#include "CodeGenInstruction.h"
#include "CodeGenTarget.h"
#include "SubtargetFeatureInfo.h"
#include "Types.h"
#include "llvm/ADT/CachedHashString.h"
#include "llvm/ADT/PointerUnion.h"
#include "llvm/ADT/STLExtras.h"
#include "llvm/ADT/SmallPtrSet.h"
#include "llvm/ADT/SmallVector.h"
#include "llvm/ADT/StringExtras.h"
#include "llvm/Config/llvm-config.h"
#include "llvm/Support/CommandLine.h"
#include "llvm/Support/Debug.h"
#include "llvm/Support/ErrorHandling.h"
#include "llvm/TableGen/Error.h"
#include "llvm/TableGen/Record.h"
#include "llvm/TableGen/StringMatcher.h"
#include "llvm/TableGen/StringToOffsetTable.h"
#include "llvm/TableGen/TableGenBackend.h"
#include <cassert>
#include <cctype>
#include <forward_list>
#include <map>
#include <set>
using namespace llvm;
#define DEBUG_TYPE "asm-matcher-emitter"
cl::OptionCategory AsmMatcherEmitterCat("Options for -gen-asm-matcher");
static cl::opt<std::string>
MatchPrefix("match-prefix", cl::init(""),
cl::desc("Only match instructions with the given prefix"),
cl::cat(AsmMatcherEmitterCat));
namespace {
class AsmMatcherInfo;
typedef std::set<Record*, LessRecordByID> RegisterSet;
class AsmMatcherEmitter {
RecordKeeper &Records;
public:
AsmMatcherEmitter(RecordKeeper &R) : Records(R) {}
void run(raw_ostream &o);
};
struct ClassInfo {
enum ClassInfoKind {
Invalid = 0,
Token,
RegisterClass0,
UserClass0 = 1<<16
};
unsigned Kind;
std::vector<ClassInfo*> SuperClasses;
std::string Name;
std::string ClassName;
std::string ValueName;
std::string PredicateMethod;
std::string RenderMethod;
std::string ParserMethod;
RegisterSet Registers;
std::string DiagnosticType;
std::string DiagnosticString;
bool IsOptional;
std::string DefaultMethod;
public:
bool isRegisterClass() const {
return Kind >= RegisterClass0 && Kind < UserClass0;
}
bool isUserClass() const {
return Kind >= UserClass0;
}
bool isRelatedTo(const ClassInfo &RHS) const {
if (Kind == Token || RHS.Kind == Token)
return Kind == Token && RHS.Kind == Token;
if (isRegisterClass() || RHS.isRegisterClass()) {
if (!isRegisterClass() || !RHS.isRegisterClass())
return false;
RegisterSet Tmp;
std::insert_iterator<RegisterSet> II(Tmp, Tmp.begin());
std::set_intersection(Registers.begin(), Registers.end(),
RHS.Registers.begin(), RHS.Registers.end(),
II, LessRecordByID());
return !Tmp.empty();
}
assert(isUserClass() && RHS.isUserClass() && "Unexpected class!");
const ClassInfo *Root = this;
while (!Root->SuperClasses.empty())
Root = Root->SuperClasses.front();
const ClassInfo *RHSRoot = &RHS;
while (!RHSRoot->SuperClasses.empty())
RHSRoot = RHSRoot->SuperClasses.front();
return Root == RHSRoot;
}
bool isSubsetOf(const ClassInfo &RHS) const {
if (this == &RHS)
return true;
SmallVector<const ClassInfo *, 16> Worklist(SuperClasses.begin(),
SuperClasses.end());
SmallPtrSet<const ClassInfo *, 16> Visited;
while (!Worklist.empty()) {
auto *CI = Worklist.pop_back_val();
if (CI == &RHS)
return true;
for (auto *Super : CI->SuperClasses)
if (Visited.insert(Super).second)
Worklist.push_back(Super);
}
return false;
}
int getTreeDepth() const {
int Depth = 0;
const ClassInfo *Root = this;
while (!Root->SuperClasses.empty()) {
Depth++;
Root = Root->SuperClasses.front();
}
return Depth;
}
const ClassInfo *findRoot() const {
const ClassInfo *Root = this;
while (!Root->SuperClasses.empty())
Root = Root->SuperClasses.front();
return Root;
}
bool operator<(const ClassInfo &RHS) const {
if (this == &RHS)
return false;
if (Kind == Token) {
if (RHS.Kind != Token)
return true;
assert(RHS.Kind == Token);
} else if (isRegisterClass()) {
if (RHS.Kind == Token)
return false;
else if (RHS.isUserClass())
return true;
assert(RHS.isRegisterClass());
} else if (isUserClass()) {
if (!RHS.isUserClass())
return false;
assert(RHS.isUserClass());
} else {
llvm_unreachable("Unknown ClassInfoKind");
}
if (Kind == Token || isUserClass()) {
if (isRelatedTo(RHS)) {
if (getTreeDepth() > RHS.getTreeDepth())
return true;
if (getTreeDepth() < RHS.getTreeDepth())
return false;
} else {
return findRoot()->ValueName < RHS.findRoot()->ValueName;
}
} else if (isRegisterClass()) {
if (Registers.size() != RHS.Registers.size())
return Registers.size() < RHS.Registers.size();
} else {
llvm_unreachable("Unknown ClassInfoKind");
}
return ValueName < RHS.ValueName;
}
};
class AsmVariantInfo {
public:
StringRef RegisterPrefix;
StringRef TokenizingCharacters;
StringRef SeparatorCharacters;
StringRef BreakCharacters;
StringRef Name;
int AsmVariantNo;
};
struct MatchableInfo {
struct AsmOperand {
StringRef Token;
ClassInfo *Class;
StringRef SrcOpName;
StringRef OrigSrcOpName;
int SubOpIdx;
bool IsIsolatedToken;
Record *SingletonReg;
explicit AsmOperand(bool IsIsolatedToken, StringRef T)
: Token(T), Class(nullptr), SubOpIdx(-1),
IsIsolatedToken(IsIsolatedToken), SingletonReg(nullptr) {}
};
struct ResOperand {
enum {
RenderAsmOperand,
TiedOperand,
ImmOperand,
RegOperand
} Kind;
struct TiedOperandsTuple {
unsigned ResOpnd;
unsigned SrcOpnd1Idx;
unsigned SrcOpnd2Idx;
};
union {
unsigned AsmOperandNum;
TiedOperandsTuple TiedOperands;
int64_t ImmVal;
Record *Register;
};
unsigned MINumOperands;
static ResOperand getRenderedOp(unsigned AsmOpNum, unsigned NumOperands) {
ResOperand X;
X.Kind = RenderAsmOperand;
X.AsmOperandNum = AsmOpNum;
X.MINumOperands = NumOperands;
return X;
}
static ResOperand getTiedOp(unsigned TiedOperandNum, unsigned SrcOperand1,
unsigned SrcOperand2) {
ResOperand X;
X.Kind = TiedOperand;
X.TiedOperands = { TiedOperandNum, SrcOperand1, SrcOperand2 };
X.MINumOperands = 1;
return X;
}
static ResOperand getImmOp(int64_t Val) {
ResOperand X;
X.Kind = ImmOperand;
X.ImmVal = Val;
X.MINumOperands = 1;
return X;
}
static ResOperand getRegOp(Record *Reg) {
ResOperand X;
X.Kind = RegOperand;
X.Register = Reg;
X.MINumOperands = 1;
return X;
}
};
int AsmVariantID;
std::string AsmString;
Record *const TheDef;
PointerUnion<const CodeGenInstruction*, const CodeGenInstAlias*> DefRec;
const CodeGenInstruction *getResultInst() const {
if (DefRec.is<const CodeGenInstruction*>())
return DefRec.get<const CodeGenInstruction*>();
return DefRec.get<const CodeGenInstAlias*>()->ResultInst;
}
SmallVector<ResOperand, 8> ResOperands;
StringRef Mnemonic;
SmallVector<AsmOperand, 8> AsmOperands;
SmallVector<const SubtargetFeatureInfo *, 4> RequiredFeatures;
std::string ConversionFnKind;
bool HasDeprecation;
bool UseInstAsmMatchConverter;
MatchableInfo(const CodeGenInstruction &CGI)
: AsmVariantID(0), AsmString(CGI.AsmString), TheDef(CGI.TheDef), DefRec(&CGI),
UseInstAsmMatchConverter(true) {
}
MatchableInfo(std::unique_ptr<const CodeGenInstAlias> Alias)
: AsmVariantID(0), AsmString(Alias->AsmString), TheDef(Alias->TheDef),
DefRec(Alias.release()),
UseInstAsmMatchConverter(
TheDef->getValueAsBit("UseInstAsmMatchConverter")) {
}
MatchableInfo(const MatchableInfo &RHS)
: AsmVariantID(RHS.AsmVariantID), AsmString(RHS.AsmString),
TheDef(RHS.TheDef), DefRec(RHS.DefRec), ResOperands(RHS.ResOperands),
Mnemonic(RHS.Mnemonic), AsmOperands(RHS.AsmOperands),
RequiredFeatures(RHS.RequiredFeatures),
ConversionFnKind(RHS.ConversionFnKind),
HasDeprecation(RHS.HasDeprecation),
UseInstAsmMatchConverter(RHS.UseInstAsmMatchConverter) {
assert(!DefRec.is<const CodeGenInstAlias *>());
}
~MatchableInfo() {
delete DefRec.dyn_cast<const CodeGenInstAlias*>();
}
void formTwoOperandAlias(StringRef Constraint);
void initialize(const AsmMatcherInfo &Info,
SmallPtrSetImpl<Record*> &SingletonRegisters,
AsmVariantInfo const &Variant,
bool HasMnemonicFirst);
bool validate(StringRef CommentDelimiter, bool IsAlias) const;
int findAsmOperand(StringRef N, int SubOpIdx) const {
auto I = find_if(AsmOperands, [&](const AsmOperand &Op) {
return Op.SrcOpName == N && Op.SubOpIdx == SubOpIdx;
});
return (I != AsmOperands.end()) ? I - AsmOperands.begin() : -1;
}
int findAsmOperandNamed(StringRef N, int LastIdx = -1) const {
auto I = std::find_if(AsmOperands.begin() + LastIdx + 1, AsmOperands.end(),
[&](const AsmOperand &Op) { return Op.SrcOpName == N; });
return (I != AsmOperands.end()) ? I - AsmOperands.begin() : -1;
}
int findAsmOperandOriginallyNamed(StringRef N) const {
auto I =
find_if(AsmOperands,
[&](const AsmOperand &Op) { return Op.OrigSrcOpName == N; });
return (I != AsmOperands.end()) ? I - AsmOperands.begin() : -1;
}
void buildInstructionResultOperands();
void buildAliasResultOperands(bool AliasConstraintsAreChecked);
bool operator<(const MatchableInfo &RHS) const {
if (int Cmp = Mnemonic.compare_insensitive(RHS.Mnemonic))
return Cmp == -1;
if (AsmOperands.size() != RHS.AsmOperands.size())
return AsmOperands.size() < RHS.AsmOperands.size();
for (unsigned i = 0, e = AsmOperands.size(); i != e; ++i) {
if (*AsmOperands[i].Class < *RHS.AsmOperands[i].Class)
return true;
if (*RHS.AsmOperands[i].Class < *AsmOperands[i].Class)
return false;
}
if (RequiredFeatures.size() != RHS.RequiredFeatures.size())
return RequiredFeatures.size() > RHS.RequiredFeatures.size();
if (TheDef->isSubClassOf("Instruction") &&
TheDef->getValueAsBit("HasPositionOrder"))
return TheDef->getID() < RHS.TheDef->getID();
return false;
}
bool couldMatchAmbiguouslyWith(const MatchableInfo &RHS) const {
if (Mnemonic != RHS.Mnemonic)
return false;
if (AsmVariantID != RHS.AsmVariantID)
return false;
if (AsmOperands.size() != RHS.AsmOperands.size())
return false;
for (unsigned i = 0, e = AsmOperands.size(); i != e; ++i)
if (AsmOperands[i].Class->Kind != RHS.AsmOperands[i].Class->Kind ||
AsmOperands[i].Class->Kind == ClassInfo::Token)
if (*AsmOperands[i].Class < *RHS.AsmOperands[i].Class ||
*RHS.AsmOperands[i].Class < *AsmOperands[i].Class)
return false;
bool HasLT = false, HasGT = false;
for (unsigned i = 0, e = AsmOperands.size(); i != e; ++i) {
if (*AsmOperands[i].Class < *RHS.AsmOperands[i].Class)
HasLT = true;
if (*RHS.AsmOperands[i].Class < *AsmOperands[i].Class)
HasGT = true;
}
return HasLT == HasGT;
}
void dump() const;
private:
void tokenizeAsmString(AsmMatcherInfo const &Info,
AsmVariantInfo const &Variant);
void addAsmOperand(StringRef Token, bool IsIsolatedToken = false);
};
struct OperandMatchEntry {
unsigned OperandMask;
const MatchableInfo* MI;
ClassInfo *CI;
static OperandMatchEntry create(const MatchableInfo *mi, ClassInfo *ci,
unsigned opMask) {
OperandMatchEntry X;
X.OperandMask = opMask;
X.CI = ci;
X.MI = mi;
return X;
}
};
class AsmMatcherInfo {
public:
RecordKeeper &Records;
Record *AsmParser;
CodeGenTarget &Target;
std::forward_list<ClassInfo> Classes;
std::vector<std::unique_ptr<MatchableInfo>> Matchables;
std::vector<OperandMatchEntry> OperandMatchInfo;
typedef std::map<Record*, ClassInfo*, LessRecordByID> RegisterClassesTy;
RegisterClassesTy RegisterClasses;
std::map<Record *, SubtargetFeatureInfo, LessRecordByID> SubtargetFeatures;
std::map<Record*, ClassInfo*> AsmOperandClasses;
std::map<Record*, ClassInfo*> RegisterClassClasses;
private:
std::map<std::string, ClassInfo*> TokenClasses;
private:
ClassInfo *getTokenClass(StringRef Token);
ClassInfo *getOperandClass(const CGIOperandList::OperandInfo &OI,
int SubOpIdx);
ClassInfo *getOperandClass(Record *Rec, int SubOpIdx);
void buildRegisterClasses(SmallPtrSetImpl<Record*> &SingletonRegisters);
void buildOperandClasses();
void buildInstructionOperandReference(MatchableInfo *II, StringRef OpName,
unsigned AsmOpIdx);
void buildAliasOperandReference(MatchableInfo *II, StringRef OpName,
MatchableInfo::AsmOperand &Op);
public:
AsmMatcherInfo(Record *AsmParser,
CodeGenTarget &Target,
RecordKeeper &Records);
void buildInfo();
void buildOperandMatchInfo();
const SubtargetFeatureInfo *getSubtargetFeature(Record *Def) const {
assert(Def->isSubClassOf("Predicate") && "Invalid predicate type!");
const auto &I = SubtargetFeatures.find(Def);
return I == SubtargetFeatures.end() ? nullptr : &I->second;
}
RecordKeeper &getRecords() const {
return Records;
}
bool hasOptionalOperands() const {
return any_of(Classes,
[](const ClassInfo &Class) { return Class.IsOptional; });
}
};
}
#if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
LLVM_DUMP_METHOD void MatchableInfo::dump() const {
errs() << TheDef->getName() << " -- " << "flattened:\"" << AsmString <<"\"\n";
errs() << " variant: " << AsmVariantID << "\n";
for (unsigned i = 0, e = AsmOperands.size(); i != e; ++i) {
const AsmOperand &Op = AsmOperands[i];
errs() << " op[" << i << "] = " << Op.Class->ClassName << " - ";
errs() << '\"' << Op.Token << "\"\n";
}
}
#endif
static std::pair<StringRef, StringRef>
parseTwoOperandConstraint(StringRef S, ArrayRef<SMLoc> Loc) {
std::pair<StringRef, StringRef> Ops = S.split('=');
if (Ops.second == "")
PrintFatalError(Loc, "missing '=' in two-operand alias constraint");
size_t start = Ops.first.find_first_of('$');
if (start == std::string::npos)
PrintFatalError(Loc, "expected '$' prefix on asm operand name");
Ops.first = Ops.first.slice(start + 1, std::string::npos);
size_t end = Ops.first.find_last_of(" \t");
Ops.first = Ops.first.slice(0, end);
start = Ops.second.find_first_of('$');
if (start == std::string::npos)
PrintFatalError(Loc, "expected '$' prefix on asm operand name");
Ops.second = Ops.second.slice(start + 1, std::string::npos);
end = Ops.second.find_last_of(" \t");
Ops.first = Ops.first.slice(0, end);
return Ops;
}
void MatchableInfo::formTwoOperandAlias(StringRef Constraint) {
std::pair<StringRef, StringRef> Ops =
parseTwoOperandConstraint(Constraint, TheDef->getLoc());
int SrcAsmOperand = findAsmOperandNamed(Ops.first);
int DstAsmOperand = findAsmOperandNamed(Ops.second);
if (SrcAsmOperand == -1)
PrintFatalError(TheDef->getLoc(),
"unknown source two-operand alias operand '" + Ops.first +
"'.");
if (DstAsmOperand == -1)
PrintFatalError(TheDef->getLoc(),
"unknown destination two-operand alias operand '" +
Ops.second + "'.");
for (ResOperand &Op : ResOperands) {
if (Op.Kind == ResOperand::RenderAsmOperand &&
Op.AsmOperandNum == (unsigned)SrcAsmOperand) {
Op.AsmOperandNum = DstAsmOperand;
break;
}
}
AsmOperands.erase(AsmOperands.begin() + SrcAsmOperand);
for (ResOperand &Op : ResOperands) {
switch(Op.Kind) {
default:
break;
case ResOperand::RenderAsmOperand:
if (Op.AsmOperandNum > (unsigned)SrcAsmOperand)
--Op.AsmOperandNum;
break;
}
}
}
static void
extractSingletonRegisterForAsmOperand(MatchableInfo::AsmOperand &Op,
const AsmMatcherInfo &Info,
StringRef RegisterPrefix) {
StringRef Tok = Op.Token;
if (!Op.IsIsolatedToken)
return;
if (RegisterPrefix.empty()) {
std::string LoweredTok = Tok.lower();
if (const CodeGenRegister *Reg = Info.Target.getRegisterByName(LoweredTok))
Op.SingletonReg = Reg->TheDef;
return;
}
if (!Tok.startswith(RegisterPrefix))
return;
StringRef RegName = Tok.substr(RegisterPrefix.size());
if (const CodeGenRegister *Reg = Info.Target.getRegisterByName(RegName))
Op.SingletonReg = Reg->TheDef;
}
void MatchableInfo::initialize(const AsmMatcherInfo &Info,
SmallPtrSetImpl<Record*> &SingletonRegisters,
AsmVariantInfo const &Variant,
bool HasMnemonicFirst) {
AsmVariantID = Variant.AsmVariantNo;
AsmString =
CodeGenInstruction::FlattenAsmStringVariants(AsmString,
Variant.AsmVariantNo);
tokenizeAsmString(Info, Variant);
if (AsmOperands.empty())
PrintFatalError(TheDef->getLoc(),
"Instruction '" + TheDef->getName() + "' has no tokens");
assert(!AsmOperands[0].Token.empty());
if (HasMnemonicFirst) {
Mnemonic = AsmOperands[0].Token;
if (Mnemonic[0] == '$')
PrintFatalError(TheDef->getLoc(),
"Invalid instruction mnemonic '" + Mnemonic + "'!");
AsmOperands.erase(AsmOperands.begin());
} else if (AsmOperands[0].Token[0] != '$')
Mnemonic = AsmOperands[0].Token;
for (Record *Predicate : TheDef->getValueAsListOfDefs("Predicates"))
if (const SubtargetFeatureInfo *Feature =
Info.getSubtargetFeature(Predicate))
RequiredFeatures.push_back(Feature);
for (MatchableInfo::AsmOperand &Op : AsmOperands) {
extractSingletonRegisterForAsmOperand(Op, Info, Variant.RegisterPrefix);
if (Record *Reg = Op.SingletonReg)
SingletonRegisters.insert(Reg);
}
const RecordVal *DepMask = TheDef->getValue("DeprecatedFeatureMask");
if (!DepMask)
DepMask = TheDef->getValue("ComplexDeprecationPredicate");
HasDeprecation =
DepMask ? !DepMask->getValue()->getAsUnquotedString().empty() : false;
}
void MatchableInfo::addAsmOperand(StringRef Token, bool IsIsolatedToken) {
AsmOperands.push_back(AsmOperand(IsIsolatedToken, Token));
}
void MatchableInfo::tokenizeAsmString(const AsmMatcherInfo &Info,
AsmVariantInfo const &Variant) {
StringRef String = AsmString;
size_t Prev = 0;
bool InTok = false;
bool IsIsolatedToken = true;
for (size_t i = 0, e = String.size(); i != e; ++i) {
char Char = String[i];
if (Variant.BreakCharacters.find(Char) != std::string::npos) {
if (InTok) {
addAsmOperand(String.slice(Prev, i), false);
Prev = i;
IsIsolatedToken = false;
}
InTok = true;
continue;
}
if (Variant.TokenizingCharacters.find(Char) != std::string::npos) {
if (InTok) {
addAsmOperand(String.slice(Prev, i), IsIsolatedToken);
InTok = false;
IsIsolatedToken = false;
}
addAsmOperand(String.slice(i, i + 1), IsIsolatedToken);
Prev = i + 1;
IsIsolatedToken = true;
continue;
}
if (Variant.SeparatorCharacters.find(Char) != std::string::npos) {
if (InTok) {
addAsmOperand(String.slice(Prev, i), IsIsolatedToken);
InTok = false;
}
Prev = i + 1;
IsIsolatedToken = true;
continue;
}
switch (Char) {
case '\\':
if (InTok) {
addAsmOperand(String.slice(Prev, i), false);
InTok = false;
IsIsolatedToken = false;
}
++i;
assert(i != String.size() && "Invalid quoted character");
addAsmOperand(String.slice(i, i + 1), IsIsolatedToken);
Prev = i + 1;
IsIsolatedToken = false;
break;
case '$': {
if (InTok) {
addAsmOperand(String.slice(Prev, i), IsIsolatedToken);
InTok = false;
IsIsolatedToken = false;
}
if (i + 1 == String.size() || String[i + 1] != '{') {
Prev = i;
break;
}
size_t EndPos = String.find('}', i);
assert(EndPos != StringRef::npos &&
"Missing brace in operand reference!");
addAsmOperand(String.slice(i, EndPos+1), IsIsolatedToken);
Prev = EndPos + 1;
i = EndPos;
IsIsolatedToken = false;
break;
}
default:
InTok = true;
break;
}
}
if (InTok && Prev != String.size())
addAsmOperand(String.substr(Prev), IsIsolatedToken);
}
bool MatchableInfo::validate(StringRef CommentDelimiter, bool IsAlias) const {
if (AsmString.empty())
PrintFatalError(TheDef->getLoc(), "instruction with empty asm string");
if (AsmString.find('\n') != std::string::npos)
PrintFatalError(TheDef->getLoc(),
"multiline instruction is not valid for the asmparser, "
"mark it isCodeGenOnly");
if (!CommentDelimiter.empty() &&
StringRef(AsmString).contains(CommentDelimiter))
PrintFatalError(TheDef->getLoc(),
"asmstring for instruction has comment character in it, "
"mark it isCodeGenOnly");
std::set<std::string> OperandNames;
for (const AsmOperand &Op : AsmOperands) {
StringRef Tok = Op.Token;
if (Tok[0] == '$' && Tok.contains(':'))
PrintFatalError(TheDef->getLoc(),
"matchable with operand modifier '" + Tok +
"' not supported by asm matcher. Mark isCodeGenOnly!");
if (!IsAlias && TheDef->getValueAsString("AsmMatchConverter").empty() &&
Tok[0] == '$' && !OperandNames.insert(std::string(Tok)).second) {
LLVM_DEBUG({
errs() << "warning: '" << TheDef->getName() << "': "
<< "ignoring instruction with tied operand '"
<< Tok << "'\n";
});
return false;
}
}
return true;
}
static std::string getEnumNameForToken(StringRef Str) {
std::string Res;
for (char C : Str) {
switch (C) {
case '*': Res += "_STAR_"; break;
case '%': Res += "_PCT_"; break;
case ':': Res += "_COLON_"; break;
case '!': Res += "_EXCLAIM_"; break;
case '.': Res += "_DOT_"; break;
case '<': Res += "_LT_"; break;
case '>': Res += "_GT_"; break;
case '-': Res += "_MINUS_"; break;
case '#': Res += "_HASH_"; break;
default:
if (isAlnum(C))
Res += C;
else
Res += "_" + utostr((unsigned)C) + "_";
}
}
return Res;
}
ClassInfo *AsmMatcherInfo::getTokenClass(StringRef Token) {
ClassInfo *&Entry = TokenClasses[std::string(Token)];
if (!Entry) {
Classes.emplace_front();
Entry = &Classes.front();
Entry->Kind = ClassInfo::Token;
Entry->ClassName = "Token";
Entry->Name = "MCK_" + getEnumNameForToken(Token);
Entry->ValueName = std::string(Token);
Entry->PredicateMethod = "<invalid>";
Entry->RenderMethod = "<invalid>";
Entry->ParserMethod = "";
Entry->DiagnosticType = "";
Entry->IsOptional = false;
Entry->DefaultMethod = "<invalid>";
}
return Entry;
}
ClassInfo *
AsmMatcherInfo::getOperandClass(const CGIOperandList::OperandInfo &OI,
int SubOpIdx) {
Record *Rec = OI.Rec;
if (SubOpIdx != -1)
Rec = cast<DefInit>(OI.MIOperandInfo->getArg(SubOpIdx))->getDef();
return getOperandClass(Rec, SubOpIdx);
}
ClassInfo *
AsmMatcherInfo::getOperandClass(Record *Rec, int SubOpIdx) {
if (Rec->isSubClassOf("RegisterOperand")) {
const RecordVal *R = Rec->getValue("ParserMatchClass");
if (!R || !R->getValue())
PrintFatalError(Rec->getLoc(),
"Record `" + Rec->getName() +
"' does not have a ParserMatchClass!\n");
if (DefInit *DI= dyn_cast<DefInit>(R->getValue())) {
Record *MatchClass = DI->getDef();
if (ClassInfo *CI = AsmOperandClasses[MatchClass])
return CI;
}
Record *ClassRec = Rec->getValueAsDef("RegClass");
if (!ClassRec)
PrintFatalError(Rec->getLoc(), "RegisterOperand `" + Rec->getName() +
"' has no associated register class!\n");
if (ClassInfo *CI = RegisterClassClasses[ClassRec])
return CI;
PrintFatalError(Rec->getLoc(), "register class has no class info!");
}
if (Rec->isSubClassOf("RegisterClass")) {
if (ClassInfo *CI = RegisterClassClasses[Rec])
return CI;
PrintFatalError(Rec->getLoc(), "register class has no class info!");
}
if (!Rec->isSubClassOf("Operand"))
PrintFatalError(Rec->getLoc(), "Operand `" + Rec->getName() +
"' does not derive from class Operand!\n");
Record *MatchClass = Rec->getValueAsDef("ParserMatchClass");
if (ClassInfo *CI = AsmOperandClasses[MatchClass])
return CI;
PrintFatalError(Rec->getLoc(), "operand has no match class!");
}
struct LessRegisterSet {
bool operator() (const RegisterSet &LHS, const RegisterSet & RHS) const {
return std::lexicographical_compare(LHS.begin(), LHS.end(),
RHS.begin(), RHS.end(),
LessRecordByID());
}
};
void AsmMatcherInfo::
buildRegisterClasses(SmallPtrSetImpl<Record*> &SingletonRegisters) {
const auto &Registers = Target.getRegBank().getRegisters();
auto &RegClassList = Target.getRegBank().getRegClasses();
typedef std::set<RegisterSet, LessRegisterSet> RegisterSetSet;
RegisterSetSet RegisterSets;
for (const CodeGenRegisterClass &RC : RegClassList)
RegisterSets.insert(
RegisterSet(RC.getOrder().begin(), RC.getOrder().end()));
for (Record *Rec : SingletonRegisters) {
RegisterSets.insert(RegisterSet(&Rec, &Rec + 1));
}
std::map<Record*, RegisterSet> RegisterMap;
for (const CodeGenRegister &CGR : Registers) {
RegisterSet ContainingSet;
for (const RegisterSet &RS : RegisterSets) {
if (!RS.count(CGR.TheDef))
continue;
if (ContainingSet.empty()) {
ContainingSet = RS;
continue;
}
RegisterSet Tmp;
std::swap(Tmp, ContainingSet);
std::insert_iterator<RegisterSet> II(ContainingSet,
ContainingSet.begin());
std::set_intersection(Tmp.begin(), Tmp.end(), RS.begin(), RS.end(), II,
LessRecordByID());
}
if (!ContainingSet.empty()) {
RegisterSets.insert(ContainingSet);
RegisterMap.insert(std::make_pair(CGR.TheDef, ContainingSet));
}
}
std::map<RegisterSet, ClassInfo*, LessRegisterSet> RegisterSetClasses;
unsigned Index = 0;
for (const RegisterSet &RS : RegisterSets) {
Classes.emplace_front();
ClassInfo *CI = &Classes.front();
CI->Kind = ClassInfo::RegisterClass0 + Index;
CI->ClassName = "Reg" + utostr(Index);
CI->Name = "MCK_Reg" + utostr(Index);
CI->ValueName = "";
CI->PredicateMethod = ""; CI->RenderMethod = "addRegOperands";
CI->Registers = RS;
CI->DiagnosticType = "";
CI->IsOptional = false;
CI->DefaultMethod = ""; RegisterSetClasses.insert(std::make_pair(RS, CI));
++Index;
}
for (const RegisterSet &RS : RegisterSets) {
ClassInfo *CI = RegisterSetClasses[RS];
for (const RegisterSet &RS2 : RegisterSets)
if (RS != RS2 &&
std::includes(RS2.begin(), RS2.end(), RS.begin(), RS.end(),
LessRecordByID()))
CI->SuperClasses.push_back(RegisterSetClasses[RS2]);
}
for (const CodeGenRegisterClass &RC : RegClassList) {
Record *Def = RC.getDef();
if (!Def)
continue;
ClassInfo *CI = RegisterSetClasses[RegisterSet(RC.getOrder().begin(),
RC.getOrder().end())];
if (CI->ValueName.empty()) {
CI->ClassName = RC.getName();
CI->Name = "MCK_" + RC.getName();
CI->ValueName = RC.getName();
} else
CI->ValueName = CI->ValueName + "," + RC.getName();
Init *DiagnosticType = Def->getValueInit("DiagnosticType");
if (StringInit *SI = dyn_cast<StringInit>(DiagnosticType))
CI->DiagnosticType = std::string(SI->getValue());
Init *DiagnosticString = Def->getValueInit("DiagnosticString");
if (StringInit *SI = dyn_cast<StringInit>(DiagnosticString))
CI->DiagnosticString = std::string(SI->getValue());
if (!CI->DiagnosticString.empty() && CI->DiagnosticType.empty())
CI->DiagnosticType = RC.getName();
RegisterClassClasses.insert(std::make_pair(Def, CI));
}
for (auto &It : RegisterMap)
RegisterClasses[It.first] = RegisterSetClasses[It.second];
for (Record *Rec : SingletonRegisters) {
ClassInfo *CI = RegisterClasses[Rec];
assert(CI && "Missing singleton register class info!");
if (CI->ValueName.empty()) {
CI->ClassName = std::string(Rec->getName());
CI->Name = "MCK_" + Rec->getName().str();
CI->ValueName = std::string(Rec->getName());
} else
CI->ValueName = CI->ValueName + "," + Rec->getName().str();
}
}
void AsmMatcherInfo::buildOperandClasses() {
std::vector<Record*> AsmOperands =
Records.getAllDerivedDefinitions("AsmOperandClass");
for (Record *Rec : AsmOperands) {
Classes.emplace_front();
AsmOperandClasses[Rec] = &Classes.front();
}
unsigned Index = 0;
for (Record *Rec : AsmOperands) {
ClassInfo *CI = AsmOperandClasses[Rec];
CI->Kind = ClassInfo::UserClass0 + Index;
ListInit *Supers = Rec->getValueAsListInit("SuperClasses");
for (Init *I : Supers->getValues()) {
DefInit *DI = dyn_cast<DefInit>(I);
if (!DI) {
PrintError(Rec->getLoc(), "Invalid super class reference!");
continue;
}
ClassInfo *SC = AsmOperandClasses[DI->getDef()];
if (!SC)
PrintError(Rec->getLoc(), "Invalid super class reference!");
else
CI->SuperClasses.push_back(SC);
}
CI->ClassName = std::string(Rec->getValueAsString("Name"));
CI->Name = "MCK_" + CI->ClassName;
CI->ValueName = std::string(Rec->getName());
Init *PMName = Rec->getValueInit("PredicateMethod");
if (StringInit *SI = dyn_cast<StringInit>(PMName)) {
CI->PredicateMethod = std::string(SI->getValue());
} else {
assert(isa<UnsetInit>(PMName) && "Unexpected PredicateMethod field!");
CI->PredicateMethod = "is" + CI->ClassName;
}
Init *RMName = Rec->getValueInit("RenderMethod");
if (StringInit *SI = dyn_cast<StringInit>(RMName)) {
CI->RenderMethod = std::string(SI->getValue());
} else {
assert(isa<UnsetInit>(RMName) && "Unexpected RenderMethod field!");
CI->RenderMethod = "add" + CI->ClassName + "Operands";
}
Init *PRMName = Rec->getValueInit("ParserMethod");
if (StringInit *SI = dyn_cast<StringInit>(PRMName))
CI->ParserMethod = std::string(SI->getValue());
Init *DiagnosticType = Rec->getValueInit("DiagnosticType");
if (StringInit *SI = dyn_cast<StringInit>(DiagnosticType))
CI->DiagnosticType = std::string(SI->getValue());
Init *DiagnosticString = Rec->getValueInit("DiagnosticString");
if (StringInit *SI = dyn_cast<StringInit>(DiagnosticString))
CI->DiagnosticString = std::string(SI->getValue());
if (!CI->DiagnosticString.empty() && CI->DiagnosticType.empty())
CI->DiagnosticType = CI->ClassName;
Init *IsOptional = Rec->getValueInit("IsOptional");
if (BitInit *BI = dyn_cast<BitInit>(IsOptional))
CI->IsOptional = BI->getValue();
Init *DMName = Rec->getValueInit("DefaultMethod");
if (StringInit *SI = dyn_cast<StringInit>(DMName)) {
CI->DefaultMethod = std::string(SI->getValue());
} else {
assert(isa<UnsetInit>(DMName) && "Unexpected DefaultMethod field!");
CI->DefaultMethod = "default" + CI->ClassName + "Operands";
}
++Index;
}
}
AsmMatcherInfo::AsmMatcherInfo(Record *asmParser,
CodeGenTarget &target,
RecordKeeper &records)
: Records(records), AsmParser(asmParser), Target(target) {
}
void AsmMatcherInfo::buildOperandMatchInfo() {
typedef std::map<ClassInfo *, unsigned, deref<std::less<>>> OpClassMaskTy;
OpClassMaskTy OpClassMask;
for (const auto &MI : Matchables) {
OpClassMask.clear();
for (unsigned i = 0, e = MI->AsmOperands.size(); i != e; ++i) {
const MatchableInfo::AsmOperand &Op = MI->AsmOperands[i];
if (Op.Class->ParserMethod.empty())
continue;
unsigned &OperandMask = OpClassMask[Op.Class];
OperandMask |= (1 << i);
}
for (const auto &OCM : OpClassMask) {
unsigned OpMask = OCM.second;
ClassInfo *CI = OCM.first;
OperandMatchInfo.push_back(OperandMatchEntry::create(MI.get(), CI,
OpMask));
}
}
}
void AsmMatcherInfo::buildInfo() {
const std::vector<std::pair<Record *, SubtargetFeatureInfo>>
&SubtargetFeaturePairs = SubtargetFeatureInfo::getAll(Records);
SubtargetFeatures.insert(SubtargetFeaturePairs.begin(),
SubtargetFeaturePairs.end());
#ifndef NDEBUG
for (const auto &Pair : SubtargetFeatures)
LLVM_DEBUG(Pair.second.dump());
#endif
bool HasMnemonicFirst = AsmParser->getValueAsBit("HasMnemonicFirst");
bool ReportMultipleNearMisses =
AsmParser->getValueAsBit("ReportMultipleNearMisses");
SmallPtrSet<Record*, 16> SingletonRegisters;
unsigned VariantCount = Target.getAsmParserVariantCount();
for (unsigned VC = 0; VC != VariantCount; ++VC) {
Record *AsmVariant = Target.getAsmParserVariant(VC);
StringRef CommentDelimiter =
AsmVariant->getValueAsString("CommentDelimiter");
AsmVariantInfo Variant;
Variant.RegisterPrefix = AsmVariant->getValueAsString("RegisterPrefix");
Variant.TokenizingCharacters =
AsmVariant->getValueAsString("TokenizingCharacters");
Variant.SeparatorCharacters =
AsmVariant->getValueAsString("SeparatorCharacters");
Variant.BreakCharacters =
AsmVariant->getValueAsString("BreakCharacters");
Variant.Name = AsmVariant->getValueAsString("Name");
Variant.AsmVariantNo = AsmVariant->getValueAsInt("Variant");
for (const CodeGenInstruction *CGI : Target.getInstructionsByEnumValue()) {
if (!StringRef(CGI->TheDef->getName()).startswith(MatchPrefix))
continue;
if (CGI->TheDef->getValueAsBit("isCodeGenOnly"))
continue;
StringRef V = CGI->TheDef->getValueAsString("AsmVariantName");
if (!V.empty() && V != Variant.Name)
continue;
auto II = std::make_unique<MatchableInfo>(*CGI);
II->initialize(*this, SingletonRegisters, Variant, HasMnemonicFirst);
if (!II->validate(CommentDelimiter, false))
continue;
Matchables.push_back(std::move(II));
}
std::vector<Record*> AllInstAliases =
Records.getAllDerivedDefinitions("InstAlias");
for (Record *InstAlias : AllInstAliases) {
auto Alias = std::make_unique<CodeGenInstAlias>(InstAlias, Target);
if (!StringRef(Alias->ResultInst->TheDef->getName())
.startswith( MatchPrefix))
continue;
StringRef V = Alias->TheDef->getValueAsString("AsmVariantName");
if (!V.empty() && V != Variant.Name)
continue;
auto II = std::make_unique<MatchableInfo>(std::move(Alias));
II->initialize(*this, SingletonRegisters, Variant, HasMnemonicFirst);
II->validate(CommentDelimiter, true);
Matchables.push_back(std::move(II));
}
}
buildRegisterClasses(SingletonRegisters);
buildOperandClasses();
std::vector<std::unique_ptr<MatchableInfo>> NewMatchables;
for (auto &II : Matchables) {
for (unsigned i = 0; i != II->AsmOperands.size(); ++i) {
MatchableInfo::AsmOperand &Op = II->AsmOperands[i];
StringRef Token = Op.Token;
if (Record *RegRecord = Op.SingletonReg) {
Op.Class = RegisterClasses[RegRecord];
assert(Op.Class && Op.Class->Registers.size() == 1 &&
"Unexpected class for singleton register");
continue;
}
if (Token[0] != '$') {
Op.Class = getTokenClass(Token);
continue;
}
if (Token.size() > 1 && isdigit(Token[1])) {
Op.Class = getTokenClass(Token);
continue;
}
StringRef OperandName;
if (Token[1] == '{')
OperandName = Token.substr(2, Token.size() - 3);
else
OperandName = Token.substr(1);
if (II->DefRec.is<const CodeGenInstruction*>())
buildInstructionOperandReference(II.get(), OperandName, i);
else
buildAliasOperandReference(II.get(), OperandName, Op);
}
if (II->DefRec.is<const CodeGenInstruction*>()) {
II->buildInstructionResultOperands();
StringRef Constraint =
II->TheDef->getValueAsString("TwoOperandAliasConstraint");
if (Constraint != "") {
auto AliasII = std::make_unique<MatchableInfo>(*II);
AliasII->formTwoOperandAlias(Constraint);
NewMatchables.push_back(std::move(AliasII));
}
} else
II->buildAliasResultOperands(!ReportMultipleNearMisses);
}
if (!NewMatchables.empty())
Matchables.insert(Matchables.end(),
std::make_move_iterator(NewMatchables.begin()),
std::make_move_iterator(NewMatchables.end()));
std::vector<Record*> AllTokenAliases =
Records.getAllDerivedDefinitions("TokenAlias");
for (Record *Rec : AllTokenAliases) {
ClassInfo *FromClass = getTokenClass(Rec->getValueAsString("FromToken"));
ClassInfo *ToClass = getTokenClass(Rec->getValueAsString("ToToken"));
if (FromClass == ToClass)
PrintFatalError(Rec->getLoc(),
"error: Destination value identical to source value.");
FromClass->SuperClasses.push_back(ToClass);
}
Classes.sort();
#ifdef EXPENSIVE_CHECKS
for (auto I = Classes.begin(), E = Classes.end(); I != E; ++I) {
for (auto J = I; J != E; ++J) {
assert(!(*J < *I));
assert(I == J || !J->isSubsetOf(*I));
}
}
#endif
}
void AsmMatcherInfo::
buildInstructionOperandReference(MatchableInfo *II,
StringRef OperandName,
unsigned AsmOpIdx) {
const CodeGenInstruction &CGI = *II->DefRec.get<const CodeGenInstruction*>();
const CGIOperandList &Operands = CGI.Operands;
MatchableInfo::AsmOperand *Op = &II->AsmOperands[AsmOpIdx];
unsigned Idx;
if (!Operands.hasOperandNamed(OperandName, Idx))
PrintFatalError(II->TheDef->getLoc(),
"error: unable to find operand: '" + OperandName + "'");
if (Op->SubOpIdx == -1 && Operands[Idx].MINumOperands > 1) {
Record *Rec = Operands[Idx].Rec;
assert(Rec->isSubClassOf("Operand") && "Unexpected operand!");
Record *MatchClass = Rec->getValueAsDef("ParserMatchClass");
if (MatchClass && MatchClass->getValueAsString("Name") == "Imm") {
StringRef Token = Op->Token; for (unsigned SI = 1, SE = Operands[Idx].MINumOperands; SI != SE; ++SI) {
MatchableInfo::AsmOperand NewAsmOp(true, Token);
NewAsmOp.SubOpIdx = SI;
II->AsmOperands.insert(II->AsmOperands.begin()+AsmOpIdx+SI, NewAsmOp);
}
Op = &II->AsmOperands[AsmOpIdx]; Op->SubOpIdx = 0;
}
}
Op->Class = getOperandClass(Operands[Idx], Op->SubOpIdx);
Op->OrigSrcOpName = OperandName;
int OITied = -1;
if (Operands[Idx].MINumOperands == 1)
OITied = Operands[Idx].getTiedRegister();
if (OITied != -1) {
std::pair<unsigned, unsigned> Idx = Operands.getSubOperandNumber(OITied);
OperandName = Operands[Idx.first].Name;
Op->SubOpIdx = Idx.second;
}
Op->SrcOpName = OperandName;
}
void AsmMatcherInfo::buildAliasOperandReference(MatchableInfo *II,
StringRef OperandName,
MatchableInfo::AsmOperand &Op) {
const CodeGenInstAlias &CGA = *II->DefRec.get<const CodeGenInstAlias*>();
for (unsigned i = 0, e = CGA.ResultOperands.size(); i != e; ++i)
if (CGA.ResultOperands[i].isRecord() &&
CGA.ResultOperands[i].getName() == OperandName) {
Op.SubOpIdx = CGA.ResultInstOperandIndex[i].second;
Op.Class = getOperandClass(CGA.ResultOperands[i].getRecord(),
Op.SubOpIdx);
Op.SrcOpName = OperandName;
Op.OrigSrcOpName = OperandName;
return;
}
PrintFatalError(II->TheDef->getLoc(),
"error: unable to find operand: '" + OperandName + "'");
}
void MatchableInfo::buildInstructionResultOperands() {
const CodeGenInstruction *ResultInst = getResultInst();
for (const CGIOperandList::OperandInfo &OpInfo : ResultInst->Operands) {
int TiedOp = -1;
if (OpInfo.MINumOperands == 1)
TiedOp = OpInfo.getTiedRegister();
if (TiedOp != -1) {
int TiedSrcOperand = findAsmOperandOriginallyNamed(OpInfo.Name);
if (TiedSrcOperand != -1 &&
ResOperands[TiedOp].Kind == ResOperand::RenderAsmOperand)
ResOperands.push_back(ResOperand::getTiedOp(
TiedOp, ResOperands[TiedOp].AsmOperandNum, TiedSrcOperand));
else
ResOperands.push_back(ResOperand::getTiedOp(TiedOp, 0, 0));
continue;
}
int SrcOperand = findAsmOperandNamed(OpInfo.Name);
if (OpInfo.Name.empty() || SrcOperand == -1) {
ResOperands.push_back(ResOperand::getImmOp(0));
continue;
}
unsigned NumOperands = OpInfo.MINumOperands;
if (AsmOperands[SrcOperand].SubOpIdx == -1) {
ResOperands.push_back(ResOperand::getRenderedOp(SrcOperand, NumOperands));
continue;
}
for (unsigned AI = 0; AI < NumOperands; ++AI) {
assert(AsmOperands[SrcOperand+AI].SubOpIdx == (int)AI &&
AsmOperands[SrcOperand+AI].SrcOpName == OpInfo.Name &&
"unexpected AsmOperands for suboperands");
ResOperands.push_back(ResOperand::getRenderedOp(SrcOperand + AI, 1));
}
}
}
void MatchableInfo::buildAliasResultOperands(bool AliasConstraintsAreChecked) {
const CodeGenInstAlias &CGA = *DefRec.get<const CodeGenInstAlias*>();
const CodeGenInstruction *ResultInst = getResultInst();
SmallDenseMap<StringRef, int> OperandRefs;
unsigned AliasOpNo = 0;
unsigned LastOpNo = CGA.ResultInstOperandIndex.size();
for (unsigned i = 0, e = ResultInst->Operands.size(); i != e; ++i) {
const CGIOperandList::OperandInfo *OpInfo = &ResultInst->Operands[i];
int TiedOp = -1;
if (OpInfo->MINumOperands == 1)
TiedOp = OpInfo->getTiedRegister();
if (TiedOp != -1) {
unsigned SrcOp1 = 0;
unsigned SrcOp2 = 0;
if (ResOperands[TiedOp].Kind == ResOperand::RenderAsmOperand) {
SrcOp1 = ResOperands[TiedOp].AsmOperandNum;
StringRef Name = AsmOperands[SrcOp1].SrcOpName;
auto Insert = OperandRefs.try_emplace(Name, SrcOp1);
SrcOp2 = findAsmOperandNamed(Name, Insert.first->second);
if (AliasConstraintsAreChecked)
Insert.first->second = SrcOp2;
SrcOp2 = (SrcOp2 == (unsigned)-1) ? SrcOp1 : SrcOp2;
}
if (ResultInst->Operands[i].Rec->getName() !=
ResultInst->Operands[TiedOp].Rec->getName()) {
SrcOp1 = ResOperands[TiedOp].AsmOperandNum;
int SubIdx = CGA.ResultInstOperandIndex[AliasOpNo].second;
StringRef Name = CGA.ResultOperands[AliasOpNo].getName();
SrcOp2 = findAsmOperand(Name, SubIdx);
ResOperands.push_back(
ResOperand::getTiedOp((unsigned)-1, SrcOp1, SrcOp2));
} else {
ResOperands.push_back(ResOperand::getTiedOp(TiedOp, SrcOp1, SrcOp2));
continue;
}
}
const std::string &OpName = OpInfo->Name;
for ( ; AliasOpNo < LastOpNo &&
CGA.ResultInstOperandIndex[AliasOpNo].first == i; ++AliasOpNo) {
int SubIdx = CGA.ResultInstOperandIndex[AliasOpNo].second;
switch (CGA.ResultOperands[AliasOpNo].Kind) {
case CodeGenInstAlias::ResultOperand::K_Record: {
StringRef Name = CGA.ResultOperands[AliasOpNo].getName();
int SrcOperand = findAsmOperand(Name, SubIdx);
if (SrcOperand == -1)
PrintFatalError(TheDef->getLoc(), "Instruction '" +
TheDef->getName() + "' has operand '" + OpName +
"' that doesn't appear in asm string!");
OperandRefs.try_emplace(Name, SrcOperand);
unsigned NumOperands = (SubIdx == -1 ? OpInfo->MINumOperands : 1);
ResOperands.push_back(ResOperand::getRenderedOp(SrcOperand,
NumOperands));
break;
}
case CodeGenInstAlias::ResultOperand::K_Imm: {
int64_t ImmVal = CGA.ResultOperands[AliasOpNo].getImm();
ResOperands.push_back(ResOperand::getImmOp(ImmVal));
break;
}
case CodeGenInstAlias::ResultOperand::K_Reg: {
Record *Reg = CGA.ResultOperands[AliasOpNo].getRegister();
ResOperands.push_back(ResOperand::getRegOp(Reg));
break;
}
}
}
}
for (auto &T : OperandRefs) {
if (T.second != -1 && findAsmOperandNamed(T.first, T.second) != -1)
PrintFatalError(TheDef->getLoc(),
"Operand '" + T.first + "' can never be matched");
}
}
static unsigned
getConverterOperandID(const std::string &Name,
SmallSetVector<CachedHashString, 16> &Table,
bool &IsNew) {
IsNew = Table.insert(CachedHashString(Name));
unsigned ID = IsNew ? Table.size() - 1 : find(Table, Name) - Table.begin();
assert(ID < Table.size());
return ID;
}
static unsigned
emitConvertFuncs(CodeGenTarget &Target, StringRef ClassName,
std::vector<std::unique_ptr<MatchableInfo>> &Infos,
bool HasMnemonicFirst, bool HasOptionalOperands,
raw_ostream &OS) {
SmallSetVector<CachedHashString, 16> OperandConversionKinds;
SmallSetVector<CachedHashString, 16> InstructionConversionKinds;
std::vector<std::vector<uint8_t> > ConversionTable;
size_t MaxRowLength = 2;
std::string TargetOperandClass = Target.getName().str() + "Operand";
std::string ConvertFnBody;
raw_string_ostream CvtOS(ConvertFnBody);
if (HasOptionalOperands) {
CvtOS << "void " << Target.getName() << ClassName << "::\n"
<< "convertToMCInst(unsigned Kind, MCInst &Inst, "
<< "unsigned Opcode,\n"
<< " const OperandVector &Operands,\n"
<< " const SmallBitVector &OptionalOperandsMask) {\n";
} else {
CvtOS << "void " << Target.getName() << ClassName << "::\n"
<< "convertToMCInst(unsigned Kind, MCInst &Inst, "
<< "unsigned Opcode,\n"
<< " const OperandVector &Operands) {\n";
}
CvtOS << " assert(Kind < CVT_NUM_SIGNATURES && \"Invalid signature!\");\n";
CvtOS << " const uint8_t *Converter = ConversionTable[Kind];\n";
if (HasOptionalOperands) {
size_t MaxNumOperands = 0;
for (const auto &MI : Infos) {
MaxNumOperands = std::max(MaxNumOperands, MI->AsmOperands.size());
}
CvtOS << " unsigned DefaultsOffset[" << (MaxNumOperands + 1)
<< "] = { 0 };\n";
CvtOS << " assert(OptionalOperandsMask.size() == " << (MaxNumOperands)
<< ");\n";
CvtOS << " for (unsigned i = 0, NumDefaults = 0; i < " << (MaxNumOperands)
<< "; ++i) {\n";
CvtOS << " DefaultsOffset[i + 1] = NumDefaults;\n";
CvtOS << " NumDefaults += (OptionalOperandsMask[i] ? 1 : 0);\n";
CvtOS << " }\n";
}
CvtOS << " unsigned OpIdx;\n";
CvtOS << " Inst.setOpcode(Opcode);\n";
CvtOS << " for (const uint8_t *p = Converter; *p; p += 2) {\n";
if (HasOptionalOperands) {
CvtOS << " OpIdx = *(p + 1) - DefaultsOffset[*(p + 1)];\n";
} else {
CvtOS << " OpIdx = *(p + 1);\n";
}
CvtOS << " switch (*p) {\n";
CvtOS << " default: llvm_unreachable(\"invalid conversion entry!\");\n";
CvtOS << " case CVT_Reg:\n";
CvtOS << " static_cast<" << TargetOperandClass
<< " &>(*Operands[OpIdx]).addRegOperands(Inst, 1);\n";
CvtOS << " break;\n";
CvtOS << " case CVT_Tied: {\n";
CvtOS << " assert(OpIdx < (size_t)(std::end(TiedAsmOperandTable) -\n";
CvtOS << " std::begin(TiedAsmOperandTable)) &&\n";
CvtOS << " \"Tied operand not found\");\n";
CvtOS << " unsigned TiedResOpnd = TiedAsmOperandTable[OpIdx][0];\n";
CvtOS << " if (TiedResOpnd != (uint8_t)-1)\n";
CvtOS << " Inst.addOperand(Inst.getOperand(TiedResOpnd));\n";
CvtOS << " break;\n";
CvtOS << " }\n";
std::string OperandFnBody;
raw_string_ostream OpOS(OperandFnBody);
OpOS << "void " << Target.getName() << ClassName << "::\n"
<< "convertToMapAndConstraints(unsigned Kind,\n";
OpOS.indent(27);
OpOS << "const OperandVector &Operands) {\n"
<< " assert(Kind < CVT_NUM_SIGNATURES && \"Invalid signature!\");\n"
<< " unsigned NumMCOperands = 0;\n"
<< " const uint8_t *Converter = ConversionTable[Kind];\n"
<< " for (const uint8_t *p = Converter; *p; p += 2) {\n"
<< " switch (*p) {\n"
<< " default: llvm_unreachable(\"invalid conversion entry!\");\n"
<< " case CVT_Reg:\n"
<< " Operands[*(p + 1)]->setMCOperandNum(NumMCOperands);\n"
<< " Operands[*(p + 1)]->setConstraint(\"r\");\n"
<< " ++NumMCOperands;\n"
<< " break;\n"
<< " case CVT_Tied:\n"
<< " ++NumMCOperands;\n"
<< " break;\n";
OperandConversionKinds.insert(CachedHashString("CVT_Done"));
OperandConversionKinds.insert(CachedHashString("CVT_Reg"));
OperandConversionKinds.insert(CachedHashString("CVT_Tied"));
enum { CVT_Done, CVT_Reg, CVT_Tied };
std::map<std::tuple<uint8_t, uint8_t, uint8_t>, std::string>
TiedOperandsEnumMap;
for (auto &II : Infos) {
StringRef AsmMatchConverter =
II->getResultInst()->TheDef->getValueAsString("AsmMatchConverter");
if (!AsmMatchConverter.empty() && II->UseInstAsmMatchConverter) {
std::string Signature = ("ConvertCustom_" + AsmMatchConverter).str();
II->ConversionFnKind = Signature;
if (!InstructionConversionKinds.insert(CachedHashString(Signature)))
continue;
unsigned KindID = OperandConversionKinds.size();
OperandConversionKinds.insert(
CachedHashString("CVT_" + getEnumNameForToken(AsmMatchConverter)));
ConversionTable.emplace_back();
ConversionTable.back().push_back(KindID);
ConversionTable.back().push_back(CVT_Done);
CvtOS << " case CVT_"
<< getEnumNameForToken(AsmMatchConverter) << ":\n"
<< " " << AsmMatchConverter << "(Inst, Operands);\n"
<< " break;\n";
continue;
}
std::string Signature = "Convert";
std::vector<uint8_t> ConversionRow;
MaxRowLength = std::max(MaxRowLength, II->ResOperands.size()*2 + 1 );
for (unsigned i = 0, e = II->ResOperands.size(); i != e; ++i) {
const MatchableInfo::ResOperand &OpInfo = II->ResOperands[i];
switch (OpInfo.Kind) {
case MatchableInfo::ResOperand::RenderAsmOperand: {
const MatchableInfo::AsmOperand &Op =
II->AsmOperands[OpInfo.AsmOperandNum];
Signature += "__";
std::string Class;
Class = Op.Class->isRegisterClass() ? "Reg" : Op.Class->ClassName;
Signature += Class;
Signature += utostr(OpInfo.MINumOperands);
Signature += "_" + itostr(OpInfo.AsmOperandNum);
std::string Name = "CVT_" + (Op.Class->isRegisterClass() ? "Reg" :
Op.Class->RenderMethod);
if (Op.Class->IsOptional) {
assert(HasOptionalOperands);
Name += "_" + Op.Class->DefaultMethod;
}
Name = getEnumNameForToken(Name);
bool IsNewConverter = false;
unsigned ID = getConverterOperandID(Name, OperandConversionKinds,
IsNewConverter);
ConversionRow.push_back(ID);
ConversionRow.push_back(OpInfo.AsmOperandNum + HasMnemonicFirst);
if (!IsNewConverter)
break;
CvtOS << " case " << Name << ":\n";
if (Op.Class->IsOptional) {
assert(HasOptionalOperands);
CvtOS << " if (OptionalOperandsMask[*(p + 1) - 1]) {\n"
<< " " << Op.Class->DefaultMethod << "()"
<< "->" << Op.Class->RenderMethod << "(Inst, "
<< OpInfo.MINumOperands << ");\n"
<< " } else {\n"
<< " static_cast<" << TargetOperandClass
<< " &>(*Operands[OpIdx])." << Op.Class->RenderMethod
<< "(Inst, " << OpInfo.MINumOperands << ");\n"
<< " }\n";
} else {
CvtOS << " static_cast<" << TargetOperandClass
<< " &>(*Operands[OpIdx])." << Op.Class->RenderMethod
<< "(Inst, " << OpInfo.MINumOperands << ");\n";
}
CvtOS << " break;\n";
OpOS << " case " << Name << ":\n"
<< " Operands[*(p + 1)]->setMCOperandNum(NumMCOperands);\n";
if (Op.Class->isRegisterClass())
OpOS << " Operands[*(p + 1)]->setConstraint(\"r\");\n";
else
OpOS << " Operands[*(p + 1)]->setConstraint(\"m\");\n";
OpOS << " NumMCOperands += " << OpInfo.MINumOperands << ";\n"
<< " break;\n";
break;
}
case MatchableInfo::ResOperand::TiedOperand: {
assert(OpInfo.MINumOperands == 1 && "Not a singular MCOperand");
uint8_t TiedOp = OpInfo.TiedOperands.ResOpnd;
uint8_t SrcOp1 =
OpInfo.TiedOperands.SrcOpnd1Idx + HasMnemonicFirst;
uint8_t SrcOp2 =
OpInfo.TiedOperands.SrcOpnd2Idx + HasMnemonicFirst;
assert((i > TiedOp || TiedOp == (uint8_t)-1) &&
"Tied operand precedes its target!");
auto TiedTupleName = std::string("Tie") + utostr(TiedOp) + '_' +
utostr(SrcOp1) + '_' + utostr(SrcOp2);
Signature += "__" + TiedTupleName;
ConversionRow.push_back(CVT_Tied);
ConversionRow.push_back(TiedOp);
ConversionRow.push_back(SrcOp1);
ConversionRow.push_back(SrcOp2);
auto Key = std::make_tuple(TiedOp, SrcOp1, SrcOp2);
TiedOperandsEnumMap.emplace(Key, TiedTupleName);
break;
}
case MatchableInfo::ResOperand::ImmOperand: {
int64_t Val = OpInfo.ImmVal;
std::string Ty = "imm_" + itostr(Val);
Ty = getEnumNameForToken(Ty);
Signature += "__" + Ty;
std::string Name = "CVT_" + Ty;
bool IsNewConverter = false;
unsigned ID = getConverterOperandID(Name, OperandConversionKinds,
IsNewConverter);
ConversionRow.push_back(ID);
ConversionRow.push_back(0);
if (!IsNewConverter)
break;
CvtOS << " case " << Name << ":\n"
<< " Inst.addOperand(MCOperand::createImm(" << Val << "));\n"
<< " break;\n";
OpOS << " case " << Name << ":\n"
<< " Operands[*(p + 1)]->setMCOperandNum(NumMCOperands);\n"
<< " Operands[*(p + 1)]->setConstraint(\"\");\n"
<< " ++NumMCOperands;\n"
<< " break;\n";
break;
}
case MatchableInfo::ResOperand::RegOperand: {
std::string Reg, Name;
if (!OpInfo.Register) {
Name = "reg0";
Reg = "0";
} else {
Reg = getQualifiedName(OpInfo.Register);
Name = "reg" + OpInfo.Register->getName().str();
}
Signature += "__" + Name;
Name = "CVT_" + Name;
bool IsNewConverter = false;
unsigned ID = getConverterOperandID(Name, OperandConversionKinds,
IsNewConverter);
ConversionRow.push_back(ID);
ConversionRow.push_back(0);
if (!IsNewConverter)
break;
CvtOS << " case " << Name << ":\n"
<< " Inst.addOperand(MCOperand::createReg(" << Reg << "));\n"
<< " break;\n";
OpOS << " case " << Name << ":\n"
<< " Operands[*(p + 1)]->setMCOperandNum(NumMCOperands);\n"
<< " Operands[*(p + 1)]->setConstraint(\"m\");\n"
<< " ++NumMCOperands;\n"
<< " break;\n";
}
}
}
if (Signature == "Convert")
Signature += "_NoOperands";
II->ConversionFnKind = Signature;
if (!InstructionConversionKinds.insert(CachedHashString(Signature)))
continue;
ConversionTable.push_back(std::move(ConversionRow));
}
CvtOS << " }\n }\n}\n\n";
OpOS << " }\n }\n}\n\n";
if (TiedOperandsEnumMap.size()) {
assert(TiedOperandsEnumMap.size() <= 254 &&
"Too many tied-operand combinations to reference with "
"an 8bit offset from the conversion table, where index "
"'255' is reserved as operand not to be copied.");
OS << "enum {\n";
for (auto &KV : TiedOperandsEnumMap) {
OS << " " << KV.second << ",\n";
}
OS << "};\n\n";
OS << "static const uint8_t TiedAsmOperandTable[][3] = {\n";
for (auto &KV : TiedOperandsEnumMap) {
OS << " /* " << KV.second << " */ { "
<< utostr(std::get<0>(KV.first)) << ", "
<< utostr(std::get<1>(KV.first)) << ", "
<< utostr(std::get<2>(KV.first)) << " },\n";
}
OS << "};\n\n";
} else
OS << "static const uint8_t TiedAsmOperandTable[][3] = "
"{ /* empty */ {0, 0, 0} };\n\n";
OS << "namespace {\n";
OS << "enum OperatorConversionKind {\n";
for (const auto &Converter : OperandConversionKinds)
OS << " " << Converter << ",\n";
OS << " CVT_NUM_CONVERTERS\n";
OS << "};\n\n";
OS << "enum InstructionConversionKind {\n";
for (const auto &Signature : InstructionConversionKinds)
OS << " " << Signature << ",\n";
OS << " CVT_NUM_SIGNATURES\n";
OS << "};\n\n";
OS << "} // end anonymous namespace\n\n";
OS << "static const uint8_t ConversionTable[CVT_NUM_SIGNATURES]["
<< MaxRowLength << "] = {\n";
for (unsigned Row = 0, ERow = ConversionTable.size(); Row != ERow; ++Row) {
assert(ConversionTable[Row].size() % 2 == 0 && "bad conversion row!");
OS << " // " << InstructionConversionKinds[Row] << "\n";
OS << " { ";
for (unsigned i = 0, e = ConversionTable[Row].size(); i != e; i += 2) {
OS << OperandConversionKinds[ConversionTable[Row][i]] << ", ";
if (OperandConversionKinds[ConversionTable[Row][i]] !=
CachedHashString("CVT_Tied")) {
OS << (unsigned)(ConversionTable[Row][i + 1]) << ", ";
continue;
}
auto Key = std::make_tuple((uint8_t)ConversionTable[Row][i + 1],
(uint8_t)ConversionTable[Row][i + 2],
(uint8_t)ConversionTable[Row][i + 3]);
auto TiedOpndEnum = TiedOperandsEnumMap.find(Key);
assert(TiedOpndEnum != TiedOperandsEnumMap.end() &&
"No record for tied operand pair");
OS << TiedOpndEnum->second << ", ";
i += 2;
}
OS << "CVT_Done },\n";
}
OS << "};\n\n";
OS << CvtOS.str();
OS << OpOS.str();
return ConversionTable.size();
}
static void emitMatchClassEnumeration(CodeGenTarget &Target,
std::forward_list<ClassInfo> &Infos,
raw_ostream &OS) {
OS << "namespace {\n\n";
OS << "/// MatchClassKind - The kinds of classes which participate in\n"
<< "/// instruction matching.\n";
OS << "enum MatchClassKind {\n";
OS << " InvalidMatchClass = 0,\n";
OS << " OptionalMatchClass = 1,\n";
ClassInfo::ClassInfoKind LastKind = ClassInfo::Token;
StringRef LastName = "OptionalMatchClass";
for (const auto &CI : Infos) {
if (LastKind == ClassInfo::Token && CI.Kind != ClassInfo::Token) {
OS << " MCK_LAST_TOKEN = " << LastName << ",\n";
} else if (LastKind < ClassInfo::UserClass0 &&
CI.Kind >= ClassInfo::UserClass0) {
OS << " MCK_LAST_REGISTER = " << LastName << ",\n";
}
LastKind = (ClassInfo::ClassInfoKind)CI.Kind;
LastName = CI.Name;
OS << " " << CI.Name << ", // ";
if (CI.Kind == ClassInfo::Token) {
OS << "'" << CI.ValueName << "'\n";
} else if (CI.isRegisterClass()) {
if (!CI.ValueName.empty())
OS << "register class '" << CI.ValueName << "'\n";
else
OS << "derived register class\n";
} else {
OS << "user defined class '" << CI.ValueName << "'\n";
}
}
OS << " NumMatchClassKinds\n";
OS << "};\n\n";
OS << "} // end anonymous namespace\n\n";
}
static void emitOperandMatchErrorDiagStrings(AsmMatcherInfo &Info, raw_ostream &OS) {
if (llvm::all_of(Info.Classes, [](const ClassInfo &CI) {
return CI.DiagnosticString.empty();
}))
return;
OS << "static const char *getMatchKindDiag(" << Info.Target.getName()
<< "AsmParser::" << Info.Target.getName()
<< "MatchResultTy MatchResult) {\n";
OS << " switch (MatchResult) {\n";
for (const auto &CI: Info.Classes) {
if (!CI.DiagnosticString.empty()) {
assert(!CI.DiagnosticType.empty() &&
"DiagnosticString set without DiagnosticType");
OS << " case " << Info.Target.getName()
<< "AsmParser::Match_" << CI.DiagnosticType << ":\n";
OS << " return \"" << CI.DiagnosticString << "\";\n";
}
}
OS << " default:\n";
OS << " return nullptr;\n";
OS << " }\n";
OS << "}\n\n";
}
static void emitRegisterMatchErrorFunc(AsmMatcherInfo &Info, raw_ostream &OS) {
OS << "static unsigned getDiagKindFromRegisterClass(MatchClassKind "
"RegisterClass) {\n";
if (none_of(Info.Classes, [](const ClassInfo &CI) {
return CI.isRegisterClass() && !CI.DiagnosticType.empty();
})) {
OS << " return MCTargetAsmParser::Match_InvalidOperand;\n";
} else {
OS << " switch (RegisterClass) {\n";
for (const auto &CI: Info.Classes) {
if (CI.isRegisterClass() && !CI.DiagnosticType.empty()) {
OS << " case " << CI.Name << ":\n";
OS << " return " << Info.Target.getName() << "AsmParser::Match_"
<< CI.DiagnosticType << ";\n";
}
}
OS << " default:\n";
OS << " return MCTargetAsmParser::Match_InvalidOperand;\n";
OS << " }\n";
}
OS << "}\n\n";
}
static void emitValidateOperandClass(AsmMatcherInfo &Info,
raw_ostream &OS) {
OS << "static unsigned validateOperandClass(MCParsedAsmOperand &GOp, "
<< "MatchClassKind Kind) {\n";
OS << " " << Info.Target.getName() << "Operand &Operand = ("
<< Info.Target.getName() << "Operand &)GOp;\n";
OS << " if (Kind == InvalidMatchClass)\n";
OS << " return MCTargetAsmParser::Match_InvalidOperand;\n\n";
OS << " if (Operand.isToken() && Kind <= MCK_LAST_TOKEN)\n";
OS << " return isSubclass(matchTokenString(Operand.getToken()), Kind) ?\n"
<< " MCTargetAsmParser::Match_Success :\n"
<< " MCTargetAsmParser::Match_InvalidOperand;\n\n";
OS << " switch (Kind) {\n"
" default: break;\n";
for (const auto &CI : Info.Classes) {
if (!CI.isUserClass())
continue;
OS << " // '" << CI.ClassName << "' class\n";
OS << " case " << CI.Name << ": {\n";
OS << " DiagnosticPredicate DP(Operand." << CI.PredicateMethod
<< "());\n";
OS << " if (DP.isMatch())\n";
OS << " return MCTargetAsmParser::Match_Success;\n";
if (!CI.DiagnosticType.empty()) {
OS << " if (DP.isNearMatch())\n";
OS << " return " << Info.Target.getName() << "AsmParser::Match_"
<< CI.DiagnosticType << ";\n";
OS << " break;\n";
}
else
OS << " break;\n";
OS << " }\n";
}
OS << " } // end switch (Kind)\n\n";
OS << " if (Operand.isReg()) {\n";
OS << " MatchClassKind OpKind;\n";
OS << " switch (Operand.getReg()) {\n";
OS << " default: OpKind = InvalidMatchClass; break;\n";
for (const auto &RC : Info.RegisterClasses)
OS << " case " << RC.first->getValueAsString("Namespace") << "::"
<< RC.first->getName() << ": OpKind = " << RC.second->Name
<< "; break;\n";
OS << " }\n";
OS << " return isSubclass(OpKind, Kind) ? "
<< "(unsigned)MCTargetAsmParser::Match_Success :\n "
<< " getDiagKindFromRegisterClass(Kind);\n }\n\n";
OS << " if (Kind > MCK_LAST_TOKEN && Kind <= MCK_LAST_REGISTER)\n";
OS << " return getDiagKindFromRegisterClass(Kind);\n\n";
OS << " return MCTargetAsmParser::Match_InvalidOperand;\n";
OS << "}\n\n";
}
static void emitIsSubclass(CodeGenTarget &Target,
std::forward_list<ClassInfo> &Infos,
raw_ostream &OS) {
OS << "/// isSubclass - Compute whether \\p A is a subclass of \\p B.\n";
OS << "static bool isSubclass(MatchClassKind A, MatchClassKind B) {\n";
OS << " if (A == B)\n";
OS << " return true;\n\n";
bool EmittedSwitch = false;
for (const auto &A : Infos) {
std::vector<StringRef> SuperClasses;
if (A.IsOptional)
SuperClasses.push_back("OptionalMatchClass");
for (const auto &B : Infos) {
if (&A != &B && A.isSubsetOf(B))
SuperClasses.push_back(B.Name);
}
if (SuperClasses.empty())
continue;
if (!EmittedSwitch) {
OS << " switch (A) {\n";
OS << " default:\n";
OS << " return false;\n";
EmittedSwitch = true;
}
OS << "\n case " << A.Name << ":\n";
if (SuperClasses.size() == 1) {
OS << " return B == " << SuperClasses.back() << ";\n";
continue;
}
if (!SuperClasses.empty()) {
OS << " switch (B) {\n";
OS << " default: return false;\n";
for (StringRef SC : SuperClasses)
OS << " case " << SC << ": return true;\n";
OS << " }\n";
} else {
OS << " return false;\n";
}
}
if (EmittedSwitch)
OS << " }\n";
else
OS << " return false;\n";
OS << "}\n\n";
}
static void emitMatchTokenString(CodeGenTarget &Target,
std::forward_list<ClassInfo> &Infos,
raw_ostream &OS) {
std::vector<StringMatcher::StringPair> Matches;
for (const auto &CI : Infos) {
if (CI.Kind == ClassInfo::Token)
Matches.emplace_back(CI.ValueName, "return " + CI.Name + ";");
}
OS << "static MatchClassKind matchTokenString(StringRef Name) {\n";
StringMatcher("Name", Matches, OS).Emit();
OS << " return InvalidMatchClass;\n";
OS << "}\n\n";
}
static void emitMatchRegisterName(CodeGenTarget &Target, Record *AsmParser,
raw_ostream &OS) {
std::vector<StringMatcher::StringPair> Matches;
const auto &Regs = Target.getRegBank().getRegisters();
for (const CodeGenRegister &Reg : Regs) {
if (Reg.TheDef->getValueAsString("AsmName").empty())
continue;
Matches.emplace_back(std::string(Reg.TheDef->getValueAsString("AsmName")),
"return " + utostr(Reg.EnumValue) + ";");
}
OS << "static unsigned MatchRegisterName(StringRef Name) {\n";
bool IgnoreDuplicates =
AsmParser->getValueAsBit("AllowDuplicateRegisterNames");
StringMatcher("Name", Matches, OS).Emit(0, IgnoreDuplicates);
OS << " return 0;\n";
OS << "}\n\n";
}
static void emitMatchRegisterAltName(CodeGenTarget &Target, Record *AsmParser,
raw_ostream &OS) {
std::vector<StringMatcher::StringPair> Matches;
const auto &Regs = Target.getRegBank().getRegisters();
for (const CodeGenRegister &Reg : Regs) {
auto AltNames = Reg.TheDef->getValueAsListOfStrings("AltNames");
for (auto AltName : AltNames) {
AltName = StringRef(AltName).trim();
if (AltName.empty())
continue;
Matches.emplace_back(std::string(AltName),
"return " + utostr(Reg.EnumValue) + ";");
}
}
OS << "static unsigned MatchRegisterAltName(StringRef Name) {\n";
bool IgnoreDuplicates =
AsmParser->getValueAsBit("AllowDuplicateRegisterNames");
StringMatcher("Name", Matches, OS).Emit(0, IgnoreDuplicates);
OS << " return 0;\n";
OS << "}\n\n";
}
static void emitOperandDiagnosticTypes(AsmMatcherInfo &Info, raw_ostream &OS) {
std::set<StringRef> Types;
for (const auto &OpClassEntry : Info.AsmOperandClasses) {
if (!OpClassEntry.second->DiagnosticType.empty())
Types.insert(OpClassEntry.second->DiagnosticType);
}
for (const auto &OpClassEntry : Info.RegisterClassClasses) {
if (!OpClassEntry.second->DiagnosticType.empty())
Types.insert(OpClassEntry.second->DiagnosticType);
}
if (Types.empty()) return;
for (StringRef Type : Types)
OS << " Match_" << Type << ",\n";
OS << " END_OPERAND_DIAGNOSTIC_TYPES\n";
}
static void emitGetSubtargetFeatureName(AsmMatcherInfo &Info, raw_ostream &OS) {
OS << "// User-level names for subtarget features that participate in\n"
<< "// instruction matching.\n"
<< "static const char *getSubtargetFeatureName(uint64_t Val) {\n";
if (!Info.SubtargetFeatures.empty()) {
OS << " switch(Val) {\n";
for (const auto &SF : Info.SubtargetFeatures) {
const SubtargetFeatureInfo &SFI = SF.second;
OS << " case " << SFI.getEnumBitName() << ": return \""
<< SFI.TheDef->getValueAsString("PredicateName") << "\";\n";
}
OS << " default: return \"(unknown)\";\n";
OS << " }\n";
} else {
OS << " return \"(unknown)\";\n";
}
OS << "}\n\n";
}
static std::string GetAliasRequiredFeatures(Record *R,
const AsmMatcherInfo &Info) {
std::vector<Record*> ReqFeatures = R->getValueAsListOfDefs("Predicates");
std::string Result;
if (ReqFeatures.empty())
return Result;
for (unsigned i = 0, e = ReqFeatures.size(); i != e; ++i) {
const SubtargetFeatureInfo *F = Info.getSubtargetFeature(ReqFeatures[i]);
if (!F)
PrintFatalError(R->getLoc(), "Predicate '" + ReqFeatures[i]->getName() +
"' is not marked as an AssemblerPredicate!");
if (i)
Result += " && ";
Result += "Features.test(" + F->getEnumBitName() + ')';
}
return Result;
}
static void emitMnemonicAliasVariant(raw_ostream &OS,const AsmMatcherInfo &Info,
std::vector<Record*> &Aliases,
unsigned Indent = 0,
StringRef AsmParserVariantName = StringRef()){
std::map<std::string, std::vector<Record*> > AliasesFromMnemonic;
for (Record *R : Aliases) {
StringRef AsmVariantName = R->getValueAsString("AsmVariantName");
if (AsmVariantName != AsmParserVariantName)
continue;
AliasesFromMnemonic[R->getValueAsString("FromMnemonic").lower()]
.push_back(R);
}
if (AliasesFromMnemonic.empty())
return;
std::vector<StringMatcher::StringPair> Cases;
for (const auto &AliasEntry : AliasesFromMnemonic) {
const std::vector<Record*> &ToVec = AliasEntry.second;
std::string MatchCode;
int AliasWithNoPredicate = -1;
for (unsigned i = 0, e = ToVec.size(); i != e; ++i) {
Record *R = ToVec[i];
std::string FeatureMask = GetAliasRequiredFeatures(R, Info);
if (FeatureMask.empty()) {
if (AliasWithNoPredicate != -1 &&
R->getValueAsString("ToMnemonic") !=
ToVec[AliasWithNoPredicate]->getValueAsString("ToMnemonic")) {
PrintError(
ToVec[AliasWithNoPredicate]->getLoc(),
"two different MnemonicAliases with the same 'from' mnemonic!");
PrintFatalError(R->getLoc(), "this is the other MnemonicAlias.");
}
AliasWithNoPredicate = i;
continue;
}
if (R->getValueAsString("ToMnemonic") == AliasEntry.first)
PrintFatalError(R->getLoc(), "MnemonicAlias to the same string");
if (!MatchCode.empty())
MatchCode += "else ";
MatchCode += "if (" + FeatureMask + ")\n";
MatchCode += " Mnemonic = \"";
MatchCode += R->getValueAsString("ToMnemonic").lower();
MatchCode += "\";\n";
}
if (AliasWithNoPredicate != -1) {
Record *R = ToVec[AliasWithNoPredicate];
if (!MatchCode.empty())
MatchCode += "else\n ";
MatchCode += "Mnemonic = \"";
MatchCode += R->getValueAsString("ToMnemonic").lower();
MatchCode += "\";\n";
}
MatchCode += "return;";
Cases.push_back(std::make_pair(AliasEntry.first, MatchCode));
}
StringMatcher("Mnemonic", Cases, OS).Emit(Indent);
}
static bool emitMnemonicAliases(raw_ostream &OS, const AsmMatcherInfo &Info,
CodeGenTarget &Target) {
if (!MatchPrefix.empty())
return false;
std::vector<Record*> Aliases =
Info.getRecords().getAllDerivedDefinitions("MnemonicAlias");
if (Aliases.empty()) return false;
OS << "static void applyMnemonicAliases(StringRef &Mnemonic, "
"const FeatureBitset &Features, unsigned VariantID) {\n";
OS << " switch (VariantID) {\n";
unsigned VariantCount = Target.getAsmParserVariantCount();
for (unsigned VC = 0; VC != VariantCount; ++VC) {
Record *AsmVariant = Target.getAsmParserVariant(VC);
int AsmParserVariantNo = AsmVariant->getValueAsInt("Variant");
StringRef AsmParserVariantName = AsmVariant->getValueAsString("Name");
OS << " case " << AsmParserVariantNo << ":\n";
emitMnemonicAliasVariant(OS, Info, Aliases, 2,
AsmParserVariantName);
OS << " break;\n";
}
OS << " }\n";
emitMnemonicAliasVariant(OS, Info, Aliases);
OS << "}\n\n";
return true;
}
static void emitCustomOperandParsing(raw_ostream &OS, CodeGenTarget &Target,
const AsmMatcherInfo &Info, StringRef ClassName,
StringToOffsetTable &StringTable,
unsigned MaxMnemonicIndex,
unsigned MaxFeaturesIndex,
bool HasMnemonicFirst) {
unsigned MaxMask = 0;
for (const OperandMatchEntry &OMI : Info.OperandMatchInfo) {
MaxMask |= OMI.OperandMask;
}
OS << "namespace {\n";
OS << " struct OperandMatchEntry {\n";
OS << " " << getMinimalTypeForRange(MaxMnemonicIndex)
<< " Mnemonic;\n";
OS << " " << getMinimalTypeForRange(MaxMask)
<< " OperandMask;\n";
OS << " " << getMinimalTypeForRange(std::distance(
Info.Classes.begin(), Info.Classes.end())) << " Class;\n";
OS << " " << getMinimalTypeForRange(MaxFeaturesIndex)
<< " RequiredFeaturesIdx;\n\n";
OS << " StringRef getMnemonic() const {\n";
OS << " return StringRef(MnemonicTable + Mnemonic + 1,\n";
OS << " MnemonicTable[Mnemonic]);\n";
OS << " }\n";
OS << " };\n\n";
OS << " // Predicate for searching for an opcode.\n";
OS << " struct LessOpcodeOperand {\n";
OS << " bool operator()(const OperandMatchEntry &LHS, StringRef RHS) {\n";
OS << " return LHS.getMnemonic() < RHS;\n";
OS << " }\n";
OS << " bool operator()(StringRef LHS, const OperandMatchEntry &RHS) {\n";
OS << " return LHS < RHS.getMnemonic();\n";
OS << " }\n";
OS << " bool operator()(const OperandMatchEntry &LHS,";
OS << " const OperandMatchEntry &RHS) {\n";
OS << " return LHS.getMnemonic() < RHS.getMnemonic();\n";
OS << " }\n";
OS << " };\n";
OS << "} // end anonymous namespace\n\n";
OS << "static const OperandMatchEntry OperandMatchTable["
<< Info.OperandMatchInfo.size() << "] = {\n";
OS << " /* Operand List Mnemonic, Mask, Operand Class, Features */\n";
for (const OperandMatchEntry &OMI : Info.OperandMatchInfo) {
const MatchableInfo &II = *OMI.MI;
OS << " { ";
std::string LenMnemonic = char(II.Mnemonic.size()) + II.Mnemonic.lower();
OS << StringTable.GetOrAddStringOffset(LenMnemonic, false)
<< " /* " << II.Mnemonic << " */, ";
OS << OMI.OperandMask;
OS << " /* ";
ListSeparator LS;
for (int i = 0, e = 31; i !=e; ++i)
if (OMI.OperandMask & (1 << i))
OS << LS << i;
OS << " */, ";
OS << OMI.CI->Name;
OS << ", AMFBS";
if (II.RequiredFeatures.empty())
OS << "_None";
else
for (unsigned i = 0, e = II.RequiredFeatures.size(); i != e; ++i)
OS << '_' << II.RequiredFeatures[i]->TheDef->getName();
OS << " },\n";
}
OS << "};\n\n";
OS << "OperandMatchResultTy " << Target.getName() << ClassName << "::\n"
<< "tryCustomParseOperand(OperandVector"
<< " &Operands,\n unsigned MCK) {\n\n"
<< " switch(MCK) {\n";
for (const auto &CI : Info.Classes) {
if (CI.ParserMethod.empty())
continue;
OS << " case " << CI.Name << ":\n"
<< " return " << CI.ParserMethod << "(Operands);\n";
}
OS << " default:\n";
OS << " return MatchOperand_NoMatch;\n";
OS << " }\n";
OS << " return MatchOperand_NoMatch;\n";
OS << "}\n\n";
OS << "OperandMatchResultTy " << Target.getName() << ClassName << "::\n"
<< "MatchOperandParserImpl(OperandVector"
<< " &Operands,\n StringRef Mnemonic,\n"
<< " bool ParseForAllFeatures) {\n";
OS << " // Get the current feature set.\n";
OS << " const FeatureBitset &AvailableFeatures = getAvailableFeatures();\n\n";
OS << " // Get the next operand index.\n";
OS << " unsigned NextOpNum = Operands.size()"
<< (HasMnemonicFirst ? " - 1" : "") << ";\n";
OS << " // Search the table.\n";
if (HasMnemonicFirst) {
OS << " auto MnemonicRange =\n";
OS << " std::equal_range(std::begin(OperandMatchTable), "
"std::end(OperandMatchTable),\n";
OS << " Mnemonic, LessOpcodeOperand());\n\n";
} else {
OS << " auto MnemonicRange = std::make_pair(std::begin(OperandMatchTable),"
" std::end(OperandMatchTable));\n";
OS << " if (!Mnemonic.empty())\n";
OS << " MnemonicRange =\n";
OS << " std::equal_range(std::begin(OperandMatchTable), "
"std::end(OperandMatchTable),\n";
OS << " Mnemonic, LessOpcodeOperand());\n\n";
}
OS << " if (MnemonicRange.first == MnemonicRange.second)\n";
OS << " return MatchOperand_NoMatch;\n\n";
OS << " for (const OperandMatchEntry *it = MnemonicRange.first,\n"
<< " *ie = MnemonicRange.second; it != ie; ++it) {\n";
OS << " // equal_range guarantees that instruction mnemonic matches.\n";
OS << " assert(Mnemonic == it->getMnemonic());\n\n";
OS << " // check if the available features match\n";
OS << " const FeatureBitset &RequiredFeatures = "
"FeatureBitsets[it->RequiredFeaturesIdx];\n";
OS << " if (!ParseForAllFeatures && (AvailableFeatures & "
"RequiredFeatures) != RequiredFeatures)\n";
OS << " continue;\n\n";
OS << " // check if the operand in question has a custom parser.\n";
OS << " if (!(it->OperandMask & (1 << NextOpNum)))\n";
OS << " continue;\n\n";
OS << " // call custom parse method to handle the operand\n";
OS << " OperandMatchResultTy Result = ";
OS << "tryCustomParseOperand(Operands, it->Class);\n";
OS << " if (Result != MatchOperand_NoMatch)\n";
OS << " return Result;\n";
OS << " }\n\n";
OS << " // Okay, we had no match.\n";
OS << " return MatchOperand_NoMatch;\n";
OS << "}\n\n";
}
static void emitAsmTiedOperandConstraints(CodeGenTarget &Target,
AsmMatcherInfo &Info,
raw_ostream &OS) {
std::string AsmParserName =
std::string(Info.AsmParser->getValueAsString("AsmParserClassName"));
OS << "static bool ";
OS << "checkAsmTiedOperandConstraints(const " << Target.getName()
<< AsmParserName << "&AsmParser,\n";
OS << " unsigned Kind,\n";
OS << " const OperandVector &Operands,\n";
OS << " uint64_t &ErrorInfo) {\n";
OS << " assert(Kind < CVT_NUM_SIGNATURES && \"Invalid signature!\");\n";
OS << " const uint8_t *Converter = ConversionTable[Kind];\n";
OS << " for (const uint8_t *p = Converter; *p; p += 2) {\n";
OS << " switch (*p) {\n";
OS << " case CVT_Tied: {\n";
OS << " unsigned OpIdx = *(p + 1);\n";
OS << " assert(OpIdx < (size_t)(std::end(TiedAsmOperandTable) -\n";
OS << " std::begin(TiedAsmOperandTable)) &&\n";
OS << " \"Tied operand not found\");\n";
OS << " unsigned OpndNum1 = TiedAsmOperandTable[OpIdx][1];\n";
OS << " unsigned OpndNum2 = TiedAsmOperandTable[OpIdx][2];\n";
OS << " if (OpndNum1 != OpndNum2) {\n";
OS << " auto &SrcOp1 = Operands[OpndNum1];\n";
OS << " auto &SrcOp2 = Operands[OpndNum2];\n";
OS << " if (SrcOp1->isReg() && SrcOp2->isReg()) {\n";
OS << " if (!AsmParser.regsEqual(*SrcOp1, *SrcOp2)) {\n";
OS << " ErrorInfo = OpndNum2;\n";
OS << " return false;\n";
OS << " }\n";
OS << " }\n";
OS << " }\n";
OS << " break;\n";
OS << " }\n";
OS << " default:\n";
OS << " break;\n";
OS << " }\n";
OS << " }\n";
OS << " return true;\n";
OS << "}\n\n";
}
static void emitMnemonicSpellChecker(raw_ostream &OS, CodeGenTarget &Target,
unsigned VariantCount) {
OS << "static std::string " << Target.getName()
<< "MnemonicSpellCheck(StringRef S, const FeatureBitset &FBS,"
<< " unsigned VariantID) {\n";
if (!VariantCount)
OS << " return \"\";";
else {
OS << " const unsigned MaxEditDist = 2;\n";
OS << " std::vector<StringRef> Candidates;\n";
OS << " StringRef Prev = \"\";\n\n";
OS << " // Find the appropriate table for this asm variant.\n";
OS << " const MatchEntry *Start, *End;\n";
OS << " switch (VariantID) {\n";
OS << " default: llvm_unreachable(\"invalid variant!\");\n";
for (unsigned VC = 0; VC != VariantCount; ++VC) {
Record *AsmVariant = Target.getAsmParserVariant(VC);
int AsmVariantNo = AsmVariant->getValueAsInt("Variant");
OS << " case " << AsmVariantNo << ": Start = std::begin(MatchTable" << VC
<< "); End = std::end(MatchTable" << VC << "); break;\n";
}
OS << " }\n\n";
OS << " for (auto I = Start; I < End; I++) {\n";
OS << " // Ignore unsupported instructions.\n";
OS << " const FeatureBitset &RequiredFeatures = "
"FeatureBitsets[I->RequiredFeaturesIdx];\n";
OS << " if ((FBS & RequiredFeatures) != RequiredFeatures)\n";
OS << " continue;\n";
OS << "\n";
OS << " StringRef T = I->getMnemonic();\n";
OS << " // Avoid recomputing the edit distance for the same string.\n";
OS << " if (T.equals(Prev))\n";
OS << " continue;\n";
OS << "\n";
OS << " Prev = T;\n";
OS << " unsigned Dist = S.edit_distance(T, false, MaxEditDist);\n";
OS << " if (Dist <= MaxEditDist)\n";
OS << " Candidates.push_back(T);\n";
OS << " }\n";
OS << "\n";
OS << " if (Candidates.empty())\n";
OS << " return \"\";\n";
OS << "\n";
OS << " std::string Res = \", did you mean: \";\n";
OS << " unsigned i = 0;\n";
OS << " for (; i < Candidates.size() - 1; i++)\n";
OS << " Res += Candidates[i].str() + \", \";\n";
OS << " return Res + Candidates[i].str() + \"?\";\n";
}
OS << "}\n";
OS << "\n";
}
static void emitMnemonicChecker(raw_ostream &OS,
CodeGenTarget &Target,
unsigned VariantCount,
bool HasMnemonicFirst,
bool HasMnemonicAliases) {
OS << "static bool " << Target.getName()
<< "CheckMnemonic(StringRef Mnemonic,\n";
OS << " "
<< "const FeatureBitset &AvailableFeatures,\n";
OS << " "
<< "unsigned VariantID) {\n";
if (!VariantCount) {
OS << " return false;\n";
} else {
if (HasMnemonicAliases) {
OS << " // Process all MnemonicAliases to remap the mnemonic.\n";
OS << " applyMnemonicAliases(Mnemonic, AvailableFeatures, VariantID);";
OS << "\n\n";
}
OS << " // Find the appropriate table for this asm variant.\n";
OS << " const MatchEntry *Start, *End;\n";
OS << " switch (VariantID) {\n";
OS << " default: llvm_unreachable(\"invalid variant!\");\n";
for (unsigned VC = 0; VC != VariantCount; ++VC) {
Record *AsmVariant = Target.getAsmParserVariant(VC);
int AsmVariantNo = AsmVariant->getValueAsInt("Variant");
OS << " case " << AsmVariantNo << ": Start = std::begin(MatchTable" << VC
<< "); End = std::end(MatchTable" << VC << "); break;\n";
}
OS << " }\n\n";
OS << " // Search the table.\n";
if (HasMnemonicFirst) {
OS << " auto MnemonicRange = "
"std::equal_range(Start, End, Mnemonic, LessOpcode());\n\n";
} else {
OS << " auto MnemonicRange = std::make_pair(Start, End);\n";
OS << " unsigned SIndex = Mnemonic.empty() ? 0 : 1;\n";
OS << " if (!Mnemonic.empty())\n";
OS << " MnemonicRange = "
<< "std::equal_range(Start, End, Mnemonic.lower(), LessOpcode());\n\n";
}
OS << " if (MnemonicRange.first == MnemonicRange.second)\n";
OS << " return false;\n\n";
OS << " for (const MatchEntry *it = MnemonicRange.first, "
<< "*ie = MnemonicRange.second;\n";
OS << " it != ie; ++it) {\n";
OS << " const FeatureBitset &RequiredFeatures =\n";
OS << " FeatureBitsets[it->RequiredFeaturesIdx];\n";
OS << " if ((AvailableFeatures & RequiredFeatures) == ";
OS << "RequiredFeatures)\n";
OS << " return true;\n";
OS << " }\n";
OS << " return false;\n";
}
OS << "}\n";
OS << "\n";
}
static void emitMatchClassKindNames(std::forward_list<ClassInfo> &Infos,
raw_ostream &OS) {
OS << "#ifndef NDEBUG\n";
OS << "const char *getMatchClassName(MatchClassKind Kind) {\n";
OS << " switch (Kind) {\n";
OS << " case InvalidMatchClass: return \"InvalidMatchClass\";\n";
OS << " case OptionalMatchClass: return \"OptionalMatchClass\";\n";
for (const auto &CI : Infos) {
OS << " case " << CI.Name << ": return \"" << CI.Name << "\";\n";
}
OS << " case NumMatchClassKinds: return \"NumMatchClassKinds\";\n";
OS << " }\n";
OS << " llvm_unreachable(\"unhandled MatchClassKind!\");\n";
OS << "}\n\n";
OS << "#endif // NDEBUG\n";
}
static std::string
getNameForFeatureBitset(const std::vector<Record *> &FeatureBitset) {
std::string Name = "AMFBS";
for (const auto &Feature : FeatureBitset)
Name += ("_" + Feature->getName()).str();
return Name;
}
void AsmMatcherEmitter::run(raw_ostream &OS) {
CodeGenTarget Target(Records);
Record *AsmParser = Target.getAsmParser();
StringRef ClassName = AsmParser->getValueAsString("AsmParserClassName");
AsmMatcherInfo Info(AsmParser, Target, Records);
Info.buildInfo();
llvm::stable_sort(
Info.Matchables,
[](const std::unique_ptr<MatchableInfo> &a,
const std::unique_ptr<MatchableInfo> &b) { return *a < *b; });
#ifdef EXPENSIVE_CHECKS
for (auto I = Info.Matchables.begin(), E = Info.Matchables.end(); I != E;
++I) {
for (auto J = I; J != E; ++J) {
assert(!(**J < **I));
}
}
#endif
DEBUG_WITH_TYPE("instruction_info", {
for (const auto &MI : Info.Matchables)
MI->dump();
});
DEBUG_WITH_TYPE("ambiguous_instrs", {
unsigned NumAmbiguous = 0;
for (auto I = Info.Matchables.begin(), E = Info.Matchables.end(); I != E;
++I) {
for (auto J = std::next(I); J != E; ++J) {
const MatchableInfo &A = **I;
const MatchableInfo &B = **J;
if (A.couldMatchAmbiguouslyWith(B)) {
errs() << "warning: ambiguous matchables:\n";
A.dump();
errs() << "\nis incomparable with:\n";
B.dump();
errs() << "\n\n";
++NumAmbiguous;
}
}
}
if (NumAmbiguous)
errs() << "warning: " << NumAmbiguous
<< " ambiguous matchables!\n";
});
Info.buildOperandMatchInfo();
bool HasMnemonicFirst = AsmParser->getValueAsBit("HasMnemonicFirst");
bool HasOptionalOperands = Info.hasOptionalOperands();
bool ReportMultipleNearMisses =
AsmParser->getValueAsBit("ReportMultipleNearMisses");
OS << "\n#ifdef GET_ASSEMBLER_HEADER\n";
OS << "#undef GET_ASSEMBLER_HEADER\n";
OS << " // This should be included into the middle of the declaration of\n";
OS << " // your subclasses implementation of MCTargetAsmParser.\n";
OS << " FeatureBitset ComputeAvailableFeatures(const FeatureBitset &FB) const;\n";
if (HasOptionalOperands) {
OS << " void convertToMCInst(unsigned Kind, MCInst &Inst, "
<< "unsigned Opcode,\n"
<< " const OperandVector &Operands,\n"
<< " const SmallBitVector &OptionalOperandsMask);\n";
} else {
OS << " void convertToMCInst(unsigned Kind, MCInst &Inst, "
<< "unsigned Opcode,\n"
<< " const OperandVector &Operands);\n";
}
OS << " void convertToMapAndConstraints(unsigned Kind,\n ";
OS << " const OperandVector &Operands) override;\n";
OS << " unsigned MatchInstructionImpl(const OperandVector &Operands,\n"
<< " MCInst &Inst,\n";
if (ReportMultipleNearMisses)
OS << " SmallVectorImpl<NearMissInfo> *NearMisses,\n";
else
OS << " uint64_t &ErrorInfo,\n"
<< " FeatureBitset &MissingFeatures,\n";
OS << " bool matchingInlineAsm,\n"
<< " unsigned VariantID = 0);\n";
if (!ReportMultipleNearMisses)
OS << " unsigned MatchInstructionImpl(const OperandVector &Operands,\n"
<< " MCInst &Inst,\n"
<< " uint64_t &ErrorInfo,\n"
<< " bool matchingInlineAsm,\n"
<< " unsigned VariantID = 0) {\n"
<< " FeatureBitset MissingFeatures;\n"
<< " return MatchInstructionImpl(Operands, Inst, ErrorInfo, MissingFeatures,\n"
<< " matchingInlineAsm, VariantID);\n"
<< " }\n\n";
if (!Info.OperandMatchInfo.empty()) {
OS << " OperandMatchResultTy MatchOperandParserImpl(\n";
OS << " OperandVector &Operands,\n";
OS << " StringRef Mnemonic,\n";
OS << " bool ParseForAllFeatures = false);\n";
OS << " OperandMatchResultTy tryCustomParseOperand(\n";
OS << " OperandVector &Operands,\n";
OS << " unsigned MCK);\n\n";
}
OS << "#endif // GET_ASSEMBLER_HEADER_INFO\n\n";
OS << "\n#ifdef GET_OPERAND_DIAGNOSTIC_TYPES\n";
OS << "#undef GET_OPERAND_DIAGNOSTIC_TYPES\n\n";
emitOperandDiagnosticTypes(Info, OS);
OS << "#endif // GET_OPERAND_DIAGNOSTIC_TYPES\n\n";
OS << "\n#ifdef GET_REGISTER_MATCHER\n";
OS << "#undef GET_REGISTER_MATCHER\n\n";
SubtargetFeatureInfo::emitSubtargetFeatureBitEnumeration(
Info.SubtargetFeatures, OS);
if (AsmParser->getValueAsBit("ShouldEmitMatchRegisterName"))
emitMatchRegisterName(Target, AsmParser, OS);
if (AsmParser->getValueAsBit("ShouldEmitMatchRegisterAltName"))
emitMatchRegisterAltName(Target, AsmParser, OS);
OS << "#endif // GET_REGISTER_MATCHER\n\n";
OS << "\n#ifdef GET_SUBTARGET_FEATURE_NAME\n";
OS << "#undef GET_SUBTARGET_FEATURE_NAME\n\n";
emitGetSubtargetFeatureName(Info, OS);
OS << "#endif // GET_SUBTARGET_FEATURE_NAME\n\n";
OS << "\n#ifdef GET_MATCHER_IMPLEMENTATION\n";
OS << "#undef GET_MATCHER_IMPLEMENTATION\n\n";
bool HasMnemonicAliases = emitMnemonicAliases(OS, Info, Target);
unsigned NumConverters = emitConvertFuncs(Target, ClassName, Info.Matchables,
HasMnemonicFirst,
HasOptionalOperands, OS);
emitMatchClassEnumeration(Target, Info.Classes, OS);
emitOperandMatchErrorDiagStrings(Info, OS);
emitRegisterMatchErrorFunc(Info, OS);
emitMatchTokenString(Target, Info.Classes, OS);
emitIsSubclass(Target, Info.Classes, OS);
emitValidateOperandClass(Info, OS);
emitMatchClassKindNames(Info.Classes, OS);
SubtargetFeatureInfo::emitComputeAssemblerAvailableFeatures(
Info.Target.getName(), ClassName, "ComputeAvailableFeatures",
Info.SubtargetFeatures, OS);
if (!ReportMultipleNearMisses)
emitAsmTiedOperandConstraints(Target, Info, OS);
StringToOffsetTable StringTable;
size_t MaxNumOperands = 0;
unsigned MaxMnemonicIndex = 0;
bool HasDeprecation = false;
for (const auto &MI : Info.Matchables) {
MaxNumOperands = std::max(MaxNumOperands, MI->AsmOperands.size());
HasDeprecation |= MI->HasDeprecation;
std::string LenMnemonic = char(MI->Mnemonic.size()) + MI->Mnemonic.lower();
MaxMnemonicIndex = std::max(MaxMnemonicIndex,
StringTable.GetOrAddStringOffset(LenMnemonic, false));
}
OS << "static const char MnemonicTable[] =\n";
StringTable.EmitString(OS);
OS << ";\n\n";
std::vector<std::vector<Record *>> FeatureBitsets;
for (const auto &MI : Info.Matchables) {
if (MI->RequiredFeatures.empty())
continue;
FeatureBitsets.emplace_back();
for (unsigned I = 0, E = MI->RequiredFeatures.size(); I != E; ++I)
FeatureBitsets.back().push_back(MI->RequiredFeatures[I]->TheDef);
}
llvm::sort(FeatureBitsets, [&](const std::vector<Record *> &A,
const std::vector<Record *> &B) {
if (A.size() < B.size())
return true;
if (A.size() > B.size())
return false;
for (auto Pair : zip(A, B)) {
if (std::get<0>(Pair)->getName() < std::get<1>(Pair)->getName())
return true;
if (std::get<0>(Pair)->getName() > std::get<1>(Pair)->getName())
return false;
}
return false;
});
FeatureBitsets.erase(
std::unique(FeatureBitsets.begin(), FeatureBitsets.end()),
FeatureBitsets.end());
OS << "// Feature bitsets.\n"
<< "enum : " << getMinimalTypeForRange(FeatureBitsets.size()) << " {\n"
<< " AMFBS_None,\n";
for (const auto &FeatureBitset : FeatureBitsets) {
if (FeatureBitset.empty())
continue;
OS << " " << getNameForFeatureBitset(FeatureBitset) << ",\n";
}
OS << "};\n\n"
<< "static constexpr FeatureBitset FeatureBitsets[] = {\n"
<< " {}, // AMFBS_None\n";
for (const auto &FeatureBitset : FeatureBitsets) {
if (FeatureBitset.empty())
continue;
OS << " {";
for (const auto &Feature : FeatureBitset) {
const auto &I = Info.SubtargetFeatures.find(Feature);
assert(I != Info.SubtargetFeatures.end() && "Didn't import predicate?");
OS << I->second.getEnumBitName() << ", ";
}
OS << "},\n";
}
OS << "};\n\n";
OS << "namespace {\n";
OS << " struct MatchEntry {\n";
OS << " " << getMinimalTypeForRange(MaxMnemonicIndex)
<< " Mnemonic;\n";
OS << " uint16_t Opcode;\n";
OS << " " << getMinimalTypeForRange(NumConverters)
<< " ConvertFn;\n";
OS << " " << getMinimalTypeForRange(FeatureBitsets.size())
<< " RequiredFeaturesIdx;\n";
OS << " " << getMinimalTypeForRange(
std::distance(Info.Classes.begin(), Info.Classes.end()))
<< " Classes[" << MaxNumOperands << "];\n";
OS << " StringRef getMnemonic() const {\n";
OS << " return StringRef(MnemonicTable + Mnemonic + 1,\n";
OS << " MnemonicTable[Mnemonic]);\n";
OS << " }\n";
OS << " };\n\n";
OS << " // Predicate for searching for an opcode.\n";
OS << " struct LessOpcode {\n";
OS << " bool operator()(const MatchEntry &LHS, StringRef RHS) {\n";
OS << " return LHS.getMnemonic() < RHS;\n";
OS << " }\n";
OS << " bool operator()(StringRef LHS, const MatchEntry &RHS) {\n";
OS << " return LHS < RHS.getMnemonic();\n";
OS << " }\n";
OS << " bool operator()(const MatchEntry &LHS, const MatchEntry &RHS) {\n";
OS << " return LHS.getMnemonic() < RHS.getMnemonic();\n";
OS << " }\n";
OS << " };\n";
OS << "} // end anonymous namespace\n\n";
unsigned VariantCount = Target.getAsmParserVariantCount();
for (unsigned VC = 0; VC != VariantCount; ++VC) {
Record *AsmVariant = Target.getAsmParserVariant(VC);
int AsmVariantNo = AsmVariant->getValueAsInt("Variant");
OS << "static const MatchEntry MatchTable" << VC << "[] = {\n";
for (const auto &MI : Info.Matchables) {
if (MI->AsmVariantID != AsmVariantNo)
continue;
std::string LenMnemonic =
char(MI->Mnemonic.size()) + MI->Mnemonic.lower();
OS << " { " << StringTable.GetOrAddStringOffset(LenMnemonic, false)
<< " /* " << MI->Mnemonic << " */, "
<< Target.getInstNamespace() << "::"
<< MI->getResultInst()->TheDef->getName() << ", "
<< MI->ConversionFnKind << ", ";
OS << "AMFBS";
if (MI->RequiredFeatures.empty())
OS << "_None";
else
for (unsigned i = 0, e = MI->RequiredFeatures.size(); i != e; ++i)
OS << '_' << MI->RequiredFeatures[i]->TheDef->getName();
OS << ", { ";
ListSeparator LS;
for (const MatchableInfo::AsmOperand &Op : MI->AsmOperands)
OS << LS << Op.Class->Name;
OS << " }, },\n";
}
OS << "};\n\n";
}
OS << "#include \"llvm/Support/Debug.h\"\n";
OS << "#include \"llvm/Support/Format.h\"\n\n";
OS << "unsigned " << Target.getName() << ClassName << "::\n"
<< "MatchInstructionImpl(const OperandVector &Operands,\n";
OS << " MCInst &Inst,\n";
if (ReportMultipleNearMisses)
OS << " SmallVectorImpl<NearMissInfo> *NearMisses,\n";
else
OS << " uint64_t &ErrorInfo,\n"
<< " FeatureBitset &MissingFeatures,\n";
OS << " bool matchingInlineAsm, unsigned VariantID) {\n";
if (!ReportMultipleNearMisses) {
OS << " // Eliminate obvious mismatches.\n";
OS << " if (Operands.size() > "
<< (MaxNumOperands + HasMnemonicFirst) << ") {\n";
OS << " ErrorInfo = "
<< (MaxNumOperands + HasMnemonicFirst) << ";\n";
OS << " return Match_InvalidOperand;\n";
OS << " }\n\n";
}
OS << " // Get the current feature set.\n";
OS << " const FeatureBitset &AvailableFeatures = getAvailableFeatures();\n\n";
OS << " // Get the instruction mnemonic, which is the first token.\n";
if (HasMnemonicFirst) {
OS << " StringRef Mnemonic = ((" << Target.getName()
<< "Operand &)*Operands[0]).getToken();\n\n";
} else {
OS << " StringRef Mnemonic;\n";
OS << " if (Operands[0]->isToken())\n";
OS << " Mnemonic = ((" << Target.getName()
<< "Operand &)*Operands[0]).getToken();\n\n";
}
if (HasMnemonicAliases) {
OS << " // Process all MnemonicAliases to remap the mnemonic.\n";
OS << " applyMnemonicAliases(Mnemonic, AvailableFeatures, VariantID);\n\n";
}
if (!ReportMultipleNearMisses) {
OS << " // Some state to try to produce better error messages.\n";
OS << " bool HadMatchOtherThanFeatures = false;\n";
OS << " bool HadMatchOtherThanPredicate = false;\n";
OS << " unsigned RetCode = Match_InvalidOperand;\n";
OS << " MissingFeatures.set();\n";
OS << " // Set ErrorInfo to the operand that mismatches if it is\n";
OS << " // wrong for all instances of the instruction.\n";
OS << " ErrorInfo = ~0ULL;\n";
}
if (HasOptionalOperands) {
OS << " SmallBitVector OptionalOperandsMask(" << MaxNumOperands << ");\n";
}
OS << " // Find the appropriate table for this asm variant.\n";
OS << " const MatchEntry *Start, *End;\n";
OS << " switch (VariantID) {\n";
OS << " default: llvm_unreachable(\"invalid variant!\");\n";
for (unsigned VC = 0; VC != VariantCount; ++VC) {
Record *AsmVariant = Target.getAsmParserVariant(VC);
int AsmVariantNo = AsmVariant->getValueAsInt("Variant");
OS << " case " << AsmVariantNo << ": Start = std::begin(MatchTable" << VC
<< "); End = std::end(MatchTable" << VC << "); break;\n";
}
OS << " }\n";
OS << " // Search the table.\n";
if (HasMnemonicFirst) {
OS << " auto MnemonicRange = "
"std::equal_range(Start, End, Mnemonic, LessOpcode());\n\n";
} else {
OS << " auto MnemonicRange = std::make_pair(Start, End);\n";
OS << " unsigned SIndex = Mnemonic.empty() ? 0 : 1;\n";
OS << " if (!Mnemonic.empty())\n";
OS << " MnemonicRange = "
"std::equal_range(Start, End, Mnemonic.lower(), LessOpcode());\n\n";
}
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"AsmMatcher: found \" <<\n"
<< " std::distance(MnemonicRange.first, MnemonicRange.second) <<\n"
<< " \" encodings with mnemonic '\" << Mnemonic << \"'\\n\");\n\n";
OS << " // Return a more specific error code if no mnemonics match.\n";
OS << " if (MnemonicRange.first == MnemonicRange.second)\n";
OS << " return Match_MnemonicFail;\n\n";
OS << " for (const MatchEntry *it = MnemonicRange.first, "
<< "*ie = MnemonicRange.second;\n";
OS << " it != ie; ++it) {\n";
OS << " const FeatureBitset &RequiredFeatures = "
"FeatureBitsets[it->RequiredFeaturesIdx];\n";
OS << " bool HasRequiredFeatures =\n";
OS << " (AvailableFeatures & RequiredFeatures) == RequiredFeatures;\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"Trying to match opcode \"\n";
OS << " << MII.getName(it->Opcode) << \"\\n\");\n";
if (ReportMultipleNearMisses) {
OS << " // Some state to record ways in which this instruction did not match.\n";
OS << " NearMissInfo OperandNearMiss = NearMissInfo::getSuccess();\n";
OS << " NearMissInfo FeaturesNearMiss = NearMissInfo::getSuccess();\n";
OS << " NearMissInfo EarlyPredicateNearMiss = NearMissInfo::getSuccess();\n";
OS << " NearMissInfo LatePredicateNearMiss = NearMissInfo::getSuccess();\n";
OS << " bool MultipleInvalidOperands = false;\n";
}
if (HasMnemonicFirst) {
OS << " // equal_range guarantees that instruction mnemonic matches.\n";
OS << " assert(Mnemonic == it->getMnemonic());\n";
}
if (!ReportMultipleNearMisses)
OS << " bool OperandsValid = true;\n";
if (HasOptionalOperands) {
OS << " OptionalOperandsMask.reset(0, " << MaxNumOperands << ");\n";
}
OS << " for (unsigned FormalIdx = " << (HasMnemonicFirst ? "0" : "SIndex")
<< ", ActualIdx = " << (HasMnemonicFirst ? "1" : "SIndex")
<< "; FormalIdx != " << MaxNumOperands << "; ++FormalIdx) {\n";
OS << " auto Formal = "
<< "static_cast<MatchClassKind>(it->Classes[FormalIdx]);\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\",\n";
OS << " dbgs() << \" Matching formal operand class \" << getMatchClassName(Formal)\n";
OS << " << \" against actual operand at index \" << ActualIdx);\n";
OS << " if (ActualIdx < Operands.size())\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \" (\";\n";
OS << " Operands[ActualIdx]->print(dbgs()); dbgs() << \"): \");\n";
OS << " else\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \": \");\n";
OS << " if (ActualIdx >= Operands.size()) {\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"actual operand index out of range \");\n";
if (ReportMultipleNearMisses) {
OS << " bool ThisOperandValid = (Formal == " <<"InvalidMatchClass) || "
"isSubclass(Formal, OptionalMatchClass);\n";
OS << " if (!ThisOperandValid) {\n";
OS << " if (!OperandNearMiss) {\n";
OS << " // Record info about match failure for later use.\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"recording too-few-operands near miss\\n\");\n";
OS << " OperandNearMiss =\n";
OS << " NearMissInfo::getTooFewOperands(Formal, it->Opcode);\n";
OS << " } else if (OperandNearMiss.getKind() != NearMissInfo::NearMissTooFewOperands) {\n";
OS << " // If more than one operand is invalid, give up on this match entry.\n";
OS << " DEBUG_WITH_TYPE(\n";
OS << " \"asm-matcher\",\n";
OS << " dbgs() << \"second invalid operand, giving up on this opcode\\n\");\n";
OS << " MultipleInvalidOperands = true;\n";
OS << " break;\n";
OS << " }\n";
OS << " } else {\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"but formal operand not required\\n\");\n";
OS << " break;\n";
OS << " }\n";
OS << " continue;\n";
} else {
OS << " OperandsValid = (Formal == InvalidMatchClass) || isSubclass(Formal, OptionalMatchClass);\n";
OS << " if (!OperandsValid) ErrorInfo = ActualIdx;\n";
if (HasOptionalOperands) {
OS << " OptionalOperandsMask.set(FormalIdx, " << MaxNumOperands
<< ");\n";
}
OS << " break;\n";
}
OS << " }\n";
OS << " MCParsedAsmOperand &Actual = *Operands[ActualIdx];\n";
OS << " unsigned Diag = validateOperandClass(Actual, Formal);\n";
OS << " if (Diag == Match_Success) {\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\",\n";
OS << " dbgs() << \"match success using generic matcher\\n\");\n";
OS << " ++ActualIdx;\n";
OS << " continue;\n";
OS << " }\n";
OS << " // If the generic handler indicates an invalid operand\n";
OS << " // failure, check for a special case.\n";
OS << " if (Diag != Match_Success) {\n";
OS << " unsigned TargetDiag = validateTargetOperandClass(Actual, Formal);\n";
OS << " if (TargetDiag == Match_Success) {\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\",\n";
OS << " dbgs() << \"match success using target matcher\\n\");\n";
OS << " ++ActualIdx;\n";
OS << " continue;\n";
OS << " }\n";
OS << " // If the target matcher returned a specific error code use\n";
OS << " // that, else use the one from the generic matcher.\n";
OS << " if (TargetDiag != Match_InvalidOperand && "
"HasRequiredFeatures)\n";
OS << " Diag = TargetDiag;\n";
OS << " }\n";
OS << " // If current formal operand wasn't matched and it is optional\n"
<< " // then try to match next formal operand\n";
OS << " if (Diag == Match_InvalidOperand "
<< "&& isSubclass(Formal, OptionalMatchClass)) {\n";
if (HasOptionalOperands) {
OS << " OptionalOperandsMask.set(FormalIdx);\n";
}
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"ignoring optional operand\\n\");\n";
OS << " continue;\n";
OS << " }\n";
if (ReportMultipleNearMisses) {
OS << " if (!OperandNearMiss) {\n";
OS << " // If this is the first invalid operand we have seen, record some\n";
OS << " // information about it.\n";
OS << " DEBUG_WITH_TYPE(\n";
OS << " \"asm-matcher\",\n";
OS << " dbgs()\n";
OS << " << \"operand match failed, recording near-miss with diag code \"\n";
OS << " << Diag << \"\\n\");\n";
OS << " OperandNearMiss =\n";
OS << " NearMissInfo::getMissedOperand(Diag, Formal, it->Opcode, ActualIdx);\n";
OS << " ++ActualIdx;\n";
OS << " } else {\n";
OS << " // If more than one operand is invalid, give up on this match entry.\n";
OS << " DEBUG_WITH_TYPE(\n";
OS << " \"asm-matcher\",\n";
OS << " dbgs() << \"second operand mismatch, skipping this opcode\\n\");\n";
OS << " MultipleInvalidOperands = true;\n";
OS << " break;\n";
OS << " }\n";
OS << " }\n\n";
} else {
OS << " // If this operand is broken for all of the instances of this\n";
OS << " // mnemonic, keep track of it so we can report loc info.\n";
OS << " // If we already had a match that only failed due to a\n";
OS << " // target predicate, that diagnostic is preferred.\n";
OS << " if (!HadMatchOtherThanPredicate &&\n";
OS << " (it == MnemonicRange.first || ErrorInfo <= ActualIdx)) {\n";
OS << " if (HasRequiredFeatures && (ErrorInfo != ActualIdx || Diag "
"!= Match_InvalidOperand))\n";
OS << " RetCode = Diag;\n";
OS << " ErrorInfo = ActualIdx;\n";
OS << " }\n";
OS << " // Otherwise, just reject this instance of the mnemonic.\n";
OS << " OperandsValid = false;\n";
OS << " break;\n";
OS << " }\n\n";
}
if (ReportMultipleNearMisses)
OS << " if (MultipleInvalidOperands) {\n";
else
OS << " if (!OperandsValid) {\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"Opcode result: multiple \"\n";
OS << " \"operand mismatches, ignoring \"\n";
OS << " \"this opcode\\n\");\n";
OS << " continue;\n";
OS << " }\n";
OS << " if (!HasRequiredFeatures) {\n";
if (!ReportMultipleNearMisses)
OS << " HadMatchOtherThanFeatures = true;\n";
OS << " FeatureBitset NewMissingFeatures = RequiredFeatures & "
"~AvailableFeatures;\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"Missing target features:\";\n";
OS << " for (unsigned I = 0, E = NewMissingFeatures.size(); I != E; ++I)\n";
OS << " if (NewMissingFeatures[I])\n";
OS << " dbgs() << ' ' << I;\n";
OS << " dbgs() << \"\\n\");\n";
if (ReportMultipleNearMisses) {
OS << " FeaturesNearMiss = NearMissInfo::getMissedFeature(NewMissingFeatures);\n";
} else {
OS << " if (NewMissingFeatures.count() <=\n"
" MissingFeatures.count())\n";
OS << " MissingFeatures = NewMissingFeatures;\n";
OS << " continue;\n";
}
OS << " }\n";
OS << "\n";
OS << " Inst.clear();\n\n";
OS << " Inst.setOpcode(it->Opcode);\n";
OS << " // We have a potential match but have not rendered the operands.\n"
<< " // Check the target predicate to handle any context sensitive\n"
" // constraints.\n"
<< " // For example, Ties that are referenced multiple times must be\n"
" // checked here to ensure the input is the same for each match\n"
" // constraints. If we leave it any later the ties will have been\n"
" // canonicalized\n"
<< " unsigned MatchResult;\n"
<< " if ((MatchResult = checkEarlyTargetMatchPredicate(Inst, "
"Operands)) != Match_Success) {\n"
<< " Inst.clear();\n";
OS << " DEBUG_WITH_TYPE(\n";
OS << " \"asm-matcher\",\n";
OS << " dbgs() << \"Early target match predicate failed with diag code \"\n";
OS << " << MatchResult << \"\\n\");\n";
if (ReportMultipleNearMisses) {
OS << " EarlyPredicateNearMiss = NearMissInfo::getMissedPredicate(MatchResult);\n";
} else {
OS << " RetCode = MatchResult;\n"
<< " HadMatchOtherThanPredicate = true;\n"
<< " continue;\n";
}
OS << " }\n\n";
if (ReportMultipleNearMisses) {
OS << " // If we did not successfully match the operands, then we can't convert to\n";
OS << " // an MCInst, so bail out on this instruction variant now.\n";
OS << " if (OperandNearMiss) {\n";
OS << " // If the operand mismatch was the only problem, reprrt it as a near-miss.\n";
OS << " if (NearMisses && !FeaturesNearMiss && !EarlyPredicateNearMiss) {\n";
OS << " DEBUG_WITH_TYPE(\n";
OS << " \"asm-matcher\",\n";
OS << " dbgs()\n";
OS << " << \"Opcode result: one mismatched operand, adding near-miss\\n\");\n";
OS << " NearMisses->push_back(OperandNearMiss);\n";
OS << " } else {\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"Opcode result: multiple \"\n";
OS << " \"types of mismatch, so not \"\n";
OS << " \"reporting near-miss\\n\");\n";
OS << " }\n";
OS << " continue;\n";
OS << " }\n\n";
}
OS << " if (matchingInlineAsm) {\n";
OS << " convertToMapAndConstraints(it->ConvertFn, Operands);\n";
if (!ReportMultipleNearMisses) {
OS << " if (!checkAsmTiedOperandConstraints(*this, it->ConvertFn, "
"Operands, ErrorInfo))\n";
OS << " return Match_InvalidTiedOperand;\n";
OS << "\n";
}
OS << " return Match_Success;\n";
OS << " }\n\n";
OS << " // We have selected a definite instruction, convert the parsed\n"
<< " // operands into the appropriate MCInst.\n";
if (HasOptionalOperands) {
OS << " convertToMCInst(it->ConvertFn, Inst, it->Opcode, Operands,\n"
<< " OptionalOperandsMask);\n";
} else {
OS << " convertToMCInst(it->ConvertFn, Inst, it->Opcode, Operands);\n";
}
OS << "\n";
OS << " // We have a potential match. Check the target predicate to\n"
<< " // handle any context sensitive constraints.\n"
<< " if ((MatchResult = checkTargetMatchPredicate(Inst)) !="
<< " Match_Success) {\n"
<< " DEBUG_WITH_TYPE(\"asm-matcher\",\n"
<< " dbgs() << \"Target match predicate failed with diag code \"\n"
<< " << MatchResult << \"\\n\");\n"
<< " Inst.clear();\n";
if (ReportMultipleNearMisses) {
OS << " LatePredicateNearMiss = NearMissInfo::getMissedPredicate(MatchResult);\n";
} else {
OS << " RetCode = MatchResult;\n"
<< " HadMatchOtherThanPredicate = true;\n"
<< " continue;\n";
}
OS << " }\n\n";
if (ReportMultipleNearMisses) {
OS << " int NumNearMisses = ((int)(bool)OperandNearMiss +\n";
OS << " (int)(bool)FeaturesNearMiss +\n";
OS << " (int)(bool)EarlyPredicateNearMiss +\n";
OS << " (int)(bool)LatePredicateNearMiss);\n";
OS << " if (NumNearMisses == 1) {\n";
OS << " // We had exactly one type of near-miss, so add that to the list.\n";
OS << " assert(!OperandNearMiss && \"OperandNearMiss was handled earlier\");\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"Opcode result: found one type of \"\n";
OS << " \"mismatch, so reporting a \"\n";
OS << " \"near-miss\\n\");\n";
OS << " if (NearMisses && FeaturesNearMiss)\n";
OS << " NearMisses->push_back(FeaturesNearMiss);\n";
OS << " else if (NearMisses && EarlyPredicateNearMiss)\n";
OS << " NearMisses->push_back(EarlyPredicateNearMiss);\n";
OS << " else if (NearMisses && LatePredicateNearMiss)\n";
OS << " NearMisses->push_back(LatePredicateNearMiss);\n";
OS << "\n";
OS << " continue;\n";
OS << " } else if (NumNearMisses > 1) {\n";
OS << " // This instruction missed in more than one way, so ignore it.\n";
OS << " DEBUG_WITH_TYPE(\"asm-matcher\", dbgs() << \"Opcode result: multiple \"\n";
OS << " \"types of mismatch, so not \"\n";
OS << " \"reporting near-miss\\n\");\n";
OS << " continue;\n";
OS << " }\n";
}
StringRef InsnCleanupFn = AsmParser->getValueAsString("AsmParserInstCleanup");
if (!InsnCleanupFn.empty())
OS << " " << InsnCleanupFn << "(Inst);\n";
if (HasDeprecation) {
OS << " std::string Info;\n";
OS << " if (!getParser().getTargetParser().getTargetOptions().MCNoDeprecatedWarn &&\n";
OS << " MII.getDeprecatedInfo(Inst, getSTI(), Info)) {\n";
OS << " SMLoc Loc = ((" << Target.getName()
<< "Operand &)*Operands[0]).getStartLoc();\n";
OS << " getParser().Warning(Loc, Info, None);\n";
OS << " }\n";
}
if (!ReportMultipleNearMisses) {
OS << " if (!checkAsmTiedOperandConstraints(*this, it->ConvertFn, "
"Operands, ErrorInfo))\n";
OS << " return Match_InvalidTiedOperand;\n";
OS << "\n";
}
OS << " DEBUG_WITH_TYPE(\n";
OS << " \"asm-matcher\",\n";
OS << " dbgs() << \"Opcode result: complete match, selecting this opcode\\n\");\n";
OS << " return Match_Success;\n";
OS << " }\n\n";
if (ReportMultipleNearMisses) {
OS << " // No instruction variants matched exactly.\n";
OS << " return Match_NearMisses;\n";
} else {
OS << " // Okay, we had no match. Try to return a useful error code.\n";
OS << " if (HadMatchOtherThanPredicate || !HadMatchOtherThanFeatures)\n";
OS << " return RetCode;\n\n";
OS << " ErrorInfo = 0;\n";
OS << " return Match_MissingFeature;\n";
}
OS << "}\n\n";
if (!Info.OperandMatchInfo.empty())
emitCustomOperandParsing(OS, Target, Info, ClassName, StringTable,
MaxMnemonicIndex, FeatureBitsets.size(),
HasMnemonicFirst);
OS << "#endif // GET_MATCHER_IMPLEMENTATION\n\n";
OS << "\n#ifdef GET_MNEMONIC_SPELL_CHECKER\n";
OS << "#undef GET_MNEMONIC_SPELL_CHECKER\n\n";
emitMnemonicSpellChecker(OS, Target, VariantCount);
OS << "#endif // GET_MNEMONIC_SPELL_CHECKER\n\n";
OS << "\n#ifdef GET_MNEMONIC_CHECKER\n";
OS << "#undef GET_MNEMONIC_CHECKER\n\n";
emitMnemonicChecker(OS, Target, VariantCount,
HasMnemonicFirst, HasMnemonicAliases);
OS << "#endif // GET_MNEMONIC_CHECKER\n\n";
}
namespace llvm {
void EmitAsmMatcher(RecordKeeper &RK, raw_ostream &OS) {
emitSourceFileHeader("Assembly Matcher Source Fragment", OS);
AsmMatcherEmitter(RK).run(OS);
}
}