xref: /aosp_15_r20/external/llvm/lib/CodeGen/MIRParser/MIParser.cpp (revision 9880d6810fe72a1726cb53787c6711e909410d58)
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/AsmParser/Parser.h"
18  #include "llvm/AsmParser/SlotMapping.h"
19  #include "llvm/CodeGen/MachineBasicBlock.h"
20  #include "llvm/CodeGen/MachineFrameInfo.h"
21  #include "llvm/CodeGen/MachineFunction.h"
22  #include "llvm/CodeGen/MachineInstr.h"
23  #include "llvm/CodeGen/MachineInstrBuilder.h"
24  #include "llvm/CodeGen/MachineMemOperand.h"
25  #include "llvm/CodeGen/MachineModuleInfo.h"
26  #include "llvm/CodeGen/MachineRegisterInfo.h"
27  #include "llvm/IR/Constants.h"
28  #include "llvm/IR/Instructions.h"
29  #include "llvm/IR/Module.h"
30  #include "llvm/IR/ModuleSlotTracker.h"
31  #include "llvm/IR/ValueSymbolTable.h"
32  #include "llvm/Support/SourceMgr.h"
33  #include "llvm/Support/raw_ostream.h"
34  #include "llvm/Target/TargetInstrInfo.h"
35  #include "llvm/Target/TargetSubtargetInfo.h"
36  
37  using namespace llvm;
38  
PerFunctionMIParsingState(MachineFunction & MF,SourceMgr & SM,const SlotMapping & IRSlots)39  PerFunctionMIParsingState::PerFunctionMIParsingState(MachineFunction &MF,
40      SourceMgr &SM, const SlotMapping &IRSlots)
41    : MF(MF), SM(&SM), IRSlots(IRSlots) {
42  }
43  
44  namespace {
45  
46  /// A wrapper struct around the 'MachineOperand' struct that includes a source
47  /// range and other attributes.
48  struct ParsedMachineOperand {
49    MachineOperand Operand;
50    StringRef::iterator Begin;
51    StringRef::iterator End;
52    Optional<unsigned> TiedDefIdx;
53  
ParsedMachineOperand__anon02f799f30111::ParsedMachineOperand54    ParsedMachineOperand(const MachineOperand &Operand, StringRef::iterator Begin,
55                         StringRef::iterator End, Optional<unsigned> &TiedDefIdx)
56        : Operand(Operand), Begin(Begin), End(End), TiedDefIdx(TiedDefIdx) {
57      if (TiedDefIdx)
58        assert(Operand.isReg() && Operand.isUse() &&
59               "Only used register operands can be tied");
60    }
61  };
62  
63  class MIParser {
64    MachineFunction &MF;
65    SMDiagnostic &Error;
66    StringRef Source, CurrentSource;
67    MIToken Token;
68    const PerFunctionMIParsingState &PFS;
69    /// Maps from instruction names to op codes.
70    StringMap<unsigned> Names2InstrOpCodes;
71    /// Maps from register names to registers.
72    StringMap<unsigned> Names2Regs;
73    /// Maps from register mask names to register masks.
74    StringMap<const uint32_t *> Names2RegMasks;
75    /// Maps from subregister names to subregister indices.
76    StringMap<unsigned> Names2SubRegIndices;
77    /// Maps from slot numbers to function's unnamed basic blocks.
78    DenseMap<unsigned, const BasicBlock *> Slots2BasicBlocks;
79    /// Maps from slot numbers to function's unnamed values.
80    DenseMap<unsigned, const Value *> Slots2Values;
81    /// Maps from target index names to target indices.
82    StringMap<int> Names2TargetIndices;
83    /// Maps from direct target flag names to the direct target flag values.
84    StringMap<unsigned> Names2DirectTargetFlags;
85    /// Maps from direct target flag names to the bitmask target flag values.
86    StringMap<unsigned> Names2BitmaskTargetFlags;
87  
88  public:
89    MIParser(const PerFunctionMIParsingState &PFS, SMDiagnostic &Error,
90             StringRef Source);
91  
92    /// \p SkipChar gives the number of characters to skip before looking
93    /// for the next token.
94    void lex(unsigned SkipChar = 0);
95  
96    /// Report an error at the current location with the given message.
97    ///
98    /// This function always return true.
99    bool error(const Twine &Msg);
100  
101    /// Report an error at the given location with the given message.
102    ///
103    /// This function always return true.
104    bool error(StringRef::iterator Loc, const Twine &Msg);
105  
106    bool
107    parseBasicBlockDefinitions(DenseMap<unsigned, MachineBasicBlock *> &MBBSlots);
108    bool parseBasicBlocks();
109    bool parse(MachineInstr *&MI);
110    bool parseStandaloneMBB(MachineBasicBlock *&MBB);
111    bool parseStandaloneNamedRegister(unsigned &Reg);
112    bool parseStandaloneVirtualRegister(unsigned &Reg);
113    bool parseStandaloneStackObject(int &FI);
114    bool parseStandaloneMDNode(MDNode *&Node);
115  
116    bool
117    parseBasicBlockDefinition(DenseMap<unsigned, MachineBasicBlock *> &MBBSlots);
118    bool parseBasicBlock(MachineBasicBlock &MBB);
119    bool parseBasicBlockLiveins(MachineBasicBlock &MBB);
120    bool parseBasicBlockSuccessors(MachineBasicBlock &MBB);
121  
122    bool parseRegister(unsigned &Reg);
123    bool parseRegisterFlag(unsigned &Flags);
124    bool parseSubRegisterIndex(unsigned &SubReg);
125    bool parseRegisterTiedDefIndex(unsigned &TiedDefIdx);
126    bool parseSize(unsigned &Size);
127    bool parseRegisterOperand(MachineOperand &Dest,
128                              Optional<unsigned> &TiedDefIdx, bool IsDef = false);
129    bool parseImmediateOperand(MachineOperand &Dest);
130    bool parseIRConstant(StringRef::iterator Loc, StringRef Source,
131                         const Constant *&C);
132    bool parseIRConstant(StringRef::iterator Loc, const Constant *&C);
133    bool parseIRType(StringRef::iterator Loc, StringRef Source, unsigned &Read,
134                     Type *&Ty);
135    // \p MustBeSized defines whether or not \p Ty must be sized.
136    bool parseIRType(StringRef::iterator Loc, Type *&Ty, bool MustBeSized = true);
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 parseTargetIndexOperand(MachineOperand &Dest);
159    bool parseLiveoutRegisterMaskOperand(MachineOperand &Dest);
160    bool parseMachineOperand(MachineOperand &Dest,
161                             Optional<unsigned> &TiedDefIdx);
162    bool parseMachineOperandAndTargetFlags(MachineOperand &Dest,
163                                           Optional<unsigned> &TiedDefIdx);
164    bool parseOffset(int64_t &Offset);
165    bool parseAlignment(unsigned &Alignment);
166    bool parseOperandsOffset(MachineOperand &Op);
167    bool parseIRValue(const Value *&V);
168    bool parseMemoryOperandFlag(unsigned &Flags);
169    bool parseMemoryPseudoSourceValue(const PseudoSourceValue *&PSV);
170    bool parseMachinePointerInfo(MachinePointerInfo &Dest);
171    bool parseMachineMemoryOperand(MachineMemOperand *&Dest);
172  
173  private:
174    /// Convert the integer literal in the current token into an unsigned integer.
175    ///
176    /// Return true if an error occurred.
177    bool getUnsigned(unsigned &Result);
178  
179    /// Convert the integer literal in the current token into an uint64.
180    ///
181    /// Return true if an error occurred.
182    bool getUint64(uint64_t &Result);
183  
184    /// If the current token is of the given kind, consume it and return false.
185    /// Otherwise report an error and return true.
186    bool expectAndConsume(MIToken::TokenKind TokenKind);
187  
188    /// If the current token is of the given kind, consume it and return true.
189    /// Otherwise return false.
190    bool consumeIfPresent(MIToken::TokenKind TokenKind);
191  
192    void initNames2InstrOpCodes();
193  
194    /// Try to convert an instruction name to an opcode. Return true if the
195    /// instruction name is invalid.
196    bool parseInstrName(StringRef InstrName, unsigned &OpCode);
197  
198    bool parseInstruction(unsigned &OpCode, unsigned &Flags);
199  
200    bool assignRegisterTies(MachineInstr &MI,
201                            ArrayRef<ParsedMachineOperand> Operands);
202  
203    bool verifyImplicitOperands(ArrayRef<ParsedMachineOperand> Operands,
204                                const MCInstrDesc &MCID);
205  
206    void initNames2Regs();
207  
208    /// Try to convert a register name to a register number. Return true if the
209    /// register name is invalid.
210    bool getRegisterByName(StringRef RegName, unsigned &Reg);
211  
212    void initNames2RegMasks();
213  
214    /// Check if the given identifier is a name of a register mask.
215    ///
216    /// Return null if the identifier isn't a register mask.
217    const uint32_t *getRegMask(StringRef Identifier);
218  
219    void initNames2SubRegIndices();
220  
221    /// Check if the given identifier is a name of a subregister index.
222    ///
223    /// Return 0 if the name isn't a subregister index class.
224    unsigned getSubRegIndex(StringRef Name);
225  
226    const BasicBlock *getIRBlock(unsigned Slot);
227    const BasicBlock *getIRBlock(unsigned Slot, const Function &F);
228  
229    const Value *getIRValue(unsigned Slot);
230  
231    void initNames2TargetIndices();
232  
233    /// Try to convert a name of target index to the corresponding target index.
234    ///
235    /// Return true if the name isn't a name of a target index.
236    bool getTargetIndex(StringRef Name, int &Index);
237  
238    void initNames2DirectTargetFlags();
239  
240    /// Try to convert a name of a direct target flag to the corresponding
241    /// target flag.
242    ///
243    /// Return true if the name isn't a name of a direct flag.
244    bool getDirectTargetFlag(StringRef Name, unsigned &Flag);
245  
246    void initNames2BitmaskTargetFlags();
247  
248    /// Try to convert a name of a bitmask target flag to the corresponding
249    /// target flag.
250    ///
251    /// Return true if the name isn't a name of a bitmask target flag.
252    bool getBitmaskTargetFlag(StringRef Name, unsigned &Flag);
253  };
254  
255  } // end anonymous namespace
256  
MIParser(const PerFunctionMIParsingState & PFS,SMDiagnostic & Error,StringRef Source)257  MIParser::MIParser(const PerFunctionMIParsingState &PFS, SMDiagnostic &Error,
258                     StringRef Source)
259      : MF(PFS.MF), Error(Error), Source(Source), CurrentSource(Source), PFS(PFS)
260  {}
261  
lex(unsigned SkipChar)262  void MIParser::lex(unsigned SkipChar) {
263    CurrentSource = lexMIToken(
264        CurrentSource.data() + SkipChar, Token,
265        [this](StringRef::iterator Loc, const Twine &Msg) { error(Loc, Msg); });
266  }
267  
error(const Twine & Msg)268  bool MIParser::error(const Twine &Msg) { return error(Token.location(), Msg); }
269  
error(StringRef::iterator Loc,const Twine & Msg)270  bool MIParser::error(StringRef::iterator Loc, const Twine &Msg) {
271    const SourceMgr &SM = *PFS.SM;
272    assert(Loc >= Source.data() && Loc <= (Source.data() + Source.size()));
273    const MemoryBuffer &Buffer = *SM.getMemoryBuffer(SM.getMainFileID());
274    if (Loc >= Buffer.getBufferStart() && Loc <= Buffer.getBufferEnd()) {
275      // Create an ordinary diagnostic when the source manager's buffer is the
276      // source string.
277      Error = SM.GetMessage(SMLoc::getFromPointer(Loc), SourceMgr::DK_Error, Msg);
278      return true;
279    }
280    // Create a diagnostic for a YAML string literal.
281    Error = SMDiagnostic(SM, SMLoc(), Buffer.getBufferIdentifier(), 1,
282                         Loc - Source.data(), SourceMgr::DK_Error, Msg.str(),
283                         Source, None, None);
284    return true;
285  }
286  
toString(MIToken::TokenKind TokenKind)287  static const char *toString(MIToken::TokenKind TokenKind) {
288    switch (TokenKind) {
289    case MIToken::comma:
290      return "','";
291    case MIToken::equal:
292      return "'='";
293    case MIToken::colon:
294      return "':'";
295    case MIToken::lparen:
296      return "'('";
297    case MIToken::rparen:
298      return "')'";
299    default:
300      return "<unknown token>";
301    }
302  }
303  
expectAndConsume(MIToken::TokenKind TokenKind)304  bool MIParser::expectAndConsume(MIToken::TokenKind TokenKind) {
305    if (Token.isNot(TokenKind))
306      return error(Twine("expected ") + toString(TokenKind));
307    lex();
308    return false;
309  }
310  
consumeIfPresent(MIToken::TokenKind TokenKind)311  bool MIParser::consumeIfPresent(MIToken::TokenKind TokenKind) {
312    if (Token.isNot(TokenKind))
313      return false;
314    lex();
315    return true;
316  }
317  
parseBasicBlockDefinition(DenseMap<unsigned,MachineBasicBlock * > & MBBSlots)318  bool MIParser::parseBasicBlockDefinition(
319      DenseMap<unsigned, MachineBasicBlock *> &MBBSlots) {
320    assert(Token.is(MIToken::MachineBasicBlockLabel));
321    unsigned ID = 0;
322    if (getUnsigned(ID))
323      return true;
324    auto Loc = Token.location();
325    auto Name = Token.stringValue();
326    lex();
327    bool HasAddressTaken = false;
328    bool IsLandingPad = false;
329    unsigned Alignment = 0;
330    BasicBlock *BB = nullptr;
331    if (consumeIfPresent(MIToken::lparen)) {
332      do {
333        // TODO: Report an error when multiple same attributes are specified.
334        switch (Token.kind()) {
335        case MIToken::kw_address_taken:
336          HasAddressTaken = true;
337          lex();
338          break;
339        case MIToken::kw_landing_pad:
340          IsLandingPad = true;
341          lex();
342          break;
343        case MIToken::kw_align:
344          if (parseAlignment(Alignment))
345            return true;
346          break;
347        case MIToken::IRBlock:
348          // TODO: Report an error when both name and ir block are specified.
349          if (parseIRBlock(BB, *MF.getFunction()))
350            return true;
351          lex();
352          break;
353        default:
354          break;
355        }
356      } while (consumeIfPresent(MIToken::comma));
357      if (expectAndConsume(MIToken::rparen))
358        return true;
359    }
360    if (expectAndConsume(MIToken::colon))
361      return true;
362  
363    if (!Name.empty()) {
364      BB = dyn_cast_or_null<BasicBlock>(
365          MF.getFunction()->getValueSymbolTable().lookup(Name));
366      if (!BB)
367        return error(Loc, Twine("basic block '") + Name +
368                              "' is not defined in the function '" +
369                              MF.getName() + "'");
370    }
371    auto *MBB = MF.CreateMachineBasicBlock(BB);
372    MF.insert(MF.end(), MBB);
373    bool WasInserted = MBBSlots.insert(std::make_pair(ID, MBB)).second;
374    if (!WasInserted)
375      return error(Loc, Twine("redefinition of machine basic block with id #") +
376                            Twine(ID));
377    if (Alignment)
378      MBB->setAlignment(Alignment);
379    if (HasAddressTaken)
380      MBB->setHasAddressTaken();
381    MBB->setIsEHPad(IsLandingPad);
382    return false;
383  }
384  
parseBasicBlockDefinitions(DenseMap<unsigned,MachineBasicBlock * > & MBBSlots)385  bool MIParser::parseBasicBlockDefinitions(
386      DenseMap<unsigned, MachineBasicBlock *> &MBBSlots) {
387    lex();
388    // Skip until the first machine basic block.
389    while (Token.is(MIToken::Newline))
390      lex();
391    if (Token.isErrorOrEOF())
392      return Token.isError();
393    if (Token.isNot(MIToken::MachineBasicBlockLabel))
394      return error("expected a basic block definition before instructions");
395    unsigned BraceDepth = 0;
396    do {
397      if (parseBasicBlockDefinition(MBBSlots))
398        return true;
399      bool IsAfterNewline = false;
400      // Skip until the next machine basic block.
401      while (true) {
402        if ((Token.is(MIToken::MachineBasicBlockLabel) && IsAfterNewline) ||
403            Token.isErrorOrEOF())
404          break;
405        else if (Token.is(MIToken::MachineBasicBlockLabel))
406          return error("basic block definition should be located at the start of "
407                       "the line");
408        else if (consumeIfPresent(MIToken::Newline)) {
409          IsAfterNewline = true;
410          continue;
411        }
412        IsAfterNewline = false;
413        if (Token.is(MIToken::lbrace))
414          ++BraceDepth;
415        if (Token.is(MIToken::rbrace)) {
416          if (!BraceDepth)
417            return error("extraneous closing brace ('}')");
418          --BraceDepth;
419        }
420        lex();
421      }
422      // Verify that we closed all of the '{' at the end of a file or a block.
423      if (!Token.isError() && BraceDepth)
424        return error("expected '}'"); // FIXME: Report a note that shows '{'.
425    } while (!Token.isErrorOrEOF());
426    return Token.isError();
427  }
428  
parseBasicBlockLiveins(MachineBasicBlock & MBB)429  bool MIParser::parseBasicBlockLiveins(MachineBasicBlock &MBB) {
430    assert(Token.is(MIToken::kw_liveins));
431    lex();
432    if (expectAndConsume(MIToken::colon))
433      return true;
434    if (Token.isNewlineOrEOF()) // Allow an empty list of liveins.
435      return false;
436    do {
437      if (Token.isNot(MIToken::NamedRegister))
438        return error("expected a named register");
439      unsigned Reg = 0;
440      if (parseRegister(Reg))
441        return true;
442      MBB.addLiveIn(Reg);
443      lex();
444    } while (consumeIfPresent(MIToken::comma));
445    return false;
446  }
447  
parseBasicBlockSuccessors(MachineBasicBlock & MBB)448  bool MIParser::parseBasicBlockSuccessors(MachineBasicBlock &MBB) {
449    assert(Token.is(MIToken::kw_successors));
450    lex();
451    if (expectAndConsume(MIToken::colon))
452      return true;
453    if (Token.isNewlineOrEOF()) // Allow an empty list of successors.
454      return false;
455    do {
456      if (Token.isNot(MIToken::MachineBasicBlock))
457        return error("expected a machine basic block reference");
458      MachineBasicBlock *SuccMBB = nullptr;
459      if (parseMBBReference(SuccMBB))
460        return true;
461      lex();
462      unsigned Weight = 0;
463      if (consumeIfPresent(MIToken::lparen)) {
464        if (Token.isNot(MIToken::IntegerLiteral))
465          return error("expected an integer literal after '('");
466        if (getUnsigned(Weight))
467          return true;
468        lex();
469        if (expectAndConsume(MIToken::rparen))
470          return true;
471      }
472      MBB.addSuccessor(SuccMBB, BranchProbability::getRaw(Weight));
473    } while (consumeIfPresent(MIToken::comma));
474    MBB.normalizeSuccProbs();
475    return false;
476  }
477  
parseBasicBlock(MachineBasicBlock & MBB)478  bool MIParser::parseBasicBlock(MachineBasicBlock &MBB) {
479    // Skip the definition.
480    assert(Token.is(MIToken::MachineBasicBlockLabel));
481    lex();
482    if (consumeIfPresent(MIToken::lparen)) {
483      while (Token.isNot(MIToken::rparen) && !Token.isErrorOrEOF())
484        lex();
485      consumeIfPresent(MIToken::rparen);
486    }
487    consumeIfPresent(MIToken::colon);
488  
489    // Parse the liveins and successors.
490    // N.B: Multiple lists of successors and liveins are allowed and they're
491    // merged into one.
492    // Example:
493    //   liveins: %edi
494    //   liveins: %esi
495    //
496    // is equivalent to
497    //   liveins: %edi, %esi
498    while (true) {
499      if (Token.is(MIToken::kw_successors)) {
500        if (parseBasicBlockSuccessors(MBB))
501          return true;
502      } else if (Token.is(MIToken::kw_liveins)) {
503        if (parseBasicBlockLiveins(MBB))
504          return true;
505      } else if (consumeIfPresent(MIToken::Newline)) {
506        continue;
507      } else
508        break;
509      if (!Token.isNewlineOrEOF())
510        return error("expected line break at the end of a list");
511      lex();
512    }
513  
514    // Parse the instructions.
515    bool IsInBundle = false;
516    MachineInstr *PrevMI = nullptr;
517    while (true) {
518      if (Token.is(MIToken::MachineBasicBlockLabel) || Token.is(MIToken::Eof))
519        return false;
520      else if (consumeIfPresent(MIToken::Newline))
521        continue;
522      if (consumeIfPresent(MIToken::rbrace)) {
523        // The first parsing pass should verify that all closing '}' have an
524        // opening '{'.
525        assert(IsInBundle);
526        IsInBundle = false;
527        continue;
528      }
529      MachineInstr *MI = nullptr;
530      if (parse(MI))
531        return true;
532      MBB.insert(MBB.end(), MI);
533      if (IsInBundle) {
534        PrevMI->setFlag(MachineInstr::BundledSucc);
535        MI->setFlag(MachineInstr::BundledPred);
536      }
537      PrevMI = MI;
538      if (Token.is(MIToken::lbrace)) {
539        if (IsInBundle)
540          return error("nested instruction bundles are not allowed");
541        lex();
542        // This instruction is the start of the bundle.
543        MI->setFlag(MachineInstr::BundledSucc);
544        IsInBundle = true;
545        if (!Token.is(MIToken::Newline))
546          // The next instruction can be on the same line.
547          continue;
548      }
549      assert(Token.isNewlineOrEOF() && "MI is not fully parsed");
550      lex();
551    }
552    return false;
553  }
554  
parseBasicBlocks()555  bool MIParser::parseBasicBlocks() {
556    lex();
557    // Skip until the first machine basic block.
558    while (Token.is(MIToken::Newline))
559      lex();
560    if (Token.isErrorOrEOF())
561      return Token.isError();
562    // The first parsing pass should have verified that this token is a MBB label
563    // in the 'parseBasicBlockDefinitions' method.
564    assert(Token.is(MIToken::MachineBasicBlockLabel));
565    do {
566      MachineBasicBlock *MBB = nullptr;
567      if (parseMBBReference(MBB))
568        return true;
569      if (parseBasicBlock(*MBB))
570        return true;
571      // The method 'parseBasicBlock' should parse the whole block until the next
572      // block or the end of file.
573      assert(Token.is(MIToken::MachineBasicBlockLabel) || Token.is(MIToken::Eof));
574    } while (Token.isNot(MIToken::Eof));
575    return false;
576  }
577  
parse(MachineInstr * & MI)578  bool MIParser::parse(MachineInstr *&MI) {
579    // Parse any register operands before '='
580    MachineOperand MO = MachineOperand::CreateImm(0);
581    SmallVector<ParsedMachineOperand, 8> Operands;
582    while (Token.isRegister() || Token.isRegisterFlag()) {
583      auto Loc = Token.location();
584      Optional<unsigned> TiedDefIdx;
585      if (parseRegisterOperand(MO, TiedDefIdx, /*IsDef=*/true))
586        return true;
587      Operands.push_back(
588          ParsedMachineOperand(MO, Loc, Token.location(), TiedDefIdx));
589      if (Token.isNot(MIToken::comma))
590        break;
591      lex();
592    }
593    if (!Operands.empty() && expectAndConsume(MIToken::equal))
594      return true;
595  
596    unsigned OpCode, Flags = 0;
597    if (Token.isError() || parseInstruction(OpCode, Flags))
598      return true;
599  
600    Type *Ty = nullptr;
601    if (isPreISelGenericOpcode(OpCode)) {
602      // For generic opcode, a type is mandatory.
603      auto Loc = Token.location();
604      if (parseIRType(Loc, Ty))
605        return true;
606    }
607  
608    // Parse the remaining machine operands.
609    while (!Token.isNewlineOrEOF() && Token.isNot(MIToken::kw_debug_location) &&
610           Token.isNot(MIToken::coloncolon) && Token.isNot(MIToken::lbrace)) {
611      auto Loc = Token.location();
612      Optional<unsigned> TiedDefIdx;
613      if (parseMachineOperandAndTargetFlags(MO, TiedDefIdx))
614        return true;
615      Operands.push_back(
616          ParsedMachineOperand(MO, Loc, Token.location(), TiedDefIdx));
617      if (Token.isNewlineOrEOF() || Token.is(MIToken::coloncolon) ||
618          Token.is(MIToken::lbrace))
619        break;
620      if (Token.isNot(MIToken::comma))
621        return error("expected ',' before the next machine operand");
622      lex();
623    }
624  
625    DebugLoc DebugLocation;
626    if (Token.is(MIToken::kw_debug_location)) {
627      lex();
628      if (Token.isNot(MIToken::exclaim))
629        return error("expected a metadata node after 'debug-location'");
630      MDNode *Node = nullptr;
631      if (parseMDNode(Node))
632        return true;
633      DebugLocation = DebugLoc(Node);
634    }
635  
636    // Parse the machine memory operands.
637    SmallVector<MachineMemOperand *, 2> MemOperands;
638    if (Token.is(MIToken::coloncolon)) {
639      lex();
640      while (!Token.isNewlineOrEOF()) {
641        MachineMemOperand *MemOp = nullptr;
642        if (parseMachineMemoryOperand(MemOp))
643          return true;
644        MemOperands.push_back(MemOp);
645        if (Token.isNewlineOrEOF())
646          break;
647        if (Token.isNot(MIToken::comma))
648          return error("expected ',' before the next machine memory operand");
649        lex();
650      }
651    }
652  
653    const auto &MCID = MF.getSubtarget().getInstrInfo()->get(OpCode);
654    if (!MCID.isVariadic()) {
655      // FIXME: Move the implicit operand verification to the machine verifier.
656      if (verifyImplicitOperands(Operands, MCID))
657        return true;
658    }
659  
660    // TODO: Check for extraneous machine operands.
661    MI = MF.CreateMachineInstr(MCID, DebugLocation, /*NoImplicit=*/true);
662    MI->setFlags(Flags);
663    if (Ty)
664      MI->setType(Ty);
665    for (const auto &Operand : Operands)
666      MI->addOperand(MF, Operand.Operand);
667    if (assignRegisterTies(*MI, Operands))
668      return true;
669    if (MemOperands.empty())
670      return false;
671    MachineInstr::mmo_iterator MemRefs =
672        MF.allocateMemRefsArray(MemOperands.size());
673    std::copy(MemOperands.begin(), MemOperands.end(), MemRefs);
674    MI->setMemRefs(MemRefs, MemRefs + MemOperands.size());
675    return false;
676  }
677  
parseStandaloneMBB(MachineBasicBlock * & MBB)678  bool MIParser::parseStandaloneMBB(MachineBasicBlock *&MBB) {
679    lex();
680    if (Token.isNot(MIToken::MachineBasicBlock))
681      return error("expected a machine basic block reference");
682    if (parseMBBReference(MBB))
683      return true;
684    lex();
685    if (Token.isNot(MIToken::Eof))
686      return error(
687          "expected end of string after the machine basic block reference");
688    return false;
689  }
690  
parseStandaloneNamedRegister(unsigned & Reg)691  bool MIParser::parseStandaloneNamedRegister(unsigned &Reg) {
692    lex();
693    if (Token.isNot(MIToken::NamedRegister))
694      return error("expected a named register");
695    if (parseRegister(Reg))
696      return true;
697    lex();
698    if (Token.isNot(MIToken::Eof))
699      return error("expected end of string after the register reference");
700    return false;
701  }
702  
parseStandaloneVirtualRegister(unsigned & Reg)703  bool MIParser::parseStandaloneVirtualRegister(unsigned &Reg) {
704    lex();
705    if (Token.isNot(MIToken::VirtualRegister))
706      return error("expected a virtual register");
707    if (parseRegister(Reg))
708      return true;
709    lex();
710    if (Token.isNot(MIToken::Eof))
711      return error("expected end of string after the register reference");
712    return false;
713  }
714  
parseStandaloneStackObject(int & FI)715  bool MIParser::parseStandaloneStackObject(int &FI) {
716    lex();
717    if (Token.isNot(MIToken::StackObject))
718      return error("expected a stack object");
719    if (parseStackFrameIndex(FI))
720      return true;
721    if (Token.isNot(MIToken::Eof))
722      return error("expected end of string after the stack object reference");
723    return false;
724  }
725  
parseStandaloneMDNode(MDNode * & Node)726  bool MIParser::parseStandaloneMDNode(MDNode *&Node) {
727    lex();
728    if (Token.isNot(MIToken::exclaim))
729      return error("expected a metadata node");
730    if (parseMDNode(Node))
731      return true;
732    if (Token.isNot(MIToken::Eof))
733      return error("expected end of string after the metadata node");
734    return false;
735  }
736  
printImplicitRegisterFlag(const MachineOperand & MO)737  static const char *printImplicitRegisterFlag(const MachineOperand &MO) {
738    assert(MO.isImplicit());
739    return MO.isDef() ? "implicit-def" : "implicit";
740  }
741  
getRegisterName(const TargetRegisterInfo * TRI,unsigned Reg)742  static std::string getRegisterName(const TargetRegisterInfo *TRI,
743                                     unsigned Reg) {
744    assert(TargetRegisterInfo::isPhysicalRegister(Reg) && "expected phys reg");
745    return StringRef(TRI->getName(Reg)).lower();
746  }
747  
748  /// Return true if the parsed machine operands contain a given machine operand.
isImplicitOperandIn(const MachineOperand & ImplicitOperand,ArrayRef<ParsedMachineOperand> Operands)749  static bool isImplicitOperandIn(const MachineOperand &ImplicitOperand,
750                                  ArrayRef<ParsedMachineOperand> Operands) {
751    for (const auto &I : Operands) {
752      if (ImplicitOperand.isIdenticalTo(I.Operand))
753        return true;
754    }
755    return false;
756  }
757  
verifyImplicitOperands(ArrayRef<ParsedMachineOperand> Operands,const MCInstrDesc & MCID)758  bool MIParser::verifyImplicitOperands(ArrayRef<ParsedMachineOperand> Operands,
759                                        const MCInstrDesc &MCID) {
760    if (MCID.isCall())
761      // We can't verify call instructions as they can contain arbitrary implicit
762      // register and register mask operands.
763      return false;
764  
765    // Gather all the expected implicit operands.
766    SmallVector<MachineOperand, 4> ImplicitOperands;
767    if (MCID.ImplicitDefs)
768      for (const MCPhysReg *ImpDefs = MCID.getImplicitDefs(); *ImpDefs; ++ImpDefs)
769        ImplicitOperands.push_back(
770            MachineOperand::CreateReg(*ImpDefs, true, true));
771    if (MCID.ImplicitUses)
772      for (const MCPhysReg *ImpUses = MCID.getImplicitUses(); *ImpUses; ++ImpUses)
773        ImplicitOperands.push_back(
774            MachineOperand::CreateReg(*ImpUses, false, true));
775  
776    const auto *TRI = MF.getSubtarget().getRegisterInfo();
777    assert(TRI && "Expected target register info");
778    for (const auto &I : ImplicitOperands) {
779      if (isImplicitOperandIn(I, Operands))
780        continue;
781      return error(Operands.empty() ? Token.location() : Operands.back().End,
782                   Twine("missing implicit register operand '") +
783                       printImplicitRegisterFlag(I) + " %" +
784                       getRegisterName(TRI, I.getReg()) + "'");
785    }
786    return false;
787  }
788  
parseInstruction(unsigned & OpCode,unsigned & Flags)789  bool MIParser::parseInstruction(unsigned &OpCode, unsigned &Flags) {
790    if (Token.is(MIToken::kw_frame_setup)) {
791      Flags |= MachineInstr::FrameSetup;
792      lex();
793    }
794    if (Token.isNot(MIToken::Identifier))
795      return error("expected a machine instruction");
796    StringRef InstrName = Token.stringValue();
797    if (parseInstrName(InstrName, OpCode))
798      return error(Twine("unknown machine instruction name '") + InstrName + "'");
799    lex();
800    return false;
801  }
802  
parseRegister(unsigned & Reg)803  bool MIParser::parseRegister(unsigned &Reg) {
804    switch (Token.kind()) {
805    case MIToken::underscore:
806      Reg = 0;
807      break;
808    case MIToken::NamedRegister: {
809      StringRef Name = Token.stringValue();
810      if (getRegisterByName(Name, Reg))
811        return error(Twine("unknown register name '") + Name + "'");
812      break;
813    }
814    case MIToken::VirtualRegister: {
815      unsigned ID;
816      if (getUnsigned(ID))
817        return true;
818      const auto RegInfo = PFS.VirtualRegisterSlots.find(ID);
819      if (RegInfo == PFS.VirtualRegisterSlots.end())
820        return error(Twine("use of undefined virtual register '%") + Twine(ID) +
821                     "'");
822      Reg = RegInfo->second;
823      break;
824    }
825    // TODO: Parse other register kinds.
826    default:
827      llvm_unreachable("The current token should be a register");
828    }
829    return false;
830  }
831  
parseRegisterFlag(unsigned & Flags)832  bool MIParser::parseRegisterFlag(unsigned &Flags) {
833    const unsigned OldFlags = Flags;
834    switch (Token.kind()) {
835    case MIToken::kw_implicit:
836      Flags |= RegState::Implicit;
837      break;
838    case MIToken::kw_implicit_define:
839      Flags |= RegState::ImplicitDefine;
840      break;
841    case MIToken::kw_def:
842      Flags |= RegState::Define;
843      break;
844    case MIToken::kw_dead:
845      Flags |= RegState::Dead;
846      break;
847    case MIToken::kw_killed:
848      Flags |= RegState::Kill;
849      break;
850    case MIToken::kw_undef:
851      Flags |= RegState::Undef;
852      break;
853    case MIToken::kw_internal:
854      Flags |= RegState::InternalRead;
855      break;
856    case MIToken::kw_early_clobber:
857      Flags |= RegState::EarlyClobber;
858      break;
859    case MIToken::kw_debug_use:
860      Flags |= RegState::Debug;
861      break;
862    default:
863      llvm_unreachable("The current token should be a register flag");
864    }
865    if (OldFlags == Flags)
866      // We know that the same flag is specified more than once when the flags
867      // weren't modified.
868      return error("duplicate '" + Token.stringValue() + "' register flag");
869    lex();
870    return false;
871  }
872  
parseSubRegisterIndex(unsigned & SubReg)873  bool MIParser::parseSubRegisterIndex(unsigned &SubReg) {
874    assert(Token.is(MIToken::colon));
875    lex();
876    if (Token.isNot(MIToken::Identifier))
877      return error("expected a subregister index after ':'");
878    auto Name = Token.stringValue();
879    SubReg = getSubRegIndex(Name);
880    if (!SubReg)
881      return error(Twine("use of unknown subregister index '") + Name + "'");
882    lex();
883    return false;
884  }
885  
parseRegisterTiedDefIndex(unsigned & TiedDefIdx)886  bool MIParser::parseRegisterTiedDefIndex(unsigned &TiedDefIdx) {
887    if (!consumeIfPresent(MIToken::kw_tied_def))
888      return error("expected 'tied-def' after '('");
889    if (Token.isNot(MIToken::IntegerLiteral))
890      return error("expected an integer literal after 'tied-def'");
891    if (getUnsigned(TiedDefIdx))
892      return true;
893    lex();
894    if (expectAndConsume(MIToken::rparen))
895      return true;
896    return false;
897  }
898  
parseSize(unsigned & Size)899  bool MIParser::parseSize(unsigned &Size) {
900    if (Token.isNot(MIToken::IntegerLiteral))
901      return error("expected an integer literal for the size");
902    if (getUnsigned(Size))
903      return true;
904    lex();
905    if (expectAndConsume(MIToken::rparen))
906      return true;
907    return false;
908  }
909  
assignRegisterTies(MachineInstr & MI,ArrayRef<ParsedMachineOperand> Operands)910  bool MIParser::assignRegisterTies(MachineInstr &MI,
911                                    ArrayRef<ParsedMachineOperand> Operands) {
912    SmallVector<std::pair<unsigned, unsigned>, 4> TiedRegisterPairs;
913    for (unsigned I = 0, E = Operands.size(); I != E; ++I) {
914      if (!Operands[I].TiedDefIdx)
915        continue;
916      // The parser ensures that this operand is a register use, so we just have
917      // to check the tied-def operand.
918      unsigned DefIdx = Operands[I].TiedDefIdx.getValue();
919      if (DefIdx >= E)
920        return error(Operands[I].Begin,
921                     Twine("use of invalid tied-def operand index '" +
922                           Twine(DefIdx) + "'; instruction has only ") +
923                         Twine(E) + " operands");
924      const auto &DefOperand = Operands[DefIdx].Operand;
925      if (!DefOperand.isReg() || !DefOperand.isDef())
926        // FIXME: add note with the def operand.
927        return error(Operands[I].Begin,
928                     Twine("use of invalid tied-def operand index '") +
929                         Twine(DefIdx) + "'; the operand #" + Twine(DefIdx) +
930                         " isn't a defined register");
931      // Check that the tied-def operand wasn't tied elsewhere.
932      for (const auto &TiedPair : TiedRegisterPairs) {
933        if (TiedPair.first == DefIdx)
934          return error(Operands[I].Begin,
935                       Twine("the tied-def operand #") + Twine(DefIdx) +
936                           " is already tied with another register operand");
937      }
938      TiedRegisterPairs.push_back(std::make_pair(DefIdx, I));
939    }
940    // FIXME: Verify that for non INLINEASM instructions, the def and use tied
941    // indices must be less than tied max.
942    for (const auto &TiedPair : TiedRegisterPairs)
943      MI.tieOperands(TiedPair.first, TiedPair.second);
944    return false;
945  }
946  
parseRegisterOperand(MachineOperand & Dest,Optional<unsigned> & TiedDefIdx,bool IsDef)947  bool MIParser::parseRegisterOperand(MachineOperand &Dest,
948                                      Optional<unsigned> &TiedDefIdx,
949                                      bool IsDef) {
950    unsigned Reg;
951    unsigned Flags = IsDef ? RegState::Define : 0;
952    while (Token.isRegisterFlag()) {
953      if (parseRegisterFlag(Flags))
954        return true;
955    }
956    if (!Token.isRegister())
957      return error("expected a register after register flags");
958    if (parseRegister(Reg))
959      return true;
960    lex();
961    unsigned SubReg = 0;
962    if (Token.is(MIToken::colon)) {
963      if (parseSubRegisterIndex(SubReg))
964        return true;
965    }
966    if ((Flags & RegState::Define) == 0) {
967      if (consumeIfPresent(MIToken::lparen)) {
968        unsigned Idx;
969        if (parseRegisterTiedDefIndex(Idx))
970          return true;
971        TiedDefIdx = Idx;
972      }
973    } else if (consumeIfPresent(MIToken::lparen)) {
974      // Virtual registers may have a size with GlobalISel.
975      if (!TargetRegisterInfo::isVirtualRegister(Reg))
976        return error("unexpected size on physical register");
977      unsigned Size;
978      if (parseSize(Size))
979        return true;
980  
981      MachineRegisterInfo &MRI = MF.getRegInfo();
982      MRI.setSize(Reg, Size);
983    } else if (PFS.GenericVRegs.count(Reg)) {
984      // Generic virtual registers must have a size.
985      // If we end up here this means the size hasn't been specified and
986      // this is bad!
987      return error("generic virtual registers must have a size");
988    }
989    Dest = MachineOperand::CreateReg(
990        Reg, Flags & RegState::Define, Flags & RegState::Implicit,
991        Flags & RegState::Kill, Flags & RegState::Dead, Flags & RegState::Undef,
992        Flags & RegState::EarlyClobber, SubReg, Flags & RegState::Debug,
993        Flags & RegState::InternalRead);
994    return false;
995  }
996  
parseImmediateOperand(MachineOperand & Dest)997  bool MIParser::parseImmediateOperand(MachineOperand &Dest) {
998    assert(Token.is(MIToken::IntegerLiteral));
999    const APSInt &Int = Token.integerValue();
1000    if (Int.getMinSignedBits() > 64)
1001      return error("integer literal is too large to be an immediate operand");
1002    Dest = MachineOperand::CreateImm(Int.getExtValue());
1003    lex();
1004    return false;
1005  }
1006  
parseIRConstant(StringRef::iterator Loc,StringRef StringValue,const Constant * & C)1007  bool MIParser::parseIRConstant(StringRef::iterator Loc, StringRef StringValue,
1008                                 const Constant *&C) {
1009    auto Source = StringValue.str(); // The source has to be null terminated.
1010    SMDiagnostic Err;
1011    C = parseConstantValue(Source.c_str(), Err, *MF.getFunction()->getParent(),
1012                           &PFS.IRSlots);
1013    if (!C)
1014      return error(Loc + Err.getColumnNo(), Err.getMessage());
1015    return false;
1016  }
1017  
parseIRConstant(StringRef::iterator Loc,const Constant * & C)1018  bool MIParser::parseIRConstant(StringRef::iterator Loc, const Constant *&C) {
1019    if (parseIRConstant(Loc, StringRef(Loc, Token.range().end() - Loc), C))
1020      return true;
1021    lex();
1022    return false;
1023  }
1024  
parseIRType(StringRef::iterator Loc,StringRef StringValue,unsigned & Read,Type * & Ty)1025  bool MIParser::parseIRType(StringRef::iterator Loc, StringRef StringValue,
1026                             unsigned &Read, Type *&Ty) {
1027    auto Source = StringValue.str(); // The source has to be null terminated.
1028    SMDiagnostic Err;
1029    Ty = parseTypeAtBeginning(Source.c_str(), Read, Err,
1030                              *MF.getFunction()->getParent(), &PFS.IRSlots);
1031    if (!Ty)
1032      return error(Loc + Err.getColumnNo(), Err.getMessage());
1033    return false;
1034  }
1035  
parseIRType(StringRef::iterator Loc,Type * & Ty,bool MustBeSized)1036  bool MIParser::parseIRType(StringRef::iterator Loc, Type *&Ty,
1037                             bool MustBeSized) {
1038    // At this point we enter in the IR world, i.e., to get the correct type,
1039    // we need to hand off the whole string, not just the current token.
1040    // E.g., <4 x i64> would give '<' as a token and there is not much
1041    // the IR parser can do with that.
1042    unsigned Read = 0;
1043    if (parseIRType(Loc, StringRef(Loc), Read, Ty))
1044      return true;
1045    // The type must be sized, otherwise there is not much the backend
1046    // can do with it.
1047    if (MustBeSized && !Ty->isSized())
1048      return error("expected a sized type");
1049    // The next token is Read characters from the Loc.
1050    // However, the current location is not Loc, but Loc + the length of Token.
1051    // Therefore, subtract the length of Token (range().end() - Loc) to the
1052    // number of characters to skip before the next token.
1053    lex(Read - (Token.range().end() - Loc));
1054    return false;
1055  }
1056  
parseTypedImmediateOperand(MachineOperand & Dest)1057  bool MIParser::parseTypedImmediateOperand(MachineOperand &Dest) {
1058    assert(Token.is(MIToken::IntegerType));
1059    auto Loc = Token.location();
1060    lex();
1061    if (Token.isNot(MIToken::IntegerLiteral))
1062      return error("expected an integer literal");
1063    const Constant *C = nullptr;
1064    if (parseIRConstant(Loc, C))
1065      return true;
1066    Dest = MachineOperand::CreateCImm(cast<ConstantInt>(C));
1067    return false;
1068  }
1069  
parseFPImmediateOperand(MachineOperand & Dest)1070  bool MIParser::parseFPImmediateOperand(MachineOperand &Dest) {
1071    auto Loc = Token.location();
1072    lex();
1073    if (Token.isNot(MIToken::FloatingPointLiteral))
1074      return error("expected a floating point literal");
1075    const Constant *C = nullptr;
1076    if (parseIRConstant(Loc, C))
1077      return true;
1078    Dest = MachineOperand::CreateFPImm(cast<ConstantFP>(C));
1079    return false;
1080  }
1081  
getUnsigned(unsigned & Result)1082  bool MIParser::getUnsigned(unsigned &Result) {
1083    assert(Token.hasIntegerValue() && "Expected a token with an integer value");
1084    const uint64_t Limit = uint64_t(std::numeric_limits<unsigned>::max()) + 1;
1085    uint64_t Val64 = Token.integerValue().getLimitedValue(Limit);
1086    if (Val64 == Limit)
1087      return error("expected 32-bit integer (too large)");
1088    Result = Val64;
1089    return false;
1090  }
1091  
parseMBBReference(MachineBasicBlock * & MBB)1092  bool MIParser::parseMBBReference(MachineBasicBlock *&MBB) {
1093    assert(Token.is(MIToken::MachineBasicBlock) ||
1094           Token.is(MIToken::MachineBasicBlockLabel));
1095    unsigned Number;
1096    if (getUnsigned(Number))
1097      return true;
1098    auto MBBInfo = PFS.MBBSlots.find(Number);
1099    if (MBBInfo == PFS.MBBSlots.end())
1100      return error(Twine("use of undefined machine basic block #") +
1101                   Twine(Number));
1102    MBB = MBBInfo->second;
1103    if (!Token.stringValue().empty() && Token.stringValue() != MBB->getName())
1104      return error(Twine("the name of machine basic block #") + Twine(Number) +
1105                   " isn't '" + Token.stringValue() + "'");
1106    return false;
1107  }
1108  
parseMBBOperand(MachineOperand & Dest)1109  bool MIParser::parseMBBOperand(MachineOperand &Dest) {
1110    MachineBasicBlock *MBB;
1111    if (parseMBBReference(MBB))
1112      return true;
1113    Dest = MachineOperand::CreateMBB(MBB);
1114    lex();
1115    return false;
1116  }
1117  
parseStackFrameIndex(int & FI)1118  bool MIParser::parseStackFrameIndex(int &FI) {
1119    assert(Token.is(MIToken::StackObject));
1120    unsigned ID;
1121    if (getUnsigned(ID))
1122      return true;
1123    auto ObjectInfo = PFS.StackObjectSlots.find(ID);
1124    if (ObjectInfo == PFS.StackObjectSlots.end())
1125      return error(Twine("use of undefined stack object '%stack.") + Twine(ID) +
1126                   "'");
1127    StringRef Name;
1128    if (const auto *Alloca =
1129            MF.getFrameInfo()->getObjectAllocation(ObjectInfo->second))
1130      Name = Alloca->getName();
1131    if (!Token.stringValue().empty() && Token.stringValue() != Name)
1132      return error(Twine("the name of the stack object '%stack.") + Twine(ID) +
1133                   "' isn't '" + Token.stringValue() + "'");
1134    lex();
1135    FI = ObjectInfo->second;
1136    return false;
1137  }
1138  
parseStackObjectOperand(MachineOperand & Dest)1139  bool MIParser::parseStackObjectOperand(MachineOperand &Dest) {
1140    int FI;
1141    if (parseStackFrameIndex(FI))
1142      return true;
1143    Dest = MachineOperand::CreateFI(FI);
1144    return false;
1145  }
1146  
parseFixedStackFrameIndex(int & FI)1147  bool MIParser::parseFixedStackFrameIndex(int &FI) {
1148    assert(Token.is(MIToken::FixedStackObject));
1149    unsigned ID;
1150    if (getUnsigned(ID))
1151      return true;
1152    auto ObjectInfo = PFS.FixedStackObjectSlots.find(ID);
1153    if (ObjectInfo == PFS.FixedStackObjectSlots.end())
1154      return error(Twine("use of undefined fixed stack object '%fixed-stack.") +
1155                   Twine(ID) + "'");
1156    lex();
1157    FI = ObjectInfo->second;
1158    return false;
1159  }
1160  
parseFixedStackObjectOperand(MachineOperand & Dest)1161  bool MIParser::parseFixedStackObjectOperand(MachineOperand &Dest) {
1162    int FI;
1163    if (parseFixedStackFrameIndex(FI))
1164      return true;
1165    Dest = MachineOperand::CreateFI(FI);
1166    return false;
1167  }
1168  
parseGlobalValue(GlobalValue * & GV)1169  bool MIParser::parseGlobalValue(GlobalValue *&GV) {
1170    switch (Token.kind()) {
1171    case MIToken::NamedGlobalValue: {
1172      const Module *M = MF.getFunction()->getParent();
1173      GV = M->getNamedValue(Token.stringValue());
1174      if (!GV)
1175        return error(Twine("use of undefined global value '") + Token.range() +
1176                     "'");
1177      break;
1178    }
1179    case MIToken::GlobalValue: {
1180      unsigned GVIdx;
1181      if (getUnsigned(GVIdx))
1182        return true;
1183      if (GVIdx >= PFS.IRSlots.GlobalValues.size())
1184        return error(Twine("use of undefined global value '@") + Twine(GVIdx) +
1185                     "'");
1186      GV = PFS.IRSlots.GlobalValues[GVIdx];
1187      break;
1188    }
1189    default:
1190      llvm_unreachable("The current token should be a global value");
1191    }
1192    return false;
1193  }
1194  
parseGlobalAddressOperand(MachineOperand & Dest)1195  bool MIParser::parseGlobalAddressOperand(MachineOperand &Dest) {
1196    GlobalValue *GV = nullptr;
1197    if (parseGlobalValue(GV))
1198      return true;
1199    lex();
1200    Dest = MachineOperand::CreateGA(GV, /*Offset=*/0);
1201    if (parseOperandsOffset(Dest))
1202      return true;
1203    return false;
1204  }
1205  
parseConstantPoolIndexOperand(MachineOperand & Dest)1206  bool MIParser::parseConstantPoolIndexOperand(MachineOperand &Dest) {
1207    assert(Token.is(MIToken::ConstantPoolItem));
1208    unsigned ID;
1209    if (getUnsigned(ID))
1210      return true;
1211    auto ConstantInfo = PFS.ConstantPoolSlots.find(ID);
1212    if (ConstantInfo == PFS.ConstantPoolSlots.end())
1213      return error("use of undefined constant '%const." + Twine(ID) + "'");
1214    lex();
1215    Dest = MachineOperand::CreateCPI(ID, /*Offset=*/0);
1216    if (parseOperandsOffset(Dest))
1217      return true;
1218    return false;
1219  }
1220  
parseJumpTableIndexOperand(MachineOperand & Dest)1221  bool MIParser::parseJumpTableIndexOperand(MachineOperand &Dest) {
1222    assert(Token.is(MIToken::JumpTableIndex));
1223    unsigned ID;
1224    if (getUnsigned(ID))
1225      return true;
1226    auto JumpTableEntryInfo = PFS.JumpTableSlots.find(ID);
1227    if (JumpTableEntryInfo == PFS.JumpTableSlots.end())
1228      return error("use of undefined jump table '%jump-table." + Twine(ID) + "'");
1229    lex();
1230    Dest = MachineOperand::CreateJTI(JumpTableEntryInfo->second);
1231    return false;
1232  }
1233  
parseExternalSymbolOperand(MachineOperand & Dest)1234  bool MIParser::parseExternalSymbolOperand(MachineOperand &Dest) {
1235    assert(Token.is(MIToken::ExternalSymbol));
1236    const char *Symbol = MF.createExternalSymbolName(Token.stringValue());
1237    lex();
1238    Dest = MachineOperand::CreateES(Symbol);
1239    if (parseOperandsOffset(Dest))
1240      return true;
1241    return false;
1242  }
1243  
parseSubRegisterIndexOperand(MachineOperand & Dest)1244  bool MIParser::parseSubRegisterIndexOperand(MachineOperand &Dest) {
1245    assert(Token.is(MIToken::SubRegisterIndex));
1246    StringRef Name = Token.stringValue();
1247    unsigned SubRegIndex = getSubRegIndex(Token.stringValue());
1248    if (SubRegIndex == 0)
1249      return error(Twine("unknown subregister index '") + Name + "'");
1250    lex();
1251    Dest = MachineOperand::CreateImm(SubRegIndex);
1252    return false;
1253  }
1254  
parseMDNode(MDNode * & Node)1255  bool MIParser::parseMDNode(MDNode *&Node) {
1256    assert(Token.is(MIToken::exclaim));
1257    auto Loc = Token.location();
1258    lex();
1259    if (Token.isNot(MIToken::IntegerLiteral) || Token.integerValue().isSigned())
1260      return error("expected metadata id after '!'");
1261    unsigned ID;
1262    if (getUnsigned(ID))
1263      return true;
1264    auto NodeInfo = PFS.IRSlots.MetadataNodes.find(ID);
1265    if (NodeInfo == PFS.IRSlots.MetadataNodes.end())
1266      return error(Loc, "use of undefined metadata '!" + Twine(ID) + "'");
1267    lex();
1268    Node = NodeInfo->second.get();
1269    return false;
1270  }
1271  
parseMetadataOperand(MachineOperand & Dest)1272  bool MIParser::parseMetadataOperand(MachineOperand &Dest) {
1273    MDNode *Node = nullptr;
1274    if (parseMDNode(Node))
1275      return true;
1276    Dest = MachineOperand::CreateMetadata(Node);
1277    return false;
1278  }
1279  
parseCFIOffset(int & Offset)1280  bool MIParser::parseCFIOffset(int &Offset) {
1281    if (Token.isNot(MIToken::IntegerLiteral))
1282      return error("expected a cfi offset");
1283    if (Token.integerValue().getMinSignedBits() > 32)
1284      return error("expected a 32 bit integer (the cfi offset is too large)");
1285    Offset = (int)Token.integerValue().getExtValue();
1286    lex();
1287    return false;
1288  }
1289  
parseCFIRegister(unsigned & Reg)1290  bool MIParser::parseCFIRegister(unsigned &Reg) {
1291    if (Token.isNot(MIToken::NamedRegister))
1292      return error("expected a cfi register");
1293    unsigned LLVMReg;
1294    if (parseRegister(LLVMReg))
1295      return true;
1296    const auto *TRI = MF.getSubtarget().getRegisterInfo();
1297    assert(TRI && "Expected target register info");
1298    int DwarfReg = TRI->getDwarfRegNum(LLVMReg, true);
1299    if (DwarfReg < 0)
1300      return error("invalid DWARF register");
1301    Reg = (unsigned)DwarfReg;
1302    lex();
1303    return false;
1304  }
1305  
parseCFIOperand(MachineOperand & Dest)1306  bool MIParser::parseCFIOperand(MachineOperand &Dest) {
1307    auto Kind = Token.kind();
1308    lex();
1309    auto &MMI = MF.getMMI();
1310    int Offset;
1311    unsigned Reg;
1312    unsigned CFIIndex;
1313    switch (Kind) {
1314    case MIToken::kw_cfi_same_value:
1315      if (parseCFIRegister(Reg))
1316        return true;
1317      CFIIndex =
1318          MMI.addFrameInst(MCCFIInstruction::createSameValue(nullptr, Reg));
1319      break;
1320    case MIToken::kw_cfi_offset:
1321      if (parseCFIRegister(Reg) || expectAndConsume(MIToken::comma) ||
1322          parseCFIOffset(Offset))
1323        return true;
1324      CFIIndex =
1325          MMI.addFrameInst(MCCFIInstruction::createOffset(nullptr, Reg, Offset));
1326      break;
1327    case MIToken::kw_cfi_def_cfa_register:
1328      if (parseCFIRegister(Reg))
1329        return true;
1330      CFIIndex =
1331          MMI.addFrameInst(MCCFIInstruction::createDefCfaRegister(nullptr, Reg));
1332      break;
1333    case MIToken::kw_cfi_def_cfa_offset:
1334      if (parseCFIOffset(Offset))
1335        return true;
1336      // NB: MCCFIInstruction::createDefCfaOffset negates the offset.
1337      CFIIndex = MMI.addFrameInst(
1338          MCCFIInstruction::createDefCfaOffset(nullptr, -Offset));
1339      break;
1340    case MIToken::kw_cfi_def_cfa:
1341      if (parseCFIRegister(Reg) || expectAndConsume(MIToken::comma) ||
1342          parseCFIOffset(Offset))
1343        return true;
1344      // NB: MCCFIInstruction::createDefCfa negates the offset.
1345      CFIIndex =
1346          MMI.addFrameInst(MCCFIInstruction::createDefCfa(nullptr, Reg, -Offset));
1347      break;
1348    default:
1349      // TODO: Parse the other CFI operands.
1350      llvm_unreachable("The current token should be a cfi operand");
1351    }
1352    Dest = MachineOperand::CreateCFIIndex(CFIIndex);
1353    return false;
1354  }
1355  
parseIRBlock(BasicBlock * & BB,const Function & F)1356  bool MIParser::parseIRBlock(BasicBlock *&BB, const Function &F) {
1357    switch (Token.kind()) {
1358    case MIToken::NamedIRBlock: {
1359      BB = dyn_cast_or_null<BasicBlock>(
1360          F.getValueSymbolTable().lookup(Token.stringValue()));
1361      if (!BB)
1362        return error(Twine("use of undefined IR block '") + Token.range() + "'");
1363      break;
1364    }
1365    case MIToken::IRBlock: {
1366      unsigned SlotNumber = 0;
1367      if (getUnsigned(SlotNumber))
1368        return true;
1369      BB = const_cast<BasicBlock *>(getIRBlock(SlotNumber, F));
1370      if (!BB)
1371        return error(Twine("use of undefined IR block '%ir-block.") +
1372                     Twine(SlotNumber) + "'");
1373      break;
1374    }
1375    default:
1376      llvm_unreachable("The current token should be an IR block reference");
1377    }
1378    return false;
1379  }
1380  
parseBlockAddressOperand(MachineOperand & Dest)1381  bool MIParser::parseBlockAddressOperand(MachineOperand &Dest) {
1382    assert(Token.is(MIToken::kw_blockaddress));
1383    lex();
1384    if (expectAndConsume(MIToken::lparen))
1385      return true;
1386    if (Token.isNot(MIToken::GlobalValue) &&
1387        Token.isNot(MIToken::NamedGlobalValue))
1388      return error("expected a global value");
1389    GlobalValue *GV = nullptr;
1390    if (parseGlobalValue(GV))
1391      return true;
1392    auto *F = dyn_cast<Function>(GV);
1393    if (!F)
1394      return error("expected an IR function reference");
1395    lex();
1396    if (expectAndConsume(MIToken::comma))
1397      return true;
1398    BasicBlock *BB = nullptr;
1399    if (Token.isNot(MIToken::IRBlock) && Token.isNot(MIToken::NamedIRBlock))
1400      return error("expected an IR block reference");
1401    if (parseIRBlock(BB, *F))
1402      return true;
1403    lex();
1404    if (expectAndConsume(MIToken::rparen))
1405      return true;
1406    Dest = MachineOperand::CreateBA(BlockAddress::get(F, BB), /*Offset=*/0);
1407    if (parseOperandsOffset(Dest))
1408      return true;
1409    return false;
1410  }
1411  
parseTargetIndexOperand(MachineOperand & Dest)1412  bool MIParser::parseTargetIndexOperand(MachineOperand &Dest) {
1413    assert(Token.is(MIToken::kw_target_index));
1414    lex();
1415    if (expectAndConsume(MIToken::lparen))
1416      return true;
1417    if (Token.isNot(MIToken::Identifier))
1418      return error("expected the name of the target index");
1419    int Index = 0;
1420    if (getTargetIndex(Token.stringValue(), Index))
1421      return error("use of undefined target index '" + Token.stringValue() + "'");
1422    lex();
1423    if (expectAndConsume(MIToken::rparen))
1424      return true;
1425    Dest = MachineOperand::CreateTargetIndex(unsigned(Index), /*Offset=*/0);
1426    if (parseOperandsOffset(Dest))
1427      return true;
1428    return false;
1429  }
1430  
parseLiveoutRegisterMaskOperand(MachineOperand & Dest)1431  bool MIParser::parseLiveoutRegisterMaskOperand(MachineOperand &Dest) {
1432    assert(Token.is(MIToken::kw_liveout));
1433    const auto *TRI = MF.getSubtarget().getRegisterInfo();
1434    assert(TRI && "Expected target register info");
1435    uint32_t *Mask = MF.allocateRegisterMask(TRI->getNumRegs());
1436    lex();
1437    if (expectAndConsume(MIToken::lparen))
1438      return true;
1439    while (true) {
1440      if (Token.isNot(MIToken::NamedRegister))
1441        return error("expected a named register");
1442      unsigned Reg = 0;
1443      if (parseRegister(Reg))
1444        return true;
1445      lex();
1446      Mask[Reg / 32] |= 1U << (Reg % 32);
1447      // TODO: Report an error if the same register is used more than once.
1448      if (Token.isNot(MIToken::comma))
1449        break;
1450      lex();
1451    }
1452    if (expectAndConsume(MIToken::rparen))
1453      return true;
1454    Dest = MachineOperand::CreateRegLiveOut(Mask);
1455    return false;
1456  }
1457  
parseMachineOperand(MachineOperand & Dest,Optional<unsigned> & TiedDefIdx)1458  bool MIParser::parseMachineOperand(MachineOperand &Dest,
1459                                     Optional<unsigned> &TiedDefIdx) {
1460    switch (Token.kind()) {
1461    case MIToken::kw_implicit:
1462    case MIToken::kw_implicit_define:
1463    case MIToken::kw_def:
1464    case MIToken::kw_dead:
1465    case MIToken::kw_killed:
1466    case MIToken::kw_undef:
1467    case MIToken::kw_internal:
1468    case MIToken::kw_early_clobber:
1469    case MIToken::kw_debug_use:
1470    case MIToken::underscore:
1471    case MIToken::NamedRegister:
1472    case MIToken::VirtualRegister:
1473      return parseRegisterOperand(Dest, TiedDefIdx);
1474    case MIToken::IntegerLiteral:
1475      return parseImmediateOperand(Dest);
1476    case MIToken::IntegerType:
1477      return parseTypedImmediateOperand(Dest);
1478    case MIToken::kw_half:
1479    case MIToken::kw_float:
1480    case MIToken::kw_double:
1481    case MIToken::kw_x86_fp80:
1482    case MIToken::kw_fp128:
1483    case MIToken::kw_ppc_fp128:
1484      return parseFPImmediateOperand(Dest);
1485    case MIToken::MachineBasicBlock:
1486      return parseMBBOperand(Dest);
1487    case MIToken::StackObject:
1488      return parseStackObjectOperand(Dest);
1489    case MIToken::FixedStackObject:
1490      return parseFixedStackObjectOperand(Dest);
1491    case MIToken::GlobalValue:
1492    case MIToken::NamedGlobalValue:
1493      return parseGlobalAddressOperand(Dest);
1494    case MIToken::ConstantPoolItem:
1495      return parseConstantPoolIndexOperand(Dest);
1496    case MIToken::JumpTableIndex:
1497      return parseJumpTableIndexOperand(Dest);
1498    case MIToken::ExternalSymbol:
1499      return parseExternalSymbolOperand(Dest);
1500    case MIToken::SubRegisterIndex:
1501      return parseSubRegisterIndexOperand(Dest);
1502    case MIToken::exclaim:
1503      return parseMetadataOperand(Dest);
1504    case MIToken::kw_cfi_same_value:
1505    case MIToken::kw_cfi_offset:
1506    case MIToken::kw_cfi_def_cfa_register:
1507    case MIToken::kw_cfi_def_cfa_offset:
1508    case MIToken::kw_cfi_def_cfa:
1509      return parseCFIOperand(Dest);
1510    case MIToken::kw_blockaddress:
1511      return parseBlockAddressOperand(Dest);
1512    case MIToken::kw_target_index:
1513      return parseTargetIndexOperand(Dest);
1514    case MIToken::kw_liveout:
1515      return parseLiveoutRegisterMaskOperand(Dest);
1516    case MIToken::Error:
1517      return true;
1518    case MIToken::Identifier:
1519      if (const auto *RegMask = getRegMask(Token.stringValue())) {
1520        Dest = MachineOperand::CreateRegMask(RegMask);
1521        lex();
1522        break;
1523      }
1524    // fallthrough
1525    default:
1526      // FIXME: Parse the MCSymbol machine operand.
1527      return error("expected a machine operand");
1528    }
1529    return false;
1530  }
1531  
parseMachineOperandAndTargetFlags(MachineOperand & Dest,Optional<unsigned> & TiedDefIdx)1532  bool MIParser::parseMachineOperandAndTargetFlags(
1533      MachineOperand &Dest, Optional<unsigned> &TiedDefIdx) {
1534    unsigned TF = 0;
1535    bool HasTargetFlags = false;
1536    if (Token.is(MIToken::kw_target_flags)) {
1537      HasTargetFlags = true;
1538      lex();
1539      if (expectAndConsume(MIToken::lparen))
1540        return true;
1541      if (Token.isNot(MIToken::Identifier))
1542        return error("expected the name of the target flag");
1543      if (getDirectTargetFlag(Token.stringValue(), TF)) {
1544        if (getBitmaskTargetFlag(Token.stringValue(), TF))
1545          return error("use of undefined target flag '" + Token.stringValue() +
1546                       "'");
1547      }
1548      lex();
1549      while (Token.is(MIToken::comma)) {
1550        lex();
1551        if (Token.isNot(MIToken::Identifier))
1552          return error("expected the name of the target flag");
1553        unsigned BitFlag = 0;
1554        if (getBitmaskTargetFlag(Token.stringValue(), BitFlag))
1555          return error("use of undefined target flag '" + Token.stringValue() +
1556                       "'");
1557        // TODO: Report an error when using a duplicate bit target flag.
1558        TF |= BitFlag;
1559        lex();
1560      }
1561      if (expectAndConsume(MIToken::rparen))
1562        return true;
1563    }
1564    auto Loc = Token.location();
1565    if (parseMachineOperand(Dest, TiedDefIdx))
1566      return true;
1567    if (!HasTargetFlags)
1568      return false;
1569    if (Dest.isReg())
1570      return error(Loc, "register operands can't have target flags");
1571    Dest.setTargetFlags(TF);
1572    return false;
1573  }
1574  
parseOffset(int64_t & Offset)1575  bool MIParser::parseOffset(int64_t &Offset) {
1576    if (Token.isNot(MIToken::plus) && Token.isNot(MIToken::minus))
1577      return false;
1578    StringRef Sign = Token.range();
1579    bool IsNegative = Token.is(MIToken::minus);
1580    lex();
1581    if (Token.isNot(MIToken::IntegerLiteral))
1582      return error("expected an integer literal after '" + Sign + "'");
1583    if (Token.integerValue().getMinSignedBits() > 64)
1584      return error("expected 64-bit integer (too large)");
1585    Offset = Token.integerValue().getExtValue();
1586    if (IsNegative)
1587      Offset = -Offset;
1588    lex();
1589    return false;
1590  }
1591  
parseAlignment(unsigned & Alignment)1592  bool MIParser::parseAlignment(unsigned &Alignment) {
1593    assert(Token.is(MIToken::kw_align));
1594    lex();
1595    if (Token.isNot(MIToken::IntegerLiteral) || Token.integerValue().isSigned())
1596      return error("expected an integer literal after 'align'");
1597    if (getUnsigned(Alignment))
1598      return true;
1599    lex();
1600    return false;
1601  }
1602  
parseOperandsOffset(MachineOperand & Op)1603  bool MIParser::parseOperandsOffset(MachineOperand &Op) {
1604    int64_t Offset = 0;
1605    if (parseOffset(Offset))
1606      return true;
1607    Op.setOffset(Offset);
1608    return false;
1609  }
1610  
parseIRValue(const Value * & V)1611  bool MIParser::parseIRValue(const Value *&V) {
1612    switch (Token.kind()) {
1613    case MIToken::NamedIRValue: {
1614      V = MF.getFunction()->getValueSymbolTable().lookup(Token.stringValue());
1615      break;
1616    }
1617    case MIToken::IRValue: {
1618      unsigned SlotNumber = 0;
1619      if (getUnsigned(SlotNumber))
1620        return true;
1621      V = getIRValue(SlotNumber);
1622      break;
1623    }
1624    case MIToken::NamedGlobalValue:
1625    case MIToken::GlobalValue: {
1626      GlobalValue *GV = nullptr;
1627      if (parseGlobalValue(GV))
1628        return true;
1629      V = GV;
1630      break;
1631    }
1632    case MIToken::QuotedIRValue: {
1633      const Constant *C = nullptr;
1634      if (parseIRConstant(Token.location(), Token.stringValue(), C))
1635        return true;
1636      V = C;
1637      break;
1638    }
1639    default:
1640      llvm_unreachable("The current token should be an IR block reference");
1641    }
1642    if (!V)
1643      return error(Twine("use of undefined IR value '") + Token.range() + "'");
1644    return false;
1645  }
1646  
getUint64(uint64_t & Result)1647  bool MIParser::getUint64(uint64_t &Result) {
1648    assert(Token.hasIntegerValue());
1649    if (Token.integerValue().getActiveBits() > 64)
1650      return error("expected 64-bit integer (too large)");
1651    Result = Token.integerValue().getZExtValue();
1652    return false;
1653  }
1654  
parseMemoryOperandFlag(unsigned & Flags)1655  bool MIParser::parseMemoryOperandFlag(unsigned &Flags) {
1656    const unsigned OldFlags = Flags;
1657    switch (Token.kind()) {
1658    case MIToken::kw_volatile:
1659      Flags |= MachineMemOperand::MOVolatile;
1660      break;
1661    case MIToken::kw_non_temporal:
1662      Flags |= MachineMemOperand::MONonTemporal;
1663      break;
1664    case MIToken::kw_invariant:
1665      Flags |= MachineMemOperand::MOInvariant;
1666      break;
1667    // TODO: parse the target specific memory operand flags.
1668    default:
1669      llvm_unreachable("The current token should be a memory operand flag");
1670    }
1671    if (OldFlags == Flags)
1672      // We know that the same flag is specified more than once when the flags
1673      // weren't modified.
1674      return error("duplicate '" + Token.stringValue() + "' memory operand flag");
1675    lex();
1676    return false;
1677  }
1678  
parseMemoryPseudoSourceValue(const PseudoSourceValue * & PSV)1679  bool MIParser::parseMemoryPseudoSourceValue(const PseudoSourceValue *&PSV) {
1680    switch (Token.kind()) {
1681    case MIToken::kw_stack:
1682      PSV = MF.getPSVManager().getStack();
1683      break;
1684    case MIToken::kw_got:
1685      PSV = MF.getPSVManager().getGOT();
1686      break;
1687    case MIToken::kw_jump_table:
1688      PSV = MF.getPSVManager().getJumpTable();
1689      break;
1690    case MIToken::kw_constant_pool:
1691      PSV = MF.getPSVManager().getConstantPool();
1692      break;
1693    case MIToken::FixedStackObject: {
1694      int FI;
1695      if (parseFixedStackFrameIndex(FI))
1696        return true;
1697      PSV = MF.getPSVManager().getFixedStack(FI);
1698      // The token was already consumed, so use return here instead of break.
1699      return false;
1700    }
1701    case MIToken::StackObject: {
1702      int FI;
1703      if (parseStackFrameIndex(FI))
1704        return true;
1705      PSV = MF.getPSVManager().getFixedStack(FI);
1706      // The token was already consumed, so use return here instead of break.
1707      return false;
1708    }
1709    case MIToken::kw_call_entry: {
1710      lex();
1711      switch (Token.kind()) {
1712      case MIToken::GlobalValue:
1713      case MIToken::NamedGlobalValue: {
1714        GlobalValue *GV = nullptr;
1715        if (parseGlobalValue(GV))
1716          return true;
1717        PSV = MF.getPSVManager().getGlobalValueCallEntry(GV);
1718        break;
1719      }
1720      case MIToken::ExternalSymbol:
1721        PSV = MF.getPSVManager().getExternalSymbolCallEntry(
1722            MF.createExternalSymbolName(Token.stringValue()));
1723        break;
1724      default:
1725        return error(
1726            "expected a global value or an external symbol after 'call-entry'");
1727      }
1728      break;
1729    }
1730    default:
1731      llvm_unreachable("The current token should be pseudo source value");
1732    }
1733    lex();
1734    return false;
1735  }
1736  
parseMachinePointerInfo(MachinePointerInfo & Dest)1737  bool MIParser::parseMachinePointerInfo(MachinePointerInfo &Dest) {
1738    if (Token.is(MIToken::kw_constant_pool) || Token.is(MIToken::kw_stack) ||
1739        Token.is(MIToken::kw_got) || Token.is(MIToken::kw_jump_table) ||
1740        Token.is(MIToken::FixedStackObject) || Token.is(MIToken::StackObject) ||
1741        Token.is(MIToken::kw_call_entry)) {
1742      const PseudoSourceValue *PSV = nullptr;
1743      if (parseMemoryPseudoSourceValue(PSV))
1744        return true;
1745      int64_t Offset = 0;
1746      if (parseOffset(Offset))
1747        return true;
1748      Dest = MachinePointerInfo(PSV, Offset);
1749      return false;
1750    }
1751    if (Token.isNot(MIToken::NamedIRValue) && Token.isNot(MIToken::IRValue) &&
1752        Token.isNot(MIToken::GlobalValue) &&
1753        Token.isNot(MIToken::NamedGlobalValue) &&
1754        Token.isNot(MIToken::QuotedIRValue))
1755      return error("expected an IR value reference");
1756    const Value *V = nullptr;
1757    if (parseIRValue(V))
1758      return true;
1759    if (!V->getType()->isPointerTy())
1760      return error("expected a pointer IR value");
1761    lex();
1762    int64_t Offset = 0;
1763    if (parseOffset(Offset))
1764      return true;
1765    Dest = MachinePointerInfo(V, Offset);
1766    return false;
1767  }
1768  
parseMachineMemoryOperand(MachineMemOperand * & Dest)1769  bool MIParser::parseMachineMemoryOperand(MachineMemOperand *&Dest) {
1770    if (expectAndConsume(MIToken::lparen))
1771      return true;
1772    unsigned Flags = 0;
1773    while (Token.isMemoryOperandFlag()) {
1774      if (parseMemoryOperandFlag(Flags))
1775        return true;
1776    }
1777    if (Token.isNot(MIToken::Identifier) ||
1778        (Token.stringValue() != "load" && Token.stringValue() != "store"))
1779      return error("expected 'load' or 'store' memory operation");
1780    if (Token.stringValue() == "load")
1781      Flags |= MachineMemOperand::MOLoad;
1782    else
1783      Flags |= MachineMemOperand::MOStore;
1784    lex();
1785  
1786    if (Token.isNot(MIToken::IntegerLiteral))
1787      return error("expected the size integer literal after memory operation");
1788    uint64_t Size;
1789    if (getUint64(Size))
1790      return true;
1791    lex();
1792  
1793    MachinePointerInfo Ptr = MachinePointerInfo();
1794    if (Token.is(MIToken::Identifier)) {
1795      const char *Word = Flags & MachineMemOperand::MOLoad ? "from" : "into";
1796      if (Token.stringValue() != Word)
1797        return error(Twine("expected '") + Word + "'");
1798      lex();
1799  
1800      if (parseMachinePointerInfo(Ptr))
1801        return true;
1802    }
1803    unsigned BaseAlignment = Size;
1804    AAMDNodes AAInfo;
1805    MDNode *Range = nullptr;
1806    while (consumeIfPresent(MIToken::comma)) {
1807      switch (Token.kind()) {
1808      case MIToken::kw_align:
1809        if (parseAlignment(BaseAlignment))
1810          return true;
1811        break;
1812      case MIToken::md_tbaa:
1813        lex();
1814        if (parseMDNode(AAInfo.TBAA))
1815          return true;
1816        break;
1817      case MIToken::md_alias_scope:
1818        lex();
1819        if (parseMDNode(AAInfo.Scope))
1820          return true;
1821        break;
1822      case MIToken::md_noalias:
1823        lex();
1824        if (parseMDNode(AAInfo.NoAlias))
1825          return true;
1826        break;
1827      case MIToken::md_range:
1828        lex();
1829        if (parseMDNode(Range))
1830          return true;
1831        break;
1832      // TODO: Report an error on duplicate metadata nodes.
1833      default:
1834        return error("expected 'align' or '!tbaa' or '!alias.scope' or "
1835                     "'!noalias' or '!range'");
1836      }
1837    }
1838    if (expectAndConsume(MIToken::rparen))
1839      return true;
1840    Dest =
1841        MF.getMachineMemOperand(Ptr, Flags, Size, BaseAlignment, AAInfo, Range);
1842    return false;
1843  }
1844  
initNames2InstrOpCodes()1845  void MIParser::initNames2InstrOpCodes() {
1846    if (!Names2InstrOpCodes.empty())
1847      return;
1848    const auto *TII = MF.getSubtarget().getInstrInfo();
1849    assert(TII && "Expected target instruction info");
1850    for (unsigned I = 0, E = TII->getNumOpcodes(); I < E; ++I)
1851      Names2InstrOpCodes.insert(std::make_pair(StringRef(TII->getName(I)), I));
1852  }
1853  
parseInstrName(StringRef InstrName,unsigned & OpCode)1854  bool MIParser::parseInstrName(StringRef InstrName, unsigned &OpCode) {
1855    initNames2InstrOpCodes();
1856    auto InstrInfo = Names2InstrOpCodes.find(InstrName);
1857    if (InstrInfo == Names2InstrOpCodes.end())
1858      return true;
1859    OpCode = InstrInfo->getValue();
1860    return false;
1861  }
1862  
initNames2Regs()1863  void MIParser::initNames2Regs() {
1864    if (!Names2Regs.empty())
1865      return;
1866    // The '%noreg' register is the register 0.
1867    Names2Regs.insert(std::make_pair("noreg", 0));
1868    const auto *TRI = MF.getSubtarget().getRegisterInfo();
1869    assert(TRI && "Expected target register info");
1870    for (unsigned I = 0, E = TRI->getNumRegs(); I < E; ++I) {
1871      bool WasInserted =
1872          Names2Regs.insert(std::make_pair(StringRef(TRI->getName(I)).lower(), I))
1873              .second;
1874      (void)WasInserted;
1875      assert(WasInserted && "Expected registers to be unique case-insensitively");
1876    }
1877  }
1878  
getRegisterByName(StringRef RegName,unsigned & Reg)1879  bool MIParser::getRegisterByName(StringRef RegName, unsigned &Reg) {
1880    initNames2Regs();
1881    auto RegInfo = Names2Regs.find(RegName);
1882    if (RegInfo == Names2Regs.end())
1883      return true;
1884    Reg = RegInfo->getValue();
1885    return false;
1886  }
1887  
initNames2RegMasks()1888  void MIParser::initNames2RegMasks() {
1889    if (!Names2RegMasks.empty())
1890      return;
1891    const auto *TRI = MF.getSubtarget().getRegisterInfo();
1892    assert(TRI && "Expected target register info");
1893    ArrayRef<const uint32_t *> RegMasks = TRI->getRegMasks();
1894    ArrayRef<const char *> RegMaskNames = TRI->getRegMaskNames();
1895    assert(RegMasks.size() == RegMaskNames.size());
1896    for (size_t I = 0, E = RegMasks.size(); I < E; ++I)
1897      Names2RegMasks.insert(
1898          std::make_pair(StringRef(RegMaskNames[I]).lower(), RegMasks[I]));
1899  }
1900  
getRegMask(StringRef Identifier)1901  const uint32_t *MIParser::getRegMask(StringRef Identifier) {
1902    initNames2RegMasks();
1903    auto RegMaskInfo = Names2RegMasks.find(Identifier);
1904    if (RegMaskInfo == Names2RegMasks.end())
1905      return nullptr;
1906    return RegMaskInfo->getValue();
1907  }
1908  
initNames2SubRegIndices()1909  void MIParser::initNames2SubRegIndices() {
1910    if (!Names2SubRegIndices.empty())
1911      return;
1912    const TargetRegisterInfo *TRI = MF.getSubtarget().getRegisterInfo();
1913    for (unsigned I = 1, E = TRI->getNumSubRegIndices(); I < E; ++I)
1914      Names2SubRegIndices.insert(
1915          std::make_pair(StringRef(TRI->getSubRegIndexName(I)).lower(), I));
1916  }
1917  
getSubRegIndex(StringRef Name)1918  unsigned MIParser::getSubRegIndex(StringRef Name) {
1919    initNames2SubRegIndices();
1920    auto SubRegInfo = Names2SubRegIndices.find(Name);
1921    if (SubRegInfo == Names2SubRegIndices.end())
1922      return 0;
1923    return SubRegInfo->getValue();
1924  }
1925  
initSlots2BasicBlocks(const Function & F,DenseMap<unsigned,const BasicBlock * > & Slots2BasicBlocks)1926  static void initSlots2BasicBlocks(
1927      const Function &F,
1928      DenseMap<unsigned, const BasicBlock *> &Slots2BasicBlocks) {
1929    ModuleSlotTracker MST(F.getParent(), /*ShouldInitializeAllMetadata=*/false);
1930    MST.incorporateFunction(F);
1931    for (auto &BB : F) {
1932      if (BB.hasName())
1933        continue;
1934      int Slot = MST.getLocalSlot(&BB);
1935      if (Slot == -1)
1936        continue;
1937      Slots2BasicBlocks.insert(std::make_pair(unsigned(Slot), &BB));
1938    }
1939  }
1940  
getIRBlockFromSlot(unsigned Slot,const DenseMap<unsigned,const BasicBlock * > & Slots2BasicBlocks)1941  static const BasicBlock *getIRBlockFromSlot(
1942      unsigned Slot,
1943      const DenseMap<unsigned, const BasicBlock *> &Slots2BasicBlocks) {
1944    auto BlockInfo = Slots2BasicBlocks.find(Slot);
1945    if (BlockInfo == Slots2BasicBlocks.end())
1946      return nullptr;
1947    return BlockInfo->second;
1948  }
1949  
getIRBlock(unsigned Slot)1950  const BasicBlock *MIParser::getIRBlock(unsigned Slot) {
1951    if (Slots2BasicBlocks.empty())
1952      initSlots2BasicBlocks(*MF.getFunction(), Slots2BasicBlocks);
1953    return getIRBlockFromSlot(Slot, Slots2BasicBlocks);
1954  }
1955  
getIRBlock(unsigned Slot,const Function & F)1956  const BasicBlock *MIParser::getIRBlock(unsigned Slot, const Function &F) {
1957    if (&F == MF.getFunction())
1958      return getIRBlock(Slot);
1959    DenseMap<unsigned, const BasicBlock *> CustomSlots2BasicBlocks;
1960    initSlots2BasicBlocks(F, CustomSlots2BasicBlocks);
1961    return getIRBlockFromSlot(Slot, CustomSlots2BasicBlocks);
1962  }
1963  
mapValueToSlot(const Value * V,ModuleSlotTracker & MST,DenseMap<unsigned,const Value * > & Slots2Values)1964  static void mapValueToSlot(const Value *V, ModuleSlotTracker &MST,
1965                             DenseMap<unsigned, const Value *> &Slots2Values) {
1966    int Slot = MST.getLocalSlot(V);
1967    if (Slot == -1)
1968      return;
1969    Slots2Values.insert(std::make_pair(unsigned(Slot), V));
1970  }
1971  
1972  /// Creates the mapping from slot numbers to function's unnamed IR values.
initSlots2Values(const Function & F,DenseMap<unsigned,const Value * > & Slots2Values)1973  static void initSlots2Values(const Function &F,
1974                               DenseMap<unsigned, const Value *> &Slots2Values) {
1975    ModuleSlotTracker MST(F.getParent(), /*ShouldInitializeAllMetadata=*/false);
1976    MST.incorporateFunction(F);
1977    for (const auto &Arg : F.args())
1978      mapValueToSlot(&Arg, MST, Slots2Values);
1979    for (const auto &BB : F) {
1980      mapValueToSlot(&BB, MST, Slots2Values);
1981      for (const auto &I : BB)
1982        mapValueToSlot(&I, MST, Slots2Values);
1983    }
1984  }
1985  
getIRValue(unsigned Slot)1986  const Value *MIParser::getIRValue(unsigned Slot) {
1987    if (Slots2Values.empty())
1988      initSlots2Values(*MF.getFunction(), Slots2Values);
1989    auto ValueInfo = Slots2Values.find(Slot);
1990    if (ValueInfo == Slots2Values.end())
1991      return nullptr;
1992    return ValueInfo->second;
1993  }
1994  
initNames2TargetIndices()1995  void MIParser::initNames2TargetIndices() {
1996    if (!Names2TargetIndices.empty())
1997      return;
1998    const auto *TII = MF.getSubtarget().getInstrInfo();
1999    assert(TII && "Expected target instruction info");
2000    auto Indices = TII->getSerializableTargetIndices();
2001    for (const auto &I : Indices)
2002      Names2TargetIndices.insert(std::make_pair(StringRef(I.second), I.first));
2003  }
2004  
getTargetIndex(StringRef Name,int & Index)2005  bool MIParser::getTargetIndex(StringRef Name, int &Index) {
2006    initNames2TargetIndices();
2007    auto IndexInfo = Names2TargetIndices.find(Name);
2008    if (IndexInfo == Names2TargetIndices.end())
2009      return true;
2010    Index = IndexInfo->second;
2011    return false;
2012  }
2013  
initNames2DirectTargetFlags()2014  void MIParser::initNames2DirectTargetFlags() {
2015    if (!Names2DirectTargetFlags.empty())
2016      return;
2017    const auto *TII = MF.getSubtarget().getInstrInfo();
2018    assert(TII && "Expected target instruction info");
2019    auto Flags = TII->getSerializableDirectMachineOperandTargetFlags();
2020    for (const auto &I : Flags)
2021      Names2DirectTargetFlags.insert(
2022          std::make_pair(StringRef(I.second), I.first));
2023  }
2024  
getDirectTargetFlag(StringRef Name,unsigned & Flag)2025  bool MIParser::getDirectTargetFlag(StringRef Name, unsigned &Flag) {
2026    initNames2DirectTargetFlags();
2027    auto FlagInfo = Names2DirectTargetFlags.find(Name);
2028    if (FlagInfo == Names2DirectTargetFlags.end())
2029      return true;
2030    Flag = FlagInfo->second;
2031    return false;
2032  }
2033  
initNames2BitmaskTargetFlags()2034  void MIParser::initNames2BitmaskTargetFlags() {
2035    if (!Names2BitmaskTargetFlags.empty())
2036      return;
2037    const auto *TII = MF.getSubtarget().getInstrInfo();
2038    assert(TII && "Expected target instruction info");
2039    auto Flags = TII->getSerializableBitmaskMachineOperandTargetFlags();
2040    for (const auto &I : Flags)
2041      Names2BitmaskTargetFlags.insert(
2042          std::make_pair(StringRef(I.second), I.first));
2043  }
2044  
getBitmaskTargetFlag(StringRef Name,unsigned & Flag)2045  bool MIParser::getBitmaskTargetFlag(StringRef Name, unsigned &Flag) {
2046    initNames2BitmaskTargetFlags();
2047    auto FlagInfo = Names2BitmaskTargetFlags.find(Name);
2048    if (FlagInfo == Names2BitmaskTargetFlags.end())
2049      return true;
2050    Flag = FlagInfo->second;
2051    return false;
2052  }
2053  
parseMachineBasicBlockDefinitions(PerFunctionMIParsingState & PFS,StringRef Src,SMDiagnostic & Error)2054  bool llvm::parseMachineBasicBlockDefinitions(PerFunctionMIParsingState &PFS,
2055                                               StringRef Src,
2056                                               SMDiagnostic &Error) {
2057    return MIParser(PFS, Error, Src).parseBasicBlockDefinitions(PFS.MBBSlots);
2058  }
2059  
parseMachineInstructions(const PerFunctionMIParsingState & PFS,StringRef Src,SMDiagnostic & Error)2060  bool llvm::parseMachineInstructions(const PerFunctionMIParsingState &PFS,
2061                                      StringRef Src, SMDiagnostic &Error) {
2062    return MIParser(PFS, Error, Src).parseBasicBlocks();
2063  }
2064  
parseMBBReference(const PerFunctionMIParsingState & PFS,MachineBasicBlock * & MBB,StringRef Src,SMDiagnostic & Error)2065  bool llvm::parseMBBReference(const PerFunctionMIParsingState &PFS,
2066                               MachineBasicBlock *&MBB, StringRef Src,
2067                               SMDiagnostic &Error) {
2068    return MIParser(PFS, Error, Src).parseStandaloneMBB(MBB);
2069  }
2070  
parseNamedRegisterReference(const PerFunctionMIParsingState & PFS,unsigned & Reg,StringRef Src,SMDiagnostic & Error)2071  bool llvm::parseNamedRegisterReference(const PerFunctionMIParsingState &PFS,
2072                                         unsigned &Reg, StringRef Src,
2073                                         SMDiagnostic &Error) {
2074    return MIParser(PFS, Error, Src).parseStandaloneNamedRegister(Reg);
2075  }
2076  
parseVirtualRegisterReference(const PerFunctionMIParsingState & PFS,unsigned & Reg,StringRef Src,SMDiagnostic & Error)2077  bool llvm::parseVirtualRegisterReference(const PerFunctionMIParsingState &PFS,
2078                                           unsigned &Reg, StringRef Src,
2079                                           SMDiagnostic &Error) {
2080    return MIParser(PFS, Error, Src).parseStandaloneVirtualRegister(Reg);
2081  }
2082  
parseStackObjectReference(const PerFunctionMIParsingState & PFS,int & FI,StringRef Src,SMDiagnostic & Error)2083  bool llvm::parseStackObjectReference(const PerFunctionMIParsingState &PFS,
2084                                       int &FI, StringRef Src,
2085                                       SMDiagnostic &Error) {
2086    return MIParser(PFS, Error, Src).parseStandaloneStackObject(FI);
2087  }
2088  
parseMDNode(const PerFunctionMIParsingState & PFS,MDNode * & Node,StringRef Src,SMDiagnostic & Error)2089  bool llvm::parseMDNode(const PerFunctionMIParsingState &PFS,
2090                         MDNode *&Node, StringRef Src, SMDiagnostic &Error) {
2091    return MIParser(PFS, Error, Src).parseStandaloneMDNode(Node);
2092  }
2093