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      1 //===- AsmMatcherEmitter.cpp - Generate an assembly matcher ---------------===//
      2 //
      3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
      4 // See https://llvm.org/LICENSE.txt for license information.
      5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
      6 //
      7 //===----------------------------------------------------------------------===//
      8 //
      9 // This tablegen backend emits a target specifier matcher for converting parsed
     10 // assembly operands in the MCInst structures. It also emits a matcher for
     11 // custom operand parsing.
     12 //
     13 // Converting assembly operands into MCInst structures
     14 // ---------------------------------------------------
     15 //
     16 // The input to the target specific matcher is a list of literal tokens and
     17 // operands. The target specific parser should generally eliminate any syntax
     18 // which is not relevant for matching; for example, comma tokens should have
     19 // already been consumed and eliminated by the parser. Most instructions will
     20 // end up with a single literal token (the instruction name) and some number of
     21 // operands.
     22 //
     23 // Some example inputs, for X86:
     24 //   'addl' (immediate ...) (register ...)
     25 //   'add' (immediate ...) (memory ...)
     26 //   'call' '*' %epc
     27 //
     28 // The assembly matcher is responsible for converting this input into a precise
     29 // machine instruction (i.e., an instruction with a well defined encoding). This
     30 // mapping has several properties which complicate matching:
     31 //
     32 //  - It may be ambiguous; many architectures can legally encode particular
     33 //    variants of an instruction in different ways (for example, using a smaller
     34 //    encoding for small immediates). Such ambiguities should never be
     35 //    arbitrarily resolved by the assembler, the assembler is always responsible
     36 //    for choosing the "best" available instruction.
     37 //
     38 //  - It may depend on the subtarget or the assembler context. Instructions
     39 //    which are invalid for the current mode, but otherwise unambiguous (e.g.,
     40 //    an SSE instruction in a file being assembled for i486) should be accepted
     41 //    and rejected by the assembler front end. However, if the proper encoding
     42 //    for an instruction is dependent on the assembler context then the matcher
     43 //    is responsible for selecting the correct machine instruction for the
     44 //    current mode.
     45 //
     46 // The core matching algorithm attempts to exploit the regularity in most
     47 // instruction sets to quickly determine the set of possibly matching
     48 // instructions, and the simplify the generated code. Additionally, this helps
     49 // to ensure that the ambiguities are intentionally resolved by the user.
     50 //
     51 // The matching is divided into two distinct phases:
     52 //
     53 //   1. Classification: Each operand is mapped to the unique set which (a)
     54 //      contains it, and (b) is the largest such subset for which a single
     55 //      instruction could match all members.
     56 //
     57 //      For register classes, we can generate these subgroups automatically. For
     58 //      arbitrary operands, we expect the user to define the classes and their
     59 //      relations to one another (for example, 8-bit signed immediates as a
     60 //      subset of 32-bit immediates).
     61 //
     62 //      By partitioning the operands in this way, we guarantee that for any
     63 //      tuple of classes, any single instruction must match either all or none
     64 //      of the sets of operands which could classify to that tuple.
     65 //
     66 //      In addition, the subset relation amongst classes induces a partial order
     67 //      on such tuples, which we use to resolve ambiguities.
     68 //
     69 //   2. The input can now be treated as a tuple of classes (static tokens are
     70 //      simple singleton sets). Each such tuple should generally map to a single
     71 //      instruction (we currently ignore cases where this isn't true, whee!!!),
     72 //      which we can emit a simple matcher for.
     73 //
     74 // Custom Operand Parsing
     75 // ----------------------
     76 //
     77 //  Some targets need a custom way to parse operands, some specific instructions
     78 //  can contain arguments that can represent processor flags and other kinds of
     79 //  identifiers that need to be mapped to specific values in the final encoded
     80 //  instructions. The target specific custom operand parsing works in the
     81 //  following way:
     82 //
     83 //   1. A operand match table is built, each entry contains a mnemonic, an
     84 //      operand class, a mask for all operand positions for that same
     85 //      class/mnemonic and target features to be checked while trying to match.
     86 //
     87 //   2. The operand matcher will try every possible entry with the same
     88 //      mnemonic and will check if the target feature for this mnemonic also
     89 //      matches. After that, if the operand to be matched has its index
     90 //      present in the mask, a successful match occurs. Otherwise, fallback
     91 //      to the regular operand parsing.
     92 //
     93 //   3. For a match success, each operand class that has a 'ParserMethod'
     94 //      becomes part of a switch from where the custom method is called.
     95 //
     96 //===----------------------------------------------------------------------===//
     97 
     98 #include "CodeGenTarget.h"
     99 #include "SubtargetFeatureInfo.h"
    100 #include "Types.h"
    101 #include "llvm/ADT/CachedHashString.h"
    102 #include "llvm/ADT/PointerUnion.h"
    103 #include "llvm/ADT/STLExtras.h"
    104 #include "llvm/ADT/SmallPtrSet.h"
    105 #include "llvm/ADT/SmallVector.h"
    106 #include "llvm/ADT/StringExtras.h"
    107 #include "llvm/Config/llvm-config.h"
    108 #include "llvm/Support/CommandLine.h"
    109 #include "llvm/Support/Debug.h"
    110 #include "llvm/Support/ErrorHandling.h"
    111 #include "llvm/TableGen/Error.h"
    112 #include "llvm/TableGen/Record.h"
    113 #include "llvm/TableGen/StringMatcher.h"
    114 #include "llvm/TableGen/StringToOffsetTable.h"
    115 #include "llvm/TableGen/TableGenBackend.h"
    116 #include <cassert>
    117 #include <cctype>
    118 #include <forward_list>
    119 #include <map>
    120 #include <set>
    121 
    122 using namespace llvm;
    123 
    124 #define DEBUG_TYPE "asm-matcher-emitter"
    125 
    126 cl::OptionCategory AsmMatcherEmitterCat("Options for -gen-asm-matcher");
    127 
    128 static cl::opt<std::string>
    129     MatchPrefix("match-prefix", cl::init(""),
    130                 cl::desc("Only match instructions with the given prefix"),
    131                 cl::cat(AsmMatcherEmitterCat));
    132 
    133 namespace {
    134 class AsmMatcherInfo;
    135 
    136 // Register sets are used as keys in some second-order sets TableGen creates
    137 // when generating its data structures. This means that the order of two
    138 // RegisterSets can be seen in the outputted AsmMatcher tables occasionally, and
    139 // can even affect compiler output (at least seen in diagnostics produced when
    140 // all matches fail). So we use a type that sorts them consistently.
    141 typedef std::set<Record*, LessRecordByID> RegisterSet;
    142 
    143 class AsmMatcherEmitter {
    144   RecordKeeper &Records;
    145 public:
    146   AsmMatcherEmitter(RecordKeeper &R) : Records(R) {}
    147 
    148   void run(raw_ostream &o);
    149 };
    150 
    151 /// ClassInfo - Helper class for storing the information about a particular
    152 /// class of operands which can be matched.
    153 struct ClassInfo {
    154   enum ClassInfoKind {
    155     /// Invalid kind, for use as a sentinel value.
    156     Invalid = 0,
    157 
    158     /// The class for a particular token.
    159     Token,
    160 
    161     /// The (first) register class, subsequent register classes are
    162     /// RegisterClass0+1, and so on.
    163     RegisterClass0,
    164 
    165     /// The (first) user defined class, subsequent user defined classes are
    166     /// UserClass0+1, and so on.
    167     UserClass0 = 1<<16
    168   };
    169 
    170   /// Kind - The class kind, which is either a predefined kind, or (UserClass0 +
    171   /// N) for the Nth user defined class.
    172   unsigned Kind;
    173 
    174   /// SuperClasses - The super classes of this class. Note that for simplicities
    175   /// sake user operands only record their immediate super class, while register
    176   /// operands include all superclasses.
    177   std::vector<ClassInfo*> SuperClasses;
    178 
    179   /// Name - The full class name, suitable for use in an enum.
    180   std::string Name;
    181 
    182   /// ClassName - The unadorned generic name for this class (e.g., Token).
    183   std::string ClassName;
    184 
    185   /// ValueName - The name of the value this class represents; for a token this
    186   /// is the literal token string, for an operand it is the TableGen class (or
    187   /// empty if this is a derived class).
    188   std::string ValueName;
    189 
    190   /// PredicateMethod - The name of the operand method to test whether the
    191   /// operand matches this class; this is not valid for Token or register kinds.
    192   std::string PredicateMethod;
    193 
    194   /// RenderMethod - The name of the operand method to add this operand to an
    195   /// MCInst; this is not valid for Token or register kinds.
    196   std::string RenderMethod;
    197 
    198   /// ParserMethod - The name of the operand method to do a target specific
    199   /// parsing on the operand.
    200   std::string ParserMethod;
    201 
    202   /// For register classes: the records for all the registers in this class.
    203   RegisterSet Registers;
    204 
    205   /// For custom match classes: the diagnostic kind for when the predicate fails.
    206   std::string DiagnosticType;
    207 
    208   /// For custom match classes: the diagnostic string for when the predicate fails.
    209   std::string DiagnosticString;
    210 
    211   /// Is this operand optional and not always required.
    212   bool IsOptional;
    213 
    214   /// DefaultMethod - The name of the method that returns the default operand
    215   /// for optional operand
    216   std::string DefaultMethod;
    217 
    218 public:
    219   /// isRegisterClass() - Check if this is a register class.
    220   bool isRegisterClass() const {
    221     return Kind >= RegisterClass0 && Kind < UserClass0;
    222   }
    223 
    224   /// isUserClass() - Check if this is a user defined class.
    225   bool isUserClass() const {
    226     return Kind >= UserClass0;
    227   }
    228 
    229   /// isRelatedTo - Check whether this class is "related" to \p RHS. Classes
    230   /// are related if they are in the same class hierarchy.
    231   bool isRelatedTo(const ClassInfo &RHS) const {
    232     // Tokens are only related to tokens.
    233     if (Kind == Token || RHS.Kind == Token)
    234       return Kind == Token && RHS.Kind == Token;
    235 
    236     // Registers classes are only related to registers classes, and only if
    237     // their intersection is non-empty.
    238     if (isRegisterClass() || RHS.isRegisterClass()) {
    239       if (!isRegisterClass() || !RHS.isRegisterClass())
    240         return false;
    241 
    242       RegisterSet Tmp;
    243       std::insert_iterator<RegisterSet> II(Tmp, Tmp.begin());
    244       std::set_intersection(Registers.begin(), Registers.end(),
    245                             RHS.Registers.begin(), RHS.Registers.end(),
    246                             II, LessRecordByID());
    247 
    248       return !Tmp.empty();
    249     }
    250 
    251     // Otherwise we have two users operands; they are related if they are in the
    252     // same class hierarchy.
    253     //
    254     // FIXME: This is an oversimplification, they should only be related if they
    255     // intersect, however we don't have that information.
    256     assert(isUserClass() && RHS.isUserClass() && "Unexpected class!");
    257     const ClassInfo *Root = this;
    258     while (!Root->SuperClasses.empty())
    259       Root = Root->SuperClasses.front();
    260 
    261     const ClassInfo *RHSRoot = &RHS;
    262     while (!RHSRoot->SuperClasses.empty())
    263       RHSRoot = RHSRoot->SuperClasses.front();
    264 
    265     return Root == RHSRoot;
    266   }
    267 
    268   /// isSubsetOf - Test whether this class is a subset of \p RHS.
    269   bool isSubsetOf(const ClassInfo &RHS) const {
    270     // This is a subset of RHS if it is the same class...
    271     if (this == &RHS)
    272       return true;
    273 
    274     // ... or if any of its super classes are a subset of RHS.
    275     SmallVector<const ClassInfo *, 16> Worklist(SuperClasses.begin(),
    276                                                 SuperClasses.end());
    277     SmallPtrSet<const ClassInfo *, 16> Visited;
    278     while (!Worklist.empty()) {
    279       auto *CI = Worklist.pop_back_val();
    280       if (CI == &RHS)
    281         return true;
    282       for (auto *Super : CI->SuperClasses)
    283         if (Visited.insert(Super).second)
    284           Worklist.push_back(Super);
    285     }
    286 
    287     return false;
    288   }
    289 
    290   int getTreeDepth() const {
    291     int Depth = 0;
    292     const ClassInfo *Root = this;
    293     while (!Root->SuperClasses.empty()) {
    294       Depth++;
    295       Root = Root->SuperClasses.front();
    296     }
    297     return Depth;
    298   }
    299 
    300   const ClassInfo *findRoot() const {
    301     const ClassInfo *Root = this;
    302     while (!Root->SuperClasses.empty())
    303       Root = Root->SuperClasses.front();
    304     return Root;
    305   }
    306 
    307   /// Compare two classes. This does not produce a total ordering, but does
    308   /// guarantee that subclasses are sorted before their parents, and that the
    309   /// ordering is transitive.
    310   bool operator<(const ClassInfo &RHS) const {
    311     if (this == &RHS)
    312       return false;
    313 
    314     // First, enforce the ordering between the three different types of class.
    315     // Tokens sort before registers, which sort before user classes.
    316     if (Kind == Token) {
    317       if (RHS.Kind != Token)
    318         return true;
    319       assert(RHS.Kind == Token);
    320     } else if (isRegisterClass()) {
    321       if (RHS.Kind == Token)
    322         return false;
    323       else if (RHS.isUserClass())
    324         return true;
    325       assert(RHS.isRegisterClass());
    326     } else if (isUserClass()) {
    327       if (!RHS.isUserClass())
    328         return false;
    329       assert(RHS.isUserClass());
    330     } else {
    331       llvm_unreachable("Unknown ClassInfoKind");
    332     }
    333 
    334     if (Kind == Token || isUserClass()) {
    335       // Related tokens and user classes get sorted by depth in the inheritence
    336       // tree (so that subclasses are before their parents).
    337       if (isRelatedTo(RHS)) {
    338         if (getTreeDepth() > RHS.getTreeDepth())
    339           return true;
    340         if (getTreeDepth() < RHS.getTreeDepth())
    341           return false;
    342       } else {
    343         // Unrelated tokens and user classes are ordered by the name of their
    344         // root nodes, so that there is a consistent ordering between
    345         // unconnected trees.
    346         return findRoot()->ValueName < RHS.findRoot()->ValueName;
    347       }
    348     } else if (isRegisterClass()) {
    349       // For register sets, sort by number of registers. This guarantees that
    350       // a set will always sort before all of it's strict supersets.
    351       if (Registers.size() != RHS.Registers.size())
    352         return Registers.size() < RHS.Registers.size();
    353     } else {
    354       llvm_unreachable("Unknown ClassInfoKind");
    355     }
    356 
    357     // FIXME: We should be able to just return false here, as we only need a
    358     // partial order (we use stable sorts, so this is deterministic) and the
    359     // name of a class shouldn't be significant. However, some of the backends
    360     // accidentally rely on this behaviour, so it will have to stay like this
    361     // until they are fixed.
    362     return ValueName < RHS.ValueName;
    363   }
    364 };
    365 
    366 class AsmVariantInfo {
    367 public:
    368   StringRef RegisterPrefix;
    369   StringRef TokenizingCharacters;
    370   StringRef SeparatorCharacters;
    371   StringRef BreakCharacters;
    372   StringRef Name;
    373   int AsmVariantNo;
    374 };
    375 
    376 /// MatchableInfo - Helper class for storing the necessary information for an
    377 /// instruction or alias which is capable of being matched.
    378 struct MatchableInfo {
    379   struct AsmOperand {
    380     /// Token - This is the token that the operand came from.
    381     StringRef Token;
    382 
    383     /// The unique class instance this operand should match.
    384     ClassInfo *Class;
    385 
    386     /// The operand name this is, if anything.
    387     StringRef SrcOpName;
    388 
    389     /// The operand name this is, before renaming for tied operands.
    390     StringRef OrigSrcOpName;
    391 
    392     /// The suboperand index within SrcOpName, or -1 for the entire operand.
    393     int SubOpIdx;
    394 
    395     /// Whether the token is "isolated", i.e., it is preceded and followed
    396     /// by separators.
    397     bool IsIsolatedToken;
    398 
    399     /// Register record if this token is singleton register.
    400     Record *SingletonReg;
    401 
    402     explicit AsmOperand(bool IsIsolatedToken, StringRef T)
    403         : Token(T), Class(nullptr), SubOpIdx(-1),
    404           IsIsolatedToken(IsIsolatedToken), SingletonReg(nullptr) {}
    405   };
    406 
    407   /// ResOperand - This represents a single operand in the result instruction
    408   /// generated by the match.  In cases (like addressing modes) where a single
    409   /// assembler operand expands to multiple MCOperands, this represents the
    410   /// single assembler operand, not the MCOperand.
    411   struct ResOperand {
    412     enum {
    413       /// RenderAsmOperand - This represents an operand result that is
    414       /// generated by calling the render method on the assembly operand.  The
    415       /// corresponding AsmOperand is specified by AsmOperandNum.
    416       RenderAsmOperand,
    417 
    418       /// TiedOperand - This represents a result operand that is a duplicate of
    419       /// a previous result operand.
    420       TiedOperand,
    421 
    422       /// ImmOperand - This represents an immediate value that is dumped into
    423       /// the operand.
    424       ImmOperand,
    425 
    426       /// RegOperand - This represents a fixed register that is dumped in.
    427       RegOperand
    428     } Kind;
    429 
    430     /// Tuple containing the index of the (earlier) result operand that should
    431     /// be copied from, as well as the indices of the corresponding (parsed)
    432     /// operands in the asm string.
    433     struct TiedOperandsTuple {
    434       unsigned ResOpnd;
    435       unsigned SrcOpnd1Idx;
    436       unsigned SrcOpnd2Idx;
    437     };
    438 
    439     union {
    440       /// This is the operand # in the AsmOperands list that this should be
    441       /// copied from.
    442       unsigned AsmOperandNum;
    443 
    444       /// Description of tied operands.
    445       TiedOperandsTuple TiedOperands;
    446 
    447       /// ImmVal - This is the immediate value added to the instruction.
    448       int64_t ImmVal;
    449 
    450       /// Register - This is the register record.
    451       Record *Register;
    452     };
    453 
    454     /// MINumOperands - The number of MCInst operands populated by this
    455     /// operand.
    456     unsigned MINumOperands;
    457 
    458     static ResOperand getRenderedOp(unsigned AsmOpNum, unsigned NumOperands) {
    459       ResOperand X;
    460       X.Kind = RenderAsmOperand;
    461       X.AsmOperandNum = AsmOpNum;
    462       X.MINumOperands = NumOperands;
    463       return X;
    464     }
    465 
    466     static ResOperand getTiedOp(unsigned TiedOperandNum, unsigned SrcOperand1,
    467                                 unsigned SrcOperand2) {
    468       ResOperand X;
    469       X.Kind = TiedOperand;
    470       X.TiedOperands = { TiedOperandNum, SrcOperand1, SrcOperand2 };
    471       X.MINumOperands = 1;
    472       return X;
    473     }
    474 
    475     static ResOperand getImmOp(int64_t Val) {
    476       ResOperand X;
    477       X.Kind = ImmOperand;
    478       X.ImmVal = Val;
    479       X.MINumOperands = 1;
    480       return X;
    481     }
    482 
    483     static ResOperand getRegOp(Record *Reg) {
    484       ResOperand X;
    485       X.Kind = RegOperand;
    486       X.Register = Reg;
    487       X.MINumOperands = 1;
    488       return X;
    489     }
    490   };
    491 
    492   /// AsmVariantID - Target's assembly syntax variant no.
    493   int AsmVariantID;
    494 
    495   /// AsmString - The assembly string for this instruction (with variants
    496   /// removed), e.g. "movsx $src, $dst".
    497   std::string AsmString;
    498 
    499   /// TheDef - This is the definition of the instruction or InstAlias that this
    500   /// matchable came from.
    501   Record *const TheDef;
    502 
    503   /// DefRec - This is the definition that it came from.
    504   PointerUnion<const CodeGenInstruction*, const CodeGenInstAlias*> DefRec;
    505 
    506   const CodeGenInstruction *getResultInst() const {
    507     if (DefRec.is<const CodeGenInstruction*>())
    508       return DefRec.get<const CodeGenInstruction*>();
    509     return DefRec.get<const CodeGenInstAlias*>()->ResultInst;
    510   }
    511 
    512   /// ResOperands - This is the operand list that should be built for the result
    513   /// MCInst.
    514   SmallVector<ResOperand, 8> ResOperands;
    515 
    516   /// Mnemonic - This is the first token of the matched instruction, its
    517   /// mnemonic.
    518   StringRef Mnemonic;
    519 
    520   /// AsmOperands - The textual operands that this instruction matches,
    521   /// annotated with a class and where in the OperandList they were defined.
    522   /// This directly corresponds to the tokenized AsmString after the mnemonic is
    523   /// removed.
    524   SmallVector<AsmOperand, 8> AsmOperands;
    525 
    526   /// Predicates - The required subtarget features to match this instruction.
    527   SmallVector<const SubtargetFeatureInfo *, 4> RequiredFeatures;
    528 
    529   /// ConversionFnKind - The enum value which is passed to the generated
    530   /// convertToMCInst to convert parsed operands into an MCInst for this
    531   /// function.
    532   std::string ConversionFnKind;
    533 
    534   /// If this instruction is deprecated in some form.
    535   bool HasDeprecation;
    536 
    537   /// If this is an alias, this is use to determine whether or not to using
    538   /// the conversion function defined by the instruction's AsmMatchConverter
    539   /// or to use the function generated by the alias.
    540   bool UseInstAsmMatchConverter;
    541 
    542   MatchableInfo(const CodeGenInstruction &CGI)
    543     : AsmVariantID(0), AsmString(CGI.AsmString), TheDef(CGI.TheDef), DefRec(&CGI),
    544       UseInstAsmMatchConverter(true) {
    545   }
    546 
    547   MatchableInfo(std::unique_ptr<const CodeGenInstAlias> Alias)
    548     : AsmVariantID(0), AsmString(Alias->AsmString), TheDef(Alias->TheDef),
    549       DefRec(Alias.release()),
    550       UseInstAsmMatchConverter(
    551         TheDef->getValueAsBit("UseInstAsmMatchConverter")) {
    552   }
    553 
    554   // Could remove this and the dtor if PointerUnion supported unique_ptr
    555   // elements with a dynamic failure/assertion (like the one below) in the case
    556   // where it was copied while being in an owning state.
    557   MatchableInfo(const MatchableInfo &RHS)
    558       : AsmVariantID(RHS.AsmVariantID), AsmString(RHS.AsmString),
    559         TheDef(RHS.TheDef), DefRec(RHS.DefRec), ResOperands(RHS.ResOperands),
    560         Mnemonic(RHS.Mnemonic), AsmOperands(RHS.AsmOperands),
    561         RequiredFeatures(RHS.RequiredFeatures),
    562         ConversionFnKind(RHS.ConversionFnKind),
    563         HasDeprecation(RHS.HasDeprecation),
    564         UseInstAsmMatchConverter(RHS.UseInstAsmMatchConverter) {
    565     assert(!DefRec.is<const CodeGenInstAlias *>());
    566   }
    567 
    568   ~MatchableInfo() {
    569     delete DefRec.dyn_cast<const CodeGenInstAlias*>();
    570   }
    571 
    572   // Two-operand aliases clone from the main matchable, but mark the second
    573   // operand as a tied operand of the first for purposes of the assembler.
    574   void formTwoOperandAlias(StringRef Constraint);
    575 
    576   void initialize(const AsmMatcherInfo &Info,
    577                   SmallPtrSetImpl<Record*> &SingletonRegisters,
    578                   AsmVariantInfo const &Variant,
    579                   bool HasMnemonicFirst);
    580 
    581   /// validate - Return true if this matchable is a valid thing to match against
    582   /// and perform a bunch of validity checking.
    583   bool validate(StringRef CommentDelimiter, bool IsAlias) const;
    584 
    585   /// findAsmOperand - Find the AsmOperand with the specified name and
    586   /// suboperand index.
    587   int findAsmOperand(StringRef N, int SubOpIdx) const {
    588     auto I = find_if(AsmOperands, [&](const AsmOperand &Op) {
    589       return Op.SrcOpName == N && Op.SubOpIdx == SubOpIdx;
    590     });
    591     return (I != AsmOperands.end()) ? I - AsmOperands.begin() : -1;
    592   }
    593 
    594   /// findAsmOperandNamed - Find the first AsmOperand with the specified name.
    595   /// This does not check the suboperand index.
    596   int findAsmOperandNamed(StringRef N, int LastIdx = -1) const {
    597     auto I = std::find_if(AsmOperands.begin() + LastIdx + 1, AsmOperands.end(),
    598                      [&](const AsmOperand &Op) { return Op.SrcOpName == N; });
    599     return (I != AsmOperands.end()) ? I - AsmOperands.begin() : -1;
    600   }
    601 
    602   int findAsmOperandOriginallyNamed(StringRef N) const {
    603     auto I =
    604         find_if(AsmOperands,
    605                 [&](const AsmOperand &Op) { return Op.OrigSrcOpName == N; });
    606     return (I != AsmOperands.end()) ? I - AsmOperands.begin() : -1;
    607   }
    608 
    609   void buildInstructionResultOperands();
    610   void buildAliasResultOperands(bool AliasConstraintsAreChecked);
    611 
    612   /// operator< - Compare two matchables.
    613   bool operator<(const MatchableInfo &RHS) const {
    614     // The primary comparator is the instruction mnemonic.
    615     if (int Cmp = Mnemonic.compare_lower(RHS.Mnemonic))
    616       return Cmp == -1;
    617 
    618     if (AsmOperands.size() != RHS.AsmOperands.size())
    619       return AsmOperands.size() < RHS.AsmOperands.size();
    620 
    621     // Compare lexicographically by operand. The matcher validates that other
    622     // orderings wouldn't be ambiguous using \see couldMatchAmbiguouslyWith().
    623     for (unsigned i = 0, e = AsmOperands.size(); i != e; ++i) {
    624       if (*AsmOperands[i].Class < *RHS.AsmOperands[i].Class)
    625         return true;
    626       if (*RHS.AsmOperands[i].Class < *AsmOperands[i].Class)
    627         return false;
    628     }
    629 
    630     // Give matches that require more features higher precedence. This is useful
    631     // because we cannot define AssemblerPredicates with the negation of
    632     // processor features. For example, ARM v6 "nop" may be either a HINT or
    633     // MOV. With v6, we want to match HINT. The assembler has no way to
    634     // predicate MOV under "NoV6", but HINT will always match first because it
    635     // requires V6 while MOV does not.
    636     if (RequiredFeatures.size() != RHS.RequiredFeatures.size())
    637       return RequiredFeatures.size() > RHS.RequiredFeatures.size();
    638 
    639     return false;
    640   }
    641 
    642   /// couldMatchAmbiguouslyWith - Check whether this matchable could
    643   /// ambiguously match the same set of operands as \p RHS (without being a
    644   /// strictly superior match).
    645   bool couldMatchAmbiguouslyWith(const MatchableInfo &RHS) const {
    646     // The primary comparator is the instruction mnemonic.
    647     if (Mnemonic != RHS.Mnemonic)
    648       return false;
    649 
    650     // Different variants can't conflict.
    651     if (AsmVariantID != RHS.AsmVariantID)
    652       return false;
    653 
    654     // The number of operands is unambiguous.
    655     if (AsmOperands.size() != RHS.AsmOperands.size())
    656       return false;
    657 
    658     // Otherwise, make sure the ordering of the two instructions is unambiguous
    659     // by checking that either (a) a token or operand kind discriminates them,
    660     // or (b) the ordering among equivalent kinds is consistent.
    661 
    662     // Tokens and operand kinds are unambiguous (assuming a correct target
    663     // specific parser).
    664     for (unsigned i = 0, e = AsmOperands.size(); i != e; ++i)
    665       if (AsmOperands[i].Class->Kind != RHS.AsmOperands[i].Class->Kind ||
    666           AsmOperands[i].Class->Kind == ClassInfo::Token)
    667         if (*AsmOperands[i].Class < *RHS.AsmOperands[i].Class ||
    668             *RHS.AsmOperands[i].Class < *AsmOperands[i].Class)
    669           return false;
    670 
    671     // Otherwise, this operand could commute if all operands are equivalent, or
    672     // there is a pair of operands that compare less than and a pair that
    673     // compare greater than.
    674     bool HasLT = false, HasGT = false;
    675     for (unsigned i = 0, e = AsmOperands.size(); i != e; ++i) {
    676       if (*AsmOperands[i].Class < *RHS.AsmOperands[i].Class)
    677         HasLT = true;
    678       if (*RHS.AsmOperands[i].Class < *AsmOperands[i].Class)
    679         HasGT = true;
    680     }
    681 
    682     return HasLT == HasGT;
    683   }
    684 
    685   void dump() const;
    686 
    687 private:
    688   void tokenizeAsmString(AsmMatcherInfo const &Info,
    689                          AsmVariantInfo const &Variant);
    690   void addAsmOperand(StringRef Token, bool IsIsolatedToken = false);
    691 };
    692 
    693 struct OperandMatchEntry {
    694   unsigned OperandMask;
    695   const MatchableInfo* MI;
    696   ClassInfo *CI;
    697 
    698   static OperandMatchEntry create(const MatchableInfo *mi, ClassInfo *ci,
    699                                   unsigned opMask) {
    700     OperandMatchEntry X;
    701     X.OperandMask = opMask;
    702     X.CI = ci;
    703     X.MI = mi;
    704     return X;
    705   }
    706 };
    707 
    708 class AsmMatcherInfo {
    709 public:
    710   /// Tracked Records
    711   RecordKeeper &Records;
    712 
    713   /// The tablegen AsmParser record.
    714   Record *AsmParser;
    715 
    716   /// Target - The target information.
    717   CodeGenTarget &Target;
    718 
    719   /// The classes which are needed for matching.
    720   std::forward_list<ClassInfo> Classes;
    721 
    722   /// The information on the matchables to match.
    723   std::vector<std::unique_ptr<MatchableInfo>> Matchables;
    724 
    725   /// Info for custom matching operands by user defined methods.
    726   std::vector<OperandMatchEntry> OperandMatchInfo;
    727 
    728   /// Map of Register records to their class information.
    729   typedef std::map<Record*, ClassInfo*, LessRecordByID> RegisterClassesTy;
    730   RegisterClassesTy RegisterClasses;
    731 
    732   /// Map of Predicate records to their subtarget information.
    733   std::map<Record *, SubtargetFeatureInfo, LessRecordByID> SubtargetFeatures;
    734 
    735   /// Map of AsmOperandClass records to their class information.
    736   std::map<Record*, ClassInfo*> AsmOperandClasses;
    737 
    738   /// Map of RegisterClass records to their class information.
    739   std::map<Record*, ClassInfo*> RegisterClassClasses;
    740 
    741 private:
    742   /// Map of token to class information which has already been constructed.
    743   std::map<std::string, ClassInfo*> TokenClasses;
    744 
    745 private:
    746   /// getTokenClass - Lookup or create the class for the given token.
    747   ClassInfo *getTokenClass(StringRef Token);
    748 
    749   /// getOperandClass - Lookup or create the class for the given operand.
    750   ClassInfo *getOperandClass(const CGIOperandList::OperandInfo &OI,
    751                              int SubOpIdx);
    752   ClassInfo *getOperandClass(Record *Rec, int SubOpIdx);
    753 
    754   /// buildRegisterClasses - Build the ClassInfo* instances for register
    755   /// classes.
    756   void buildRegisterClasses(SmallPtrSetImpl<Record*> &SingletonRegisters);
    757 
    758   /// buildOperandClasses - Build the ClassInfo* instances for user defined
    759   /// operand classes.
    760   void buildOperandClasses();
    761 
    762   void buildInstructionOperandReference(MatchableInfo *II, StringRef OpName,
    763                                         unsigned AsmOpIdx);
    764   void buildAliasOperandReference(MatchableInfo *II, StringRef OpName,
    765                                   MatchableInfo::AsmOperand &Op);
    766 
    767 public:
    768   AsmMatcherInfo(Record *AsmParser,
    769                  CodeGenTarget &Target,
    770                  RecordKeeper &Records);
    771 
    772   /// Construct the various tables used during matching.
    773   void buildInfo();
    774 
    775   /// buildOperandMatchInfo - Build the necessary information to handle user
    776   /// defined operand parsing methods.
    777   void buildOperandMatchInfo();
    778 
    779   /// getSubtargetFeature - Lookup or create the subtarget feature info for the
    780   /// given operand.
    781   const SubtargetFeatureInfo *getSubtargetFeature(Record *Def) const {
    782     assert(Def->isSubClassOf("Predicate") && "Invalid predicate type!");
    783     const auto &I = SubtargetFeatures.find(Def);
    784     return I == SubtargetFeatures.end() ? nullptr : &I->second;
    785   }
    786 
    787   RecordKeeper &getRecords() const {
    788     return Records;
    789   }
    790 
    791   bool hasOptionalOperands() const {
    792     return any_of(Classes,
    793                   [](const ClassInfo &Class) { return Class.IsOptional; });
    794   }
    795 };
    796 
    797 } // end anonymous namespace
    798 
    799 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
    800 LLVM_DUMP_METHOD void MatchableInfo::dump() const {
    801   errs() << TheDef->getName() << " -- " << "flattened:\"" << AsmString <<"\"\n";
    802 
    803   errs() << "  variant: " << AsmVariantID << "\n";
    804 
    805   for (unsigned i = 0, e = AsmOperands.size(); i != e; ++i) {
    806     const AsmOperand &Op = AsmOperands[i];
    807     errs() << "  op[" << i << "] = " << Op.Class->ClassName << " - ";
    808     errs() << '\"' << Op.Token << "\"\n";
    809   }
    810 }
    811 #endif
    812 
    813 static std::pair<StringRef, StringRef>
    814 parseTwoOperandConstraint(StringRef S, ArrayRef<SMLoc> Loc) {
    815   // Split via the '='.
    816   std::pair<StringRef, StringRef> Ops = S.split('=');
    817   if (Ops.second == "")
    818     PrintFatalError(Loc, "missing '=' in two-operand alias constraint");
    819   // Trim whitespace and the leading '$' on the operand names.
    820   size_t start = Ops.first.find_first_of('$');
    821   if (start == std::string::npos)
    822     PrintFatalError(Loc, "expected '$' prefix on asm operand name");
    823   Ops.first = Ops.first.slice(start + 1, std::string::npos);
    824   size_t end = Ops.first.find_last_of(" \t");
    825   Ops.first = Ops.first.slice(0, end);
    826   // Now the second operand.
    827   start = Ops.second.find_first_of('$');
    828   if (start == std::string::npos)
    829     PrintFatalError(Loc, "expected '$' prefix on asm operand name");
    830   Ops.second = Ops.second.slice(start + 1, std::string::npos);
    831   end = Ops.second.find_last_of(" \t");
    832   Ops.first = Ops.first.slice(0, end);
    833   return Ops;
    834 }
    835 
    836 void MatchableInfo::formTwoOperandAlias(StringRef Constraint) {
    837   // Figure out which operands are aliased and mark them as tied.
    838   std::pair<StringRef, StringRef> Ops =
    839     parseTwoOperandConstraint(Constraint, TheDef->getLoc());
    840 
    841   // Find the AsmOperands that refer to the operands we're aliasing.
    842   int SrcAsmOperand = findAsmOperandNamed(Ops.first);
    843   int DstAsmOperand = findAsmOperandNamed(Ops.second);
    844   if (SrcAsmOperand == -1)
    845     PrintFatalError(TheDef->getLoc(),
    846                     "unknown source two-operand alias operand '" + Ops.first +
    847                     "'.");
    848   if (DstAsmOperand == -1)
    849     PrintFatalError(TheDef->getLoc(),
    850                     "unknown destination two-operand alias operand '" +
    851                     Ops.second + "'.");
    852 
    853   // Find the ResOperand that refers to the operand we're aliasing away
    854   // and update it to refer to the combined operand instead.
    855   for (ResOperand &Op : ResOperands) {
    856     if (Op.Kind == ResOperand::RenderAsmOperand &&
    857         Op.AsmOperandNum == (unsigned)SrcAsmOperand) {
    858       Op.AsmOperandNum = DstAsmOperand;
    859       break;
    860     }
    861   }
    862   // Remove the AsmOperand for the alias operand.
    863   AsmOperands.erase(AsmOperands.begin() + SrcAsmOperand);
    864   // Adjust the ResOperand references to any AsmOperands that followed
    865   // the one we just deleted.
    866   for (ResOperand &Op : ResOperands) {
    867     switch(Op.Kind) {
    868     default:
    869       // Nothing to do for operands that don't reference AsmOperands.
    870       break;
    871     case ResOperand::RenderAsmOperand:
    872       if (Op.AsmOperandNum > (unsigned)SrcAsmOperand)
    873         --Op.AsmOperandNum;
    874       break;
    875     }
    876   }
    877 }
    878 
    879 /// extractSingletonRegisterForAsmOperand - Extract singleton register,
    880 /// if present, from specified token.
    881 static void
    882 extractSingletonRegisterForAsmOperand(MatchableInfo::AsmOperand &Op,
    883                                       const AsmMatcherInfo &Info,
    884                                       StringRef RegisterPrefix) {
    885   StringRef Tok = Op.Token;
    886 
    887   // If this token is not an isolated token, i.e., it isn't separated from
    888   // other tokens (e.g. with whitespace), don't interpret it as a register name.
    889   if (!Op.IsIsolatedToken)
    890     return;
    891 
    892   if (RegisterPrefix.empty()) {
    893     std::string LoweredTok = Tok.lower();
    894     if (const CodeGenRegister *Reg = Info.Target.getRegisterByName(LoweredTok))
    895       Op.SingletonReg = Reg->TheDef;
    896     return;
    897   }
    898 
    899   if (!Tok.startswith(RegisterPrefix))
    900     return;
    901 
    902   StringRef RegName = Tok.substr(RegisterPrefix.size());
    903   if (const CodeGenRegister *Reg = Info.Target.getRegisterByName(RegName))
    904     Op.SingletonReg = Reg->TheDef;
    905 
    906   // If there is no register prefix (i.e. "%" in "%eax"), then this may
    907   // be some random non-register token, just ignore it.
    908 }
    909 
    910 void MatchableInfo::initialize(const AsmMatcherInfo &Info,
    911                                SmallPtrSetImpl<Record*> &SingletonRegisters,
    912                                AsmVariantInfo const &Variant,
    913                                bool HasMnemonicFirst) {
    914   AsmVariantID = Variant.AsmVariantNo;
    915   AsmString =
    916     CodeGenInstruction::FlattenAsmStringVariants(AsmString,
    917                                                  Variant.AsmVariantNo);
    918 
    919   tokenizeAsmString(Info, Variant);
    920 
    921   // The first token of the instruction is the mnemonic, which must be a
    922   // simple string, not a $foo variable or a singleton register.
    923   if (AsmOperands.empty())
    924     PrintFatalError(TheDef->getLoc(),
    925                   "Instruction '" + TheDef->getName() + "' has no tokens");
    926 
    927   assert(!AsmOperands[0].Token.empty());
    928   if (HasMnemonicFirst) {
    929     Mnemonic = AsmOperands[0].Token;
    930     if (Mnemonic[0] == '$')
    931       PrintFatalError(TheDef->getLoc(),
    932                       "Invalid instruction mnemonic '" + Mnemonic + "'!");
    933 
    934     // Remove the first operand, it is tracked in the mnemonic field.
    935     AsmOperands.erase(AsmOperands.begin());
    936   } else if (AsmOperands[0].Token[0] != '$')
    937     Mnemonic = AsmOperands[0].Token;
    938 
    939   // Compute the require features.
    940   for (Record *Predicate : TheDef->getValueAsListOfDefs("Predicates"))
    941     if (const SubtargetFeatureInfo *Feature =
    942             Info.getSubtargetFeature(Predicate))
    943       RequiredFeatures.push_back(Feature);
    944 
    945   // Collect singleton registers, if used.
    946   for (MatchableInfo::AsmOperand &Op : AsmOperands) {
    947     extractSingletonRegisterForAsmOperand(Op, Info, Variant.RegisterPrefix);
    948     if (Record *Reg = Op.SingletonReg)
    949       SingletonRegisters.insert(Reg);
    950   }
    951 
    952   const RecordVal *DepMask = TheDef->getValue("DeprecatedFeatureMask");
    953   if (!DepMask)
    954     DepMask = TheDef->getValue("ComplexDeprecationPredicate");
    955 
    956   HasDeprecation =
    957       DepMask ? !DepMask->getValue()->getAsUnquotedString().empty() : false;
    958 }
    959 
    960 /// Append an AsmOperand for the given substring of AsmString.
    961 void MatchableInfo::addAsmOperand(StringRef Token, bool IsIsolatedToken) {
    962   AsmOperands.push_back(AsmOperand(IsIsolatedToken, Token));
    963 }
    964 
    965 /// tokenizeAsmString - Tokenize a simplified assembly string.
    966 void MatchableInfo::tokenizeAsmString(const AsmMatcherInfo &Info,
    967                                       AsmVariantInfo const &Variant) {
    968   StringRef String = AsmString;
    969   size_t Prev = 0;
    970   bool InTok = false;
    971   bool IsIsolatedToken = true;
    972   for (size_t i = 0, e = String.size(); i != e; ++i) {
    973     char Char = String[i];
    974     if (Variant.BreakCharacters.find(Char) != std::string::npos) {
    975       if (InTok) {
    976         addAsmOperand(String.slice(Prev, i), false);
    977         Prev = i;
    978         IsIsolatedToken = false;
    979       }
    980       InTok = true;
    981       continue;
    982     }
    983     if (Variant.TokenizingCharacters.find(Char) != std::string::npos) {
    984       if (InTok) {
    985         addAsmOperand(String.slice(Prev, i), IsIsolatedToken);
    986         InTok = false;
    987         IsIsolatedToken = false;
    988       }
    989       addAsmOperand(String.slice(i, i + 1), IsIsolatedToken);
    990       Prev = i + 1;
    991       IsIsolatedToken = true;
    992       continue;
    993     }
    994     if (Variant.SeparatorCharacters.find(Char) != std::string::npos) {
    995       if (InTok) {
    996         addAsmOperand(String.slice(Prev, i), IsIsolatedToken);
    997         InTok = false;
    998       }
    999       Prev = i + 1;
   1000       IsIsolatedToken = true;
   1001       continue;
   1002     }
   1003 
   1004     switch (Char) {
   1005     case '\\':
   1006       if (InTok) {
   1007         addAsmOperand(String.slice(Prev, i), false);
   1008         InTok = false;
   1009         IsIsolatedToken = false;
   1010       }
   1011       ++i;
   1012       assert(i != String.size() && "Invalid quoted character");
   1013       addAsmOperand(String.slice(i, i + 1), IsIsolatedToken);
   1014       Prev = i + 1;
   1015       IsIsolatedToken = false;
   1016       break;
   1017 
   1018     case '$': {
   1019       if (InTok) {
   1020         addAsmOperand(String.slice(Prev, i), IsIsolatedToken);
   1021         InTok = false;
   1022         IsIsolatedToken = false;
   1023       }
   1024 
   1025       // If this isn't "${", start new identifier looking like "$xxx"
   1026       if (i + 1 == String.size() || String[i + 1] != '{') {
   1027         Prev = i;
   1028         break;
   1029       }
   1030 
   1031       size_t EndPos = String.find('}', i);
   1032       assert(EndPos != StringRef::npos &&
   1033              "Missing brace in operand reference!");
   1034       addAsmOperand(String.slice(i, EndPos+1), IsIsolatedToken);
   1035       Prev = EndPos + 1;
   1036       i = EndPos;
   1037       IsIsolatedToken = false;
   1038       break;
   1039     }
   1040 
   1041     default:
   1042       InTok = true;
   1043       break;
   1044     }
   1045   }
   1046   if (InTok && Prev != String.size())
   1047     addAsmOperand(String.substr(Prev), IsIsolatedToken);
   1048 }
   1049 
   1050 bool MatchableInfo::validate(StringRef CommentDelimiter, bool IsAlias) const {
   1051   // Reject matchables with no .s string.
   1052   if (AsmString.empty())
   1053     PrintFatalError(TheDef->getLoc(), "instruction with empty asm string");
   1054 
   1055   // Reject any matchables with a newline in them, they should be marked
   1056   // isCodeGenOnly if they are pseudo instructions.
   1057   if (AsmString.find('\n') != std::string::npos)
   1058     PrintFatalError(TheDef->getLoc(),
   1059                   "multiline instruction is not valid for the asmparser, "
   1060                   "mark it isCodeGenOnly");
   1061 
   1062   // Remove comments from the asm string.  We know that the asmstring only
   1063   // has one line.
   1064   if (!CommentDelimiter.empty() &&
   1065       StringRef(AsmString).find(CommentDelimiter) != StringRef::npos)
   1066     PrintFatalError(TheDef->getLoc(),
   1067                   "asmstring for instruction has comment character in it, "
   1068                   "mark it isCodeGenOnly");
   1069 
   1070   // Reject matchables with operand modifiers, these aren't something we can
   1071   // handle, the target should be refactored to use operands instead of
   1072   // modifiers.
   1073   //
   1074   // Also, check for instructions which reference the operand multiple times,
   1075   // if they don't define a custom AsmMatcher: this implies a constraint that
   1076   // the built-in matching code would not honor.
   1077   std::set<std::string> OperandNames;
   1078   for (const AsmOperand &Op : AsmOperands) {
   1079     StringRef Tok = Op.Token;
   1080     if (Tok[0] == '$' && Tok.find(':') != StringRef::npos)
   1081       PrintFatalError(TheDef->getLoc(),
   1082                       "matchable with operand modifier '" + Tok +
   1083                       "' not supported by asm matcher.  Mark isCodeGenOnly!");
   1084     // Verify that any operand is only mentioned once.
   1085     // We reject aliases and ignore instructions for now.
   1086     if (!IsAlias && TheDef->getValueAsString("AsmMatchConverter").empty() &&
   1087         Tok[0] == '$' && !OperandNames.insert(std::string(Tok)).second) {
   1088       LLVM_DEBUG({
   1089         errs() << "warning: '" << TheDef->getName() << "': "
   1090                << "ignoring instruction with tied operand '"
   1091                << Tok << "'\n";
   1092       });
   1093       return false;
   1094     }
   1095   }
   1096 
   1097   return true;
   1098 }
   1099 
   1100 static std::string getEnumNameForToken(StringRef Str) {
   1101   std::string Res;
   1102 
   1103   for (char C : Str) {
   1104     switch (C) {
   1105     case '*': Res += "_STAR_"; break;
   1106     case '%': Res += "_PCT_"; break;
   1107     case ':': Res += "_COLON_"; break;
   1108     case '!': Res += "_EXCLAIM_"; break;
   1109     case '.': Res += "_DOT_"; break;
   1110     case '<': Res += "_LT_"; break;
   1111     case '>': Res += "_GT_"; break;
   1112     case '-': Res += "_MINUS_"; break;
   1113     case '#': Res += "_HASH_"; break;
   1114     default:
   1115       if (isAlnum(C))
   1116         Res += C;
   1117       else
   1118         Res += "_" + utostr((unsigned)C) + "_";
   1119     }
   1120   }
   1121 
   1122   return Res;
   1123 }
   1124 
   1125 ClassInfo *AsmMatcherInfo::getTokenClass(StringRef Token) {
   1126   ClassInfo *&Entry = TokenClasses[std::string(Token)];
   1127 
   1128   if (!Entry) {
   1129     Classes.emplace_front();
   1130     Entry = &Classes.front();
   1131     Entry->Kind = ClassInfo::Token;
   1132     Entry->ClassName = "Token";
   1133     Entry->Name = "MCK_" + getEnumNameForToken(Token);
   1134     Entry->ValueName = std::string(Token);
   1135     Entry->PredicateMethod = "<invalid>";
   1136     Entry->RenderMethod = "<invalid>";
   1137     Entry->ParserMethod = "";
   1138     Entry->DiagnosticType = "";
   1139     Entry->IsOptional = false;
   1140     Entry->DefaultMethod = "<invalid>";
   1141   }
   1142 
   1143   return Entry;
   1144 }
   1145 
   1146 ClassInfo *
   1147 AsmMatcherInfo::getOperandClass(const CGIOperandList::OperandInfo &OI,
   1148                                 int SubOpIdx) {
   1149   Record *Rec = OI.Rec;
   1150   if (SubOpIdx != -1)
   1151     Rec = cast<DefInit>(OI.MIOperandInfo->getArg(SubOpIdx))->getDef();
   1152   return getOperandClass(Rec, SubOpIdx);
   1153 }
   1154 
   1155 ClassInfo *
   1156 AsmMatcherInfo::getOperandClass(Record *Rec, int SubOpIdx) {
   1157   if (Rec->isSubClassOf("RegisterOperand")) {
   1158     // RegisterOperand may have an associated ParserMatchClass. If it does,
   1159     // use it, else just fall back to the underlying register class.
   1160     const RecordVal *R = Rec->getValue("ParserMatchClass");
   1161     if (!R || !R->getValue())
   1162       PrintFatalError(Rec->getLoc(),
   1163                       "Record `" + Rec->getName() +
   1164                           "' does not have a ParserMatchClass!\n");
   1165 
   1166     if (DefInit *DI= dyn_cast<DefInit>(R->getValue())) {
   1167       Record *MatchClass = DI->getDef();
   1168       if (ClassInfo *CI = AsmOperandClasses[MatchClass])
   1169         return CI;
   1170     }
   1171 
   1172     // No custom match class. Just use the register class.
   1173     Record *ClassRec = Rec->getValueAsDef("RegClass");
   1174     if (!ClassRec)
   1175       PrintFatalError(Rec->getLoc(), "RegisterOperand `" + Rec->getName() +
   1176                     "' has no associated register class!\n");
   1177     if (ClassInfo *CI = RegisterClassClasses[ClassRec])
   1178       return CI;
   1179     PrintFatalError(Rec->getLoc(), "register class has no class info!");
   1180   }
   1181 
   1182   if (Rec->isSubClassOf("RegisterClass")) {
   1183     if (ClassInfo *CI = RegisterClassClasses[Rec])
   1184       return CI;
   1185     PrintFatalError(Rec->getLoc(), "register class has no class info!");
   1186   }
   1187 
   1188   if (!Rec->isSubClassOf("Operand"))
   1189     PrintFatalError(Rec->getLoc(), "Operand `" + Rec->getName() +
   1190                   "' does not derive from class Operand!\n");
   1191   Record *MatchClass = Rec->getValueAsDef("ParserMatchClass");
   1192   if (ClassInfo *CI = AsmOperandClasses[MatchClass])
   1193     return CI;
   1194 
   1195   PrintFatalError(Rec->getLoc(), "operand has no match class!");
   1196 }
   1197 
   1198 struct LessRegisterSet {
   1199   bool operator() (const RegisterSet &LHS, const RegisterSet & RHS) const {
   1200     // std::set<T> defines its own compariso "operator<", but it
   1201     // performs a lexicographical comparison by T's innate comparison
   1202     // for some reason. We don't want non-deterministic pointer
   1203     // comparisons so use this instead.
   1204     return std::lexicographical_compare(LHS.begin(), LHS.end(),
   1205                                         RHS.begin(), RHS.end(),
   1206                                         LessRecordByID());
   1207   }
   1208 };
   1209 
   1210 void AsmMatcherInfo::
   1211 buildRegisterClasses(SmallPtrSetImpl<Record*> &SingletonRegisters) {
   1212   const auto &Registers = Target.getRegBank().getRegisters();
   1213   auto &RegClassList = Target.getRegBank().getRegClasses();
   1214 
   1215   typedef std::set<RegisterSet, LessRegisterSet> RegisterSetSet;
   1216 
   1217   // The register sets used for matching.
   1218   RegisterSetSet RegisterSets;
   1219 
   1220   // Gather the defined sets.
   1221   for (const CodeGenRegisterClass &RC : RegClassList)
   1222     RegisterSets.insert(
   1223         RegisterSet(RC.getOrder().begin(), RC.getOrder().end()));
   1224 
   1225   // Add any required singleton sets.
   1226   for (Record *Rec : SingletonRegisters) {
   1227     RegisterSets.insert(RegisterSet(&Rec, &Rec + 1));
   1228   }
   1229 
   1230   // Introduce derived sets where necessary (when a register does not determine
   1231   // a unique register set class), and build the mapping of registers to the set
   1232   // they should classify to.
   1233   std::map<Record*, RegisterSet> RegisterMap;
   1234   for (const CodeGenRegister &CGR : Registers) {
   1235     // Compute the intersection of all sets containing this register.
   1236     RegisterSet ContainingSet;
   1237 
   1238     for (const RegisterSet &RS : RegisterSets) {
   1239       if (!RS.count(CGR.TheDef))
   1240         continue;
   1241 
   1242       if (ContainingSet.empty()) {
   1243         ContainingSet = RS;
   1244         continue;
   1245       }
   1246 
   1247       RegisterSet Tmp;
   1248       std::swap(Tmp, ContainingSet);
   1249       std::insert_iterator<RegisterSet> II(ContainingSet,
   1250                                            ContainingSet.begin());
   1251       std::set_intersection(Tmp.begin(), Tmp.end(), RS.begin(), RS.end(), II,
   1252                             LessRecordByID());
   1253     }
   1254 
   1255     if (!ContainingSet.empty()) {
   1256       RegisterSets.insert(ContainingSet);
   1257       RegisterMap.insert(std::make_pair(CGR.TheDef, ContainingSet));
   1258     }
   1259   }
   1260 
   1261   // Construct the register classes.
   1262   std::map<RegisterSet, ClassInfo*, LessRegisterSet> RegisterSetClasses;
   1263   unsigned Index = 0;
   1264   for (const RegisterSet &RS : RegisterSets) {
   1265     Classes.emplace_front();
   1266     ClassInfo *CI = &Classes.front();
   1267     CI->Kind = ClassInfo::RegisterClass0 + Index;
   1268     CI->ClassName = "Reg" + utostr(Index);
   1269     CI->Name = "MCK_Reg" + utostr(Index);
   1270     CI->ValueName = "";
   1271     CI->PredicateMethod = ""; // unused
   1272     CI->RenderMethod = "addRegOperands";
   1273     CI->Registers = RS;
   1274     // FIXME: diagnostic type.
   1275     CI->DiagnosticType = "";
   1276     CI->IsOptional = false;
   1277     CI->DefaultMethod = ""; // unused
   1278     RegisterSetClasses.insert(std::make_pair(RS, CI));
   1279     ++Index;
   1280   }
   1281 
   1282   // Find the superclasses; we could compute only the subgroup lattice edges,
   1283   // but there isn't really a point.
   1284   for (const RegisterSet &RS : RegisterSets) {
   1285     ClassInfo *CI = RegisterSetClasses[RS];
   1286     for (const RegisterSet &RS2 : RegisterSets)
   1287       if (RS != RS2 &&
   1288           std::includes(RS2.begin(), RS2.end(), RS.begin(), RS.end(),
   1289                         LessRecordByID()))
   1290         CI->SuperClasses.push_back(RegisterSetClasses[RS2]);
   1291   }
   1292 
   1293   // Name the register classes which correspond to a user defined RegisterClass.
   1294   for (const CodeGenRegisterClass &RC : RegClassList) {
   1295     // Def will be NULL for non-user defined register classes.
   1296     Record *Def = RC.getDef();
   1297     if (!Def)
   1298       continue;
   1299     ClassInfo *CI = RegisterSetClasses[RegisterSet(RC.getOrder().begin(),
   1300                                                    RC.getOrder().end())];
   1301     if (CI->ValueName.empty()) {
   1302       CI->ClassName = RC.getName();
   1303       CI->Name = "MCK_" + RC.getName();
   1304       CI->ValueName = RC.getName();
   1305     } else
   1306       CI->ValueName = CI->ValueName + "," + RC.getName();
   1307 
   1308     Init *DiagnosticType = Def->getValueInit("DiagnosticType");
   1309     if (StringInit *SI = dyn_cast<StringInit>(DiagnosticType))
   1310       CI->DiagnosticType = std::string(SI->getValue());
   1311 
   1312     Init *DiagnosticString = Def->getValueInit("DiagnosticString");
   1313     if (StringInit *SI = dyn_cast<StringInit>(DiagnosticString))
   1314       CI->DiagnosticString = std::string(SI->getValue());
   1315 
   1316     // If we have a diagnostic string but the diagnostic type is not specified
   1317     // explicitly, create an anonymous diagnostic type.
   1318     if (!CI->DiagnosticString.empty() && CI->DiagnosticType.empty())
   1319       CI->DiagnosticType = RC.getName();
   1320 
   1321     RegisterClassClasses.insert(std::make_pair(Def, CI));
   1322   }
   1323 
   1324   // Populate the map for individual registers.
   1325   for (auto &It : RegisterMap)
   1326     RegisterClasses[It.first] = RegisterSetClasses[It.second];
   1327 
   1328   // Name the register classes which correspond to singleton registers.
   1329   for (Record *Rec : SingletonRegisters) {
   1330     ClassInfo *CI = RegisterClasses[Rec];
   1331     assert(CI && "Missing singleton register class info!");
   1332 
   1333     if (CI->ValueName.empty()) {
   1334       CI->ClassName = std::string(Rec->getName());
   1335       CI->Name = "MCK_" + Rec->getName().str();
   1336       CI->ValueName = std::string(Rec->getName());
   1337     } else
   1338       CI->ValueName = CI->ValueName + "," + Rec->getName().str();
   1339   }
   1340 }
   1341 
   1342 void AsmMatcherInfo::buildOperandClasses() {
   1343   std::vector<Record*> AsmOperands =
   1344     Records.getAllDerivedDefinitions("AsmOperandClass");
   1345 
   1346   // Pre-populate AsmOperandClasses map.
   1347   for (Record *Rec : AsmOperands) {
   1348     Classes.emplace_front();
   1349     AsmOperandClasses[Rec] = &Classes.front();
   1350   }
   1351 
   1352   unsigned Index = 0;
   1353   for (Record *Rec : AsmOperands) {
   1354     ClassInfo *CI = AsmOperandClasses[Rec];
   1355     CI->Kind = ClassInfo::UserClass0 + Index;
   1356 
   1357     ListInit *Supers = Rec->getValueAsListInit("SuperClasses");
   1358     for (Init *I : Supers->getValues()) {
   1359       DefInit *DI = dyn_cast<DefInit>(I);
   1360       if (!DI) {
   1361         PrintError(Rec->getLoc(), "Invalid super class reference!");
   1362         continue;
   1363       }
   1364 
   1365       ClassInfo *SC = AsmOperandClasses[DI->getDef()];
   1366       if (!SC)
   1367         PrintError(Rec->getLoc(), "Invalid super class reference!");
   1368       else
   1369         CI->SuperClasses.push_back(SC);
   1370     }
   1371     CI->ClassName = std::string(Rec->getValueAsString("Name"));
   1372     CI->Name = "MCK_" + CI->ClassName;
   1373     CI->ValueName = std::string(Rec->getName());
   1374 
   1375     // Get or construct the predicate method name.
   1376     Init *PMName = Rec->getValueInit("PredicateMethod");
   1377     if (StringInit *SI = dyn_cast<StringInit>(PMName)) {
   1378       CI->PredicateMethod = std::string(SI->getValue());
   1379     } else {
   1380       assert(isa<UnsetInit>(PMName) && "Unexpected PredicateMethod field!");
   1381       CI->PredicateMethod = "is" + CI->ClassName;
   1382     }
   1383 
   1384     // Get or construct the render method name.
   1385     Init *RMName = Rec->getValueInit("RenderMethod");
   1386     if (StringInit *SI = dyn_cast<StringInit>(RMName)) {
   1387       CI->RenderMethod = std::string(SI->getValue());
   1388     } else {
   1389       assert(isa<UnsetInit>(RMName) && "Unexpected RenderMethod field!");
   1390       CI->RenderMethod = "add" + CI->ClassName + "Operands";
   1391     }
   1392 
   1393     // Get the parse method name or leave it as empty.
   1394     Init *PRMName = Rec->getValueInit("ParserMethod");
   1395     if (StringInit *SI = dyn_cast<StringInit>(PRMName))
   1396       CI->ParserMethod = std::string(SI->getValue());
   1397 
   1398     // Get the diagnostic type and string or leave them as empty.
   1399     Init *DiagnosticType = Rec->getValueInit("DiagnosticType");
   1400     if (StringInit *SI = dyn_cast<StringInit>(DiagnosticType))
   1401       CI->DiagnosticType = std::string(SI->getValue());
   1402     Init *DiagnosticString = Rec->getValueInit("DiagnosticString");
   1403     if (StringInit *SI = dyn_cast<StringInit>(DiagnosticString))
   1404       CI->DiagnosticString = std::string(SI->getValue());
   1405     // If we have a DiagnosticString, we need a DiagnosticType for use within
   1406     // the matcher.
   1407     if (!CI->DiagnosticString.empty() && CI->DiagnosticType.empty())
   1408       CI->DiagnosticType = CI->ClassName;
   1409 
   1410     Init *IsOptional = Rec->getValueInit("IsOptional");
   1411     if (BitInit *BI = dyn_cast<BitInit>(IsOptional))
   1412       CI->IsOptional = BI->getValue();
   1413 
   1414     // Get or construct the default method name.
   1415     Init *DMName = Rec->getValueInit("DefaultMethod");
   1416     if (StringInit *SI = dyn_cast<StringInit>(DMName)) {
   1417       CI->DefaultMethod = std::string(SI->getValue());
   1418     } else {
   1419       assert(isa<UnsetInit>(DMName) && "Unexpected DefaultMethod field!");
   1420       CI->DefaultMethod = "default" + CI->ClassName + "Operands";
   1421     }
   1422 
   1423     ++Index;
   1424   }
   1425 }
   1426 
   1427 AsmMatcherInfo::AsmMatcherInfo(Record *asmParser,
   1428                                CodeGenTarget &target,
   1429                                RecordKeeper &records)
   1430   : Records(records), AsmParser(asmParser), Target(target) {
   1431 }
   1432 
   1433 /// buildOperandMatchInfo - Build the necessary information to handle user
   1434 /// defined operand parsing methods.
   1435 void AsmMatcherInfo::buildOperandMatchInfo() {
   1436 
   1437   /// Map containing a mask with all operands indices that can be found for
   1438   /// that class inside a instruction.
   1439   typedef std::map<ClassInfo *, unsigned, deref<std::less<>>> OpClassMaskTy;
   1440   OpClassMaskTy OpClassMask;
   1441 
   1442   for (const auto &MI : Matchables) {
   1443     OpClassMask.clear();
   1444 
   1445     // Keep track of all operands of this instructions which belong to the
   1446     // same class.
   1447     for (unsigned i = 0, e = MI->AsmOperands.size(); i != e; ++i) {
   1448       const MatchableInfo::AsmOperand &Op = MI->AsmOperands[i];
   1449       if (Op.Class->ParserMethod.empty())
   1450         continue;
   1451       unsigned &OperandMask = OpClassMask[Op.Class];
   1452       OperandMask |= (1 << i);
   1453     }
   1454 
   1455     // Generate operand match info for each mnemonic/operand class pair.
   1456     for (const auto &OCM : OpClassMask) {
   1457       unsigned OpMask = OCM.second;
   1458       ClassInfo *CI = OCM.first;
   1459       OperandMatchInfo.push_back(OperandMatchEntry::create(MI.get(), CI,
   1460                                                            OpMask));
   1461     }
   1462   }
   1463 }
   1464 
   1465 void AsmMatcherInfo::buildInfo() {
   1466   // Build information about all of the AssemblerPredicates.
   1467   const std::vector<std::pair<Record *, SubtargetFeatureInfo>>
   1468       &SubtargetFeaturePairs = SubtargetFeatureInfo::getAll(Records);
   1469   SubtargetFeatures.insert(SubtargetFeaturePairs.begin(),
   1470                            SubtargetFeaturePairs.end());
   1471 #ifndef NDEBUG
   1472   for (const auto &Pair : SubtargetFeatures)
   1473     LLVM_DEBUG(Pair.second.dump());
   1474 #endif // NDEBUG
   1475 
   1476   bool HasMnemonicFirst = AsmParser->getValueAsBit("HasMnemonicFirst");
   1477   bool ReportMultipleNearMisses =
   1478       AsmParser->getValueAsBit("ReportMultipleNearMisses");
   1479 
   1480   // Parse the instructions; we need to do this first so that we can gather the
   1481   // singleton register classes.
   1482   SmallPtrSet<Record*, 16> SingletonRegisters;
   1483   unsigned VariantCount = Target.getAsmParserVariantCount();
   1484   for (unsigned VC = 0; VC != VariantCount; ++VC) {
   1485     Record *AsmVariant = Target.getAsmParserVariant(VC);
   1486     StringRef CommentDelimiter =
   1487         AsmVariant->getValueAsString("CommentDelimiter");
   1488     AsmVariantInfo Variant;
   1489     Variant.RegisterPrefix = AsmVariant->getValueAsString("RegisterPrefix");
   1490     Variant.TokenizingCharacters =
   1491         AsmVariant->getValueAsString("TokenizingCharacters");
   1492     Variant.SeparatorCharacters =
   1493         AsmVariant->getValueAsString("SeparatorCharacters");
   1494     Variant.BreakCharacters =
   1495         AsmVariant->getValueAsString("BreakCharacters");
   1496     Variant.Name = AsmVariant->getValueAsString("Name");
   1497     Variant.AsmVariantNo = AsmVariant->getValueAsInt("Variant");
   1498 
   1499     for (const CodeGenInstruction *CGI : Target.getInstructionsByEnumValue()) {
   1500 
   1501       // If the tblgen -match-prefix option is specified (for tblgen hackers),
   1502       // filter the set of instructions we consider.
   1503       if (!StringRef(CGI->TheDef->getName()).startswith(MatchPrefix))
   1504         continue;
   1505 
   1506       // Ignore "codegen only" instructions.
   1507       if (CGI->TheDef->getValueAsBit("isCodeGenOnly"))
   1508         continue;
   1509 
   1510       // Ignore instructions for different instructions
   1511       StringRef V = CGI->TheDef->getValueAsString("AsmVariantName");
   1512       if (!V.empty() && V != Variant.Name)
   1513         continue;
   1514 
   1515       auto II = std::make_unique<MatchableInfo>(*CGI);
   1516 
   1517       II->initialize(*this, SingletonRegisters, Variant, HasMnemonicFirst);
   1518 
   1519       // Ignore instructions which shouldn't be matched and diagnose invalid
   1520       // instruction definitions with an error.
   1521       if (!II->validate(CommentDelimiter, false))
   1522         continue;
   1523 
   1524       Matchables.push_back(std::move(II));
   1525     }
   1526 
   1527     // Parse all of the InstAlias definitions and stick them in the list of
   1528     // matchables.
   1529     std::vector<Record*> AllInstAliases =
   1530       Records.getAllDerivedDefinitions("InstAlias");
   1531     for (Record *InstAlias : AllInstAliases) {
   1532       auto Alias = std::make_unique<CodeGenInstAlias>(InstAlias, Target);
   1533 
   1534       // If the tblgen -match-prefix option is specified (for tblgen hackers),
   1535       // filter the set of instruction aliases we consider, based on the target
   1536       // instruction.
   1537       if (!StringRef(Alias->ResultInst->TheDef->getName())
   1538             .startswith( MatchPrefix))
   1539         continue;
   1540 
   1541       StringRef V = Alias->TheDef->getValueAsString("AsmVariantName");
   1542       if (!V.empty() && V != Variant.Name)
   1543         continue;
   1544 
   1545       auto II = std::make_unique<MatchableInfo>(std::move(Alias));
   1546 
   1547       II->initialize(*this, SingletonRegisters, Variant, HasMnemonicFirst);
   1548 
   1549       // Validate the alias definitions.
   1550       II->validate(CommentDelimiter, true);
   1551 
   1552       Matchables.push_back(std::move(II));
   1553     }
   1554   }
   1555 
   1556   // Build info for the register classes.
   1557   buildRegisterClasses(SingletonRegisters);
   1558 
   1559   // Build info for the user defined assembly operand classes.
   1560   buildOperandClasses();
   1561 
   1562   // Build the information about matchables, now that we have fully formed
   1563   // classes.
   1564   std::vector<std::unique_ptr<MatchableInfo>> NewMatchables;
   1565   for (auto &II : Matchables) {
   1566     // Parse the tokens after the mnemonic.
   1567     // Note: buildInstructionOperandReference may insert new AsmOperands, so
   1568     // don't precompute the loop bound.
   1569     for (unsigned i = 0; i != II->AsmOperands.size(); ++i) {
   1570       MatchableInfo::AsmOperand &Op = II->AsmOperands[i];
   1571       StringRef Token = Op.Token;
   1572 
   1573       // Check for singleton registers.
   1574       if (Record *RegRecord = Op.SingletonReg) {
   1575         Op.Class = RegisterClasses[RegRecord];
   1576         assert(Op.Class && Op.Class->Registers.size() == 1 &&
   1577                "Unexpected class for singleton register");
   1578         continue;
   1579       }
   1580 
   1581       // Check for simple tokens.
   1582       if (Token[0] != '$') {
   1583         Op.Class = getTokenClass(Token);
   1584         continue;
   1585       }
   1586 
   1587       if (Token.size() > 1 && isdigit(Token[1])) {
   1588         Op.Class = getTokenClass(Token);
   1589         continue;
   1590       }
   1591 
   1592       // Otherwise this is an operand reference.
   1593       StringRef OperandName;
   1594       if (Token[1] == '{')
   1595         OperandName = Token.substr(2, Token.size() - 3);
   1596       else
   1597         OperandName = Token.substr(1);
   1598 
   1599       if (II->DefRec.is<const CodeGenInstruction*>())
   1600         buildInstructionOperandReference(II.get(), OperandName, i);
   1601       else
   1602         buildAliasOperandReference(II.get(), OperandName, Op);
   1603     }
   1604 
   1605     if (II->DefRec.is<const CodeGenInstruction*>()) {
   1606       II->buildInstructionResultOperands();
   1607       // If the instruction has a two-operand alias, build up the
   1608       // matchable here. We'll add them in bulk at the end to avoid
   1609       // confusing this loop.
   1610       StringRef Constraint =
   1611           II->TheDef->getValueAsString("TwoOperandAliasConstraint");
   1612       if (Constraint != "") {
   1613         // Start by making a copy of the original matchable.
   1614         auto AliasII = std::make_unique<MatchableInfo>(*II);
   1615 
   1616         // Adjust it to be a two-operand alias.
   1617         AliasII->formTwoOperandAlias(Constraint);
   1618 
   1619         // Add the alias to the matchables list.
   1620         NewMatchables.push_back(std::move(AliasII));
   1621       }
   1622     } else
   1623       // FIXME: The tied operands checking is not yet integrated with the
   1624       // framework for reporting multiple near misses. To prevent invalid
   1625       // formats from being matched with an alias if a tied-operands check
   1626       // would otherwise have disallowed it, we just disallow such constructs
   1627       // in TableGen completely.
   1628       II->buildAliasResultOperands(!ReportMultipleNearMisses);
   1629   }
   1630   if (!NewMatchables.empty())
   1631     Matchables.insert(Matchables.end(),
   1632                       std::make_move_iterator(NewMatchables.begin()),
   1633                       std::make_move_iterator(NewMatchables.end()));
   1634 
   1635   // Process token alias definitions and set up the associated superclass
   1636   // information.
   1637   std::vector<Record*> AllTokenAliases =
   1638     Records.getAllDerivedDefinitions("TokenAlias");
   1639   for (Record *Rec : AllTokenAliases) {
   1640     ClassInfo *FromClass = getTokenClass(Rec->getValueAsString("FromToken"));
   1641     ClassInfo *ToClass = getTokenClass(Rec->getValueAsString("ToToken"));
   1642     if (FromClass == ToClass)
   1643       PrintFatalError(Rec->getLoc(),
   1644                     "error: Destination value identical to source value.");
   1645     FromClass->SuperClasses.push_back(ToClass);
   1646   }
   1647 
   1648   // Reorder classes so that classes precede super classes.
   1649   Classes.sort();
   1650 
   1651 #ifdef EXPENSIVE_CHECKS
   1652   // Verify that the table is sorted and operator < works transitively.
   1653   for (auto I = Classes.begin(), E = Classes.end(); I != E; ++I) {
   1654     for (auto J = I; J != E; ++J) {
   1655       assert(!(*J < *I));
   1656       assert(I == J || !J->isSubsetOf(*I));
   1657     }
   1658   }
   1659 #endif
   1660 }
   1661 
   1662 /// buildInstructionOperandReference - The specified operand is a reference to a
   1663 /// named operand such as $src.  Resolve the Class and OperandInfo pointers.
   1664 void AsmMatcherInfo::
   1665 buildInstructionOperandReference(MatchableInfo *II,
   1666                                  StringRef OperandName,
   1667                                  unsigned AsmOpIdx) {
   1668   const CodeGenInstruction &CGI = *II->DefRec.get<const CodeGenInstruction*>();
   1669   const CGIOperandList &Operands = CGI.Operands;
   1670   MatchableInfo::AsmOperand *Op = &II->AsmOperands[AsmOpIdx];
   1671 
   1672   // Map this token to an operand.
   1673   unsigned Idx;
   1674   if (!Operands.hasOperandNamed(OperandName, Idx))
   1675     PrintFatalError(II->TheDef->getLoc(),
   1676                     "error: unable to find operand: '" + OperandName + "'");
   1677 
   1678   // If the instruction operand has multiple suboperands, but the parser
   1679   // match class for the asm operand is still the default "ImmAsmOperand",
   1680   // then handle each suboperand separately.
   1681   if (Op->SubOpIdx == -1 && Operands[Idx].MINumOperands > 1) {
   1682     Record *Rec = Operands[Idx].Rec;
   1683     assert(Rec->isSubClassOf("Operand") && "Unexpected operand!");
   1684     Record *MatchClass = Rec->getValueAsDef("ParserMatchClass");
   1685     if (MatchClass && MatchClass->getValueAsString("Name") == "Imm") {
   1686       // Insert remaining suboperands after AsmOpIdx in II->AsmOperands.
   1687       StringRef Token = Op->Token; // save this in case Op gets moved
   1688       for (unsigned SI = 1, SE = Operands[Idx].MINumOperands; SI != SE; ++SI) {
   1689         MatchableInfo::AsmOperand NewAsmOp(/*IsIsolatedToken=*/true, Token);
   1690         NewAsmOp.SubOpIdx = SI;
   1691         II->AsmOperands.insert(II->AsmOperands.begin()+AsmOpIdx+SI, NewAsmOp);
   1692       }
   1693       // Replace Op with first suboperand.
   1694       Op = &II->AsmOperands[AsmOpIdx]; // update the pointer in case it moved
   1695       Op->SubOpIdx = 0;
   1696     }
   1697   }
   1698 
   1699   // Set up the operand class.
   1700   Op->Class = getOperandClass(Operands[Idx], Op->SubOpIdx);
   1701   Op->OrigSrcOpName = OperandName;
   1702 
   1703   // If the named operand is tied, canonicalize it to the untied operand.
   1704   // For example, something like:
   1705   //   (outs GPR:$dst), (ins GPR:$src)
   1706   // with an asmstring of
   1707   //   "inc $src"
   1708   // we want to canonicalize to:
   1709   //   "inc $dst"
   1710   // so that we know how to provide the $dst operand when filling in the result.
   1711   int OITied = -1;
   1712   if (Operands[Idx].MINumOperands == 1)
   1713     OITied = Operands[Idx].getTiedRegister();
   1714   if (OITied != -1) {
   1715     // The tied operand index is an MIOperand index, find the operand that
   1716     // contains it.
   1717     std::pair<unsigned, unsigned> Idx = Operands.getSubOperandNumber(OITied);
   1718     OperandName = Operands[Idx.first].Name;
   1719     Op->SubOpIdx = Idx.second;
   1720   }
   1721 
   1722   Op->SrcOpName = OperandName;
   1723 }
   1724 
   1725 /// buildAliasOperandReference - When parsing an operand reference out of the
   1726 /// matching string (e.g. "movsx $src, $dst"), determine what the class of the
   1727 /// operand reference is by looking it up in the result pattern definition.
   1728 void AsmMatcherInfo::buildAliasOperandReference(MatchableInfo *II,
   1729                                                 StringRef OperandName,
   1730                                                 MatchableInfo::AsmOperand &Op) {
   1731   const CodeGenInstAlias &CGA = *II->DefRec.get<const CodeGenInstAlias*>();
   1732 
   1733   // Set up the operand class.
   1734   for (unsigned i = 0, e = CGA.ResultOperands.size(); i != e; ++i)
   1735     if (CGA.ResultOperands[i].isRecord() &&
   1736         CGA.ResultOperands[i].getName() == OperandName) {
   1737       // It's safe to go with the first one we find, because CodeGenInstAlias
   1738       // validates that all operands with the same name have the same record.
   1739       Op.SubOpIdx = CGA.ResultInstOperandIndex[i].second;
   1740       // Use the match class from the Alias definition, not the
   1741       // destination instruction, as we may have an immediate that's
   1742       // being munged by the match class.
   1743       Op.Class = getOperandClass(CGA.ResultOperands[i].getRecord(),
   1744                                  Op.SubOpIdx);
   1745       Op.SrcOpName = OperandName;
   1746       Op.OrigSrcOpName = OperandName;
   1747       return;
   1748     }
   1749 
   1750   PrintFatalError(II->TheDef->getLoc(),
   1751                   "error: unable to find operand: '" + OperandName + "'");
   1752 }
   1753 
   1754 void MatchableInfo::buildInstructionResultOperands() {
   1755   const CodeGenInstruction *ResultInst = getResultInst();
   1756 
   1757   // Loop over all operands of the result instruction, determining how to
   1758   // populate them.
   1759   for (const CGIOperandList::OperandInfo &OpInfo : ResultInst->Operands) {
   1760     // If this is a tied operand, just copy from the previously handled operand.
   1761     int TiedOp = -1;
   1762     if (OpInfo.MINumOperands == 1)
   1763       TiedOp = OpInfo.getTiedRegister();
   1764     if (TiedOp != -1) {
   1765       int TiedSrcOperand = findAsmOperandOriginallyNamed(OpInfo.Name);
   1766       if (TiedSrcOperand != -1 &&
   1767           ResOperands[TiedOp].Kind == ResOperand::RenderAsmOperand)
   1768         ResOperands.push_back(ResOperand::getTiedOp(
   1769             TiedOp, ResOperands[TiedOp].AsmOperandNum, TiedSrcOperand));
   1770       else
   1771         ResOperands.push_back(ResOperand::getTiedOp(TiedOp, 0, 0));
   1772       continue;
   1773     }
   1774 
   1775     int SrcOperand = findAsmOperandNamed(OpInfo.Name);
   1776     if (OpInfo.Name.empty() || SrcOperand == -1) {
   1777       // This may happen for operands that are tied to a suboperand of a
   1778       // complex operand.  Simply use a dummy value here; nobody should
   1779       // use this operand slot.
   1780       // FIXME: The long term goal is for the MCOperand list to not contain
   1781       // tied operands at all.
   1782       ResOperands.push_back(ResOperand::getImmOp(0));
   1783       continue;
   1784     }
   1785 
   1786     // Check if the one AsmOperand populates the entire operand.
   1787     unsigned NumOperands = OpInfo.MINumOperands;
   1788     if (AsmOperands[SrcOperand].SubOpIdx == -1) {
   1789       ResOperands.push_back(ResOperand::getRenderedOp(SrcOperand, NumOperands));
   1790       continue;
   1791     }
   1792 
   1793     // Add a separate ResOperand for each suboperand.
   1794     for (unsigned AI = 0; AI < NumOperands; ++AI) {
   1795       assert(AsmOperands[SrcOperand+AI].SubOpIdx == (int)AI &&
   1796              AsmOperands[SrcOperand+AI].SrcOpName == OpInfo.Name &&
   1797              "unexpected AsmOperands for suboperands");
   1798       ResOperands.push_back(ResOperand::getRenderedOp(SrcOperand + AI, 1));
   1799     }
   1800   }
   1801 }
   1802 
   1803 void MatchableInfo::buildAliasResultOperands(bool AliasConstraintsAreChecked) {
   1804   const CodeGenInstAlias &CGA = *DefRec.get<const CodeGenInstAlias*>();
   1805   const CodeGenInstruction *ResultInst = getResultInst();
   1806 
   1807   // Map of:  $reg -> #lastref
   1808   //   where $reg is the name of the operand in the asm string
   1809   //   where #lastref is the last processed index where $reg was referenced in
   1810   //   the asm string.
   1811   SmallDenseMap<StringRef, int> OperandRefs;
   1812 
   1813   // Loop over all operands of the result instruction, determining how to
   1814   // populate them.
   1815   unsigned AliasOpNo = 0;
   1816   unsigned LastOpNo = CGA.ResultInstOperandIndex.size();
   1817   for (unsigned i = 0, e = ResultInst->Operands.size(); i != e; ++i) {
   1818     const CGIOperandList::OperandInfo *OpInfo = &ResultInst->Operands[i];
   1819 
   1820     // If this is a tied operand, just copy from the previously handled operand.
   1821     int TiedOp = -1;
   1822     if (OpInfo->MINumOperands == 1)
   1823       TiedOp = OpInfo->getTiedRegister();
   1824     if (TiedOp != -1) {
   1825       unsigned SrcOp1 = 0;
   1826       unsigned SrcOp2 = 0;
   1827 
   1828       // If an operand has been specified twice in the asm string,
   1829       // add the two source operand's indices to the TiedOp so that
   1830       // at runtime the 'tied' constraint is checked.
   1831       if (ResOperands[TiedOp].Kind == ResOperand::RenderAsmOperand) {
   1832         SrcOp1 = ResOperands[TiedOp].AsmOperandNum;
   1833 
   1834         // Find the next operand (similarly named operand) in the string.
   1835         StringRef Name = AsmOperands[SrcOp1].SrcOpName;
   1836         auto Insert = OperandRefs.try_emplace(Name, SrcOp1);
   1837         SrcOp2 = findAsmOperandNamed(Name, Insert.first->second);
   1838 
   1839         // Not updating the record in OperandRefs will cause TableGen
   1840         // to fail with an error at the end of this function.
   1841         if (AliasConstraintsAreChecked)
   1842           Insert.first->second = SrcOp2;
   1843 
   1844         // In case it only has one reference in the asm string,
   1845         // it doesn't need to be checked for tied constraints.
   1846         SrcOp2 = (SrcOp2 == (unsigned)-1) ? SrcOp1 : SrcOp2;
   1847       }
   1848 
   1849       // If the alias operand is of a different operand class, we only want
   1850       // to benefit from the tied-operands check and just match the operand
   1851       // as a normal, but not copy the original (TiedOp) to the result
   1852       // instruction. We do this by passing -1 as the tied operand to copy.
   1853       if (ResultInst->Operands[i].Rec->getName() !=
   1854           ResultInst->Operands[TiedOp].Rec->getName()) {
   1855         SrcOp1 = ResOperands[TiedOp].AsmOperandNum;
   1856         int SubIdx = CGA.ResultInstOperandIndex[AliasOpNo].second;
   1857         StringRef Name = CGA.ResultOperands[AliasOpNo].getName();
   1858         SrcOp2 = findAsmOperand(Name, SubIdx);
   1859         ResOperands.push_back(
   1860             ResOperand::getTiedOp((unsigned)-1, SrcOp1, SrcOp2));
   1861       } else {
   1862         ResOperands.push_back(ResOperand::getTiedOp(TiedOp, SrcOp1, SrcOp2));
   1863         continue;
   1864       }
   1865     }
   1866 
   1867     // Handle all the suboperands for this operand.
   1868     const std::string &OpName = OpInfo->Name;
   1869     for ( ; AliasOpNo <  LastOpNo &&
   1870             CGA.ResultInstOperandIndex[AliasOpNo].first == i; ++AliasOpNo) {
   1871       int SubIdx = CGA.ResultInstOperandIndex[AliasOpNo].second;
   1872 
   1873       // Find out what operand from the asmparser that this MCInst operand
   1874       // comes from.
   1875       switch (CGA.ResultOperands[AliasOpNo].Kind) {
   1876       case CodeGenInstAlias::ResultOperand::K_Record: {
   1877         StringRef Name = CGA.ResultOperands[AliasOpNo].getName();
   1878         int SrcOperand = findAsmOperand(Name, SubIdx);
   1879         if (SrcOperand == -1)
   1880           PrintFatalError(TheDef->getLoc(), "Instruction '" +
   1881                         TheDef->getName() + "' has operand '" + OpName +
   1882                         "' that doesn't appear in asm string!");
   1883 
   1884         // Add it to the operand references. If it is added a second time, the
   1885         // record won't be updated and it will fail later on.
   1886         OperandRefs.try_emplace(Name, SrcOperand);
   1887 
   1888         unsigned NumOperands = (SubIdx == -1 ? OpInfo->MINumOperands : 1);
   1889         ResOperands.push_back(ResOperand::getRenderedOp(SrcOperand,
   1890                                                         NumOperands));
   1891         break;
   1892       }
   1893       case CodeGenInstAlias::ResultOperand::K_Imm: {
   1894         int64_t ImmVal = CGA.ResultOperands[AliasOpNo].getImm();
   1895         ResOperands.push_back(ResOperand::getImmOp(ImmVal));
   1896         break;
   1897       }
   1898       case CodeGenInstAlias::ResultOperand::K_Reg: {
   1899         Record *Reg = CGA.ResultOperands[AliasOpNo].getRegister();
   1900         ResOperands.push_back(ResOperand::getRegOp(Reg));
   1901         break;
   1902       }
   1903       }
   1904     }
   1905   }
   1906 
   1907   // Check that operands are not repeated more times than is supported.
   1908   for (auto &T : OperandRefs) {
   1909     if (T.second != -1 && findAsmOperandNamed(T.first, T.second) != -1)
   1910       PrintFatalError(TheDef->getLoc(),
   1911                       "Operand '" + T.first + "' can never be matched");
   1912   }
   1913 }
   1914 
   1915 static unsigned
   1916 getConverterOperandID(const std::string &Name,
   1917                       SmallSetVector<CachedHashString, 16> &Table,
   1918                       bool &IsNew) {
   1919   IsNew = Table.insert(CachedHashString(Name));
   1920 
   1921   unsigned ID = IsNew ? Table.size() - 1 : find(Table, Name) - Table.begin();
   1922 
   1923   assert(ID < Table.size());
   1924 
   1925   return ID;
   1926 }
   1927 
   1928 static unsigned
   1929 emitConvertFuncs(CodeGenTarget &Target, StringRef ClassName,
   1930                  std::vector<std::unique_ptr<MatchableInfo>> &Infos,
   1931                  bool HasMnemonicFirst, bool HasOptionalOperands,
   1932                  raw_ostream &OS) {
   1933   SmallSetVector<CachedHashString, 16> OperandConversionKinds;
   1934   SmallSetVector<CachedHashString, 16> InstructionConversionKinds;
   1935   std::vector<std::vector<uint8_t> > ConversionTable;
   1936   size_t MaxRowLength = 2; // minimum is custom converter plus terminator.
   1937 
   1938   // TargetOperandClass - This is the target's operand class, like X86Operand.
   1939   std::string TargetOperandClass = Target.getName().str() + "Operand";
   1940 
   1941   // Write the convert function to a separate stream, so we can drop it after
   1942   // the enum. We'll build up the conversion handlers for the individual
   1943   // operand types opportunistically as we encounter them.
   1944   std::string ConvertFnBody;
   1945   raw_string_ostream CvtOS(ConvertFnBody);
   1946   // Start the unified conversion function.
   1947   if (HasOptionalOperands) {
   1948     CvtOS << "void " << Target.getName() << ClassName << "::\n"
   1949           << "convertToMCInst(unsigned Kind, MCInst &Inst, "
   1950           << "unsigned Opcode,\n"
   1951           << "                const OperandVector &Operands,\n"
   1952           << "                const SmallBitVector &OptionalOperandsMask) {\n";
   1953   } else {
   1954     CvtOS << "void " << Target.getName() << ClassName << "::\n"
   1955           << "convertToMCInst(unsigned Kind, MCInst &Inst, "
   1956           << "unsigned Opcode,\n"
   1957           << "                const OperandVector &Operands) {\n";
   1958   }
   1959   CvtOS << "  assert(Kind < CVT_NUM_SIGNATURES && \"Invalid signature!\");\n";
   1960   CvtOS << "  const uint8_t *Converter = ConversionTable[Kind];\n";
   1961   if (HasOptionalOperands) {
   1962     size_t MaxNumOperands = 0;
   1963     for (const auto &MI : Infos) {
   1964       MaxNumOperands = std::max(MaxNumOperands, MI->AsmOperands.size());
   1965     }
   1966     CvtOS << "  unsigned DefaultsOffset[" << (MaxNumOperands + 1)
   1967           << "] = { 0 };\n";
   1968     CvtOS << "  assert(OptionalOperandsMask.size() == " << (MaxNumOperands)
   1969           << ");\n";
   1970     CvtOS << "  for (unsigned i = 0, NumDefaults = 0; i < " << (MaxNumOperands)
   1971           << "; ++i) {\n";
   1972     CvtOS << "    DefaultsOffset[i + 1] = NumDefaults;\n";
   1973     CvtOS << "    NumDefaults += (OptionalOperandsMask[i] ? 1 : 0);\n";
   1974     CvtOS << "  }\n";
   1975   }
   1976   CvtOS << "  unsigned OpIdx;\n";
   1977   CvtOS << "  Inst.setOpcode(Opcode);\n";
   1978   CvtOS << "  for (const uint8_t *p = Converter; *p; p += 2) {\n";
   1979   if (HasOptionalOperands) {
   1980     CvtOS << "    OpIdx = *(p + 1) - DefaultsOffset[*(p + 1)];\n";
   1981   } else {
   1982     CvtOS << "    OpIdx = *(p + 1);\n";
   1983   }
   1984   CvtOS << "    switch (*p) {\n";
   1985   CvtOS << "    default: llvm_unreachable(\"invalid conversion entry!\");\n";
   1986   CvtOS << "    case CVT_Reg:\n";
   1987   CvtOS << "      static_cast<" << TargetOperandClass
   1988         << " &>(*Operands[OpIdx]).addRegOperands(Inst, 1);\n";
   1989   CvtOS << "      break;\n";
   1990   CvtOS << "    case CVT_Tied: {\n";
   1991   CvtOS << "      assert(OpIdx < (size_t)(std::end(TiedAsmOperandTable) -\n";
   1992   CvtOS << "                              std::begin(TiedAsmOperandTable)) &&\n";
   1993   CvtOS << "             \"Tied operand not found\");\n";
   1994   CvtOS << "      unsigned TiedResOpnd = TiedAsmOperandTable[OpIdx][0];\n";
   1995   CvtOS << "      if (TiedResOpnd != (uint8_t)-1)\n";
   1996   CvtOS << "        Inst.addOperand(Inst.getOperand(TiedResOpnd));\n";
   1997   CvtOS << "      break;\n";
   1998   CvtOS << "    }\n";
   1999 
   2000   std::string OperandFnBody;
   2001   raw_string_ostream OpOS(OperandFnBody);
   2002   // Start the operand number lookup function.
   2003   OpOS << "void " << Target.getName() << ClassName << "::\n"
   2004        << "convertToMapAndConstraints(unsigned Kind,\n";
   2005   OpOS.indent(27);
   2006   OpOS << "const OperandVector &Operands) {\n"
   2007        << "  assert(Kind < CVT_NUM_SIGNATURES && \"Invalid signature!\");\n"
   2008        << "  unsigned NumMCOperands = 0;\n"
   2009        << "  const uint8_t *Converter = ConversionTable[Kind];\n"
   2010        << "  for (const uint8_t *p = Converter; *p; p += 2) {\n"
   2011        << "    switch (*p) {\n"
   2012        << "    default: llvm_unreachable(\"invalid conversion entry!\");\n"
   2013        << "    case CVT_Reg:\n"
   2014        << "      Operands[*(p + 1)]->setMCOperandNum(NumMCOperands);\n"
   2015        << "      Operands[*(p + 1)]->setConstraint(\"r\");\n"
   2016        << "      ++NumMCOperands;\n"
   2017        << "      break;\n"
   2018        << "    case CVT_Tied:\n"
   2019        << "      ++NumMCOperands;\n"
   2020        << "      break;\n";
   2021 
   2022   // Pre-populate the operand conversion kinds with the standard always
   2023   // available entries.
   2024   OperandConversionKinds.insert(CachedHashString("CVT_Done"));
   2025   OperandConversionKinds.insert(CachedHashString("CVT_Reg"));
   2026   OperandConversionKinds.insert(CachedHashString("CVT_Tied"));
   2027   enum { CVT_Done, CVT_Reg, CVT_Tied };
   2028 
   2029   // Map of e.g. <0, 2, 3> -> "Tie_0_2_3" enum label.
   2030   std::map<std::tuple<uint8_t, uint8_t, uint8_t>, std::string>
   2031   TiedOperandsEnumMap;
   2032 
   2033   for (auto &II : Infos) {
   2034     // Check if we have a custom match function.
   2035     StringRef AsmMatchConverter =
   2036         II->getResultInst()->TheDef->getValueAsString("AsmMatchConverter");
   2037     if (!AsmMatchConverter.empty() && II->UseInstAsmMatchConverter) {
   2038       std::string Signature = ("ConvertCustom_" + AsmMatchConverter).str();
   2039       II->ConversionFnKind = Signature;
   2040 
   2041       // Check if we have already generated this signature.
   2042       if (!InstructionConversionKinds.insert(CachedHashString(Signature)))
   2043         continue;
   2044 
   2045       // Remember this converter for the kind enum.
   2046       unsigned KindID = OperandConversionKinds.size();
   2047       OperandConversionKinds.insert(
   2048           CachedHashString("CVT_" + getEnumNameForToken(AsmMatchConverter)));
   2049 
   2050       // Add the converter row for this instruction.
   2051       ConversionTable.emplace_back();
   2052       ConversionTable.back().push_back(KindID);
   2053       ConversionTable.back().push_back(CVT_Done);
   2054 
   2055       // Add the handler to the conversion driver function.
   2056       CvtOS << "    case CVT_"
   2057             << getEnumNameForToken(AsmMatchConverter) << ":\n"
   2058             << "      " << AsmMatchConverter << "(Inst, Operands);\n"
   2059             << "      break;\n";
   2060 
   2061       // FIXME: Handle the operand number lookup for custom match functions.
   2062       continue;
   2063     }
   2064 
   2065     // Build the conversion function signature.
   2066     std::string Signature = "Convert";
   2067 
   2068     std::vector<uint8_t> ConversionRow;
   2069 
   2070     // Compute the convert enum and the case body.
   2071     MaxRowLength = std::max(MaxRowLength, II->ResOperands.size()*2 + 1 );
   2072 
   2073     for (unsigned i = 0, e = II->ResOperands.size(); i != e; ++i) {
   2074       const MatchableInfo::ResOperand &OpInfo = II->ResOperands[i];
   2075 
   2076       // Generate code to populate each result operand.
   2077       switch (OpInfo.Kind) {
   2078       case MatchableInfo::ResOperand::RenderAsmOperand: {
   2079         // This comes from something we parsed.
   2080         const MatchableInfo::AsmOperand &Op =
   2081           II->AsmOperands[OpInfo.AsmOperandNum];
   2082 
   2083         // Registers are always converted the same, don't duplicate the
   2084         // conversion function based on them.
   2085         Signature += "__";
   2086         std::string Class;
   2087         Class = Op.Class->isRegisterClass() ? "Reg" : Op.Class->ClassName;
   2088         Signature += Class;
   2089         Signature += utostr(OpInfo.MINumOperands);
   2090         Signature += "_" + itostr(OpInfo.AsmOperandNum);
   2091 
   2092         // Add the conversion kind, if necessary, and get the associated ID
   2093         // the index of its entry in the vector).
   2094         std::string Name = "CVT_" + (Op.Class->isRegisterClass() ? "Reg" :
   2095                                      Op.Class->RenderMethod);
   2096         if (Op.Class->IsOptional) {
   2097           // For optional operands we must also care about DefaultMethod
   2098           assert(HasOptionalOperands);
   2099           Name += "_" + Op.Class->DefaultMethod;
   2100         }
   2101         Name = getEnumNameForToken(Name);
   2102 
   2103         bool IsNewConverter = false;
   2104         unsigned ID = getConverterOperandID(Name, OperandConversionKinds,
   2105                                             IsNewConverter);
   2106 
   2107         // Add the operand entry to the instruction kind conversion row.
   2108         ConversionRow.push_back(ID);
   2109         ConversionRow.push_back(OpInfo.AsmOperandNum + HasMnemonicFirst);
   2110 
   2111         if (!IsNewConverter)
   2112           break;
   2113 
   2114         // This is a new operand kind. Add a handler for it to the
   2115         // converter driver.
   2116         CvtOS << "    case " << Name << ":\n";
   2117         if (Op.Class->IsOptional) {
   2118           // If optional operand is not present in actual instruction then we
   2119           // should call its DefaultMethod before RenderMethod
   2120           assert(HasOptionalOperands);
   2121           CvtOS << "      if (OptionalOperandsMask[*(p + 1) - 1]) {\n"
   2122                 << "        " << Op.Class->DefaultMethod << "()"
   2123                 << "->" << Op.Class->RenderMethod << "(Inst, "
   2124                 << OpInfo.MINumOperands << ");\n"
   2125                 << "      } else {\n"
   2126                 << "        static_cast<" << TargetOperandClass
   2127                 << " &>(*Operands[OpIdx])." << Op.Class->RenderMethod
   2128                 << "(Inst, " << OpInfo.MINumOperands << ");\n"
   2129                 << "      }\n";
   2130         } else {
   2131           CvtOS << "      static_cast<" << TargetOperandClass
   2132                 << " &>(*Operands[OpIdx])." << Op.Class->RenderMethod
   2133                 << "(Inst, " << OpInfo.MINumOperands << ");\n";
   2134         }
   2135         CvtOS << "      break;\n";
   2136 
   2137         // Add a handler for the operand number lookup.
   2138         OpOS << "    case " << Name << ":\n"
   2139              << "      Operands[*(p + 1)]->setMCOperandNum(NumMCOperands);\n";
   2140 
   2141         if (Op.Class->isRegisterClass())
   2142           OpOS << "      Operands[*(p + 1)]->setConstraint(\"r\");\n";
   2143         else
   2144           OpOS << "      Operands[*(p + 1)]->setConstraint(\"m\");\n";
   2145         OpOS << "      NumMCOperands += " << OpInfo.MINumOperands << ";\n"
   2146              << "      break;\n";
   2147         break;
   2148       }
   2149       case MatchableInfo::ResOperand::TiedOperand: {
   2150         // If this operand is tied to a previous one, just copy the MCInst
   2151         // operand from the earlier one.We can only tie single MCOperand values.
   2152         assert(OpInfo.MINumOperands == 1 && "Not a singular MCOperand");
   2153         uint8_t TiedOp = OpInfo.TiedOperands.ResOpnd;
   2154         uint8_t SrcOp1 =
   2155             OpInfo.TiedOperands.SrcOpnd1Idx + HasMnemonicFirst;
   2156         uint8_t SrcOp2 =
   2157             OpInfo.TiedOperands.SrcOpnd2Idx + HasMnemonicFirst;
   2158         assert((i > TiedOp || TiedOp == (uint8_t)-1) &&
   2159                "Tied operand precedes its target!");
   2160         auto TiedTupleName = std::string("Tie") + utostr(TiedOp) + '_' +
   2161                              utostr(SrcOp1) + '_' + utostr(SrcOp2);
   2162         Signature += "__" + TiedTupleName;
   2163         ConversionRow.push_back(CVT_Tied);
   2164         ConversionRow.push_back(TiedOp);
   2165         ConversionRow.push_back(SrcOp1);
   2166         ConversionRow.push_back(SrcOp2);
   2167 
   2168         // Also create an 'enum' for this combination of tied operands.
   2169         auto Key = std::make_tuple(TiedOp, SrcOp1, SrcOp2);
   2170         TiedOperandsEnumMap.emplace(Key, TiedTupleName);
   2171         break;
   2172       }
   2173       case MatchableInfo::ResOperand::ImmOperand: {
   2174         int64_t Val = OpInfo.ImmVal;
   2175         std::string Ty = "imm_" + itostr(Val);
   2176         Ty = getEnumNameForToken(Ty);
   2177         Signature += "__" + Ty;
   2178 
   2179         std::string Name = "CVT_" + Ty;
   2180         bool IsNewConverter = false;
   2181         unsigned ID = getConverterOperandID(Name, OperandConversionKinds,
   2182                                             IsNewConverter);
   2183         // Add the operand entry to the instruction kind conversion row.
   2184         ConversionRow.push_back(ID);
   2185         ConversionRow.push_back(0);
   2186 
   2187         if (!IsNewConverter)
   2188           break;
   2189 
   2190         CvtOS << "    case " << Name << ":\n"
   2191               << "      Inst.addOperand(MCOperand::createImm(" << Val << "));\n"
   2192               << "      break;\n";
   2193 
   2194         OpOS << "    case " << Name << ":\n"
   2195              << "      Operands[*(p + 1)]->setMCOperandNum(NumMCOperands);\n"
   2196              << "      Operands[*(p + 1)]->setConstraint(\"\");\n"
   2197              << "      ++NumMCOperands;\n"
   2198              << "      break;\n";
   2199         break;
   2200       }
   2201       case MatchableInfo::ResOperand::RegOperand: {
   2202         std::string Reg, Name;
   2203         if (!OpInfo.Register) {
   2204           Name = "reg0";
   2205           Reg = "0";
   2206         } else {
   2207           Reg = getQualifiedName(OpInfo.Register);
   2208           Name = "reg" + OpInfo.Register->getName().str();
   2209         }
   2210         Signature += "__" + Name;
   2211         Name = "CVT_" + Name;
   2212         bool IsNewConverter = false;
   2213         unsigned ID = getConverterOperandID(Name, OperandConversionKinds,
   2214                                             IsNewConverter);
   2215         // Add the operand entry to the instruction kind conversion row.
   2216         ConversionRow.push_back(ID);
   2217         ConversionRow.push_back(0);
   2218 
   2219         if (!IsNewConverter)
   2220           break;
   2221         CvtOS << "    case " << Name << ":\n"
   2222               << "      Inst.addOperand(MCOperand::createReg(" << Reg << "));\n"
   2223               << "      break;\n";
   2224 
   2225         OpOS << "    case " << Name << ":\n"
   2226              << "      Operands[*(p + 1)]->setMCOperandNum(NumMCOperands);\n"
   2227              << "      Operands[*(p + 1)]->setConstraint(\"m\");\n"
   2228              << "      ++NumMCOperands;\n"
   2229              << "      break;\n";
   2230       }
   2231       }
   2232     }
   2233 
   2234     // If there were no operands, add to the signature to that effect
   2235     if (Signature == "Convert")
   2236       Signature += "_NoOperands";
   2237 
   2238     II->ConversionFnKind = Signature;
   2239 
   2240     // Save the signature. If we already have it, don't add a new row
   2241     // to the table.
   2242     if (!InstructionConversionKinds.insert(CachedHashString(Signature)))
   2243       continue;
   2244 
   2245     // Add the row to the table.
   2246     ConversionTable.push_back(std::move(ConversionRow));
   2247   }
   2248 
   2249   // Finish up the converter driver function.
   2250   CvtOS << "    }\n  }\n}\n\n";
   2251 
   2252   // Finish up the operand number lookup function.
   2253   OpOS << "    }\n  }\n}\n\n";
   2254 
   2255   // Output a static table for tied operands.
   2256   if (TiedOperandsEnumMap.size()) {
   2257     // The number of tied operand combinations will be small in practice,
   2258     // but just add the assert to be sure.
   2259     assert(TiedOperandsEnumMap.size() <= 254 &&
   2260            "Too many tied-operand combinations to reference with "
   2261            "an 8bit offset from the conversion table, where index "
   2262            "'255' is reserved as operand not to be copied.");
   2263 
   2264     OS << "enum {\n";
   2265     for (auto &KV : TiedOperandsEnumMap) {
   2266       OS << "  " << KV.second << ",\n";
   2267     }
   2268     OS << "};\n\n";
   2269 
   2270     OS << "static const uint8_t TiedAsmOperandTable[][3] = {\n";
   2271     for (auto &KV : TiedOperandsEnumMap) {
   2272       OS << "  /* " << KV.second << " */ { "
   2273          << utostr(std::get<0>(KV.first)) << ", "
   2274          << utostr(std::get<1>(KV.first)) << ", "
   2275          << utostr(std::get<2>(KV.first)) << " },\n";
   2276     }
   2277     OS << "};\n\n";
   2278   } else
   2279     OS << "static const uint8_t TiedAsmOperandTable[][3] = "
   2280           "{ /* empty  */ {0, 0, 0} };\n\n";
   2281 
   2282   OS << "namespace {\n";
   2283 
   2284   // Output the operand conversion kind enum.
   2285   OS << "enum OperatorConversionKind {\n";
   2286   for (const auto &Converter : OperandConversionKinds)
   2287     OS << "  " << Converter << ",\n";
   2288   OS << "  CVT_NUM_CONVERTERS\n";
   2289   OS << "};\n\n";
   2290 
   2291   // Output the instruction conversion kind enum.
   2292   OS << "enum InstructionConversionKind {\n";
   2293   for (const auto &Signature : InstructionConversionKinds)
   2294     OS << "  " << Signature << ",\n";
   2295   OS << "  CVT_NUM_SIGNATURES\n";
   2296   OS << "};\n\n";
   2297 
   2298   OS << "} // end anonymous namespace\n\n";
   2299 
   2300   // Output the conversion table.
   2301   OS << "static const uint8_t ConversionTable[CVT_NUM_SIGNATURES]["
   2302      << MaxRowLength << "] = {\n";
   2303 
   2304   for (unsigned Row = 0, ERow = ConversionTable.size(); Row != ERow; ++Row) {
   2305     assert(ConversionTable[Row].size() % 2 == 0 && "bad conversion row!");
   2306     OS << "  // " << InstructionConversionKinds[Row] << "\n";
   2307     OS << "  { ";
   2308     for (unsigned i = 0, e = ConversionTable[Row].size(); i != e; i += 2) {
   2309       OS << OperandConversionKinds[ConversionTable[Row][i]] << ", ";
   2310       if (OperandConversionKinds[ConversionTable[Row][i]] !=
   2311           CachedHashString("CVT_Tied")) {
   2312         OS << (unsigned)(ConversionTable[Row][i + 1]) << ", ";
   2313         continue;
   2314       }
   2315 
   2316       // For a tied operand, emit a reference to the TiedAsmOperandTable
   2317       // that contains the operand to copy, and the parsed operands to
   2318       // check for their tied constraints.
   2319       auto Key = std::make_tuple((uint8_t)ConversionTable[Row][i + 1],
   2320                                  (uint8_t)ConversionTable[Row][i + 2],
   2321                                  (uint8_t)ConversionTable[Row][i + 3]);
   2322       auto TiedOpndEnum = TiedOperandsEnumMap.find(Key);
   2323       assert(TiedOpndEnum != TiedOperandsEnumMap.end() &&
   2324              "No record for tied operand pair");
   2325       OS << TiedOpndEnum->second << ", ";
   2326       i += 2;
   2327     }
   2328     OS << "CVT_Done },\n";
   2329   }
   2330 
   2331   OS << "};\n\n";
   2332 
   2333   // Spit out the conversion driver function.
   2334   OS << CvtOS.str();
   2335 
   2336   // Spit out the operand number lookup function.
   2337   OS << OpOS.str();
   2338 
   2339   return ConversionTable.size();
   2340 }
   2341 
   2342 /// emitMatchClassEnumeration - Emit the enumeration for match class kinds.
   2343 static void emitMatchClassEnumeration(CodeGenTarget &Target,
   2344                                       std::forward_list<ClassInfo> &Infos,
   2345                                       raw_ostream &OS) {
   2346   OS << "namespace {\n\n";
   2347 
   2348   OS << "/// MatchClassKind - The kinds of classes which participate in\n"
   2349      << "/// instruction matching.\n";
   2350   OS << "enum MatchClassKind {\n";
   2351   OS << "  InvalidMatchClass = 0,\n";
   2352   OS << "  OptionalMatchClass = 1,\n";
   2353   ClassInfo::ClassInfoKind LastKind = ClassInfo::Token;
   2354   StringRef LastName = "OptionalMatchClass";
   2355   for (const auto &CI : Infos) {
   2356     if (LastKind == ClassInfo::Token && CI.Kind != ClassInfo::Token) {
   2357       OS << "  MCK_LAST_TOKEN = " << LastName << ",\n";
   2358     } else if (LastKind < ClassInfo::UserClass0 &&
   2359                CI.Kind >= ClassInfo::UserClass0) {
   2360       OS << "  MCK_LAST_REGISTER = " << LastName << ",\n";
   2361     }
   2362     LastKind = (ClassInfo::ClassInfoKind)CI.Kind;
   2363     LastName = CI.Name;
   2364 
   2365     OS << "  " << CI.Name << ", // ";
   2366     if (CI.Kind == ClassInfo::Token) {
   2367       OS << "'" << CI.ValueName << "'\n";
   2368     } else if (CI.isRegisterClass()) {
   2369       if (!CI.ValueName.empty())
   2370         OS << "register class '" << CI.ValueName << "'\n";
   2371       else
   2372         OS << "derived register class\n";
   2373     } else {
   2374       OS << "user defined class '" << CI.ValueName << "'\n";
   2375     }
   2376   }
   2377   OS << "  NumMatchClassKinds\n";
   2378   OS << "};\n\n";
   2379 
   2380   OS << "} // end anonymous namespace\n\n";
   2381 }
   2382 
   2383 /// emitMatchClassDiagStrings - Emit a function to get the diagnostic text to be
   2384 /// used when an assembly operand does not match the expected operand class.
   2385 static void emitOperandMatchErrorDiagStrings(AsmMatcherInfo &Info, raw_ostream &OS) {
   2386   // If the target does not use DiagnosticString for any operands, don't emit
   2387   // an unused function.
   2388   if (llvm::all_of(Info.Classes, [](const ClassInfo &CI) {
   2389         return CI.DiagnosticString.empty();
   2390       }))
   2391     return;
   2392 
   2393   OS << "static const char *getMatchKindDiag(" << Info.Target.getName()
   2394      << "AsmParser::" << Info.Target.getName()
   2395      << "MatchResultTy MatchResult) {\n";
   2396   OS << "  switch (MatchResult) {\n";
   2397 
   2398   for (const auto &CI: Info.Classes) {
   2399     if (!CI.DiagnosticString.empty()) {
   2400       assert(!CI.DiagnosticType.empty() &&
   2401              "DiagnosticString set without DiagnosticType");
   2402       OS << "  case " << Info.Target.getName()
   2403          << "AsmParser::Match_" << CI.DiagnosticType << ":\n";
   2404       OS << "    return \"" << CI.DiagnosticString << "\";\n";
   2405     }
   2406   }
   2407 
   2408   OS << "  default:\n";
   2409   OS << "    return nullptr;\n";
   2410 
   2411   OS << "  }\n";
   2412   OS << "}\n\n";
   2413 }
   2414 
   2415 static void emitRegisterMatchErrorFunc(AsmMatcherInfo &Info, raw_ostream &OS) {
   2416   OS << "static unsigned getDiagKindFromRegisterClass(MatchClassKind "
   2417         "RegisterClass) {\n";
   2418   if (none_of(Info.Classes, [](const ClassInfo &CI) {
   2419         return CI.isRegisterClass() && !CI.DiagnosticType.empty();
   2420       })) {
   2421     OS << "  return MCTargetAsmParser::Match_InvalidOperand;\n";
   2422   } else {
   2423     OS << "  switch (RegisterClass) {\n";
   2424     for (const auto &CI: Info.Classes) {
   2425       if (CI.isRegisterClass() && !CI.DiagnosticType.empty()) {
   2426         OS << "  case " << CI.Name << ":\n";
   2427         OS << "    return " << Info.Target.getName() << "AsmParser::Match_"
   2428            << CI.DiagnosticType << ";\n";
   2429       }
   2430     }
   2431 
   2432     OS << "  default:\n";
   2433     OS << "    return MCTargetAsmParser::Match_InvalidOperand;\n";
   2434 
   2435     OS << "  }\n";
   2436   }
   2437   OS << "}\n\n";
   2438 }
   2439 
   2440 /// emitValidateOperandClass - Emit the function to validate an operand class.
   2441 static void emitValidateOperandClass(AsmMatcherInfo &Info,
   2442                                      raw_ostream &OS) {
   2443   OS << "static unsigned validateOperandClass(MCParsedAsmOperand &GOp, "
   2444      << "MatchClassKind Kind) {\n";
   2445   OS << "  " << Info.Target.getName() << "Operand &Operand = ("
   2446      << Info.Target.getName() << "Operand &)GOp;\n";
   2447 
   2448   // The InvalidMatchClass is not to match any operand.
   2449   OS << "  if (Kind == InvalidMatchClass)\n";
   2450   OS << "    return MCTargetAsmParser::Match_InvalidOperand;\n\n";
   2451 
   2452   // Check for Token operands first.
   2453   // FIXME: Use a more specific diagnostic type.
   2454   OS << "  if (Operand.isToken() && Kind <= MCK_LAST_TOKEN)\n";
   2455   OS << "    return isSubclass(matchTokenString(Operand.getToken()), Kind) ?\n"
   2456      << "             MCTargetAsmParser::Match_Success :\n"
   2457      << "             MCTargetAsmParser::Match_InvalidOperand;\n\n";
   2458 
   2459   // Check the user classes. We don't care what order since we're only
   2460   // actually matching against one of them.
   2461   OS << "  switch (Kind) {\n"
   2462         "  default: break;\n";
   2463   for (const auto &CI : Info.Classes) {
   2464     if (!CI.isUserClass())
   2465       continue;
   2466 
   2467     OS << "  // '" << CI.ClassName << "' class\n";
   2468     OS << "  case " << CI.Name << ": {\n";
   2469     OS << "    DiagnosticPredicate DP(Operand." << CI.PredicateMethod
   2470        << "());\n";
   2471     OS << "    if (DP.isMatch())\n";
   2472     OS << "      return MCTargetAsmParser::Match_Success;\n";
   2473     if (!CI.DiagnosticType.empty()) {
   2474       OS << "    if (DP.isNearMatch())\n";
   2475       OS << "      return " << Info.Target.getName() << "AsmParser::Match_"
   2476          << CI.DiagnosticType << ";\n";
   2477       OS << "    break;\n";
   2478     }
   2479     else
   2480       OS << "    break;\n";
   2481     OS << "    }\n";
   2482   }
   2483   OS << "  } // end switch (Kind)\n\n";
   2484 
   2485   // Check for register operands, including sub-classes.
   2486   OS << "  if (Operand.isReg()) {\n";
   2487   OS << "    MatchClassKind OpKind;\n";
   2488   OS << "    switch (Operand.getReg()) {\n";
   2489   OS << "    default: OpKind = InvalidMatchClass; break;\n";
   2490   for (const auto &RC : Info.RegisterClasses)
   2491     OS << "    case " << RC.first->getValueAsString("Namespace") << "::"
   2492        << RC.first->getName() << ": OpKind = " << RC.second->Name
   2493        << "; break;\n";
   2494   OS << "    }\n";
   2495   OS << "    return isSubclass(OpKind, Kind) ? "
   2496      << "(unsigned)MCTargetAsmParser::Match_Success :\n                     "
   2497      << "                 getDiagKindFromRegisterClass(Kind);\n  }\n\n";
   2498 
   2499   // Expected operand is a register, but actual is not.
   2500   OS << "  if (Kind > MCK_LAST_TOKEN && Kind <= MCK_LAST_REGISTER)\n";
   2501   OS << "    return getDiagKindFromRegisterClass(Kind);\n\n";
   2502 
   2503   // Generic fallthrough match failure case for operands that don't have
   2504   // specialized diagnostic types.
   2505   OS << "  return MCTargetAsmParser::Match_InvalidOperand;\n";
   2506   OS << "}\n\n";
   2507 }
   2508 
   2509 /// emitIsSubclass - Emit the subclass predicate function.
   2510 static void emitIsSubclass(CodeGenTarget &Target,
   2511                            std::forward_list<ClassInfo> &Infos,
   2512                            raw_ostream &OS) {
   2513   OS << "/// isSubclass - Compute whether \\p A is a subclass of \\p B.\n";
   2514   OS << "static bool isSubclass(MatchClassKind A, MatchClassKind B) {\n";
   2515   OS << "  if (A == B)\n";
   2516   OS << "    return true;\n\n";
   2517 
   2518   bool EmittedSwitch = false;
   2519   for (const auto &A : Infos) {
   2520     std::vector<StringRef> SuperClasses;
   2521     if (A.IsOptional)
   2522       SuperClasses.push_back("OptionalMatchClass");
   2523     for (const auto &B : Infos) {
   2524       if (&A != &B && A.isSubsetOf(B))
   2525         SuperClasses.push_back(B.Name);
   2526     }
   2527 
   2528     if (SuperClasses.empty())
   2529       continue;
   2530 
   2531     // If this is the first SuperClass, emit the switch header.
   2532     if (!EmittedSwitch) {
   2533       OS << "  switch (A) {\n";
   2534       OS << "  default:\n";
   2535       OS << "    return false;\n";
   2536       EmittedSwitch = true;
   2537     }
   2538 
   2539     OS << "\n  case " << A.Name << ":\n";
   2540 
   2541     if (SuperClasses.size() == 1) {
   2542       OS << "    return B == " << SuperClasses.back() << ";\n";
   2543       continue;
   2544     }
   2545 
   2546     if (!SuperClasses.empty()) {
   2547       OS << "    switch (B) {\n";
   2548       OS << "    default: return false;\n";
   2549       for (StringRef SC : SuperClasses)
   2550         OS << "    case " << SC << ": return true;\n";
   2551       OS << "    }\n";
   2552     } else {
   2553       // No case statement to emit
   2554       OS << "    return false;\n";
   2555     }
   2556   }
   2557 
   2558   // If there were case statements emitted into the string stream write the
   2559   // default.
   2560   if (EmittedSwitch)
   2561     OS << "  }\n";
   2562   else
   2563     OS << "  return false;\n";
   2564 
   2565   OS << "}\n\n";
   2566 }
   2567 
   2568 /// emitMatchTokenString - Emit the function to match a token string to the
   2569 /// appropriate match class value.
   2570 static void emitMatchTokenString(CodeGenTarget &Target,
   2571                                  std::forward_list<ClassInfo> &Infos,
   2572                                  raw_ostream &OS) {
   2573   // Construct the match list.
   2574   std::vector<StringMatcher::StringPair> Matches;
   2575   for (const auto &CI : Infos) {
   2576     if (CI.Kind == ClassInfo::Token)
   2577       Matches.emplace_back(CI.ValueName, "return " + CI.Name + ";");
   2578   }
   2579 
   2580   OS << "static MatchClassKind matchTokenString(StringRef Name) {\n";
   2581 
   2582   StringMatcher("Name", Matches, OS).Emit();
   2583 
   2584   OS << "  return InvalidMatchClass;\n";
   2585   OS << "}\n\n";
   2586 }
   2587 
   2588 /// emitMatchRegisterName - Emit the function to match a string to the target
   2589 /// specific register enum.
   2590 static void emitMatchRegisterName(CodeGenTarget &Target, Record *AsmParser,
   2591                                   raw_ostream &OS) {
   2592   // Construct the match list.
   2593   std::vector<StringMatcher::StringPair> Matches;
   2594   const auto &Regs = Target.getRegBank().getRegisters();
   2595   for (const CodeGenRegister &Reg : Regs) {
   2596     if (Reg.TheDef->getValueAsString("AsmName").empty())
   2597       continue;
   2598 
   2599     Matches.emplace_back(std::string(Reg.TheDef->getValueAsString("AsmName")),
   2600                          "return " + utostr(Reg.EnumValue) + ";");
   2601   }
   2602 
   2603   OS << "static unsigned MatchRegisterName(StringRef Name) {\n";
   2604 
   2605   bool IgnoreDuplicates =
   2606       AsmParser->getValueAsBit("AllowDuplicateRegisterNames");
   2607   StringMatcher("Name", Matches, OS).Emit(0, IgnoreDuplicates);
   2608 
   2609   OS << "  return 0;\n";
   2610   OS << "}\n\n";
   2611 }
   2612 
   2613 /// Emit the function to match a string to the target
   2614 /// specific register enum.
   2615 static void emitMatchRegisterAltName(CodeGenTarget &Target, Record *AsmParser,
   2616                                      raw_ostream &OS) {
   2617   // Construct the match list.
   2618   std::vector<StringMatcher::StringPair> Matches;
   2619   const auto &Regs = Target.getRegBank().getRegisters();
   2620   for (const CodeGenRegister &Reg : Regs) {
   2621 
   2622     auto AltNames = Reg.TheDef->getValueAsListOfStrings("AltNames");
   2623 
   2624     for (auto AltName : AltNames) {
   2625       AltName = StringRef(AltName).trim();
   2626 
   2627       // don't handle empty alternative names
   2628       if (AltName.empty())
   2629         continue;
   2630 
   2631       Matches.emplace_back(std::string(AltName),
   2632                            "return " + utostr(Reg.EnumValue) + ";");
   2633     }
   2634   }
   2635 
   2636   OS << "static unsigned MatchRegisterAltName(StringRef Name) {\n";
   2637 
   2638   bool IgnoreDuplicates =
   2639       AsmParser->getValueAsBit("AllowDuplicateRegisterNames");
   2640   StringMatcher("Name", Matches, OS).Emit(0, IgnoreDuplicates);
   2641 
   2642   OS << "  return 0;\n";
   2643   OS << "}\n\n";
   2644 }
   2645 
   2646 /// emitOperandDiagnosticTypes - Emit the operand matching diagnostic types.
   2647 static void emitOperandDiagnosticTypes(AsmMatcherInfo &Info, raw_ostream &OS) {
   2648   // Get the set of diagnostic types from all of the operand classes.
   2649   std::set<StringRef> Types;
   2650   for (const auto &OpClassEntry : Info.AsmOperandClasses) {
   2651     if (!OpClassEntry.second->DiagnosticType.empty())
   2652       Types.insert(OpClassEntry.second->DiagnosticType);
   2653   }
   2654   for (const auto &OpClassEntry : Info.RegisterClassClasses) {
   2655     if (!OpClassEntry.second->DiagnosticType.empty())
   2656       Types.insert(OpClassEntry.second->DiagnosticType);
   2657   }
   2658 
   2659   if (Types.empty()) return;
   2660 
   2661   // Now emit the enum entries.
   2662   for (StringRef Type : Types)
   2663     OS << "  Match_" << Type << ",\n";
   2664   OS << "  END_OPERAND_DIAGNOSTIC_TYPES\n";
   2665 }
   2666 
   2667 /// emitGetSubtargetFeatureName - Emit the helper function to get the
   2668 /// user-level name for a subtarget feature.
   2669 static void emitGetSubtargetFeatureName(AsmMatcherInfo &Info, raw_ostream &OS) {
   2670   OS << "// User-level names for subtarget features that participate in\n"
   2671      << "// instruction matching.\n"
   2672      << "static const char *getSubtargetFeatureName(uint64_t Val) {\n";
   2673   if (!Info.SubtargetFeatures.empty()) {
   2674     OS << "  switch(Val) {\n";
   2675     for (const auto &SF : Info.SubtargetFeatures) {
   2676       const SubtargetFeatureInfo &SFI = SF.second;
   2677       // FIXME: Totally just a placeholder name to get the algorithm working.
   2678       OS << "  case " << SFI.getEnumBitName() << ": return \""
   2679          << SFI.TheDef->getValueAsString("PredicateName") << "\";\n";
   2680     }
   2681     OS << "  default: return \"(unknown)\";\n";
   2682     OS << "  }\n";
   2683   } else {
   2684     // Nothing to emit, so skip the switch
   2685     OS << "  return \"(unknown)\";\n";
   2686   }
   2687   OS << "}\n\n";
   2688 }
   2689 
   2690 static std::string GetAliasRequiredFeatures(Record *R,
   2691                                             const AsmMatcherInfo &Info) {
   2692   std::vector<Record*> ReqFeatures = R->getValueAsListOfDefs("Predicates");
   2693   std::string Result;
   2694 
   2695   if (ReqFeatures.empty())
   2696     return Result;
   2697 
   2698   for (unsigned i = 0, e = ReqFeatures.size(); i != e; ++i) {
   2699     const SubtargetFeatureInfo *F = Info.getSubtargetFeature(ReqFeatures[i]);
   2700 
   2701     if (!F)
   2702       PrintFatalError(R->getLoc(), "Predicate '" + ReqFeatures[i]->getName() +
   2703                     "' is not marked as an AssemblerPredicate!");
   2704 
   2705     if (i)
   2706       Result += " && ";
   2707 
   2708     Result += "Features.test(" + F->getEnumBitName() + ')';
   2709   }
   2710 
   2711   return Result;
   2712 }
   2713 
   2714 static void emitMnemonicAliasVariant(raw_ostream &OS,const AsmMatcherInfo &Info,
   2715                                      std::vector<Record*> &Aliases,
   2716                                      unsigned Indent = 0,
   2717                                   StringRef AsmParserVariantName = StringRef()){
   2718   // Keep track of all the aliases from a mnemonic.  Use an std::map so that the
   2719   // iteration order of the map is stable.
   2720   std::map<std::string, std::vector<Record*> > AliasesFromMnemonic;
   2721 
   2722   for (Record *R : Aliases) {
   2723     // FIXME: Allow AssemblerVariantName to be a comma separated list.
   2724     StringRef AsmVariantName = R->getValueAsString("AsmVariantName");
   2725     if (AsmVariantName != AsmParserVariantName)
   2726       continue;
   2727     AliasesFromMnemonic[R->getValueAsString("FromMnemonic").lower()]
   2728         .push_back(R);
   2729   }
   2730   if (AliasesFromMnemonic.empty())
   2731     return;
   2732 
   2733   // Process each alias a "from" mnemonic at a time, building the code executed
   2734   // by the string remapper.
   2735   std::vector<StringMatcher::StringPair> Cases;
   2736   for (const auto &AliasEntry : AliasesFromMnemonic) {
   2737     const std::vector<Record*> &ToVec = AliasEntry.second;
   2738 
   2739     // Loop through each alias and emit code that handles each case.  If there
   2740     // are two instructions without predicates, emit an error.  If there is one,
   2741     // emit it last.
   2742     std::string MatchCode;
   2743     int AliasWithNoPredicate = -1;
   2744 
   2745     for (unsigned i = 0, e = ToVec.size(); i != e; ++i) {
   2746       Record *R = ToVec[i];
   2747       std::string FeatureMask = GetAliasRequiredFeatures(R, Info);
   2748 
   2749       // If this unconditionally matches, remember it for later and diagnose
   2750       // duplicates.
   2751       if (FeatureMask.empty()) {
   2752         if (AliasWithNoPredicate != -1) {
   2753           // We can't have two aliases from the same mnemonic with no predicate.
   2754           PrintError(ToVec[AliasWithNoPredicate]->getLoc(),
   2755                      "two MnemonicAliases with the same 'from' mnemonic!");
   2756           PrintFatalError(R->getLoc(), "this is the other MnemonicAlias.");
   2757         }
   2758 
   2759         AliasWithNoPredicate = i;
   2760         continue;
   2761       }
   2762       if (R->getValueAsString("ToMnemonic") == AliasEntry.first)
   2763         PrintFatalError(R->getLoc(), "MnemonicAlias to the same string");
   2764 
   2765       if (!MatchCode.empty())
   2766         MatchCode += "else ";
   2767       MatchCode += "if (" + FeatureMask + ")\n";
   2768       MatchCode += "  Mnemonic = \"";
   2769       MatchCode += R->getValueAsString("ToMnemonic").lower();
   2770       MatchCode += "\";\n";
   2771     }
   2772 
   2773     if (AliasWithNoPredicate != -1) {
   2774       Record *R = ToVec[AliasWithNoPredicate];
   2775       if (!MatchCode.empty())
   2776         MatchCode += "else\n  ";
   2777       MatchCode += "Mnemonic = \"";
   2778       MatchCode += R->getValueAsString("ToMnemonic").lower();
   2779       MatchCode += "\";\n";
   2780     }
   2781 
   2782     MatchCode += "return;";
   2783 
   2784     Cases.push_back(std::make_pair(AliasEntry.first, MatchCode));
   2785   }
   2786   StringMatcher("Mnemonic", Cases, OS).Emit(Indent);
   2787 }
   2788 
   2789 /// emitMnemonicAliases - If the target has any MnemonicAlias<> definitions,
   2790 /// emit a function for them and return true, otherwise return false.
   2791 static bool emitMnemonicAliases(raw_ostream &OS, const AsmMatcherInfo &Info,
   2792                                 CodeGenTarget &Target) {
   2793   // Ignore aliases when match-prefix is set.
   2794   if (!MatchPrefix.empty())
   2795     return false;
   2796 
   2797   std::vector<Record*> Aliases =
   2798     Info.getRecords().getAllDerivedDefinitions("MnemonicAlias");
   2799   if (Aliases.empty()) return false;
   2800 
   2801   OS << "static void applyMnemonicAliases(StringRef &Mnemonic, "
   2802     "const FeatureBitset &Features, unsigned VariantID) {\n";
   2803   OS << "  switch (VariantID) {\n";
   2804   unsigned VariantCount = Target.getAsmParserVariantCount();
   2805   for (unsigned VC = 0; VC != VariantCount; ++VC) {
   2806     Record *AsmVariant = Target.getAsmParserVariant(VC);
   2807     int AsmParserVariantNo = AsmVariant->getValueAsInt("Variant");
   2808     StringRef AsmParserVariantName = AsmVariant->getValueAsString("Name");
   2809     OS << "  case " << AsmParserVariantNo << ":\n";
   2810     emitMnemonicAliasVariant(OS, Info, Aliases, /*Indent=*/2,
   2811                              AsmParserVariantName);
   2812     OS << "    break;\n";
   2813   }
   2814   OS << "  }\n";
   2815 
   2816   // Emit aliases that apply to all variants.
   2817   emitMnemonicAliasVariant(OS, Info, Aliases);
   2818 
   2819   OS << "}\n\n";
   2820 
   2821   return true;
   2822 }
   2823 
   2824 static void emitCustomOperandParsing(raw_ostream &OS, CodeGenTarget &Target,
   2825                               const AsmMatcherInfo &Info, StringRef ClassName,
   2826                               StringToOffsetTable &StringTable,
   2827                               unsigned MaxMnemonicIndex,
   2828                               unsigned MaxFeaturesIndex,
   2829                               bool HasMnemonicFirst) {
   2830   unsigned MaxMask = 0;
   2831   for (const OperandMatchEntry &OMI : Info.OperandMatchInfo) {
   2832     MaxMask |= OMI.OperandMask;
   2833   }
   2834 
   2835   // Emit the static custom operand parsing table;
   2836   OS << "namespace {\n";
   2837   OS << "  struct OperandMatchEntry {\n";
   2838   OS << "    " << getMinimalTypeForRange(MaxMnemonicIndex)
   2839                << " Mnemonic;\n";
   2840   OS << "    " << getMinimalTypeForRange(MaxMask)
   2841                << " OperandMask;\n";
   2842   OS << "    " << getMinimalTypeForRange(std::distance(
   2843                       Info.Classes.begin(), Info.Classes.end())) << " Class;\n";
   2844   OS << "    " << getMinimalTypeForRange(MaxFeaturesIndex)
   2845                << " RequiredFeaturesIdx;\n\n";
   2846   OS << "    StringRef getMnemonic() const {\n";
   2847   OS << "      return StringRef(MnemonicTable + Mnemonic + 1,\n";
   2848   OS << "                       MnemonicTable[Mnemonic]);\n";
   2849   OS << "    }\n";
   2850   OS << "  };\n\n";
   2851 
   2852   OS << "  // Predicate for searching for an opcode.\n";
   2853   OS << "  struct LessOpcodeOperand {\n";
   2854   OS << "    bool operator()(const OperandMatchEntry &LHS, StringRef RHS) {\n";
   2855   OS << "      return LHS.getMnemonic()  < RHS;\n";
   2856   OS << "    }\n";
   2857   OS << "    bool operator()(StringRef LHS, const OperandMatchEntry &RHS) {\n";
   2858   OS << "      return LHS < RHS.getMnemonic();\n";
   2859   OS << "    }\n";
   2860   OS << "    bool operator()(const OperandMatchEntry &LHS,";
   2861   OS << " const OperandMatchEntry &RHS) {\n";
   2862   OS << "      return LHS.getMnemonic() < RHS.getMnemonic();\n";
   2863   OS << "    }\n";
   2864   OS << "  };\n";
   2865 
   2866   OS << "} // end anonymous namespace\n\n";
   2867 
   2868   OS << "static const OperandMatchEntry OperandMatchTable["
   2869      << Info.OperandMatchInfo.size() << "] = {\n";
   2870 
   2871   OS << "  /* Operand List Mnemonic, Mask, Operand Class, Features */\n";
   2872   for (const OperandMatchEntry &OMI : Info.OperandMatchInfo) {
   2873     const MatchableInfo &II = *OMI.MI;
   2874 
   2875     OS << "  { ";
   2876 
   2877     // Store a pascal-style length byte in the mnemonic.
   2878     std::string LenMnemonic = char(II.Mnemonic.size()) + II.Mnemonic.lower();
   2879     OS << StringTable.GetOrAddStringOffset(LenMnemonic, false)
   2880        << " /* " << II.Mnemonic << " */, ";
   2881 
   2882     OS << OMI.OperandMask;
   2883     OS << " /* ";
   2884     ListSeparator LS;
   2885     for (int i = 0, e = 31; i !=e; ++i)
   2886       if (OMI.OperandMask & (1 << i))
   2887         OS << LS << i;
   2888     OS << " */, ";
   2889 
   2890     OS << OMI.CI->Name;
   2891 
   2892     // Write the required features mask.
   2893     OS << ", AMFBS";
   2894     if (II.RequiredFeatures.empty())
   2895       OS << "_None";
   2896     else
   2897       for (unsigned i = 0, e = II.RequiredFeatures.size(); i != e; ++i)
   2898         OS << '_' << II.RequiredFeatures[i]->TheDef->getName();
   2899 
   2900     OS << " },\n";
   2901   }
   2902   OS << "};\n\n";
   2903 
   2904   // Emit the operand class switch to call the correct custom parser for
   2905   // the found operand class.
   2906   OS << "OperandMatchResultTy " << Target.getName() << ClassName << "::\n"
   2907      << "tryCustomParseOperand(OperandVector"
   2908      << " &Operands,\n                      unsigned MCK) {\n\n"
   2909      << "  switch(MCK) {\n";
   2910 
   2911   for (const auto &CI : Info.Classes) {
   2912     if (CI.ParserMethod.empty())
   2913       continue;
   2914     OS << "  case " << CI.Name << ":\n"
   2915        << "    return " << CI.ParserMethod << "(Operands);\n";
   2916   }
   2917 
   2918   OS << "  default:\n";
   2919   OS << "    return MatchOperand_NoMatch;\n";
   2920   OS << "  }\n";
   2921   OS << "  return MatchOperand_NoMatch;\n";
   2922   OS << "}\n\n";
   2923 
   2924   // Emit the static custom operand parser. This code is very similar with
   2925   // the other matcher. Also use MatchResultTy here just in case we go for
   2926   // a better error handling.
   2927   OS << "OperandMatchResultTy " << Target.getName() << ClassName << "::\n"
   2928      << "MatchOperandParserImpl(OperandVector"
   2929      << " &Operands,\n                       StringRef Mnemonic,\n"
   2930      << "                       bool ParseForAllFeatures) {\n";
   2931 
   2932   // Emit code to get the available features.
   2933   OS << "  // Get the current feature set.\n";
   2934   OS << "  const FeatureBitset &AvailableFeatures = getAvailableFeatures();\n\n";
   2935 
   2936   OS << "  // Get the next operand index.\n";
   2937   OS << "  unsigned NextOpNum = Operands.size()"
   2938      << (HasMnemonicFirst ? " - 1" : "") << ";\n";
   2939 
   2940   // Emit code to search the table.
   2941   OS << "  // Search the table.\n";
   2942   if (HasMnemonicFirst) {
   2943     OS << "  auto MnemonicRange =\n";
   2944     OS << "    std::equal_range(std::begin(OperandMatchTable), "
   2945           "std::end(OperandMatchTable),\n";
   2946     OS << "                     Mnemonic, LessOpcodeOperand());\n\n";
   2947   } else {
   2948     OS << "  auto MnemonicRange = std::make_pair(std::begin(OperandMatchTable),"
   2949           " std::end(OperandMatchTable));\n";
   2950     OS << "  if (!Mnemonic.empty())\n";
   2951     OS << "    MnemonicRange =\n";
   2952     OS << "      std::equal_range(std::begin(OperandMatchTable), "
   2953           "std::end(OperandMatchTable),\n";
   2954     OS << "                       Mnemonic, LessOpcodeOperand());\n\n";
   2955   }
   2956 
   2957   OS << "  if (MnemonicRange.first == MnemonicRange.second)\n";
   2958   OS << "    return MatchOperand_NoMatch;\n\n";
   2959 
   2960   OS << "  for (const OperandMatchEntry *it = MnemonicRange.first,\n"
   2961      << "       *ie = MnemonicRange.second; it != ie; ++it) {\n";
   2962 
   2963   OS << "    // equal_range guarantees that instruction mnemonic matches.\n";
   2964   OS << "    assert(Mnemonic == it->getMnemonic());\n\n";
   2965 
   2966   // Emit check that the required features are available.
   2967   OS << "    // check if the available features match\n";
   2968   OS << "    const FeatureBitset &RequiredFeatures = "
   2969         "FeatureBitsets[it->RequiredFeaturesIdx];\n";
   2970   OS << "    if (!ParseForAllFeatures && (AvailableFeatures & "
   2971         "RequiredFeatures) != RequiredFeatures)\n";
   2972   OS << "      continue;\n\n";
   2973 
   2974   // Emit check to ensure the operand number matches.
   2975   OS << "    // check if the operand in question has a custom parser.\n";
   2976   OS << "    if (!(it->OperandMask & (1 << NextOpNum)))\n";
   2977   OS << "      continue;\n\n";
   2978 
   2979   // Emit call to the custom parser method
   2980   OS << "    // call custom parse method to handle the operand\n";
   2981   OS << "    OperandMatchResultTy Result = ";
   2982   OS << "tryCustomParseOperand(Operands, it->Class);\n";
   2983   OS << "    if (Result != MatchOperand_NoMatch)\n";
   2984   OS << "      return Result;\n";
   2985   OS << "  }\n\n";
   2986 
   2987   OS << "  // Okay, we had no match.\n";
   2988   OS << "  return MatchOperand_NoMatch;\n";
   2989   OS << "}\n\n";
   2990 }
   2991 
   2992 static void emitAsmTiedOperandConstraints(CodeGenTarget &Target,
   2993                                           AsmMatcherInfo &Info,
   2994                                           raw_ostream &OS) {
   2995   std::string AsmParserName =
   2996       std::string(Info.AsmParser->getValueAsString("AsmParserClassName"));
   2997   OS << "static bool ";
   2998   OS << "checkAsmTiedOperandConstraints(const " << Target.getName()
   2999      << AsmParserName << "&AsmParser,\n";
   3000   OS << "                               unsigned Kind,\n";
   3001   OS << "                               const OperandVector &Operands,\n";
   3002   OS << "                               uint64_t &ErrorInfo) {\n";
   3003   OS << "  assert(Kind < CVT_NUM_SIGNATURES && \"Invalid signature!\");\n";
   3004   OS << "  const uint8_t *Converter = ConversionTable[Kind];\n";
   3005   OS << "  for (const uint8_t *p = Converter; *p; p += 2) {\n";
   3006   OS << "    switch (*p) {\n";
   3007   OS << "    case CVT_Tied: {\n";
   3008   OS << "      unsigned OpIdx = *(p + 1);\n";
   3009   OS << "      assert(OpIdx < (size_t)(std::end(TiedAsmOperandTable) -\n";
   3010   OS << "                              std::begin(TiedAsmOperandTable)) &&\n";
   3011   OS << "             \"Tied operand not found\");\n";
   3012   OS << "      unsigned OpndNum1 = TiedAsmOperandTable[OpIdx][1];\n";
   3013   OS << "      unsigned OpndNum2 = TiedAsmOperandTable[OpIdx][2];\n";
   3014   OS << "      if (OpndNum1 != OpndNum2) {\n";
   3015   OS << "        auto &SrcOp1 = Operands[OpndNum1];\n";
   3016   OS << "        auto &SrcOp2 = Operands[OpndNum2];\n";
   3017   OS << "        if (SrcOp1->isReg() && SrcOp2->isReg()) {\n";
   3018   OS << "          if (!AsmParser.regsEqual(*SrcOp1, *SrcOp2)) {\n";
   3019   OS << "            ErrorInfo = OpndNum2;\n";
   3020   OS << "            return false;\n";
   3021   OS << "          }\n";
   3022   OS << "        }\n";
   3023   OS << "      }\n";
   3024   OS << "      break;\n";
   3025   OS << "    }\n";
   3026   OS << "    default:\n";
   3027   OS << "      break;\n";
   3028   OS << "    }\n";
   3029   OS << "  }\n";
   3030   OS << "  return true;\n";
   3031   OS << "}\n\n";
   3032 }
   3033 
   3034 static void emitMnemonicSpellChecker(raw_ostream &OS, CodeGenTarget &Target,
   3035                                      unsigned VariantCount) {
   3036   OS << "static std::string " << Target.getName()
   3037      << "MnemonicSpellCheck(StringRef S, const FeatureBitset &FBS,"
   3038      << " unsigned VariantID) {\n";
   3039   if (!VariantCount)
   3040     OS <<  "  return \"\";";
   3041   else {
   3042     OS << "  const unsigned MaxEditDist = 2;\n";
   3043     OS << "  std::vector<StringRef> Candidates;\n";
   3044     OS << "  StringRef Prev = \"\";\n\n";
   3045 
   3046     OS << "  // Find the appropriate table for this asm variant.\n";
   3047     OS << "  const MatchEntry *Start, *End;\n";
   3048     OS << "  switch (VariantID) {\n";
   3049     OS << "  default: llvm_unreachable(\"invalid variant!\");\n";
   3050     for (unsigned VC = 0; VC != VariantCount; ++VC) {
   3051       Record *AsmVariant = Target.getAsmParserVariant(VC);
   3052       int AsmVariantNo = AsmVariant->getValueAsInt("Variant");
   3053       OS << "  case " << AsmVariantNo << ": Start = std::begin(MatchTable" << VC
   3054          << "); End = std::end(MatchTable" << VC << "); break;\n";
   3055     }
   3056     OS << "  }\n\n";
   3057     OS << "  for (auto I = Start; I < End; I++) {\n";
   3058     OS << "    // Ignore unsupported instructions.\n";
   3059     OS << "    const FeatureBitset &RequiredFeatures = "
   3060           "FeatureBitsets[I->RequiredFeaturesIdx];\n";
   3061     OS << "    if ((FBS & RequiredFeatures) != RequiredFeatures)\n";
   3062     OS << "      continue;\n";
   3063     OS << "\n";
   3064     OS << "    StringRef T = I->getMnemonic();\n";
   3065     OS << "    // Avoid recomputing the edit distance for the same string.\n";
   3066     OS << "    if (T.equals(Prev))\n";
   3067     OS << "      continue;\n";
   3068     OS << "\n";
   3069     OS << "    Prev = T;\n";
   3070     OS << "    unsigned Dist = S.edit_distance(T, false, MaxEditDist);\n";
   3071     OS << "    if (Dist <= MaxEditDist)\n";
   3072     OS << "      Candidates.push_back(T);\n";
   3073     OS << "  }\n";
   3074     OS << "\n";
   3075     OS << "  if (Candidates.empty())\n";
   3076     OS << "    return \"\";\n";
   3077     OS << "\n";
   3078     OS << "  std::string Res = \", did you mean: \";\n";
   3079     OS << "  unsigned i = 0;\n";
   3080     OS << "  for (; i < Candidates.size() - 1; i++)\n";
   3081     OS << "    Res += Candidates[i].str() + \", \";\n";
   3082     OS << "  return Res + Candidates[i].str() + \"?\";\n";
   3083   }
   3084   OS << "}\n";
   3085   OS << "\n";
   3086 }
   3087 
   3088 static void emitMnemonicChecker(raw_ostream &OS,
   3089                                 CodeGenTarget &Target,
   3090                                 unsigned VariantCount,
   3091                                 bool HasMnemonicFirst,
   3092                                 bool HasMnemonicAliases) {
   3093   OS << "static bool " << Target.getName()
   3094      << "CheckMnemonic(StringRef Mnemonic,\n";
   3095   OS << "                                "
   3096      << "const FeatureBitset &AvailableFeatures,\n";
   3097   OS << "                                "
   3098      << "unsigned VariantID) {\n";
   3099 
   3100   if (!VariantCount) {
   3101     OS <<  "  return false;\n";
   3102   } else {
   3103     if (HasMnemonicAliases) {
   3104       OS << "  // Process all MnemonicAliases to remap the mnemonic.\n";
   3105       OS << "  applyMnemonicAliases(Mnemonic, AvailableFeatures, VariantID);";
   3106       OS << "\n\n";
   3107     }
   3108     OS << "  // Find the appropriate table for this asm variant.\n";
   3109     OS << "  const MatchEntry *Start, *End;\n";
   3110     OS << "  switch (VariantID) {\n";
   3111     OS << "  default: llvm_unreachable(\"invalid variant!\");\n";
   3112     for (unsigned VC = 0; VC != VariantCount; ++VC) {
   3113       Record *AsmVariant = Target.getAsmParserVariant(VC);
   3114       int AsmVariantNo = AsmVariant->getValueAsInt("Variant");
   3115       OS << "  case " << AsmVariantNo << ": Start = std::begin(MatchTable" << VC
   3116          << "); End = std::end(MatchTable" << VC << "); break;\n";
   3117     }
   3118     OS << "  }\n\n";
   3119 
   3120     OS << "  // Search the table.\n";
   3121     if (HasMnemonicFirst) {
   3122       OS << "  auto MnemonicRange = "
   3123             "std::equal_range(Start, End, Mnemonic, LessOpcode());\n\n";
   3124     } else {
   3125       OS << "  auto MnemonicRange = std::make_pair(Start, End);\n";
   3126       OS << "  unsigned SIndex = Mnemonic.empty() ? 0 : 1;\n";
   3127       OS << "  if (!Mnemonic.empty())\n";
   3128       OS << "    MnemonicRange = "
   3129          << "std::equal_range(Start, End, Mnemonic.lower(), LessOpcode());\n\n";
   3130     }
   3131 
   3132     OS << "  if (MnemonicRange.first == MnemonicRange.second)\n";
   3133     OS << "    return false;\n\n";
   3134 
   3135     OS << "  for (const MatchEntry *it = MnemonicRange.first, "
   3136        << "*ie = MnemonicRange.second;\n";
   3137     OS << "       it != ie; ++it) {\n";
   3138     OS << "    const FeatureBitset &RequiredFeatures =\n";
   3139     OS << "      FeatureBitsets[it->RequiredFeaturesIdx];\n";
   3140     OS << "    if ((AvailableFeatures & RequiredFeatures) == ";
   3141     OS << "RequiredFeatures)\n";
   3142     OS << "      return true;\n";
   3143     OS << "  }\n";
   3144     OS << "  return false;\n";
   3145   }
   3146   OS << "}\n";
   3147   OS << "\n";
   3148 }
   3149 
   3150 // Emit a function mapping match classes to strings, for debugging.
   3151 static void emitMatchClassKindNames(std::forward_list<ClassInfo> &Infos,
   3152                                     raw_ostream &OS) {
   3153   OS << "#ifndef NDEBUG\n";
   3154   OS << "const char *getMatchClassName(MatchClassKind Kind) {\n";
   3155   OS << "  switch (Kind) {\n";
   3156 
   3157   OS << "  case InvalidMatchClass: return \"InvalidMatchClass\";\n";
   3158   OS << "  case OptionalMatchClass: return \"OptionalMatchClass\";\n";
   3159   for (const auto &CI : Infos) {
   3160     OS << "  case " << CI.Name << ": return \"" << CI.Name << "\";\n";
   3161   }
   3162   OS << "  case NumMatchClassKinds: return \"NumMatchClassKinds\";\n";
   3163 
   3164   OS << "  }\n";
   3165   OS << "  llvm_unreachable(\"unhandled MatchClassKind!\");\n";
   3166   OS << "}\n\n";
   3167   OS << "#endif // NDEBUG\n";
   3168 }
   3169 
   3170 static std::string
   3171 getNameForFeatureBitset(const std::vector<Record *> &FeatureBitset) {
   3172   std::string Name = "AMFBS";
   3173   for (const auto &Feature : FeatureBitset)
   3174     Name += ("_" + Feature->getName()).str();
   3175   return Name;
   3176 }
   3177 
   3178 void AsmMatcherEmitter::run(raw_ostream &OS) {
   3179   CodeGenTarget Target(Records);
   3180   Record *AsmParser = Target.getAsmParser();
   3181   StringRef ClassName = AsmParser->getValueAsString("AsmParserClassName");
   3182 
   3183   // Compute the information on the instructions to match.
   3184   AsmMatcherInfo Info(AsmParser, Target, Records);
   3185   Info.buildInfo();
   3186 
   3187   // Sort the instruction table using the partial order on classes. We use
   3188   // stable_sort to ensure that ambiguous instructions are still
   3189   // deterministically ordered.
   3190   llvm::stable_sort(
   3191       Info.Matchables,
   3192       [](const std::unique_ptr<MatchableInfo> &a,
   3193          const std::unique_ptr<MatchableInfo> &b) { return *a < *b; });
   3194 
   3195 #ifdef EXPENSIVE_CHECKS
   3196   // Verify that the table is sorted and operator < works transitively.
   3197   for (auto I = Info.Matchables.begin(), E = Info.Matchables.end(); I != E;
   3198        ++I) {
   3199     for (auto J = I; J != E; ++J) {
   3200       assert(!(**J < **I));
   3201     }
   3202   }
   3203 #endif
   3204 
   3205   DEBUG_WITH_TYPE("instruction_info", {
   3206       for (const auto &MI : Info.Matchables)
   3207         MI->dump();
   3208     });
   3209 
   3210   // Check for ambiguous matchables.
   3211   DEBUG_WITH_TYPE("ambiguous_instrs", {
   3212     unsigned NumAmbiguous = 0;
   3213     for (auto I = Info.Matchables.begin(), E = Info.Matchables.end(); I != E;
   3214          ++I) {
   3215       for (auto J = std::next(I); J != E; ++J) {
   3216         const MatchableInfo &A = **I;
   3217         const MatchableInfo &B = **J;
   3218 
   3219         if (A.couldMatchAmbiguouslyWith(B)) {
   3220           errs() << "warning: ambiguous matchables:\n";
   3221           A.dump();
   3222           errs() << "\nis incomparable with:\n";
   3223           B.dump();
   3224           errs() << "\n\n";
   3225           ++NumAmbiguous;
   3226         }
   3227       }
   3228     }
   3229     if (NumAmbiguous)
   3230       errs() << "warning: " << NumAmbiguous
   3231              << " ambiguous matchables!\n";
   3232   });
   3233 
   3234   // Compute the information on the custom operand parsing.
   3235   Info.buildOperandMatchInfo();
   3236 
   3237   bool HasMnemonicFirst = AsmParser->getValueAsBit("HasMnemonicFirst");
   3238   bool HasOptionalOperands = Info.hasOptionalOperands();
   3239   bool ReportMultipleNearMisses =
   3240       AsmParser->getValueAsBit("ReportMultipleNearMisses");
   3241 
   3242   // Write the output.
   3243 
   3244   // Information for the class declaration.
   3245   OS << "\n#ifdef GET_ASSEMBLER_HEADER\n";
   3246   OS << "#undef GET_ASSEMBLER_HEADER\n";
   3247   OS << "  // This should be included into the middle of the declaration of\n";
   3248   OS << "  // your subclasses implementation of MCTargetAsmParser.\n";
   3249   OS << "  FeatureBitset ComputeAvailableFeatures(const FeatureBitset &FB) const;\n";
   3250   if (HasOptionalOperands) {
   3251     OS << "  void convertToMCInst(unsigned Kind, MCInst &Inst, "
   3252        << "unsigned Opcode,\n"
   3253        << "                       const OperandVector &Operands,\n"
   3254        << "                       const SmallBitVector &OptionalOperandsMask);\n";
   3255   } else {
   3256     OS << "  void convertToMCInst(unsigned Kind, MCInst &Inst, "
   3257        << "unsigned Opcode,\n"
   3258        << "                       const OperandVector &Operands);\n";
   3259   }
   3260   OS << "  void convertToMapAndConstraints(unsigned Kind,\n                ";
   3261   OS << "           const OperandVector &Operands) override;\n";
   3262   OS << "  unsigned MatchInstructionImpl(const OperandVector &Operands,\n"
   3263      << "                                MCInst &Inst,\n";
   3264   if (ReportMultipleNearMisses)
   3265     OS << "                                SmallVectorImpl<NearMissInfo> *NearMisses,\n";
   3266   else
   3267     OS << "                                uint64_t &ErrorInfo,\n"
   3268        << "                                FeatureBitset &MissingFeatures,\n";
   3269   OS << "                                bool matchingInlineAsm,\n"
   3270      << "                                unsigned VariantID = 0);\n";
   3271   if (!ReportMultipleNearMisses)
   3272     OS << "  unsigned MatchInstructionImpl(const OperandVector &Operands,\n"
   3273        << "                                MCInst &Inst,\n"
   3274        << "                                uint64_t &ErrorInfo,\n"
   3275        << "                                bool matchingInlineAsm,\n"
   3276        << "                                unsigned VariantID = 0) {\n"
   3277        << "    FeatureBitset MissingFeatures;\n"
   3278        << "    return MatchInstructionImpl(Operands, Inst, ErrorInfo, MissingFeatures,\n"
   3279        << "                                matchingInlineAsm, VariantID);\n"
   3280        << "  }\n\n";
   3281 
   3282 
   3283   if (!Info.OperandMatchInfo.empty()) {
   3284     OS << "  OperandMatchResultTy MatchOperandParserImpl(\n";
   3285     OS << "    OperandVector &Operands,\n";
   3286     OS << "    StringRef Mnemonic,\n";
   3287     OS << "    bool ParseForAllFeatures = false);\n";
   3288 
   3289     OS << "  OperandMatchResultTy tryCustomParseOperand(\n";
   3290     OS << "    OperandVector &Operands,\n";
   3291     OS << "    unsigned MCK);\n\n";
   3292   }
   3293 
   3294   OS << "#endif // GET_ASSEMBLER_HEADER_INFO\n\n";
   3295 
   3296   // Emit the operand match diagnostic enum names.
   3297   OS << "\n#ifdef GET_OPERAND_DIAGNOSTIC_TYPES\n";
   3298   OS << "#undef GET_OPERAND_DIAGNOSTIC_TYPES\n\n";
   3299   emitOperandDiagnosticTypes(Info, OS);
   3300   OS << "#endif // GET_OPERAND_DIAGNOSTIC_TYPES\n\n";
   3301 
   3302   OS << "\n#ifdef GET_REGISTER_MATCHER\n";
   3303   OS << "#undef GET_REGISTER_MATCHER\n\n";
   3304 
   3305   // Emit the subtarget feature enumeration.
   3306   SubtargetFeatureInfo::emitSubtargetFeatureBitEnumeration(
   3307       Info.SubtargetFeatures, OS);
   3308 
   3309   // Emit the function to match a register name to number.
   3310   // This should be omitted for Mips target
   3311   if (AsmParser->getValueAsBit("ShouldEmitMatchRegisterName"))
   3312     emitMatchRegisterName(Target, AsmParser, OS);
   3313 
   3314   if (AsmParser->getValueAsBit("ShouldEmitMatchRegisterAltName"))
   3315     emitMatchRegisterAltName(Target, AsmParser, OS);
   3316 
   3317   OS << "#endif // GET_REGISTER_MATCHER\n\n";
   3318 
   3319   OS << "\n#ifdef GET_SUBTARGET_FEATURE_NAME\n";
   3320   OS << "#undef GET_SUBTARGET_FEATURE_NAME\n\n";
   3321 
   3322   // Generate the helper function to get the names for subtarget features.
   3323   emitGetSubtargetFeatureName(Info, OS);
   3324 
   3325   OS << "#endif // GET_SUBTARGET_FEATURE_NAME\n\n";
   3326 
   3327   OS << "\n#ifdef GET_MATCHER_IMPLEMENTATION\n";
   3328   OS << "#undef GET_MATCHER_IMPLEMENTATION\n\n";
   3329 
   3330   // Generate the function that remaps for mnemonic aliases.
   3331   bool HasMnemonicAliases = emitMnemonicAliases(OS, Info, Target);
   3332 
   3333   // Generate the convertToMCInst function to convert operands into an MCInst.
   3334   // Also, generate the convertToMapAndConstraints function for MS-style inline
   3335   // assembly.  The latter doesn't actually generate a MCInst.
   3336   unsigned NumConverters = emitConvertFuncs(Target, ClassName, Info.Matchables,
   3337                                             HasMnemonicFirst,
   3338                                             HasOptionalOperands, OS);
   3339 
   3340   // Emit the enumeration for classes which participate in matching.
   3341   emitMatchClassEnumeration(Target, Info.Classes, OS);
   3342 
   3343   // Emit a function to get the user-visible string to describe an operand
   3344   // match failure in diagnostics.
   3345   emitOperandMatchErrorDiagStrings(Info, OS);
   3346 
   3347   // Emit a function to map register classes to operand match failure codes.
   3348   emitRegisterMatchErrorFunc(Info, OS);
   3349 
   3350   // Emit the routine to match token strings to their match class.
   3351   emitMatchTokenString(Target, Info.Classes, OS);
   3352 
   3353   // Emit the subclass predicate routine.
   3354   emitIsSubclass(Target, Info.Classes, OS);
   3355 
   3356   // Emit the routine to validate an operand against a match class.
   3357   emitValidateOperandClass(Info, OS);
   3358 
   3359   emitMatchClassKindNames(Info.Classes, OS);
   3360 
   3361   // Emit the available features compute function.
   3362   SubtargetFeatureInfo::emitComputeAssemblerAvailableFeatures(
   3363       Info.Target.getName(), ClassName, "ComputeAvailableFeatures",
   3364       Info.SubtargetFeatures, OS);
   3365 
   3366   if (!ReportMultipleNearMisses)
   3367     emitAsmTiedOperandConstraints(Target, Info, OS);
   3368 
   3369   StringToOffsetTable StringTable;
   3370 
   3371   size_t MaxNumOperands = 0;
   3372   unsigned MaxMnemonicIndex = 0;
   3373   bool HasDeprecation = false;
   3374   for (const auto &MI : Info.Matchables) {
   3375     MaxNumOperands = std::max(MaxNumOperands, MI->AsmOperands.size());
   3376     HasDeprecation |= MI->HasDeprecation;
   3377 
   3378     // Store a pascal-style length byte in the mnemonic.
   3379     std::string LenMnemonic = char(MI->Mnemonic.size()) + MI->Mnemonic.lower();
   3380     MaxMnemonicIndex = std::max(MaxMnemonicIndex,
   3381                         StringTable.GetOrAddStringOffset(LenMnemonic, false));
   3382   }
   3383 
   3384   OS << "static const char *const MnemonicTable =\n";
   3385   StringTable.EmitString(OS);
   3386   OS << ";\n\n";
   3387 
   3388   std::vector<std::vector<Record *>> FeatureBitsets;
   3389   for (const auto &MI : Info.Matchables) {
   3390     if (MI->RequiredFeatures.empty())
   3391       continue;
   3392     FeatureBitsets.emplace_back();
   3393     for (unsigned I = 0, E = MI->RequiredFeatures.size(); I != E; ++I)
   3394       FeatureBitsets.back().push_back(MI->RequiredFeatures[I]->TheDef);
   3395   }
   3396 
   3397   llvm::sort(FeatureBitsets, [&](const std::vector<Record *> &A,
   3398                                  const std::vector<Record *> &B) {
   3399     if (A.size() < B.size())
   3400       return true;
   3401     if (A.size() > B.size())
   3402       return false;
   3403     for (auto Pair : zip(A, B)) {
   3404       if (std::get<0>(Pair)->getName() < std::get<1>(Pair)->getName())
   3405         return true;
   3406       if (std::get<0>(Pair)->getName() > std::get<1>(Pair)->getName())
   3407         return false;
   3408     }
   3409     return false;
   3410   });
   3411   FeatureBitsets.erase(
   3412       std::unique(FeatureBitsets.begin(), FeatureBitsets.end()),
   3413       FeatureBitsets.end());
   3414   OS << "// Feature bitsets.\n"
   3415      << "enum : " << getMinimalTypeForRange(FeatureBitsets.size()) << " {\n"
   3416      << "  AMFBS_None,\n";
   3417   for (const auto &FeatureBitset : FeatureBitsets) {
   3418     if (FeatureBitset.empty())
   3419       continue;
   3420     OS << "  " << getNameForFeatureBitset(FeatureBitset) << ",\n";
   3421   }
   3422   OS << "};\n\n"
   3423      << "static constexpr FeatureBitset FeatureBitsets[] = {\n"
   3424      << "  {}, // AMFBS_None\n";
   3425   for (const auto &FeatureBitset : FeatureBitsets) {
   3426     if (FeatureBitset.empty())
   3427       continue;
   3428     OS << "  {";
   3429     for (const auto &Feature : FeatureBitset) {
   3430       const auto &I = Info.SubtargetFeatures.find(Feature);
   3431       assert(I != Info.SubtargetFeatures.end() && "Didn't import predicate?");
   3432       OS << I->second.getEnumBitName() << ", ";
   3433     }
   3434     OS << "},\n";
   3435   }
   3436   OS << "};\n\n";
   3437 
   3438   // Emit the static match table; unused classes get initialized to 0 which is
   3439   // guaranteed to be InvalidMatchClass.
   3440   //
   3441   // FIXME: We can reduce the size of this table very easily. First, we change
   3442   // it so that store the kinds in separate bit-fields for each index, which
   3443   // only needs to be the max width used for classes at that index (we also need
   3444   // to reject based on this during classification). If we then make sure to
   3445   // order the match kinds appropriately (putting mnemonics last), then we
   3446   // should only end up using a few bits for each class, especially the ones
   3447   // following the mnemonic.
   3448   OS << "namespace {\n";
   3449   OS << "  struct MatchEntry {\n";
   3450   OS << "    " << getMinimalTypeForRange(MaxMnemonicIndex)
   3451                << " Mnemonic;\n";
   3452   OS << "    uint16_t Opcode;\n";
   3453   OS << "    " << getMinimalTypeForRange(NumConverters)
   3454                << " ConvertFn;\n";
   3455   OS << "    " << getMinimalTypeForRange(FeatureBitsets.size())
   3456                << " RequiredFeaturesIdx;\n";
   3457   OS << "    " << getMinimalTypeForRange(
   3458                       std::distance(Info.Classes.begin(), Info.Classes.end()))
   3459      << " Classes[" << MaxNumOperands << "];\n";
   3460   OS << "    StringRef getMnemonic() const {\n";
   3461   OS << "      return StringRef(MnemonicTable + Mnemonic + 1,\n";
   3462   OS << "                       MnemonicTable[Mnemonic]);\n";
   3463   OS << "    }\n";
   3464   OS << "  };\n\n";
   3465 
   3466   OS << "  // Predicate for searching for an opcode.\n";
   3467   OS << "  struct LessOpcode {\n";
   3468   OS << "    bool operator()(const MatchEntry &LHS, StringRef RHS) {\n";
   3469   OS << "      return LHS.getMnemonic() < RHS;\n";
   3470   OS << "    }\n";
   3471   OS << "    bool operator()(StringRef LHS, const MatchEntry &RHS) {\n";
   3472   OS << "      return LHS < RHS.getMnemonic();\n";
   3473   OS << "    }\n";
   3474   OS << "    bool operator()(const MatchEntry &LHS, const MatchEntry &RHS) {\n";
   3475   OS << "      return LHS.getMnemonic() < RHS.getMnemonic();\n";
   3476   OS << "    }\n";
   3477   OS << "  };\n";
   3478 
   3479   OS << "} // end anonymous namespace\n\n";
   3480 
   3481   unsigned VariantCount = Target.getAsmParserVariantCount();
   3482   for (unsigned VC = 0; VC != VariantCount; ++VC) {
   3483     Record *AsmVariant = Target.getAsmParserVariant(VC);
   3484     int AsmVariantNo = AsmVariant->getValueAsInt("Variant");
   3485 
   3486     OS << "static const MatchEntry MatchTable" << VC << "[] = {\n";
   3487 
   3488     for (const auto &MI : Info.Matchables) {
   3489       if (MI->AsmVariantID != AsmVariantNo)
   3490         continue;
   3491 
   3492       // Store a pascal-style length byte in the mnemonic.
   3493       std::string LenMnemonic =
   3494           char(MI->Mnemonic.size()) + MI->Mnemonic.lower();
   3495       OS << "  { " << StringTable.GetOrAddStringOffset(LenMnemonic, false)
   3496          << " /* " << MI->Mnemonic << " */, "
   3497          << Target.getInstNamespace() << "::"
   3498          << MI->getResultInst()->TheDef->getName() << ", "
   3499          << MI->ConversionFnKind << ", ";
   3500 
   3501       // Write the required features mask.
   3502       OS << "AMFBS";
   3503       if (MI->RequiredFeatures.empty())
   3504         OS << "_None";
   3505       else
   3506         for (unsigned i = 0, e = MI->RequiredFeatures.size(); i != e; ++i)
   3507           OS << '_' << MI->RequiredFeatures[i]->TheDef->getName();
   3508 
   3509       OS << ", { ";
   3510       ListSeparator LS;
   3511       for (const MatchableInfo::AsmOperand &Op : MI->AsmOperands)
   3512         OS << LS << Op.Class->Name;
   3513       OS << " }, },\n";
   3514     }
   3515 
   3516     OS << "};\n\n";
   3517   }
   3518 
   3519   OS << "#include \"llvm/Support/Debug.h\"\n";
   3520   OS << "#include \"llvm/Support/Format.h\"\n\n";
   3521 
   3522   // Finally, build the match function.
   3523   OS << "unsigned " << Target.getName() << ClassName << "::\n"
   3524      << "MatchInstructionImpl(const OperandVector &Operands,\n";
   3525   OS << "                     MCInst &Inst,\n";
   3526   if (ReportMultipleNearMisses)
   3527     OS << "                     SmallVectorImpl<NearMissInfo> *NearMisses,\n";
   3528   else
   3529     OS << "                     uint64_t &ErrorInfo,\n"
   3530        << "                     FeatureBitset &MissingFeatures,\n";
   3531   OS << "                     bool matchingInlineAsm, unsigned VariantID) {\n";
   3532 
   3533   if (!ReportMultipleNearMisses) {
   3534     OS << "  // Eliminate obvious mismatches.\n";
   3535     OS << "  if (Operands.size() > "
   3536        << (MaxNumOperands + HasMnemonicFirst) << ") {\n";
   3537     OS << "    ErrorInfo = "
   3538        << (MaxNumOperands + HasMnemonicFirst) << ";\n";
   3539     OS << "    return Match_InvalidOperand;\n";
   3540     OS << "  }\n\n";
   3541   }
   3542 
   3543   // Emit code to get the available features.
   3544   OS << "  // Get the current feature set.\n";
   3545   OS << "  const FeatureBitset &AvailableFeatures = getAvailableFeatures();\n\n";
   3546 
   3547   OS << "  // Get the instruction mnemonic, which is the first token.\n";
   3548   if (HasMnemonicFirst) {
   3549     OS << "  StringRef Mnemonic = ((" << Target.getName()
   3550        << "Operand &)*Operands[0]).getToken();\n\n";
   3551   } else {
   3552     OS << "  StringRef Mnemonic;\n";
   3553     OS << "  if (Operands[0]->isToken())\n";
   3554     OS << "    Mnemonic = ((" << Target.getName()
   3555        << "Operand &)*Operands[0]).getToken();\n\n";
   3556   }
   3557 
   3558   if (HasMnemonicAliases) {
   3559     OS << "  // Process all MnemonicAliases to remap the mnemonic.\n";
   3560     OS << "  applyMnemonicAliases(Mnemonic, AvailableFeatures, VariantID);\n\n";
   3561   }
   3562 
   3563   // Emit code to compute the class list for this operand vector.
   3564   if (!ReportMultipleNearMisses) {
   3565     OS << "  // Some state to try to produce better error messages.\n";
   3566     OS << "  bool HadMatchOtherThanFeatures = false;\n";
   3567     OS << "  bool HadMatchOtherThanPredicate = false;\n";
   3568     OS << "  unsigned RetCode = Match_InvalidOperand;\n";
   3569     OS << "  MissingFeatures.set();\n";
   3570     OS << "  // Set ErrorInfo to the operand that mismatches if it is\n";
   3571     OS << "  // wrong for all instances of the instruction.\n";
   3572     OS << "  ErrorInfo = ~0ULL;\n";
   3573   }
   3574 
   3575   if (HasOptionalOperands) {
   3576     OS << "  SmallBitVector OptionalOperandsMask(" << MaxNumOperands << ");\n";
   3577   }
   3578 
   3579   // Emit code to search the table.
   3580   OS << "  // Find the appropriate table for this asm variant.\n";
   3581   OS << "  const MatchEntry *Start, *End;\n";
   3582   OS << "  switch (VariantID) {\n";
   3583   OS << "  default: llvm_unreachable(\"invalid variant!\");\n";
   3584   for (unsigned VC = 0; VC != VariantCount; ++VC) {
   3585     Record *AsmVariant = Target.getAsmParserVariant(VC);
   3586     int AsmVariantNo = AsmVariant->getValueAsInt("Variant");
   3587     OS << "  case " << AsmVariantNo << ": Start = std::begin(MatchTable" << VC
   3588        << "); End = std::end(MatchTable" << VC << "); break;\n";
   3589   }
   3590   OS << "  }\n";
   3591 
   3592   OS << "  // Search the table.\n";
   3593   if (HasMnemonicFirst) {
   3594     OS << "  auto MnemonicRange = "
   3595           "std::equal_range(Start, End, Mnemonic, LessOpcode());\n\n";
   3596   } else {
   3597     OS << "  auto MnemonicRange = std::make_pair(Start, End);\n";
   3598     OS << "  unsigned SIndex = Mnemonic.empty() ? 0 : 1;\n";
   3599     OS << "  if (!Mnemonic.empty())\n";
   3600     OS << "    MnemonicRange = "
   3601           "std::equal_range(Start, End, Mnemonic.lower(), LessOpcode());\n\n";
   3602   }
   3603 
   3604   OS << "  DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"AsmMatcher: found \" <<\n"
   3605      << "  std::distance(MnemonicRange.first, MnemonicRange.second) <<\n"
   3606      << "  \" encodings with mnemonic '\" << Mnemonic << \"'\\n\");\n\n";
   3607 
   3608   OS << "  // Return a more specific error code if no mnemonics match.\n";
   3609   OS << "  if (MnemonicRange.first == MnemonicRange.second)\n";
   3610   OS << "    return Match_MnemonicFail;\n\n";
   3611 
   3612   OS << "  for (const MatchEntry *it = MnemonicRange.first, "
   3613      << "*ie = MnemonicRange.second;\n";
   3614   OS << "       it != ie; ++it) {\n";
   3615   OS << "    const FeatureBitset &RequiredFeatures = "
   3616         "FeatureBitsets[it->RequiredFeaturesIdx];\n";
   3617   OS << "    bool HasRequiredFeatures =\n";
   3618   OS << "      (AvailableFeatures & RequiredFeatures) == RequiredFeatures;\n";
   3619   OS << "    DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"Trying to match opcode \"\n";
   3620   OS << "                                          << MII.getName(it->Opcode) << \"\\n\");\n";
   3621 
   3622   if (ReportMultipleNearMisses) {
   3623     OS << "    // Some state to record ways in which this instruction did not match.\n";
   3624     OS << "    NearMissInfo OperandNearMiss = NearMissInfo::getSuccess();\n";
   3625     OS << "    NearMissInfo FeaturesNearMiss = NearMissInfo::getSuccess();\n";
   3626     OS << "    NearMissInfo EarlyPredicateNearMiss = NearMissInfo::getSuccess();\n";
   3627     OS << "    NearMissInfo LatePredicateNearMiss = NearMissInfo::getSuccess();\n";
   3628     OS << "    bool MultipleInvalidOperands = false;\n";
   3629   }
   3630 
   3631   if (HasMnemonicFirst) {
   3632     OS << "    // equal_range guarantees that instruction mnemonic matches.\n";
   3633     OS << "    assert(Mnemonic == it->getMnemonic());\n";
   3634   }
   3635 
   3636   // Emit check that the subclasses match.
   3637   if (!ReportMultipleNearMisses)
   3638     OS << "    bool OperandsValid = true;\n";
   3639   if (HasOptionalOperands) {
   3640     OS << "    OptionalOperandsMask.reset(0, " << MaxNumOperands << ");\n";
   3641   }
   3642   OS << "    for (unsigned FormalIdx = " << (HasMnemonicFirst ? "0" : "SIndex")
   3643      << ", ActualIdx = " << (HasMnemonicFirst ? "1" : "SIndex")
   3644      << "; FormalIdx != " << MaxNumOperands << "; ++FormalIdx) {\n";
   3645   OS << "      auto Formal = "
   3646      << "static_cast<MatchClassKind>(it->Classes[FormalIdx]);\n";
   3647   OS << "      DEBUG_WITH_TYPE(\"asm-matcher\",\n";
   3648   OS << "                      dbgs() << \"  Matching formal operand class \" << getMatchClassName(Formal)\n";
   3649   OS << "                             << \" against actual operand at index \" << ActualIdx);\n";
   3650   OS << "      if (ActualIdx < Operands.size())\n";
   3651   OS << "        DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \" (\";\n";
   3652   OS << "                        Operands[ActualIdx]->print(dbgs()); dbgs() << \"): \");\n";
   3653   OS << "      else\n";
   3654   OS << "        DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \": \");\n";
   3655   OS << "      if (ActualIdx >= Operands.size()) {\n";
   3656   OS << "        DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"actual operand index out of range \");\n";
   3657   if (ReportMultipleNearMisses) {
   3658     OS << "        bool ThisOperandValid = (Formal == " <<"InvalidMatchClass) || "
   3659                                    "isSubclass(Formal, OptionalMatchClass);\n";
   3660     OS << "        if (!ThisOperandValid) {\n";
   3661     OS << "          if (!OperandNearMiss) {\n";
   3662     OS << "            // Record info about match failure for later use.\n";
   3663     OS << "            DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"recording too-few-operands near miss\\n\");\n";
   3664     OS << "            OperandNearMiss =\n";
   3665     OS << "                NearMissInfo::getTooFewOperands(Formal, it->Opcode);\n";
   3666     OS << "          } else if (OperandNearMiss.getKind() != NearMissInfo::NearMissTooFewOperands) {\n";
   3667     OS << "            // If more than one operand is invalid, give up on this match entry.\n";
   3668     OS << "            DEBUG_WITH_TYPE(\n";
   3669     OS << "                \"asm-matcher\",\n";
   3670     OS << "                dbgs() << \"second invalid operand, giving up on this opcode\\n\");\n";
   3671     OS << "            MultipleInvalidOperands = true;\n";
   3672     OS << "            break;\n";
   3673     OS << "          }\n";
   3674     OS << "        } else {\n";
   3675     OS << "          DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"but formal operand not required\\n\");\n";
   3676     OS << "          break;\n";
   3677     OS << "        }\n";
   3678     OS << "        continue;\n";
   3679   } else {
   3680     OS << "        OperandsValid = (Formal == InvalidMatchClass) || isSubclass(Formal, OptionalMatchClass);\n";
   3681     OS << "        if (!OperandsValid) ErrorInfo = ActualIdx;\n";
   3682     if (HasOptionalOperands) {
   3683       OS << "        OptionalOperandsMask.set(FormalIdx, " << MaxNumOperands
   3684          << ");\n";
   3685     }
   3686     OS << "        break;\n";
   3687   }
   3688   OS << "      }\n";
   3689   OS << "      MCParsedAsmOperand &Actual = *Operands[ActualIdx];\n";
   3690   OS << "      unsigned Diag = validateOperandClass(Actual, Formal);\n";
   3691   OS << "      if (Diag == Match_Success) {\n";
   3692   OS << "        DEBUG_WITH_TYPE(\"asm-matcher\",\n";
   3693   OS << "                        dbgs() << \"match success using generic matcher\\n\");\n";
   3694   OS << "        ++ActualIdx;\n";
   3695   OS << "        continue;\n";
   3696   OS << "      }\n";
   3697   OS << "      // If the generic handler indicates an invalid operand\n";
   3698   OS << "      // failure, check for a special case.\n";
   3699   OS << "      if (Diag != Match_Success) {\n";
   3700   OS << "        unsigned TargetDiag = validateTargetOperandClass(Actual, Formal);\n";
   3701   OS << "        if (TargetDiag == Match_Success) {\n";
   3702   OS << "          DEBUG_WITH_TYPE(\"asm-matcher\",\n";
   3703   OS << "                          dbgs() << \"match success using target matcher\\n\");\n";
   3704   OS << "          ++ActualIdx;\n";
   3705   OS << "          continue;\n";
   3706   OS << "        }\n";
   3707   OS << "        // If the target matcher returned a specific error code use\n";
   3708   OS << "        // that, else use the one from the generic matcher.\n";
   3709   OS << "        if (TargetDiag != Match_InvalidOperand && "
   3710         "HasRequiredFeatures)\n";
   3711   OS << "          Diag = TargetDiag;\n";
   3712   OS << "      }\n";
   3713   OS << "      // If current formal operand wasn't matched and it is optional\n"
   3714      << "      // then try to match next formal operand\n";
   3715   OS << "      if (Diag == Match_InvalidOperand "
   3716      << "&& isSubclass(Formal, OptionalMatchClass)) {\n";
   3717   if (HasOptionalOperands) {
   3718     OS << "        OptionalOperandsMask.set(FormalIdx);\n";
   3719   }
   3720     OS << "        DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"ignoring optional operand\\n\");\n";
   3721   OS << "        continue;\n";
   3722   OS << "      }\n";
   3723 
   3724   if (ReportMultipleNearMisses) {
   3725     OS << "      if (!OperandNearMiss) {\n";
   3726     OS << "        // If this is the first invalid operand we have seen, record some\n";
   3727     OS << "        // information about it.\n";
   3728     OS << "        DEBUG_WITH_TYPE(\n";
   3729     OS << "            \"asm-matcher\",\n";
   3730     OS << "            dbgs()\n";
   3731     OS << "                << \"operand match failed, recording near-miss with diag code \"\n";
   3732     OS << "                << Diag << \"\\n\");\n";
   3733     OS << "        OperandNearMiss =\n";
   3734     OS << "            NearMissInfo::getMissedOperand(Diag, Formal, it->Opcode, ActualIdx);\n";
   3735     OS << "        ++ActualIdx;\n";
   3736     OS << "      } else {\n";
   3737     OS << "        // If more than one operand is invalid, give up on this match entry.\n";
   3738     OS << "        DEBUG_WITH_TYPE(\n";
   3739     OS << "            \"asm-matcher\",\n";
   3740     OS << "            dbgs() << \"second operand mismatch, skipping this opcode\\n\");\n";
   3741     OS << "        MultipleInvalidOperands = true;\n";
   3742     OS << "        break;\n";
   3743     OS << "      }\n";
   3744     OS << "    }\n\n";
   3745   } else {
   3746     OS << "      // If this operand is broken for all of the instances of this\n";
   3747     OS << "      // mnemonic, keep track of it so we can report loc info.\n";
   3748     OS << "      // If we already had a match that only failed due to a\n";
   3749     OS << "      // target predicate, that diagnostic is preferred.\n";
   3750     OS << "      if (!HadMatchOtherThanPredicate &&\n";
   3751     OS << "          (it == MnemonicRange.first || ErrorInfo <= ActualIdx)) {\n";
   3752     OS << "        if (HasRequiredFeatures && (ErrorInfo != ActualIdx || Diag "
   3753           "!= Match_InvalidOperand))\n";
   3754     OS << "          RetCode = Diag;\n";
   3755     OS << "        ErrorInfo = ActualIdx;\n";
   3756     OS << "      }\n";
   3757     OS << "      // Otherwise, just reject this instance of the mnemonic.\n";
   3758     OS << "      OperandsValid = false;\n";
   3759     OS << "      break;\n";
   3760     OS << "    }\n\n";
   3761   }
   3762 
   3763   if (ReportMultipleNearMisses)
   3764     OS << "    if (MultipleInvalidOperands) {\n";
   3765   else
   3766     OS << "    if (!OperandsValid) {\n";
   3767   OS << "      DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"Opcode result: multiple \"\n";
   3768   OS << "                                               \"operand mismatches, ignoring \"\n";
   3769   OS << "                                               \"this opcode\\n\");\n";
   3770   OS << "      continue;\n";
   3771   OS << "    }\n";
   3772 
   3773   // Emit check that the required features are available.
   3774   OS << "    if (!HasRequiredFeatures) {\n";
   3775   if (!ReportMultipleNearMisses)
   3776     OS << "      HadMatchOtherThanFeatures = true;\n";
   3777   OS << "      FeatureBitset NewMissingFeatures = RequiredFeatures & "
   3778         "~AvailableFeatures;\n";
   3779   OS << "      DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"Missing target features:\";\n";
   3780   OS << "                      for (unsigned I = 0, E = NewMissingFeatures.size(); I != E; ++I)\n";
   3781   OS << "                        if (NewMissingFeatures[I])\n";
   3782   OS << "                          dbgs() << ' ' << I;\n";
   3783   OS << "                      dbgs() << \"\\n\");\n";
   3784   if (ReportMultipleNearMisses) {
   3785     OS << "      FeaturesNearMiss = NearMissInfo::getMissedFeature(NewMissingFeatures);\n";
   3786   } else {
   3787     OS << "      if (NewMissingFeatures.count() <=\n"
   3788           "          MissingFeatures.count())\n";
   3789     OS << "        MissingFeatures = NewMissingFeatures;\n";
   3790     OS << "      continue;\n";
   3791   }
   3792   OS << "    }\n";
   3793   OS << "\n";
   3794   OS << "    Inst.clear();\n\n";
   3795   OS << "    Inst.setOpcode(it->Opcode);\n";
   3796   // Verify the instruction with the target-specific match predicate function.
   3797   OS << "    // We have a potential match but have not rendered the operands.\n"
   3798      << "    // Check the target predicate to handle any context sensitive\n"
   3799         "    // constraints.\n"
   3800      << "    // For example, Ties that are referenced multiple times must be\n"
   3801         "    // checked here to ensure the input is the same for each match\n"
   3802         "    // constraints. If we leave it any later the ties will have been\n"
   3803         "    // canonicalized\n"
   3804      << "    unsigned MatchResult;\n"
   3805      << "    if ((MatchResult = checkEarlyTargetMatchPredicate(Inst, "
   3806         "Operands)) != Match_Success) {\n"
   3807      << "      Inst.clear();\n";
   3808   OS << "      DEBUG_WITH_TYPE(\n";
   3809   OS << "          \"asm-matcher\",\n";
   3810   OS << "          dbgs() << \"Early target match predicate failed with diag code \"\n";
   3811   OS << "                 << MatchResult << \"\\n\");\n";
   3812   if (ReportMultipleNearMisses) {
   3813     OS << "      EarlyPredicateNearMiss = NearMissInfo::getMissedPredicate(MatchResult);\n";
   3814   } else {
   3815     OS << "      RetCode = MatchResult;\n"
   3816        << "      HadMatchOtherThanPredicate = true;\n"
   3817        << "      continue;\n";
   3818   }
   3819   OS << "    }\n\n";
   3820 
   3821   if (ReportMultipleNearMisses) {
   3822     OS << "    // If we did not successfully match the operands, then we can't convert to\n";
   3823     OS << "    // an MCInst, so bail out on this instruction variant now.\n";
   3824     OS << "    if (OperandNearMiss) {\n";
   3825     OS << "      // If the operand mismatch was the only problem, reprrt it as a near-miss.\n";
   3826     OS << "      if (NearMisses && !FeaturesNearMiss && !EarlyPredicateNearMiss) {\n";
   3827     OS << "        DEBUG_WITH_TYPE(\n";
   3828     OS << "            \"asm-matcher\",\n";
   3829     OS << "            dbgs()\n";
   3830     OS << "                << \"Opcode result: one mismatched operand, adding near-miss\\n\");\n";
   3831     OS << "        NearMisses->push_back(OperandNearMiss);\n";
   3832     OS << "      } else {\n";
   3833     OS << "        DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"Opcode result: multiple \"\n";
   3834     OS << "                                                 \"types of mismatch, so not \"\n";
   3835     OS << "                                                 \"reporting near-miss\\n\");\n";
   3836     OS << "      }\n";
   3837     OS << "      continue;\n";
   3838     OS << "    }\n\n";
   3839   }
   3840 
   3841   OS << "    if (matchingInlineAsm) {\n";
   3842   OS << "      convertToMapAndConstraints(it->ConvertFn, Operands);\n";
   3843   if (!ReportMultipleNearMisses) {
   3844     OS << "      if (!checkAsmTiedOperandConstraints(*this, it->ConvertFn, "
   3845           "Operands, ErrorInfo))\n";
   3846     OS << "        return Match_InvalidTiedOperand;\n";
   3847     OS << "\n";
   3848   }
   3849   OS << "      return Match_Success;\n";
   3850   OS << "    }\n\n";
   3851   OS << "    // We have selected a definite instruction, convert the parsed\n"
   3852      << "    // operands into the appropriate MCInst.\n";
   3853   if (HasOptionalOperands) {
   3854     OS << "    convertToMCInst(it->ConvertFn, Inst, it->Opcode, Operands,\n"
   3855        << "                    OptionalOperandsMask);\n";
   3856   } else {
   3857     OS << "    convertToMCInst(it->ConvertFn, Inst, it->Opcode, Operands);\n";
   3858   }
   3859   OS << "\n";
   3860 
   3861   // Verify the instruction with the target-specific match predicate function.
   3862   OS << "    // We have a potential match. Check the target predicate to\n"
   3863      << "    // handle any context sensitive constraints.\n"
   3864      << "    if ((MatchResult = checkTargetMatchPredicate(Inst)) !="
   3865      << " Match_Success) {\n"
   3866      << "      DEBUG_WITH_TYPE(\"asm-matcher\",\n"
   3867      << "                      dbgs() << \"Target match predicate failed with diag code \"\n"
   3868      << "                             << MatchResult << \"\\n\");\n"
   3869      << "      Inst.clear();\n";
   3870   if (ReportMultipleNearMisses) {
   3871     OS << "      LatePredicateNearMiss = NearMissInfo::getMissedPredicate(MatchResult);\n";
   3872   } else {
   3873     OS << "      RetCode = MatchResult;\n"
   3874        << "      HadMatchOtherThanPredicate = true;\n"
   3875        << "      continue;\n";
   3876   }
   3877   OS << "    }\n\n";
   3878 
   3879   if (ReportMultipleNearMisses) {
   3880     OS << "    int NumNearMisses = ((int)(bool)OperandNearMiss +\n";
   3881     OS << "                         (int)(bool)FeaturesNearMiss +\n";
   3882     OS << "                         (int)(bool)EarlyPredicateNearMiss +\n";
   3883     OS << "                         (int)(bool)LatePredicateNearMiss);\n";
   3884     OS << "    if (NumNearMisses == 1) {\n";
   3885     OS << "      // We had exactly one type of near-miss, so add that to the list.\n";
   3886     OS << "      assert(!OperandNearMiss && \"OperandNearMiss was handled earlier\");\n";
   3887     OS << "      DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"Opcode result: found one type of \"\n";
   3888     OS << "                                            \"mismatch, so reporting a \"\n";
   3889     OS << "                                            \"near-miss\\n\");\n";
   3890     OS << "      if (NearMisses && FeaturesNearMiss)\n";
   3891     OS << "        NearMisses->push_back(FeaturesNearMiss);\n";
   3892     OS << "      else if (NearMisses && EarlyPredicateNearMiss)\n";
   3893     OS << "        NearMisses->push_back(EarlyPredicateNearMiss);\n";
   3894     OS << "      else if (NearMisses && LatePredicateNearMiss)\n";
   3895     OS << "        NearMisses->push_back(LatePredicateNearMiss);\n";
   3896     OS << "\n";
   3897     OS << "      continue;\n";
   3898     OS << "    } else if (NumNearMisses > 1) {\n";
   3899     OS << "      // This instruction missed in more than one way, so ignore it.\n";
   3900     OS << "      DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"Opcode result: multiple \"\n";
   3901     OS << "                                               \"types of mismatch, so not \"\n";
   3902     OS << "                                               \"reporting near-miss\\n\");\n";
   3903     OS << "      continue;\n";
   3904     OS << "    }\n";
   3905   }
   3906 
   3907   // Call the post-processing function, if used.
   3908   StringRef InsnCleanupFn = AsmParser->getValueAsString("AsmParserInstCleanup");
   3909   if (!InsnCleanupFn.empty())
   3910     OS << "    " << InsnCleanupFn << "(Inst);\n";
   3911 
   3912   if (HasDeprecation) {
   3913     OS << "    std::string Info;\n";
   3914     OS << "    if (!getParser().getTargetParser().\n";
   3915     OS << "        getTargetOptions().MCNoDeprecatedWarn &&\n";
   3916     OS << "        MII.getDeprecatedInfo(Inst, getSTI(), Info)) {\n";
   3917     OS << "      SMLoc Loc = ((" << Target.getName()
   3918        << "Operand &)*Operands[0]).getStartLoc();\n";
   3919     OS << "      getParser().Warning(Loc, Info, None);\n";
   3920     OS << "    }\n";
   3921   }
   3922 
   3923   if (!ReportMultipleNearMisses) {
   3924     OS << "    if (!checkAsmTiedOperandConstraints(*this, it->ConvertFn, "
   3925           "Operands, ErrorInfo))\n";
   3926     OS << "      return Match_InvalidTiedOperand;\n";
   3927     OS << "\n";
   3928   }
   3929 
   3930   OS << "    DEBUG_WITH_TYPE(\n";
   3931   OS << "        \"asm-matcher\",\n";
   3932   OS << "        dbgs() << \"Opcode result: complete match, selecting this opcode\\n\");\n";
   3933   OS << "    return Match_Success;\n";
   3934   OS << "  }\n\n";
   3935 
   3936   if (ReportMultipleNearMisses) {
   3937     OS << "  // No instruction variants matched exactly.\n";
   3938     OS << "  return Match_NearMisses;\n";
   3939   } else {
   3940     OS << "  // Okay, we had no match.  Try to return a useful error code.\n";
   3941     OS << "  if (HadMatchOtherThanPredicate || !HadMatchOtherThanFeatures)\n";
   3942     OS << "    return RetCode;\n\n";
   3943     OS << "  ErrorInfo = 0;\n";
   3944     OS << "  return Match_MissingFeature;\n";
   3945   }
   3946   OS << "}\n\n";
   3947 
   3948   if (!Info.OperandMatchInfo.empty())
   3949     emitCustomOperandParsing(OS, Target, Info, ClassName, StringTable,
   3950                              MaxMnemonicIndex, FeatureBitsets.size(),
   3951                              HasMnemonicFirst);
   3952 
   3953   OS << "#endif // GET_MATCHER_IMPLEMENTATION\n\n";
   3954 
   3955   OS << "\n#ifdef GET_MNEMONIC_SPELL_CHECKER\n";
   3956   OS << "#undef GET_MNEMONIC_SPELL_CHECKER\n\n";
   3957 
   3958   emitMnemonicSpellChecker(OS, Target, VariantCount);
   3959 
   3960   OS << "#endif // GET_MNEMONIC_SPELL_CHECKER\n\n";
   3961 
   3962   OS << "\n#ifdef GET_MNEMONIC_CHECKER\n";
   3963   OS << "#undef GET_MNEMONIC_CHECKER\n\n";
   3964 
   3965   emitMnemonicChecker(OS, Target, VariantCount,
   3966                       HasMnemonicFirst, HasMnemonicAliases);
   3967 
   3968   OS << "#endif // GET_MNEMONIC_CHECKER\n\n";
   3969 }
   3970 
   3971 namespace llvm {
   3972 
   3973 void EmitAsmMatcher(RecordKeeper &RK, raw_ostream &OS) {
   3974   emitSourceFileHeader("Assembly Matcher Source Fragment", OS);
   3975   AsmMatcherEmitter(RK).run(OS);
   3976 }
   3977 
   3978 } // end namespace llvm
   3979