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