1076 const Constant *C = nullptr; 1077 if (parseIRConstant(Loc, C)) 1078 return true; 1079 Dest = MachineOperand::CreateCImm(cast<ConstantInt>(C)); 1080 return false; 1081 } 1082 1083 bool MIParser::parseFPImmediateOperand(MachineOperand &Dest) { 1084 auto Loc = Token.location(); 1085 lex(); 1086 if (Token.isNot(MIToken::FloatingPointLiteral)) 1087 return error("expected a floating point literal"); 1088 const Constant *C = nullptr; 1089 if (parseIRConstant(Loc, C)) 1090 return true; 1091 Dest = MachineOperand::CreateFPImm(cast<ConstantFP>(C)); 1092 return false; 1093 } 1094 1095 bool MIParser::getUnsigned(unsigned &Result) { 1096 assert(Token.hasIntegerValue() && "Expected a token with an integer value"); 1097 const uint64_t Limit = uint64_t(std::numeric_limits<unsigned>::max()) + 1; 1098 uint64_t Val64 = Token.integerValue().getLimitedValue(Limit); 1099 if (Val64 == Limit) 1100 return error("expected 32-bit integer (too large)"); 1101 Result = Val64; 1102 return false; 1103 } 1104 1105 bool MIParser::parseMBBReference(MachineBasicBlock *&MBB) { 1106 assert(Token.is(MIToken::MachineBasicBlock) || 1107 Token.is(MIToken::MachineBasicBlockLabel)); 1108 unsigned Number; 1109 if (getUnsigned(Number)) 1110 return true; 1111 auto MBBInfo = PFS.MBBSlots.find(Number); 1112 if (MBBInfo == PFS.MBBSlots.end()) 1113 return error(Twine("use of undefined machine basic block #") + 1114 Twine(Number)); 1115 MBB = MBBInfo->second; 1116 if (!Token.stringValue().empty() && Token.stringValue() != MBB->getName()) 1117 return error(Twine("the name of machine basic block #") + Twine(Number) + 1118 " isn't '" + Token.stringValue() + "'"); 1119 return false; 1120 } 1121 1122 bool MIParser::parseMBBOperand(MachineOperand &Dest) { 1123 MachineBasicBlock *MBB; 1124 if (parseMBBReference(MBB)) 1125 return true; 1126 Dest = MachineOperand::CreateMBB(MBB); 1127 lex(); 1128 return false; 1129 } 1130 1131 bool MIParser::parseStackFrameIndex(int &FI) { 1132 assert(Token.is(MIToken::StackObject)); 1133 unsigned ID; 1134 if (getUnsigned(ID)) 1135 return true; 1136 auto ObjectInfo = PFS.StackObjectSlots.find(ID); 1137 if (ObjectInfo == PFS.StackObjectSlots.end()) 1138 return error(Twine("use of undefined stack object '%stack.") + Twine(ID) + 1139 "'"); 1140 StringRef Name; 1141 if (const auto *Alloca = 1142 MF.getFrameInfo().getObjectAllocation(ObjectInfo->second)) 1143 Name = Alloca->getName(); 1144 if (!Token.stringValue().empty() && Token.stringValue() != Name) 1145 return error(Twine("the name of the stack object '%stack.") + Twine(ID) + 1146 "' isn't '" + Token.stringValue() + "'"); 1147 lex(); 1148 FI = ObjectInfo->second; 1149 return false; 1150 } 1151 1152 bool MIParser::parseStackObjectOperand(MachineOperand &Dest) { 1153 int FI; 1154 if (parseStackFrameIndex(FI)) 1155 return true; 1156 Dest = MachineOperand::CreateFI(FI); 1157 return false; 1158 } 1159 1160 bool MIParser::parseFixedStackFrameIndex(int &FI) { 1161 assert(Token.is(MIToken::FixedStackObject)); 1162 unsigned ID; 1163 if (getUnsigned(ID)) 1164 return true; 1165 auto ObjectInfo = PFS.FixedStackObjectSlots.find(ID); 1166 if (ObjectInfo == PFS.FixedStackObjectSlots.end()) 1167 return error(Twine("use of undefined fixed stack object '%fixed-stack.") + 1168 Twine(ID) + "'"); 1169 lex(); 1170 FI = ObjectInfo->second; 1171 return false; 1172 } 1173 1174 bool MIParser::parseFixedStackObjectOperand(MachineOperand &Dest) { 1175 int FI; 1176 if (parseFixedStackFrameIndex(FI)) 1177 return true; 1178 Dest = MachineOperand::CreateFI(FI); 1179 return false; 1180 } 1181 1182 bool MIParser::parseGlobalValue(GlobalValue *&GV) { 1183 switch (Token.kind()) { 1184 case MIToken::NamedGlobalValue: { 1185 const Module *M = MF.getFunction()->getParent(); 1186 GV = M->getNamedValue(Token.stringValue()); 1187 if (!GV) 1188 return error(Twine("use of undefined global value '") + Token.range() + 1189 "'"); 1190 break; 1191 } 1192 case MIToken::GlobalValue: { 1193 unsigned GVIdx; 1194 if (getUnsigned(GVIdx)) 1195 return true; 1196 if (GVIdx >= PFS.IRSlots.GlobalValues.size()) 1197 return error(Twine("use of undefined global value '@") + Twine(GVIdx) + 1198 "'"); 1199 GV = PFS.IRSlots.GlobalValues[GVIdx]; 1200 break; 1201 } 1202 default: 1203 llvm_unreachable("The current token should be a global value"); 1204 } 1205 return false; 1206 } 1207 1208 bool MIParser::parseGlobalAddressOperand(MachineOperand &Dest) { 1209 GlobalValue *GV = nullptr; 1210 if (parseGlobalValue(GV)) 1211 return true; 1212 lex(); 1213 Dest = MachineOperand::CreateGA(GV, /*Offset=*/0); 1214 if (parseOperandsOffset(Dest)) 1215 return true; 1216 return false; 1217 } 1218 1219 bool MIParser::parseConstantPoolIndexOperand(MachineOperand &Dest) { 1220 assert(Token.is(MIToken::ConstantPoolItem)); 1221 unsigned ID; 1222 if (getUnsigned(ID)) 1223 return true; 1224 auto ConstantInfo = PFS.ConstantPoolSlots.find(ID); 1225 if (ConstantInfo == PFS.ConstantPoolSlots.end()) 1226 return error("use of undefined constant '%const." + Twine(ID) + "'"); 1227 lex(); 1228 Dest = MachineOperand::CreateCPI(ID, /*Offset=*/0); 1229 if (parseOperandsOffset(Dest)) 1230 return true; 1231 return false; 1232 } 1233 1234 bool MIParser::parseJumpTableIndexOperand(MachineOperand &Dest) { 1235 assert(Token.is(MIToken::JumpTableIndex)); 1236 unsigned ID; 1237 if (getUnsigned(ID)) 1238 return true; 1239 auto JumpTableEntryInfo = PFS.JumpTableSlots.find(ID); 1240 if (JumpTableEntryInfo == PFS.JumpTableSlots.end()) 1241 return error("use of undefined jump table '%jump-table." + Twine(ID) + "'"); 1242 lex(); 1243 Dest = MachineOperand::CreateJTI(JumpTableEntryInfo->second); 1244 return false; 1245 } 1246 1247 bool MIParser::parseExternalSymbolOperand(MachineOperand &Dest) { 1248 assert(Token.is(MIToken::ExternalSymbol)); 1249 const char *Symbol = MF.createExternalSymbolName(Token.stringValue()); 1250 lex(); 1251 Dest = MachineOperand::CreateES(Symbol); 1252 if (parseOperandsOffset(Dest)) 1253 return true; 1254 return false; 1255 } 1256 1257 bool MIParser::parseSubRegisterIndexOperand(MachineOperand &Dest) { 1258 assert(Token.is(MIToken::SubRegisterIndex)); 1259 StringRef Name = Token.stringValue(); 1260 unsigned SubRegIndex = getSubRegIndex(Token.stringValue()); 1261 if (SubRegIndex == 0) 1262 return error(Twine("unknown subregister index '") + Name + "'"); 1263 lex(); 1264 Dest = MachineOperand::CreateImm(SubRegIndex); 1265 return false; 1266 } 1267 1268 bool MIParser::parseMDNode(MDNode *&Node) { 1269 assert(Token.is(MIToken::exclaim)); 1270 auto Loc = Token.location(); 1271 lex(); 1272 if (Token.isNot(MIToken::IntegerLiteral) || Token.integerValue().isSigned()) 1273 return error("expected metadata id after '!'"); 1274 unsigned ID; 1275 if (getUnsigned(ID)) 1276 return true; 1277 auto NodeInfo = PFS.IRSlots.MetadataNodes.find(ID); 1278 if (NodeInfo == PFS.IRSlots.MetadataNodes.end()) 1279 return error(Loc, "use of undefined metadata '!" + Twine(ID) + "'"); 1280 lex(); 1281 Node = NodeInfo->second.get(); 1282 return false; 1283 } 1284 1285 bool MIParser::parseMetadataOperand(MachineOperand &Dest) { 1286 MDNode *Node = nullptr; 1287 if (parseMDNode(Node)) 1288 return true; 1289 Dest = MachineOperand::CreateMetadata(Node); 1290 return false; 1291 } 1292 1293 bool MIParser::parseCFIOffset(int &Offset) { 1294 if (Token.isNot(MIToken::IntegerLiteral)) 1295 return error("expected a cfi offset"); 1296 if (Token.integerValue().getMinSignedBits() > 32) 1297 return error("expected a 32 bit integer (the cfi offset is too large)"); 1298 Offset = (int)Token.integerValue().getExtValue(); 1299 lex(); 1300 return false; 1301 } 1302 1303 bool MIParser::parseCFIRegister(unsigned &Reg) { 1304 if (Token.isNot(MIToken::NamedRegister)) 1305 return error("expected a cfi register"); 1306 unsigned LLVMReg; 1307 if (parseRegister(LLVMReg)) 1308 return true; 1309 const auto *TRI = MF.getSubtarget().getRegisterInfo(); 1310 assert(TRI && "Expected target register info"); 1311 int DwarfReg = TRI->getDwarfRegNum(LLVMReg, true); 1312 if (DwarfReg < 0) 1313 return error("invalid DWARF register"); 1314 Reg = (unsigned)DwarfReg; 1315 lex(); 1316 return false; 1317 } 1318 1319 bool MIParser::parseCFIOperand(MachineOperand &Dest) { 1320 auto Kind = Token.kind(); 1321 lex(); 1322 auto &MMI = MF.getMMI(); 1323 int Offset; 1324 unsigned Reg; 1325 unsigned CFIIndex; 1326 switch (Kind) { 1327 case MIToken::kw_cfi_same_value: 1328 if (parseCFIRegister(Reg)) 1329 return true; 1330 CFIIndex = 1331 MMI.addFrameInst(MCCFIInstruction::createSameValue(nullptr, Reg)); 1332 break; 1333 case MIToken::kw_cfi_offset: 1334 if (parseCFIRegister(Reg) || expectAndConsume(MIToken::comma) || 1335 parseCFIOffset(Offset)) 1336 return true; 1337 CFIIndex = 1338 MMI.addFrameInst(MCCFIInstruction::createOffset(nullptr, Reg, Offset)); 1339 break; 1340 case MIToken::kw_cfi_def_cfa_register: 1341 if (parseCFIRegister(Reg)) 1342 return true; 1343 CFIIndex = 1344 MMI.addFrameInst(MCCFIInstruction::createDefCfaRegister(nullptr, Reg)); 1345 break; 1346 case MIToken::kw_cfi_def_cfa_offset: 1347 if (parseCFIOffset(Offset)) 1348 return true; 1349 // NB: MCCFIInstruction::createDefCfaOffset negates the offset. 1350 CFIIndex = MMI.addFrameInst( 1351 MCCFIInstruction::createDefCfaOffset(nullptr, -Offset)); 1352 break; 1353 case MIToken::kw_cfi_def_cfa: 1354 if (parseCFIRegister(Reg) || expectAndConsume(MIToken::comma) || 1355 parseCFIOffset(Offset)) 1356 return true; 1357 // NB: MCCFIInstruction::createDefCfa negates the offset. 1358 CFIIndex = 1359 MMI.addFrameInst(MCCFIInstruction::createDefCfa(nullptr, Reg, -Offset)); 1360 break; 1361 default: 1362 // TODO: Parse the other CFI operands. 1363 llvm_unreachable("The current token should be a cfi operand"); 1364 } 1365 Dest = MachineOperand::CreateCFIIndex(CFIIndex); 1366 return false; 1367 } 1368 1369 bool MIParser::parseIRBlock(BasicBlock *&BB, const Function &F) { 1370 switch (Token.kind()) { 1371 case MIToken::NamedIRBlock: { 1372 BB = dyn_cast_or_null<BasicBlock>( 1373 F.getValueSymbolTable().lookup(Token.stringValue())); 1374 if (!BB) 1375 return error(Twine("use of undefined IR block '") + Token.range() + "'"); 1376 break; 1377 } 1378 case MIToken::IRBlock: { 1379 unsigned SlotNumber = 0; 1380 if (getUnsigned(SlotNumber)) 1381 return true; 1382 BB = const_cast<BasicBlock *>(getIRBlock(SlotNumber, F)); 1383 if (!BB) 1384 return error(Twine("use of undefined IR block '%ir-block.") + 1385 Twine(SlotNumber) + "'"); 1386 break; 1387 } 1388 default: 1389 llvm_unreachable("The current token should be an IR block reference"); 1390 } 1391 return false; 1392 } 1393 1394 bool MIParser::parseBlockAddressOperand(MachineOperand &Dest) { 1395 assert(Token.is(MIToken::kw_blockaddress)); 1396 lex(); 1397 if (expectAndConsume(MIToken::lparen)) 1398 return true; 1399 if (Token.isNot(MIToken::GlobalValue) && 1400 Token.isNot(MIToken::NamedGlobalValue)) 1401 return error("expected a global value"); 1402 GlobalValue *GV = nullptr; 1403 if (parseGlobalValue(GV)) 1404 return true; 1405 auto *F = dyn_cast<Function>(GV); 1406 if (!F) 1407 return error("expected an IR function reference"); 1408 lex(); 1409 if (expectAndConsume(MIToken::comma)) 1410 return true; 1411 BasicBlock *BB = nullptr; 1412 if (Token.isNot(MIToken::IRBlock) && Token.isNot(MIToken::NamedIRBlock)) 1413 return error("expected an IR block reference"); 1414 if (parseIRBlock(BB, *F)) 1415 return true; 1416 lex(); 1417 if (expectAndConsume(MIToken::rparen)) 1418 return true; 1419 Dest = MachineOperand::CreateBA(BlockAddress::get(F, BB), /*Offset=*/0); 1420 if (parseOperandsOffset(Dest)) 1421 return true; 1422 return false; 1423 } 1424 1425 bool MIParser::parseIntrinsicOperand(MachineOperand &Dest) { 1426 assert(Token.is(MIToken::kw_intrinsic)); 1427 lex(); 1428 if (expectAndConsume(MIToken::lparen)) 1429 return error("expected syntax intrinsic(@llvm.whatever)"); 1430 1431 if (Token.isNot(MIToken::NamedGlobalValue)) 1432 return error("expected syntax intrinsic(@llvm.whatever)"); 1433 1434 std::string Name = Token.stringValue(); 1435 lex(); 1436 1437 if (expectAndConsume(MIToken::rparen)) 1438 return error("expected ')' to terminate intrinsic name"); 1439 1440 // Find out what intrinsic we're dealing with, first try the global namespace 1441 // and then the target's private intrinsics if that fails. 1442 const TargetIntrinsicInfo *TII = MF.getTarget().getIntrinsicInfo(); 1443 Intrinsic::ID ID = Function::lookupIntrinsicID(Name); 1444 if (ID == Intrinsic::not_intrinsic && TII) 1445 ID = static_cast<Intrinsic::ID>(TII->lookupName(Name)); 1446 1447 if (ID == Intrinsic::not_intrinsic) 1448 return error("unknown intrinsic name"); 1449 Dest = MachineOperand::CreateIntrinsicID(ID); 1450 1451 return false; 1452 } 1453 1454 bool MIParser::parsePredicateOperand(MachineOperand &Dest) { 1455 assert(Token.is(MIToken::kw_intpred) || Token.is(MIToken::kw_floatpred)); 1456 bool IsFloat = Token.is(MIToken::kw_floatpred); 1457 lex(); 1458 1459 if (expectAndConsume(MIToken::lparen)) 1460 return error("expected syntax intpred(whatever) or floatpred(whatever"); 1461 1462 if (Token.isNot(MIToken::Identifier)) 1463 return error("whatever"); 1464 1465 CmpInst::Predicate Pred; 1466 if (IsFloat) { 1467 Pred = StringSwitch<CmpInst::Predicate>(Token.stringValue()) 1468 .Case("false", CmpInst::FCMP_FALSE) 1469 .Case("oeq", CmpInst::FCMP_OEQ) 1470 .Case("ogt", CmpInst::FCMP_OGT) 1471 .Case("oge", CmpInst::FCMP_OGE) 1472 .Case("olt", CmpInst::FCMP_OLT) 1473 .Case("ole", CmpInst::FCMP_OLE) 1474 .Case("one", CmpInst::FCMP_ONE) 1475 .Case("ord", CmpInst::FCMP_ORD) 1476 .Case("uno", CmpInst::FCMP_UNO) 1477 .Case("ueq", CmpInst::FCMP_UEQ) 1478 .Case("ugt", CmpInst::FCMP_UGT) 1479 .Case("uge", CmpInst::FCMP_UGE) 1480 .Case("ult", CmpInst::FCMP_ULT) 1481 .Case("ule", CmpInst::FCMP_ULE) 1482 .Case("une", CmpInst::FCMP_UNE) 1483 .Case("true", CmpInst::FCMP_TRUE) 1484 .Default(CmpInst::BAD_FCMP_PREDICATE); 1485 if (!CmpInst::isFPPredicate(Pred)) 1486 return error("invalid floating-point predicate"); 1487 } else { 1488 Pred = StringSwitch<CmpInst::Predicate>(Token.stringValue()) 1489 .Case("eq", CmpInst::ICMP_EQ) 1490 .Case("ne", CmpInst::ICMP_NE) 1491 .Case("sgt", CmpInst::ICMP_SGT) 1492 .Case("sge", CmpInst::ICMP_SGE) 1493 .Case("slt", CmpInst::ICMP_SLT) 1494 .Case("sle", CmpInst::ICMP_SLE) 1495 .Case("ugt", CmpInst::ICMP_UGT) 1496 .Case("uge", CmpInst::ICMP_UGE) 1497 .Case("ult", CmpInst::ICMP_ULT) 1498 .Case("ule", CmpInst::ICMP_ULE) 1499 .Default(CmpInst::BAD_ICMP_PREDICATE); 1500 if (!CmpInst::isIntPredicate(Pred)) 1501 return error("invalid integer predicate"); 1502 } 1503 1504 lex(); 1505 Dest = MachineOperand::CreatePredicate(Pred); 1506 if (expectAndConsume(MIToken::rparen)) 1507 return error("predicate should be terminated by ')'."); 1508 1509 return false; 1510 } 1511 1512 bool MIParser::parseTargetIndexOperand(MachineOperand &Dest) { 1513 assert(Token.is(MIToken::kw_target_index)); 1514 lex(); 1515 if (expectAndConsume(MIToken::lparen)) 1516 return true; 1517 if (Token.isNot(MIToken::Identifier)) 1518 return error("expected the name of the target index"); 1519 int Index = 0; 1520 if (getTargetIndex(Token.stringValue(), Index)) 1521 return error("use of undefined target index '" + Token.stringValue() + "'"); 1522 lex(); 1523 if (expectAndConsume(MIToken::rparen)) 1524 return true; 1525 Dest = MachineOperand::CreateTargetIndex(unsigned(Index), /*Offset=*/0); 1526 if (parseOperandsOffset(Dest)) 1527 return true; 1528 return false; 1529 } 1530 1531 bool MIParser::parseLiveoutRegisterMaskOperand(MachineOperand &Dest) { 1532 assert(Token.is(MIToken::kw_liveout)); 1533 const auto *TRI = MF.getSubtarget().getRegisterInfo(); 1534 assert(TRI && "Expected target register info"); 1535 uint32_t *Mask = MF.allocateRegisterMask(TRI->getNumRegs()); 1536 lex(); 1537 if (expectAndConsume(MIToken::lparen)) 1538 return true; 1539 while (true) { 1540 if (Token.isNot(MIToken::NamedRegister)) 1541 return error("expected a named register"); 1542 unsigned Reg = 0; 1543 if (parseRegister(Reg)) 1544 return true; 1545 lex(); 1546 Mask[Reg / 32] |= 1U << (Reg % 32); 1547 // TODO: Report an error if the same register is used more than once. 1548 if (Token.isNot(MIToken::comma)) 1549 break; 1550 lex(); 1551 } 1552 if (expectAndConsume(MIToken::rparen)) 1553 return true; 1554 Dest = MachineOperand::CreateRegLiveOut(Mask); 1555 return false; 1556 } 1557 1558 bool MIParser::parseMachineOperand(MachineOperand &Dest, 1559 Optional<unsigned> &TiedDefIdx) { 1560 switch (Token.kind()) { 1561 case MIToken::kw_implicit: 1562 case MIToken::kw_implicit_define: 1563 case MIToken::kw_def: 1564 case MIToken::kw_dead: 1565 case MIToken::kw_killed: 1566 case MIToken::kw_undef: 1567 case MIToken::kw_internal: 1568 case MIToken::kw_early_clobber: 1569 case MIToken::kw_debug_use: 1570 case MIToken::underscore: 1571 case MIToken::NamedRegister: 1572 case MIToken::VirtualRegister: 1573 return parseRegisterOperand(Dest, TiedDefIdx); 1574 case MIToken::IntegerLiteral: 1575 return parseImmediateOperand(Dest); 1576 case MIToken::IntegerType: 1577 return parseTypedImmediateOperand(Dest); 1578 case MIToken::kw_half: 1579 case MIToken::kw_float: 1580 case MIToken::kw_double: 1581 case MIToken::kw_x86_fp80: 1582 case MIToken::kw_fp128: 1583 case MIToken::kw_ppc_fp128: 1584 return parseFPImmediateOperand(Dest); 1585 case MIToken::MachineBasicBlock: 1586 return parseMBBOperand(Dest); 1587 case MIToken::StackObject: 1588 return parseStackObjectOperand(Dest); 1589 case MIToken::FixedStackObject: 1590 return parseFixedStackObjectOperand(Dest); 1591 case MIToken::GlobalValue: 1592 case MIToken::NamedGlobalValue: 1593 return parseGlobalAddressOperand(Dest); 1594 case MIToken::ConstantPoolItem: 1595 return parseConstantPoolIndexOperand(Dest); 1596 case MIToken::JumpTableIndex: 1597 return parseJumpTableIndexOperand(Dest); 1598 case MIToken::ExternalSymbol: 1599 return parseExternalSymbolOperand(Dest); 1600 case MIToken::SubRegisterIndex: 1601 return parseSubRegisterIndexOperand(Dest); 1602 case MIToken::exclaim: 1603 return parseMetadataOperand(Dest); 1604 case MIToken::kw_cfi_same_value: 1605 case MIToken::kw_cfi_offset: 1606 case MIToken::kw_cfi_def_cfa_register: 1607 case MIToken::kw_cfi_def_cfa_offset: 1608 case MIToken::kw_cfi_def_cfa: 1609 return parseCFIOperand(Dest); 1610 case MIToken::kw_blockaddress: 1611 return parseBlockAddressOperand(Dest); 1612 case MIToken::kw_intrinsic: 1613 return parseIntrinsicOperand(Dest); 1614 case MIToken::kw_target_index: 1615 return parseTargetIndexOperand(Dest); 1616 case MIToken::kw_liveout: 1617 return parseLiveoutRegisterMaskOperand(Dest); 1618 case MIToken::kw_floatpred: 1619 case MIToken::kw_intpred: 1620 return parsePredicateOperand(Dest); 1621 case MIToken::Error: 1622 return true; 1623 case MIToken::Identifier: 1624 if (const auto *RegMask = getRegMask(Token.stringValue())) { 1625 Dest = MachineOperand::CreateRegMask(RegMask); 1626 lex(); 1627 break; 1628 } 1629 LLVM_FALLTHROUGH; 1630 default: 1631 // FIXME: Parse the MCSymbol machine operand. 1632 return error("expected a machine operand"); 1633 } 1634 return false; 1635 } 1636 1637 bool MIParser::parseMachineOperandAndTargetFlags( 1638 MachineOperand &Dest, Optional<unsigned> &TiedDefIdx) { 1639 unsigned TF = 0; 1640 bool HasTargetFlags = false; 1641 if (Token.is(MIToken::kw_target_flags)) { 1642 HasTargetFlags = true; 1643 lex(); 1644 if (expectAndConsume(MIToken::lparen)) 1645 return true; 1646 if (Token.isNot(MIToken::Identifier)) 1647 return error("expected the name of the target flag"); 1648 if (getDirectTargetFlag(Token.stringValue(), TF)) { 1649 if (getBitmaskTargetFlag(Token.stringValue(), TF)) 1650 return error("use of undefined target flag '" + Token.stringValue() + 1651 "'"); 1652 } 1653 lex(); 1654 while (Token.is(MIToken::comma)) { 1655 lex(); 1656 if (Token.isNot(MIToken::Identifier)) 1657 return error("expected the name of the target flag"); 1658 unsigned BitFlag = 0; 1659 if (getBitmaskTargetFlag(Token.stringValue(), BitFlag)) 1660 return error("use of undefined target flag '" + Token.stringValue() + 1661 "'"); 1662 // TODO: Report an error when using a duplicate bit target flag. 1663 TF |= BitFlag; 1664 lex(); 1665 } 1666 if (expectAndConsume(MIToken::rparen)) 1667 return true; 1668 } 1669 auto Loc = Token.location(); 1670 if (parseMachineOperand(Dest, TiedDefIdx)) 1671 return true; 1672 if (!HasTargetFlags) 1673 return false; 1674 if (Dest.isReg()) 1675 return error(Loc, "register operands can't have target flags"); 1676 Dest.setTargetFlags(TF); 1677 return false; 1678 } 1679 1680 bool MIParser::parseOffset(int64_t &Offset) { 1681 if (Token.isNot(MIToken::plus) && Token.isNot(MIToken::minus)) 1682 return false; 1683 StringRef Sign = Token.range(); 1684 bool IsNegative = Token.is(MIToken::minus); 1685 lex(); 1686 if (Token.isNot(MIToken::IntegerLiteral)) 1687 return error("expected an integer literal after '" + Sign + "'"); 1688 if (Token.integerValue().getMinSignedBits() > 64) 1689 return error("expected 64-bit integer (too large)"); 1690 Offset = Token.integerValue().getExtValue(); 1691 if (IsNegative) 1692 Offset = -Offset; 1693 lex(); 1694 return false; 1695 } 1696 1697 bool MIParser::parseAlignment(unsigned &Alignment) { 1698 assert(Token.is(MIToken::kw_align)); 1699 lex(); 1700 if (Token.isNot(MIToken::IntegerLiteral) || Token.integerValue().isSigned()) 1701 return error("expected an integer literal after 'align'"); 1702 if (getUnsigned(Alignment)) 1703 return true; 1704 lex(); 1705 return false; 1706 } 1707 1708 bool MIParser::parseOperandsOffset(MachineOperand &Op) { 1709 int64_t Offset = 0; 1710 if (parseOffset(Offset)) 1711 return true; 1712 Op.setOffset(Offset); 1713 return false; 1714 } 1715 1716 bool MIParser::parseIRValue(const Value *&V) { 1717 switch (Token.kind()) { 1718 case MIToken::NamedIRValue: { 1719 V = MF.getFunction()->getValueSymbolTable().lookup(Token.stringValue()); 1720 break; 1721 } 1722 case MIToken::IRValue: { 1723 unsigned SlotNumber = 0; 1724 if (getUnsigned(SlotNumber)) 1725 return true; 1726 V = getIRValue(SlotNumber); 1727 break; 1728 } 1729 case MIToken::NamedGlobalValue: 1730 case MIToken::GlobalValue: { 1731 GlobalValue *GV = nullptr; 1732 if (parseGlobalValue(GV)) 1733 return true; 1734 V = GV; 1735 break; 1736 } 1737 case MIToken::QuotedIRValue: { 1738 const Constant *C = nullptr; 1739 if (parseIRConstant(Token.location(), Token.stringValue(), C)) 1740 return true; 1741 V = C; 1742 break; 1743 } 1744 default: 1745 llvm_unreachable("The current token should be an IR block reference"); 1746 } 1747 if (!V) 1748 return error(Twine("use of undefined IR value '") + Token.range() + "'"); 1749 return false; 1750 } 1751 1752 bool MIParser::getUint64(uint64_t &Result) { 1753 assert(Token.hasIntegerValue()); 1754 if (Token.integerValue().getActiveBits() > 64) 1755 return error("expected 64-bit integer (too large)"); 1756 Result = Token.integerValue().getZExtValue(); 1757 return false; 1758 } 1759 1760 bool MIParser::parseMemoryOperandFlag(MachineMemOperand::Flags &Flags) { 1761 const auto OldFlags = Flags; 1762 switch (Token.kind()) { 1763 case MIToken::kw_volatile: 1764 Flags |= MachineMemOperand::MOVolatile; 1765 break; 1766 case MIToken::kw_non_temporal: 1767 Flags |= MachineMemOperand::MONonTemporal; 1768 break; 1769 case MIToken::kw_invariant: 1770 Flags |= MachineMemOperand::MOInvariant; 1771 break; 1772 // TODO: parse the target specific memory operand flags. 1773 default: 1774 llvm_unreachable("The current token should be a memory operand flag"); 1775 } 1776 if (OldFlags == Flags) 1777 // We know that the same flag is specified more than once when the flags 1778 // weren't modified. 1779 return error("duplicate '" + Token.stringValue() + "' memory operand flag"); 1780 lex(); 1781 return false; 1782 } 1783 1784 bool MIParser::parseMemoryPseudoSourceValue(const PseudoSourceValue *&PSV) { 1785 switch (Token.kind()) { 1786 case MIToken::kw_stack: 1787 PSV = MF.getPSVManager().getStack(); 1788 break; 1789 case MIToken::kw_got: 1790 PSV = MF.getPSVManager().getGOT(); 1791 break; 1792 case MIToken::kw_jump_table: 1793 PSV = MF.getPSVManager().getJumpTable(); 1794 break; 1795 case MIToken::kw_constant_pool: 1796 PSV = MF.getPSVManager().getConstantPool(); 1797 break; 1798 case MIToken::FixedStackObject: { 1799 int FI; 1800 if (parseFixedStackFrameIndex(FI)) 1801 return true; 1802 PSV = MF.getPSVManager().getFixedStack(FI); 1803 // The token was already consumed, so use return here instead of break. 1804 return false; 1805 } 1806 case MIToken::StackObject: { 1807 int FI; 1808 if (parseStackFrameIndex(FI)) 1809 return true; 1810 PSV = MF.getPSVManager().getFixedStack(FI); 1811 // The token was already consumed, so use return here instead of break. 1812 return false; 1813 } 1814 case MIToken::kw_call_entry: { 1815 lex(); 1816 switch (Token.kind()) { 1817 case MIToken::GlobalValue: 1818 case MIToken::NamedGlobalValue: { 1819 GlobalValue *GV = nullptr; 1820 if (parseGlobalValue(GV)) 1821 return true; 1822 PSV = MF.getPSVManager().getGlobalValueCallEntry(GV); 1823 break; 1824 } 1825 case MIToken::ExternalSymbol: 1826 PSV = MF.getPSVManager().getExternalSymbolCallEntry( 1827 MF.createExternalSymbolName(Token.stringValue())); 1828 break; 1829 default: 1830 return error( 1831 "expected a global value or an external symbol after 'call-entry'"); 1832 } 1833 break; 1834 } 1835 default: 1836 llvm_unreachable("The current token should be pseudo source value"); 1837 } 1838 lex(); 1839 return false; 1840 } 1841 1842 bool MIParser::parseMachinePointerInfo(MachinePointerInfo &Dest) { 1843 if (Token.is(MIToken::kw_constant_pool) || Token.is(MIToken::kw_stack) || 1844 Token.is(MIToken::kw_got) || Token.is(MIToken::kw_jump_table) || 1845 Token.is(MIToken::FixedStackObject) || Token.is(MIToken::StackObject) || 1846 Token.is(MIToken::kw_call_entry)) { 1847 const PseudoSourceValue *PSV = nullptr; 1848 if (parseMemoryPseudoSourceValue(PSV)) 1849 return true; 1850 int64_t Offset = 0; 1851 if (parseOffset(Offset)) 1852 return true; 1853 Dest = MachinePointerInfo(PSV, Offset); 1854 return false; 1855 } 1856 if (Token.isNot(MIToken::NamedIRValue) && Token.isNot(MIToken::IRValue) && 1857 Token.isNot(MIToken::GlobalValue) && 1858 Token.isNot(MIToken::NamedGlobalValue) && 1859 Token.isNot(MIToken::QuotedIRValue)) 1860 return error("expected an IR value reference"); 1861 const Value *V = nullptr; 1862 if (parseIRValue(V)) 1863 return true; 1864 if (!V->getType()->isPointerTy()) 1865 return error("expected a pointer IR value"); 1866 lex(); 1867 int64_t Offset = 0; 1868 if (parseOffset(Offset)) 1869 return true; 1870 Dest = MachinePointerInfo(V, Offset); 1871 return false; 1872 } 1873 1874 bool MIParser::parseMachineMemoryOperand(MachineMemOperand *&Dest) { 1875 if (expectAndConsume(MIToken::lparen)) 1876 return true; 1877 MachineMemOperand::Flags Flags = MachineMemOperand::MONone; 1878 while (Token.isMemoryOperandFlag()) { 1879 if (parseMemoryOperandFlag(Flags)) 1880 return true; 1881 } 1882 if (Token.isNot(MIToken::Identifier) || 1883 (Token.stringValue() != "load" && Token.stringValue() != "store")) 1884 return error("expected 'load' or 'store' memory operation"); 1885 if (Token.stringValue() == "load") 1886 Flags |= MachineMemOperand::MOLoad; 1887 else 1888 Flags |= MachineMemOperand::MOStore; 1889 lex(); 1890 1891 if (Token.isNot(MIToken::IntegerLiteral)) 1892 return error("expected the size integer literal after memory operation"); 1893 uint64_t Size; 1894 if (getUint64(Size)) 1895 return true; 1896 lex(); 1897 1898 MachinePointerInfo Ptr = MachinePointerInfo(); 1899 if (Token.is(MIToken::Identifier)) { 1900 const char *Word = Flags & MachineMemOperand::MOLoad ? "from" : "into"; 1901 if (Token.stringValue() != Word) 1902 return error(Twine("expected '") + Word + "'"); 1903 lex(); 1904 1905 if (parseMachinePointerInfo(Ptr)) 1906 return true; 1907 } 1908 unsigned BaseAlignment = Size; 1909 AAMDNodes AAInfo; 1910 MDNode *Range = nullptr; 1911 while (consumeIfPresent(MIToken::comma)) { 1912 switch (Token.kind()) { 1913 case MIToken::kw_align: 1914 if (parseAlignment(BaseAlignment)) 1915 return true; 1916 break; 1917 case MIToken::md_tbaa: 1918 lex(); 1919 if (parseMDNode(AAInfo.TBAA)) 1920 return true; 1921 break; 1922 case MIToken::md_alias_scope: 1923 lex(); 1924 if (parseMDNode(AAInfo.Scope)) 1925 return true; 1926 break; 1927 case MIToken::md_noalias: 1928 lex(); 1929 if (parseMDNode(AAInfo.NoAlias)) 1930 return true; 1931 break; 1932 case MIToken::md_range: 1933 lex(); 1934 if (parseMDNode(Range)) 1935 return true; 1936 break; 1937 // TODO: Report an error on duplicate metadata nodes. 1938 default: 1939 return error("expected 'align' or '!tbaa' or '!alias.scope' or " 1940 "'!noalias' or '!range'"); 1941 } 1942 } 1943 if (expectAndConsume(MIToken::rparen)) 1944 return true; 1945 Dest = 1946 MF.getMachineMemOperand(Ptr, Flags, Size, BaseAlignment, AAInfo, Range); 1947 return false; 1948 } 1949 1950 void MIParser::initNames2InstrOpCodes() { 1951 if (!Names2InstrOpCodes.empty()) 1952 return; 1953 const auto *TII = MF.getSubtarget().getInstrInfo(); 1954 assert(TII && "Expected target instruction info"); 1955 for (unsigned I = 0, E = TII->getNumOpcodes(); I < E; ++I) 1956 Names2InstrOpCodes.insert(std::make_pair(StringRef(TII->getName(I)), I)); 1957 } 1958 1959 bool MIParser::parseInstrName(StringRef InstrName, unsigned &OpCode) { 1960 initNames2InstrOpCodes(); 1961 auto InstrInfo = Names2InstrOpCodes.find(InstrName); 1962 if (InstrInfo == Names2InstrOpCodes.end()) 1963 return true; 1964 OpCode = InstrInfo->getValue(); 1965 return false; 1966 } 1967 1968 void MIParser::initNames2Regs() { 1969 if (!Names2Regs.empty()) 1970 return; 1971 // The '%noreg' register is the register 0. 1972 Names2Regs.insert(std::make_pair("noreg", 0)); 1973 const auto *TRI = MF.getSubtarget().getRegisterInfo(); 1974 assert(TRI && "Expected target register info"); 1975 for (unsigned I = 0, E = TRI->getNumRegs(); I < E; ++I) { 1976 bool WasInserted = 1977 Names2Regs.insert(std::make_pair(StringRef(TRI->getName(I)).lower(), I)) 1978 .second; 1979 (void)WasInserted; 1980 assert(WasInserted && "Expected registers to be unique case-insensitively"); 1981 } 1982 } 1983 1984 bool MIParser::getRegisterByName(StringRef RegName, unsigned &Reg) { 1985 initNames2Regs(); 1986 auto RegInfo = Names2Regs.find(RegName); 1987 if (RegInfo == Names2Regs.end()) 1988 return true; 1989 Reg = RegInfo->getValue(); 1990 return false; 1991 } 1992 1993 void MIParser::initNames2RegMasks() { 1994 if (!Names2RegMasks.empty()) 1995 return; 1996 const auto *TRI = MF.getSubtarget().getRegisterInfo(); 1997 assert(TRI && "Expected target register info"); 1998 ArrayRef<const uint32_t *> RegMasks = TRI->getRegMasks(); 1999 ArrayRef<const char *> RegMaskNames = TRI->getRegMaskNames(); 2000 assert(RegMasks.size() == RegMaskNames.size()); 2001 for (size_t I = 0, E = RegMasks.size(); I < E; ++I) 2002 Names2RegMasks.insert( 2003 std::make_pair(StringRef(RegMaskNames[I]).lower(), RegMasks[I])); 2004 } 2005 2006 const uint32_t *MIParser::getRegMask(StringRef Identifier) { 2007 initNames2RegMasks(); 2008 auto RegMaskInfo = Names2RegMasks.find(Identifier); 2009 if (RegMaskInfo == Names2RegMasks.end()) 2010 return nullptr; 2011 return RegMaskInfo->getValue(); 2012 } 2013 2014 void MIParser::initNames2SubRegIndices() { 2015 if (!Names2SubRegIndices.empty()) 2016 return; 2017 const TargetRegisterInfo *TRI = MF.getSubtarget().getRegisterInfo(); 2018 for (unsigned I = 1, E = TRI->getNumSubRegIndices(); I < E; ++I) 2019 Names2SubRegIndices.insert( 2020 std::make_pair(StringRef(TRI->getSubRegIndexName(I)).lower(), I)); 2021 } 2022 2023 unsigned MIParser::getSubRegIndex(StringRef Name) { 2024 initNames2SubRegIndices(); 2025 auto SubRegInfo = Names2SubRegIndices.find(Name); 2026 if (SubRegInfo == Names2SubRegIndices.end()) 2027 return 0; 2028 return SubRegInfo->getValue(); 2029 } 2030 2031 static void initSlots2BasicBlocks( 2032 const Function &F, 2033 DenseMap<unsigned, const BasicBlock *> &Slots2BasicBlocks) { 2034 ModuleSlotTracker MST(F.getParent(), /*ShouldInitializeAllMetadata=*/false); 2035 MST.incorporateFunction(F); 2036 for (auto &BB : F) { 2037 if (BB.hasName()) 2038 continue; 2039 int Slot = MST.getLocalSlot(&BB); 2040 if (Slot == -1) 2041 continue; 2042 Slots2BasicBlocks.insert(std::make_pair(unsigned(Slot), &BB)); 2043 } 2044 } 2045 2046 static const BasicBlock *getIRBlockFromSlot( 2047 unsigned Slot, 2048 const DenseMap<unsigned, const BasicBlock *> &Slots2BasicBlocks) { 2049 auto BlockInfo = Slots2BasicBlocks.find(Slot); 2050 if (BlockInfo == Slots2BasicBlocks.end()) 2051 return nullptr; 2052 return BlockInfo->second; 2053 } 2054 2055 const BasicBlock *MIParser::getIRBlock(unsigned Slot) { 2056 if (Slots2BasicBlocks.empty()) 2057 initSlots2BasicBlocks(*MF.getFunction(), Slots2BasicBlocks); 2058 return getIRBlockFromSlot(Slot, Slots2BasicBlocks); 2059 } 2060 2061 const BasicBlock *MIParser::getIRBlock(unsigned Slot, const Function &F) { 2062 if (&F == MF.getFunction()) 2063 return getIRBlock(Slot); 2064 DenseMap<unsigned, const BasicBlock *> CustomSlots2BasicBlocks; 2065 initSlots2BasicBlocks(F, CustomSlots2BasicBlocks); 2066 return getIRBlockFromSlot(Slot, CustomSlots2BasicBlocks); 2067 } 2068 2069 static void mapValueToSlot(const Value *V, ModuleSlotTracker &MST, 2070 DenseMap<unsigned, const Value *> &Slots2Values) { 2071 int Slot = MST.getLocalSlot(V); 2072 if (Slot == -1) 2073 return; 2074 Slots2Values.insert(std::make_pair(unsigned(Slot), V)); 2075 } 2076 2077 /// Creates the mapping from slot numbers to function's unnamed IR values. 2078 static void initSlots2Values(const Function &F, 2079 DenseMap<unsigned, const Value *> &Slots2Values) { 2080 ModuleSlotTracker MST(F.getParent(), /*ShouldInitializeAllMetadata=*/false); 2081 MST.incorporateFunction(F); 2082 for (const auto &Arg : F.args()) 2083 mapValueToSlot(&Arg, MST, Slots2Values); 2084 for (const auto &BB : F) { 2085 mapValueToSlot(&BB, MST, Slots2Values); 2086 for (const auto &I : BB) 2087 mapValueToSlot(&I, MST, Slots2Values); 2088 } 2089 } 2090 2091 const Value *MIParser::getIRValue(unsigned Slot) { 2092 if (Slots2Values.empty()) 2093 initSlots2Values(*MF.getFunction(), Slots2Values); 2094 auto ValueInfo = Slots2Values.find(Slot); 2095 if (ValueInfo == Slots2Values.end()) 2096 return nullptr; 2097 return ValueInfo->second; 2098 } 2099 2100 void MIParser::initNames2TargetIndices() { 2101 if (!Names2TargetIndices.empty()) 2102 return; 2103 const auto *TII = MF.getSubtarget().getInstrInfo(); 2104 assert(TII && "Expected target instruction info"); 2105 auto Indices = TII->getSerializableTargetIndices(); 2106 for (const auto &I : Indices) 2107 Names2TargetIndices.insert(std::make_pair(StringRef(I.second), I.first)); 2108 } 2109 2110 bool MIParser::getTargetIndex(StringRef Name, int &Index) { 2111 initNames2TargetIndices(); 2112 auto IndexInfo = Names2TargetIndices.find(Name); 2113 if (IndexInfo == Names2TargetIndices.end()) 2114 return true; 2115 Index = IndexInfo->second; 2116 return false; 2117 } 2118 2119 void MIParser::initNames2DirectTargetFlags() { 2120 if (!Names2DirectTargetFlags.empty()) 2121 return; 2122 const auto *TII = MF.getSubtarget().getInstrInfo(); 2123 assert(TII && "Expected target instruction info"); 2124 auto Flags = TII->getSerializableDirectMachineOperandTargetFlags(); 2125 for (const auto &I : Flags) 2126 Names2DirectTargetFlags.insert( 2127 std::make_pair(StringRef(I.second), I.first)); 2128 } 2129 2130 bool MIParser::getDirectTargetFlag(StringRef Name, unsigned &Flag) { 2131 initNames2DirectTargetFlags(); 2132 auto FlagInfo = Names2DirectTargetFlags.find(Name); 2133 if (FlagInfo == Names2DirectTargetFlags.end()) 2134 return true; 2135 Flag = FlagInfo->second; 2136 return false; 2137 } 2138 2139 void MIParser::initNames2BitmaskTargetFlags() { 2140 if (!Names2BitmaskTargetFlags.empty()) 2141 return; 2142 const auto *TII = MF.getSubtarget().getInstrInfo(); 2143 assert(TII && "Expected target instruction info"); 2144 auto Flags = TII->getSerializableBitmaskMachineOperandTargetFlags(); 2145 for (const auto &I : Flags) 2146 Names2BitmaskTargetFlags.insert( 2147 std::make_pair(StringRef(I.second), I.first)); 2148 } 2149 2150 bool MIParser::getBitmaskTargetFlag(StringRef Name, unsigned &Flag) { 2151 initNames2BitmaskTargetFlags(); 2152 auto FlagInfo = Names2BitmaskTargetFlags.find(Name); 2153 if (FlagInfo == Names2BitmaskTargetFlags.end()) 2154 return true; 2155 Flag = FlagInfo->second; 2156 return false; 2157 } 2158 2159 bool llvm::parseMachineBasicBlockDefinitions(PerFunctionMIParsingState &PFS, 2160 StringRef Src, 2161 SMDiagnostic &Error) { 2162 return MIParser(PFS, Error, Src).parseBasicBlockDefinitions(PFS.MBBSlots); 2163 } 2164 2165 bool llvm::parseMachineInstructions(const PerFunctionMIParsingState &PFS, 2166 StringRef Src, SMDiagnostic &Error) { 2167 return MIParser(PFS, Error, Src).parseBasicBlocks(); 2168 } 2169 2170 bool llvm::parseMBBReference(const PerFunctionMIParsingState &PFS, 2171 MachineBasicBlock *&MBB, StringRef Src, 2172 SMDiagnostic &Error) { 2173 return MIParser(PFS, Error, Src).parseStandaloneMBB(MBB); 2174 } 2175 2176 bool llvm::parseNamedRegisterReference(const PerFunctionMIParsingState &PFS, 2177 unsigned &Reg, StringRef Src, 2178 SMDiagnostic &Error) { 2179 return MIParser(PFS, Error, Src).parseStandaloneNamedRegister(Reg); 2180 } 2181 2182 bool llvm::parseVirtualRegisterReference(const PerFunctionMIParsingState &PFS, 2183 unsigned &Reg, StringRef Src, 2184 SMDiagnostic &Error) { 2185 return MIParser(PFS, Error, Src).parseStandaloneVirtualRegister(Reg); 2186 } 2187 2188 bool llvm::parseStackObjectReference(const PerFunctionMIParsingState &PFS, 2189 int &FI, StringRef Src, 2190 SMDiagnostic &Error) { 2191 return MIParser(PFS, Error, Src).parseStandaloneStackObject(FI); 2192 } 2193 2194 bool llvm::parseMDNode(const PerFunctionMIParsingState &PFS, 2195 MDNode *&Node, StringRef Src, SMDiagnostic &Error) { 2196 return MIParser(PFS, Error, Src).parseStandaloneMDNode(Node); 2197 } 2198