//
//===----------------------------------------------------------------------===//
+#include "MCTargetDesc/MipsABIInfo.h"
#include "MCTargetDesc/MipsMCExpr.h"
#include "MCTargetDesc/MipsMCTargetDesc.h"
#include "MipsRegisterInfo.h"
#include "MipsTargetStreamer.h"
#include "llvm/ADT/APInt.h"
+#include "llvm/ADT/SmallVector.h"
#include "llvm/ADT/StringSwitch.h"
#include "llvm/MC/MCContext.h"
#include "llvm/MC/MCExpr.h"
#include "llvm/MC/MCTargetAsmParser.h"
#include "llvm/Support/Debug.h"
#include "llvm/Support/MathExtras.h"
+#include "llvm/Support/SourceMgr.h"
#include "llvm/Support/TargetRegistry.h"
+#include "llvm/Support/raw_ostream.h"
+#include <memory>
using namespace llvm;
namespace {
class MipsAssemblerOptions {
public:
- MipsAssemblerOptions() : aTReg(1), reorder(true), macro(true) {}
+ MipsAssemblerOptions(uint64_t Features_) :
+ ATReg(1), Reorder(true), Macro(true), Features(Features_) {}
- unsigned getATRegNum() { return aTReg; }
+ MipsAssemblerOptions(const MipsAssemblerOptions *Opts) {
+ ATReg = Opts->getATRegNum();
+ Reorder = Opts->isReorder();
+ Macro = Opts->isMacro();
+ Features = Opts->getFeatures();
+ }
+
+ unsigned getATRegNum() const { return ATReg; }
bool setATReg(unsigned Reg);
- bool isReorder() { return reorder; }
- void setReorder() { reorder = true; }
- void setNoreorder() { reorder = false; }
+ bool isReorder() const { return Reorder; }
+ void setReorder() { Reorder = true; }
+ void setNoReorder() { Reorder = false; }
- bool isMacro() { return macro; }
- void setMacro() { macro = true; }
- void setNomacro() { macro = false; }
+ bool isMacro() const { return Macro; }
+ void setMacro() { Macro = true; }
+ void setNoMacro() { Macro = false; }
+
+ uint64_t getFeatures() const { return Features; }
+ void setFeatures(uint64_t Features_) { Features = Features_; }
// Set of features that are either architecture features or referenced
// by them (e.g.: FeatureNaN2008 implied by FeatureMips32r6).
Mips::FeatureMips3_32 | Mips::FeatureMips3_32r2 | Mips::FeatureMips4 |
Mips::FeatureMips4_32 | Mips::FeatureMips4_32r2 | Mips::FeatureMips5 |
Mips::FeatureMips5_32r2 | Mips::FeatureMips32 | Mips::FeatureMips32r2 |
- Mips::FeatureMips32r6 | Mips::FeatureMips64 | Mips::FeatureMips64r2 |
- Mips::FeatureMips64r6 | Mips::FeatureCnMips | Mips::FeatureFP64Bit |
- Mips::FeatureGP64Bit | Mips::FeatureNaN2008;
+ Mips::FeatureMips32r3 | Mips::FeatureMips32r5 | Mips::FeatureMips32r6 |
+ Mips::FeatureMips64 | Mips::FeatureMips64r2 | Mips::FeatureMips64r3 |
+ Mips::FeatureMips64r5 | Mips::FeatureMips64r6 | Mips::FeatureCnMips |
+ Mips::FeatureFP64Bit | Mips::FeatureGP64Bit | Mips::FeatureNaN2008;
private:
- unsigned aTReg;
- bool reorder;
- bool macro;
+ unsigned ATReg;
+ bool Reorder;
+ bool Macro;
+ uint64_t Features;
};
}
namespace {
class MipsAsmParser : public MCTargetAsmParser {
MipsTargetStreamer &getTargetStreamer() {
- MCTargetStreamer &TS = *Parser.getStreamer().getTargetStreamer();
+ MCTargetStreamer &TS = *getParser().getStreamer().getTargetStreamer();
return static_cast<MipsTargetStreamer &>(TS);
}
MCSubtargetInfo &STI;
- MCAsmParser &Parser;
- MipsAssemblerOptions Options;
+ MipsABIInfo ABI;
+ SmallVector<std::unique_ptr<MipsAssemblerOptions>, 2> AssemblerOptions;
MCSymbol *CurrentFn; // Pointer to the function being parsed. It may be a
// nullptr, which indicates that no function is currently
// selected. This usually happens after an '.end func'
// directive.
+ // Print a warning along with its fix-it message at the given range.
+ void printWarningWithFixIt(const Twine &Msg, const Twine &FixMsg,
+ SMRange Range, bool ShowColors = true);
+
#define GET_ASSEMBLER_HEADER
#include "MipsGenAsmMatcher.inc"
/// Parse a register as used in CFI directives
bool ParseRegister(unsigned &RegNo, SMLoc &StartLoc, SMLoc &EndLoc) override;
- bool ParseParenSuffix(StringRef Name, OperandVector &Operands);
+ bool parseParenSuffix(StringRef Name, OperandVector &Operands);
- bool ParseBracketSuffix(StringRef Name, OperandVector &Operands);
+ bool parseBracketSuffix(StringRef Name, OperandVector &Operands);
bool ParseInstruction(ParseInstructionInfo &Info, StringRef Name,
SMLoc NameLoc, OperandVector &Operands) override;
MipsAsmParser::OperandMatchResultTy parseMemOperand(OperandVector &Operands);
MipsAsmParser::OperandMatchResultTy
- MatchAnyRegisterNameWithoutDollar(OperandVector &Operands,
+ matchAnyRegisterNameWithoutDollar(OperandVector &Operands,
StringRef Identifier, SMLoc S);
MipsAsmParser::OperandMatchResultTy
- MatchAnyRegisterWithoutDollar(OperandVector &Operands, SMLoc S);
+ matchAnyRegisterWithoutDollar(OperandVector &Operands, SMLoc S);
- MipsAsmParser::OperandMatchResultTy ParseAnyRegister(OperandVector &Operands);
+ MipsAsmParser::OperandMatchResultTy parseAnyRegister(OperandVector &Operands);
- MipsAsmParser::OperandMatchResultTy ParseImm(OperandVector &Operands);
+ MipsAsmParser::OperandMatchResultTy parseImm(OperandVector &Operands);
- MipsAsmParser::OperandMatchResultTy ParseJumpTarget(OperandVector &Operands);
+ MipsAsmParser::OperandMatchResultTy parseJumpTarget(OperandVector &Operands);
MipsAsmParser::OperandMatchResultTy parseInvNum(OperandVector &Operands);
- MipsAsmParser::OperandMatchResultTy ParseLSAImm(OperandVector &Operands);
+ MipsAsmParser::OperandMatchResultTy parseLSAImm(OperandVector &Operands);
+
+ MipsAsmParser::OperandMatchResultTy
+ parseRegisterPair (OperandVector &Operands);
+
+ MipsAsmParser::OperandMatchResultTy
+ parseMovePRegPair(OperandVector &Operands);
+
+ MipsAsmParser::OperandMatchResultTy
+ parseRegisterList (OperandVector &Operands);
bool searchSymbolAlias(OperandVector &Operands);
- bool ParseOperand(OperandVector &, StringRef Mnemonic);
+ bool parseOperand(OperandVector &, StringRef Mnemonic);
bool needsExpansion(MCInst &Inst);
bool expandInstruction(MCInst &Inst, SMLoc IDLoc,
SmallVectorImpl<MCInst> &Instructions);
+ bool expandJalWithRegs(MCInst &Inst, SMLoc IDLoc,
+ SmallVectorImpl<MCInst> &Instructions);
+
bool expandLoadImm(MCInst &Inst, SMLoc IDLoc,
SmallVectorImpl<MCInst> &Instructions);
bool expandLoadAddressReg(MCInst &Inst, SMLoc IDLoc,
SmallVectorImpl<MCInst> &Instructions);
+ bool expandUncondBranchMMPseudo(MCInst &Inst, SMLoc IDLoc,
+ SmallVectorImpl<MCInst> &Instructions);
void expandLoadAddressSym(MCInst &Inst, SMLoc IDLoc,
SmallVectorImpl<MCInst> &Instructions);
void expandMemInst(MCInst &Inst, SMLoc IDLoc,
SmallVectorImpl<MCInst> &Instructions, bool isLoad,
bool isImmOpnd);
+
+ bool expandLoadStoreMultiple(MCInst &Inst, SMLoc IDLoc,
+ SmallVectorImpl<MCInst> &Instructions);
+
+ void createNop(bool hasShortDelaySlot, SMLoc IDLoc,
+ SmallVectorImpl<MCInst> &Instructions);
+
bool reportParseError(Twine ErrorMsg);
bool reportParseError(SMLoc Loc, Twine ErrorMsg);
const MCExpr *evaluateRelocExpr(const MCExpr *Expr, StringRef RelocStr);
bool isEvaluated(const MCExpr *Expr);
+ bool parseSetMips0Directive();
+ bool parseSetArchDirective();
bool parseSetFeature(uint64_t Feature);
- bool parseDirectiveCPLoad(SMLoc Loc);
+ bool parseDirectiveCpLoad(SMLoc Loc);
bool parseDirectiveCPSetup();
bool parseDirectiveNaN();
bool parseDirectiveSet();
bool parseSetNoMacroDirective();
bool parseSetMsaDirective();
bool parseSetNoMsaDirective();
+ bool parseSetNoDspDirective();
bool parseSetReorderDirective();
bool parseSetNoReorderDirective();
+ bool parseSetMips16Directive();
bool parseSetNoMips16Directive();
bool parseSetFpDirective();
+ bool parseSetPopDirective();
+ bool parseSetPushDirective();
bool parseSetAssignment();
bool parseFpABIValue(MipsABIFlagsSection::FpABIKind &FpABI,
StringRef Directive);
+ bool parseInternalDirectiveReallowModule();
+
MCSymbolRefExpr::VariantKind getVariantKind(StringRef Symbol);
bool eatComma(StringRef ErrorStr);
int matchCPURegisterName(StringRef Symbol);
+ int matchHWRegsRegisterName(StringRef Symbol);
+
int matchRegisterByNumber(unsigned RegNum, unsigned RegClass);
int matchFPURegisterName(StringRef Name);
STI.setFeatureBits(FeatureBits);
setAvailableFeatures(
ComputeAvailableFeatures(STI.ToggleFeature(ArchFeature)));
+ AssemblerOptions.back()->setFeatures(getAvailableFeatures());
}
- void setFeatureBits(unsigned Feature, StringRef FeatureString) {
+ void setFeatureBits(uint64_t Feature, StringRef FeatureString) {
if (!(STI.getFeatureBits() & Feature)) {
setAvailableFeatures(
ComputeAvailableFeatures(STI.ToggleFeature(FeatureString)));
}
+ AssemblerOptions.back()->setFeatures(getAvailableFeatures());
}
- void clearFeatureBits(unsigned Feature, StringRef FeatureString) {
+ void clearFeatureBits(uint64_t Feature, StringRef FeatureString) {
if (STI.getFeatureBits() & Feature) {
setAvailableFeatures(
ComputeAvailableFeatures(STI.ToggleFeature(FeatureString)));
}
+ AssemblerOptions.back()->setFeatures(getAvailableFeatures());
}
public:
MipsAsmParser(MCSubtargetInfo &sti, MCAsmParser &parser,
const MCInstrInfo &MII, const MCTargetOptions &Options)
- : MCTargetAsmParser(), STI(sti), Parser(parser) {
+ : MCTargetAsmParser(), STI(sti),
+ ABI(MipsABIInfo::computeTargetABI(Triple(sti.getTargetTriple()),
+ sti.getCPU(), Options)) {
+ MCAsmParserExtension::Initialize(parser);
+
// Initialize the set of available features.
setAvailableFeatures(ComputeAvailableFeatures(STI.getFeatureBits()));
+
+ // Remember the initial assembler options. The user can not modify these.
+ AssemblerOptions.push_back(
+ make_unique<MipsAssemblerOptions>(getAvailableFeatures()));
+
+ // Create an assembler options environment for the user to modify.
+ AssemblerOptions.push_back(
+ make_unique<MipsAssemblerOptions>(getAvailableFeatures()));
getTargetStreamer().updateABIInfo(*this);
- // Assert exactly one ABI was chosen.
- assert((((STI.getFeatureBits() & Mips::FeatureO32) != 0) +
- ((STI.getFeatureBits() & Mips::FeatureEABI) != 0) +
- ((STI.getFeatureBits() & Mips::FeatureN32) != 0) +
- ((STI.getFeatureBits() & Mips::FeatureN64) != 0)) == 1);
-
if (!isABI_O32() && !useOddSPReg() != 0)
report_fatal_error("-mno-odd-spreg requires the O32 ABI");
CurrentFn = nullptr;
}
- MCAsmParser &getParser() const { return Parser; }
- MCAsmLexer &getLexer() const { return Parser.getLexer(); }
-
/// True if all of $fcc0 - $fcc7 exist for the current ISA.
bool hasEightFccRegisters() const { return hasMips4() || hasMips32(); }
bool isGP64bit() const { return STI.getFeatureBits() & Mips::FeatureGP64Bit; }
bool isFP64bit() const { return STI.getFeatureBits() & Mips::FeatureFP64Bit; }
- bool isABI_N32() const { return STI.getFeatureBits() & Mips::FeatureN32; }
- bool isABI_N64() const { return STI.getFeatureBits() & Mips::FeatureN64; }
- bool isABI_O32() const { return STI.getFeatureBits() & Mips::FeatureO32; }
+ const MipsABIInfo &getABI() const { return ABI; }
+ bool isABI_N32() const { return ABI.IsN32(); }
+ bool isABI_N64() const { return ABI.IsN64(); }
+ bool isABI_O32() const { return ABI.IsO32(); }
bool isABI_FPXX() const { return STI.getFeatureBits() & Mips::FeatureFPXX; }
bool useOddSPReg() const {
bool hasMips64r2() const {
return (STI.getFeatureBits() & Mips::FeatureMips64r2);
}
+ bool hasMips32r3() const {
+ return (STI.getFeatureBits() & Mips::FeatureMips32r3);
+ }
+ bool hasMips64r3() const {
+ return (STI.getFeatureBits() & Mips::FeatureMips64r3);
+ }
+ bool hasMips32r5() const {
+ return (STI.getFeatureBits() & Mips::FeatureMips32r5);
+ }
+ bool hasMips64r5() const {
+ return (STI.getFeatureBits() & Mips::FeatureMips64r5);
+ }
bool hasMips32r6() const {
return (STI.getFeatureBits() & Mips::FeatureMips32r6);
}
bool hasMips64r6() const {
return (STI.getFeatureBits() & Mips::FeatureMips64r6);
}
+ bool hasCnMips() const {
+ return (STI.getFeatureBits() & Mips::FeatureCnMips);
+ }
bool hasDSP() const { return (STI.getFeatureBits() & Mips::FeatureDSP); }
bool hasDSPR2() const { return (STI.getFeatureBits() & Mips::FeatureDSPR2); }
bool hasMSA() const { return (STI.getFeatureBits() & Mips::FeatureMSA); }
bool abiUsesSoftFloat() const { return false; }
/// Warn if RegNo is the current assembler temporary.
- void WarnIfAssemblerTemporary(int RegNo, SMLoc Loc);
+ void warnIfAssemblerTemporary(int RegNo, SMLoc Loc);
};
}
k_Memory, /// Base + Offset Memory Address
k_PhysRegister, /// A physical register from the Mips namespace
k_RegisterIndex, /// A register index in one or more RegKind.
- k_Token /// A simple token
+ k_Token, /// A simple token
+ k_RegList, /// A physical register list
+ k_RegPair /// A pair of physical register
} Kind;
public:
const MCExpr *Off;
};
+ struct RegListOp {
+ SmallVector<unsigned, 10> *List;
+ };
+
union {
struct Token Tok;
struct PhysRegOp PhysReg;
struct RegIdxOp RegIdx;
struct ImmOp Imm;
struct MemOp Mem;
+ struct RegListOp RegList;
};
SMLoc StartLoc, EndLoc;
/// target.
unsigned getGPR32Reg() const {
assert(isRegIdx() && (RegIdx.Kind & RegKind_GPR) && "Invalid access!");
- AsmParser.WarnIfAssemblerTemporary(RegIdx.Index, StartLoc);
+ AsmParser.warnIfAssemblerTemporary(RegIdx.Index, StartLoc);
+ unsigned ClassID = Mips::GPR32RegClassID;
+ return RegIdx.RegInfo->getRegClass(ClassID).getRegister(RegIdx.Index);
+ }
+
+ /// Coerce the register to GPR32 and return the real register for the current
+ /// target.
+ unsigned getGPRMM16Reg() const {
+ assert(isRegIdx() && (RegIdx.Kind & RegKind_GPR) && "Invalid access!");
unsigned ClassID = Mips::GPR32RegClassID;
return RegIdx.RegInfo->getRegClass(ClassID).getRegister(RegIdx.Index);
}
Inst.addOperand(MCOperand::CreateReg(getGPR32Reg()));
}
+ void addGPRMM16AsmRegOperands(MCInst &Inst, unsigned N) const {
+ assert(N == 1 && "Invalid number of operands!");
+ Inst.addOperand(MCOperand::CreateReg(getGPRMM16Reg()));
+ }
+
+ void addGPRMM16AsmRegZeroOperands(MCInst &Inst, unsigned N) const {
+ assert(N == 1 && "Invalid number of operands!");
+ Inst.addOperand(MCOperand::CreateReg(getGPRMM16Reg()));
+ }
+
+ void addGPRMM16AsmRegMovePOperands(MCInst &Inst, unsigned N) const {
+ assert(N == 1 && "Invalid number of operands!");
+ Inst.addOperand(MCOperand::CreateReg(getGPRMM16Reg()));
+ }
+
/// Render the operand to an MCInst as a GPR64
/// Asserts if the wrong number of operands are requested, or the operand
/// is not a k_RegisterIndex compatible with RegKind_GPR
addExpr(Inst, Expr);
}
+ void addMicroMipsMemOperands(MCInst &Inst, unsigned N) const {
+ assert(N == 2 && "Invalid number of operands!");
+
+ Inst.addOperand(MCOperand::CreateReg(getMemBase()->getGPRMM16Reg()));
+
+ const MCExpr *Expr = getMemOff();
+ addExpr(Inst, Expr);
+ }
+
+ void addRegListOperands(MCInst &Inst, unsigned N) const {
+ assert(N == 1 && "Invalid number of operands!");
+
+ for (auto RegNo : getRegList())
+ Inst.addOperand(MCOperand::CreateReg(RegNo));
+ }
+
+ void addRegPairOperands(MCInst &Inst, unsigned N) const {
+ assert(N == 2 && "Invalid number of operands!");
+ unsigned RegNo = getRegPair();
+ Inst.addOperand(MCOperand::CreateReg(RegNo++));
+ Inst.addOperand(MCOperand::CreateReg(RegNo));
+ }
+
+ void addMovePRegPairOperands(MCInst &Inst, unsigned N) const {
+ assert(N == 2 && "Invalid number of operands!");
+ for (auto RegNo : getRegList())
+ Inst.addOperand(MCOperand::CreateReg(RegNo));
+ }
+
bool isReg() const override {
// As a special case until we sort out the definition of div/divu, pretend
// that $0/$zero are k_PhysRegister so that MCK_ZERO works correctly.
template <unsigned Bits> bool isMemWithSimmOffset() const {
return isMem() && isConstantMemOff() && isInt<Bits>(getConstantMemOff());
}
+ bool isMemWithGRPMM16Base() const {
+ return isMem() && getMemBase()->isMM16AsmReg();
+ }
+ template <unsigned Bits> bool isMemWithUimmOffsetSP() const {
+ return isMem() && isConstantMemOff() && isUInt<Bits>(getConstantMemOff())
+ && getMemBase()->isRegIdx() && (getMemBase()->getGPR32Reg() == Mips::SP);
+ }
+ template <unsigned Bits> bool isMemWithUimmWordAlignedOffsetSP() const {
+ return isMem() && isConstantMemOff() && isUInt<Bits>(getConstantMemOff())
+ && (getConstantMemOff() % 4 == 0) && getMemBase()->isRegIdx()
+ && (getMemBase()->getGPR32Reg() == Mips::SP);
+ }
+ bool isRegList16() const {
+ if (!isRegList())
+ return false;
+
+ int Size = RegList.List->size();
+ if (Size < 2 || Size > 5 || *RegList.List->begin() != Mips::S0 ||
+ RegList.List->back() != Mips::RA)
+ return false;
+
+ int PrevReg = *RegList.List->begin();
+ for (int i = 1; i < Size - 1; i++) {
+ int Reg = (*(RegList.List))[i];
+ if ( Reg != PrevReg + 1)
+ return false;
+ PrevReg = Reg;
+ }
+
+ return true;
+ }
bool isInvNum() const { return Kind == k_Immediate; }
bool isLSAImm() const {
if (!isConstantImm())
int64_t Val = getConstantImm();
return 1 <= Val && Val <= 4;
}
+ bool isRegList() const { return Kind == k_RegList; }
+ bool isMovePRegPair() const {
+ if (Kind != k_RegList || RegList.List->size() != 2)
+ return false;
+
+ unsigned R0 = RegList.List->front();
+ unsigned R1 = RegList.List->back();
+
+ if ((R0 == Mips::A1 && R1 == Mips::A2) ||
+ (R0 == Mips::A1 && R1 == Mips::A3) ||
+ (R0 == Mips::A2 && R1 == Mips::A3) ||
+ (R0 == Mips::A0 && R1 == Mips::S5) ||
+ (R0 == Mips::A0 && R1 == Mips::S6) ||
+ (R0 == Mips::A0 && R1 == Mips::A1) ||
+ (R0 == Mips::A0 && R1 == Mips::A2) ||
+ (R0 == Mips::A0 && R1 == Mips::A3))
+ return true;
+
+ return false;
+ }
StringRef getToken() const {
assert(Kind == k_Token && "Invalid access!");
return StringRef(Tok.Data, Tok.Length);
}
+ bool isRegPair() const { return Kind == k_RegPair; }
unsigned getReg() const override {
// As a special case until we sort out the definition of div/divu, pretend
return static_cast<const MCConstantExpr *>(getMemOff())->getValue();
}
+ const SmallVectorImpl<unsigned> &getRegList() const {
+ assert((Kind == k_RegList) && "Invalid access!");
+ return *(RegList.List);
+ }
+
+ unsigned getRegPair() const {
+ assert((Kind == k_RegPair) && "Invalid access!");
+ return RegIdx.Index;
+ }
+
static std::unique_ptr<MipsOperand> CreateToken(StringRef Str, SMLoc S,
MipsAsmParser &Parser) {
auto Op = make_unique<MipsOperand>(k_Token, Parser);
/// Create a numeric register (e.g. $1). The exact register remains
/// unresolved until an instruction successfully matches
static std::unique_ptr<MipsOperand>
- CreateNumericReg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S,
+ createNumericReg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S,
SMLoc E, MipsAsmParser &Parser) {
- DEBUG(dbgs() << "CreateNumericReg(" << Index << ", ...)\n");
+ DEBUG(dbgs() << "createNumericReg(" << Index << ", ...)\n");
return CreateReg(Index, RegKind_Numeric, RegInfo, S, E, Parser);
}
/// Create a register that is definitely a GPR.
/// This is typically only used for named registers such as $gp.
static std::unique_ptr<MipsOperand>
- CreateGPRReg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S, SMLoc E,
+ createGPRReg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S, SMLoc E,
MipsAsmParser &Parser) {
return CreateReg(Index, RegKind_GPR, RegInfo, S, E, Parser);
}
/// Create a register that is definitely a FGR.
/// This is typically only used for named registers such as $f0.
static std::unique_ptr<MipsOperand>
- CreateFGRReg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S, SMLoc E,
+ createFGRReg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S, SMLoc E,
MipsAsmParser &Parser) {
return CreateReg(Index, RegKind_FGR, RegInfo, S, E, Parser);
}
+ /// Create a register that is definitely a HWReg.
+ /// This is typically only used for named registers such as $hwr_cpunum.
+ static std::unique_ptr<MipsOperand>
+ createHWRegsReg(unsigned Index, const MCRegisterInfo *RegInfo,
+ SMLoc S, SMLoc E, MipsAsmParser &Parser) {
+ return CreateReg(Index, RegKind_HWRegs, RegInfo, S, E, Parser);
+ }
+
/// Create a register that is definitely an FCC.
/// This is typically only used for named registers such as $fcc0.
static std::unique_ptr<MipsOperand>
- CreateFCCReg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S, SMLoc E,
+ createFCCReg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S, SMLoc E,
MipsAsmParser &Parser) {
return CreateReg(Index, RegKind_FCC, RegInfo, S, E, Parser);
}
/// Create a register that is definitely an ACC.
/// This is typically only used for named registers such as $ac0.
static std::unique_ptr<MipsOperand>
- CreateACCReg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S, SMLoc E,
+ createACCReg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S, SMLoc E,
MipsAsmParser &Parser) {
return CreateReg(Index, RegKind_ACC, RegInfo, S, E, Parser);
}
/// Create a register that is definitely an MSA128.
/// This is typically only used for named registers such as $w0.
static std::unique_ptr<MipsOperand>
- CreateMSA128Reg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S,
+ createMSA128Reg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S,
SMLoc E, MipsAsmParser &Parser) {
return CreateReg(Index, RegKind_MSA128, RegInfo, S, E, Parser);
}
/// Create a register that is definitely an MSACtrl.
/// This is typically only used for named registers such as $msaaccess.
static std::unique_ptr<MipsOperand>
- CreateMSACtrlReg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S,
+ createMSACtrlReg(unsigned Index, const MCRegisterInfo *RegInfo, SMLoc S,
SMLoc E, MipsAsmParser &Parser) {
return CreateReg(Index, RegKind_MSACtrl, RegInfo, S, E, Parser);
}
return Op;
}
+ static std::unique_ptr<MipsOperand>
+ CreateRegList(SmallVectorImpl<unsigned> &Regs, SMLoc StartLoc, SMLoc EndLoc,
+ MipsAsmParser &Parser) {
+ assert (Regs.size() > 0 && "Empty list not allowed");
+
+ auto Op = make_unique<MipsOperand>(k_RegList, Parser);
+ Op->RegList.List = new SmallVector<unsigned, 10>(Regs.begin(), Regs.end());
+ Op->StartLoc = StartLoc;
+ Op->EndLoc = EndLoc;
+ return Op;
+ }
+
+ static std::unique_ptr<MipsOperand>
+ CreateRegPair(unsigned RegNo, SMLoc S, SMLoc E, MipsAsmParser &Parser) {
+ auto Op = make_unique<MipsOperand>(k_RegPair, Parser);
+ Op->RegIdx.Index = RegNo;
+ Op->StartLoc = S;
+ Op->EndLoc = E;
+ return Op;
+ }
+
bool isGPRAsmReg() const {
return isRegIdx() && RegIdx.Kind & RegKind_GPR && RegIdx.Index <= 31;
}
+ bool isMM16AsmReg() const {
+ if (!(isRegIdx() && RegIdx.Kind))
+ return false;
+ return ((RegIdx.Index >= 2 && RegIdx.Index <= 7)
+ || RegIdx.Index == 16 || RegIdx.Index == 17);
+ }
+ bool isMM16AsmRegZero() const {
+ if (!(isRegIdx() && RegIdx.Kind))
+ return false;
+ return (RegIdx.Index == 0 ||
+ (RegIdx.Index >= 2 && RegIdx.Index <= 7) ||
+ RegIdx.Index == 17);
+ }
+ bool isMM16AsmRegMoveP() const {
+ if (!(isRegIdx() && RegIdx.Kind))
+ return false;
+ return (RegIdx.Index == 0 || (RegIdx.Index >= 2 && RegIdx.Index <= 3) ||
+ (RegIdx.Index >= 16 && RegIdx.Index <= 20));
+ }
bool isFGRAsmReg() const {
// AFGR64 is $0-$15 but we handle this in getAFGR64()
return isRegIdx() && RegIdx.Kind & RegKind_FGR && RegIdx.Index <= 31;
case k_Memory:
delete Mem.Base;
break;
+ case k_RegList:
+ delete RegList.List;
case k_PhysRegister:
case k_RegisterIndex:
case k_Token:
+ case k_RegPair:
break;
}
}
case k_Token:
OS << Tok.Data;
break;
+ case k_RegList:
+ OS << "RegList< ";
+ for (auto Reg : (*RegList.List))
+ OS << Reg << " ";
+ OS << ">";
+ break;
+ case k_RegPair:
+ OS << "RegPair<" << RegIdx.Index << "," << RegIdx.Index + 1 << ">";
+ break;
}
}
}; // class MipsOperand
return MipsInsts[Opcode];
}
+static bool hasShortDelaySlot(unsigned Opcode) {
+ switch (Opcode) {
+ case Mips::JALS_MM:
+ case Mips::JALRS_MM:
+ case Mips::JALRS16_MM:
+ case Mips::BGEZALS_MM:
+ case Mips::BLTZALS_MM:
+ return true;
+ default:
+ return false;
+ }
+}
+
bool MipsAsmParser::processInstruction(MCInst &Inst, SMLoc IDLoc,
SmallVectorImpl<MCInst> &Instructions) {
const MCInstrDesc &MCID = getInstDesc(Inst.getOpcode());
switch (Opcode) {
default:
break;
+ case Mips::BBIT0:
+ case Mips::BBIT032:
+ case Mips::BBIT1:
+ case Mips::BBIT132:
+ assert(hasCnMips() && "instruction only valid for octeon cpus");
+ // Fall through
+
case Mips::BEQ:
case Mips::BNE:
case Mips::BEQ_MM:
1LL << (inMicroMipsMode() ? 1 : 2)))
return Error(IDLoc, "branch to misaligned address");
break;
+ case Mips::BEQZ16_MM:
+ case Mips::BNEZ16_MM:
+ assert(MCID.getNumOperands() == 2 && "unexpected number of operands");
+ Offset = Inst.getOperand(1);
+ if (!Offset.isImm())
+ break; // We'll deal with this situation later on when applying fixups.
+ if (!isIntN(8, Offset.getImm()))
+ return Error(IDLoc, "branch target out of range");
+ if (OffsetToAlignment(Offset.getImm(), 2LL))
+ return Error(IDLoc, "branch to misaligned address");
+ break;
}
}
"nop instruction");
}
- if (MCID.hasDelaySlot() && Options.isReorder()) {
- // If this instruction has a delay slot and .set reorder is active,
- // emit a NOP after it.
+ if (hasCnMips()) {
+ const unsigned Opcode = Inst.getOpcode();
+ MCOperand Opnd;
+ int Imm;
+
+ switch (Opcode) {
+ default:
+ break;
+
+ case Mips::BBIT0:
+ case Mips::BBIT032:
+ case Mips::BBIT1:
+ case Mips::BBIT132:
+ assert(MCID.getNumOperands() == 3 && "unexpected number of operands");
+ // The offset is handled above
+ Opnd = Inst.getOperand(1);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (Imm < 0 || Imm > (Opcode == Mips::BBIT0 ||
+ Opcode == Mips::BBIT1 ? 63 : 31))
+ return Error(IDLoc, "immediate operand value out of range");
+ if (Imm > 31) {
+ Inst.setOpcode(Opcode == Mips::BBIT0 ? Mips::BBIT032
+ : Mips::BBIT132);
+ Inst.getOperand(1).setImm(Imm - 32);
+ }
+ break;
+
+ case Mips::CINS:
+ case Mips::CINS32:
+ case Mips::EXTS:
+ case Mips::EXTS32:
+ assert(MCID.getNumOperands() == 4 && "unexpected number of operands");
+ // Check length
+ Opnd = Inst.getOperand(3);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (Imm < 0 || Imm > 31)
+ return Error(IDLoc, "immediate operand value out of range");
+ // Check position
+ Opnd = Inst.getOperand(2);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (Imm < 0 || Imm > (Opcode == Mips::CINS ||
+ Opcode == Mips::EXTS ? 63 : 31))
+ return Error(IDLoc, "immediate operand value out of range");
+ if (Imm > 31) {
+ Inst.setOpcode(Opcode == Mips::CINS ? Mips::CINS32 : Mips::EXTS32);
+ Inst.getOperand(2).setImm(Imm - 32);
+ }
+ break;
+
+ case Mips::SEQi:
+ case Mips::SNEi:
+ assert(MCID.getNumOperands() == 3 && "unexpected number of operands");
+ Opnd = Inst.getOperand(2);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (!isInt<10>(Imm))
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ }
+ }
+
+ // If this instruction has a delay slot and .set reorder is active,
+ // emit a NOP after it.
+ if (MCID.hasDelaySlot() && AssemblerOptions.back()->isReorder()) {
Instructions.push_back(Inst);
- MCInst NopInst;
- NopInst.setOpcode(Mips::SLL);
- NopInst.addOperand(MCOperand::CreateReg(Mips::ZERO));
- NopInst.addOperand(MCOperand::CreateReg(Mips::ZERO));
- NopInst.addOperand(MCOperand::CreateImm(0));
- Instructions.push_back(NopInst);
+ createNop(hasShortDelaySlot(Inst.getOpcode()), IDLoc, Instructions);
return false;
}
} // for
} // if load/store
+ if (inMicroMipsMode()) {
+ if (MCID.mayLoad()) {
+ // Try to create 16-bit GP relative load instruction.
+ for (unsigned i = 0; i < MCID.getNumOperands(); i++) {
+ const MCOperandInfo &OpInfo = MCID.OpInfo[i];
+ if ((OpInfo.OperandType == MCOI::OPERAND_MEMORY) ||
+ (OpInfo.OperandType == MCOI::OPERAND_UNKNOWN)) {
+ MCOperand &Op = Inst.getOperand(i);
+ if (Op.isImm()) {
+ int MemOffset = Op.getImm();
+ MCOperand &DstReg = Inst.getOperand(0);
+ MCOperand &BaseReg = Inst.getOperand(1);
+ if (isIntN(9, MemOffset) && (MemOffset % 4 == 0) &&
+ getContext().getRegisterInfo()->getRegClass(
+ Mips::GPRMM16RegClassID).contains(DstReg.getReg()) &&
+ BaseReg.getReg() == Mips::GP) {
+ MCInst TmpInst;
+ TmpInst.setLoc(IDLoc);
+ TmpInst.setOpcode(Mips::LWGP_MM);
+ TmpInst.addOperand(MCOperand::CreateReg(DstReg.getReg()));
+ TmpInst.addOperand(MCOperand::CreateReg(Mips::GP));
+ TmpInst.addOperand(MCOperand::CreateImm(MemOffset));
+ Instructions.push_back(TmpInst);
+ return false;
+ }
+ }
+ }
+ } // for
+ } // if load
+
+ // TODO: Handle this with the AsmOperandClass.PredicateMethod.
+
+ MCOperand Opnd;
+ int Imm;
+
+ switch (Inst.getOpcode()) {
+ default:
+ break;
+ case Mips::ADDIUS5_MM:
+ Opnd = Inst.getOperand(2);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (Imm < -8 || Imm > 7)
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ case Mips::ADDIUSP_MM:
+ Opnd = Inst.getOperand(0);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (Imm < -1032 || Imm > 1028 || (Imm < 8 && Imm > -12) ||
+ Imm % 4 != 0)
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ case Mips::SLL16_MM:
+ case Mips::SRL16_MM:
+ Opnd = Inst.getOperand(2);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (Imm < 1 || Imm > 8)
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ case Mips::LI16_MM:
+ Opnd = Inst.getOperand(1);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (Imm < -1 || Imm > 126)
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ case Mips::ADDIUR2_MM:
+ Opnd = Inst.getOperand(2);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (!(Imm == 1 || Imm == -1 ||
+ ((Imm % 4 == 0) && Imm < 28 && Imm > 0)))
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ case Mips::ADDIUR1SP_MM:
+ Opnd = Inst.getOperand(1);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (OffsetToAlignment(Imm, 4LL))
+ return Error(IDLoc, "misaligned immediate operand value");
+ if (Imm < 0 || Imm > 255)
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ case Mips::ANDI16_MM:
+ Opnd = Inst.getOperand(2);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (!(Imm == 128 || (Imm >= 1 && Imm <= 4) || Imm == 7 || Imm == 8 ||
+ Imm == 15 || Imm == 16 || Imm == 31 || Imm == 32 || Imm == 63 ||
+ Imm == 64 || Imm == 255 || Imm == 32768 || Imm == 65535))
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ case Mips::LBU16_MM:
+ Opnd = Inst.getOperand(2);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (Imm < -1 || Imm > 14)
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ case Mips::SB16_MM:
+ Opnd = Inst.getOperand(2);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (Imm < 0 || Imm > 15)
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ case Mips::LHU16_MM:
+ case Mips::SH16_MM:
+ Opnd = Inst.getOperand(2);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (Imm < 0 || Imm > 30 || (Imm % 2 != 0))
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ case Mips::LW16_MM:
+ case Mips::SW16_MM:
+ Opnd = Inst.getOperand(2);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (Imm < 0 || Imm > 60 || (Imm % 4 != 0))
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ case Mips::CACHE:
+ case Mips::PREF:
+ Opnd = Inst.getOperand(2);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ Imm = Opnd.getImm();
+ if (!isUInt<5>(Imm))
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ case Mips::ADDIUPC_MM:
+ MCOperand Opnd = Inst.getOperand(1);
+ if (!Opnd.isImm())
+ return Error(IDLoc, "expected immediate operand kind");
+ int Imm = Opnd.getImm();
+ if ((Imm % 4 != 0) || !isIntN(25, Imm))
+ return Error(IDLoc, "immediate operand value out of range");
+ break;
+ }
+ }
+
if (needsExpansion(Inst))
return expandInstruction(Inst, IDLoc, Instructions);
else
bool MipsAsmParser::needsExpansion(MCInst &Inst) {
switch (Inst.getOpcode()) {
- case Mips::LoadImm32Reg:
- case Mips::LoadAddr32Imm:
- case Mips::LoadAddr32Reg:
- case Mips::LoadImm64Reg:
+ case Mips::LoadImm32:
+ case Mips::LoadImm64:
+ case Mips::LoadAddrImm32:
+ case Mips::LoadAddrReg32:
+ case Mips::B_MM_Pseudo:
+ case Mips::LWM_MM:
+ case Mips::SWM_MM:
+ case Mips::JalOneReg:
+ case Mips::JalTwoReg:
return true;
default:
return false;
bool MipsAsmParser::expandInstruction(MCInst &Inst, SMLoc IDLoc,
SmallVectorImpl<MCInst> &Instructions) {
switch (Inst.getOpcode()) {
- default:
- assert(0 && "unimplemented expansion");
- return true;
- case Mips::LoadImm32Reg:
+ default: llvm_unreachable("unimplemented expansion");
+ case Mips::LoadImm32:
return expandLoadImm(Inst, IDLoc, Instructions);
- case Mips::LoadImm64Reg:
+ case Mips::LoadImm64:
if (!isGP64bit()) {
- Error(IDLoc, "instruction requires a CPU feature not currently enabled");
+ Error(IDLoc, "instruction requires a 64-bit architecture");
return true;
}
return expandLoadImm(Inst, IDLoc, Instructions);
- case Mips::LoadAddr32Imm:
+ case Mips::LoadAddrImm32:
return expandLoadAddressImm(Inst, IDLoc, Instructions);
- case Mips::LoadAddr32Reg:
+ case Mips::LoadAddrReg32:
return expandLoadAddressReg(Inst, IDLoc, Instructions);
+ case Mips::B_MM_Pseudo:
+ return expandUncondBranchMMPseudo(Inst, IDLoc, Instructions);
+ case Mips::SWM_MM:
+ case Mips::LWM_MM:
+ return expandLoadStoreMultiple(Inst, IDLoc, Instructions);
+ case Mips::JalOneReg:
+ case Mips::JalTwoReg:
+ return expandJalWithRegs(Inst, IDLoc, Instructions);
}
}
}
}
+bool MipsAsmParser::expandJalWithRegs(MCInst &Inst, SMLoc IDLoc,
+ SmallVectorImpl<MCInst> &Instructions) {
+ // Create a JALR instruction which is going to replace the pseudo-JAL.
+ MCInst JalrInst;
+ JalrInst.setLoc(IDLoc);
+ const MCOperand FirstRegOp = Inst.getOperand(0);
+ const unsigned Opcode = Inst.getOpcode();
+
+ if (Opcode == Mips::JalOneReg) {
+ // jal $rs => jalr $rs
+ if (inMicroMipsMode()) {
+ JalrInst.setOpcode(Mips::JALR16_MM);
+ JalrInst.addOperand(FirstRegOp);
+ } else {
+ JalrInst.setOpcode(Mips::JALR);
+ JalrInst.addOperand(MCOperand::CreateReg(Mips::RA));
+ JalrInst.addOperand(FirstRegOp);
+ }
+ } else if (Opcode == Mips::JalTwoReg) {
+ // jal $rd, $rs => jalr $rd, $rs
+ JalrInst.setOpcode(inMicroMipsMode() ? Mips::JALR_MM : Mips::JALR);
+ JalrInst.addOperand(FirstRegOp);
+ const MCOperand SecondRegOp = Inst.getOperand(1);
+ JalrInst.addOperand(SecondRegOp);
+ }
+ Instructions.push_back(JalrInst);
+
+ // If .set reorder is active, emit a NOP after it.
+ if (AssemblerOptions.back()->isReorder()) {
+ // This is a 32-bit NOP because these 2 pseudo-instructions
+ // do not have a short delay slot.
+ MCInst NopInst;
+ NopInst.setOpcode(Mips::SLL);
+ NopInst.addOperand(MCOperand::CreateReg(Mips::ZERO));
+ NopInst.addOperand(MCOperand::CreateReg(Mips::ZERO));
+ NopInst.addOperand(MCOperand::CreateImm(0));
+ Instructions.push_back(NopInst);
+ }
+
+ return false;
+}
+
bool MipsAsmParser::expandLoadImm(MCInst &Inst, SMLoc IDLoc,
SmallVectorImpl<MCInst> &Instructions) {
MCInst tmpInst;
createShiftOr<0, false>(ImmValue, RegOp.getReg(), IDLoc, Instructions);
} else if ((ImmValue & (0xffffLL << 48)) == 0) {
if (!isGP64bit()) {
- Error(IDLoc, "instruction requires a CPU feature not currently enabled");
+ Error(IDLoc, "instruction requires a 64-bit architecture");
return true;
}
createShiftOr<0, true>(ImmValue, RegOp.getReg(), IDLoc, Instructions);
} else {
if (!isGP64bit()) {
- Error(IDLoc, "instruction requires a CPU feature not currently enabled");
+ Error(IDLoc, "instruction requires a 64-bit architecture");
return true;
}
}
}
+bool MipsAsmParser::expandUncondBranchMMPseudo(
+ MCInst &Inst, SMLoc IDLoc, SmallVectorImpl<MCInst> &Instructions) {
+ assert(getInstDesc(Inst.getOpcode()).getNumOperands() == 1 &&
+ "unexpected number of operands");
+
+ MCOperand Offset = Inst.getOperand(0);
+ if (Offset.isExpr()) {
+ Inst.clear();
+ Inst.setOpcode(Mips::BEQ_MM);
+ Inst.addOperand(MCOperand::CreateReg(Mips::ZERO));
+ Inst.addOperand(MCOperand::CreateReg(Mips::ZERO));
+ Inst.addOperand(MCOperand::CreateExpr(Offset.getExpr()));
+ } else {
+ assert(Offset.isImm() && "expected immediate operand kind");
+ if (isIntN(11, Offset.getImm())) {
+ // If offset fits into 11 bits then this instruction becomes microMIPS
+ // 16-bit unconditional branch instruction.
+ Inst.setOpcode(Mips::B16_MM);
+ } else {
+ if (!isIntN(17, Offset.getImm()))
+ Error(IDLoc, "branch target out of range");
+ if (OffsetToAlignment(Offset.getImm(), 1LL << 1))
+ Error(IDLoc, "branch to misaligned address");
+ Inst.clear();
+ Inst.setOpcode(Mips::BEQ_MM);
+ Inst.addOperand(MCOperand::CreateReg(Mips::ZERO));
+ Inst.addOperand(MCOperand::CreateReg(Mips::ZERO));
+ Inst.addOperand(MCOperand::CreateImm(Offset.getImm()));
+ }
+ }
+ Instructions.push_back(Inst);
+
+ // If .set reorder is active, emit a NOP after the branch instruction.
+ if (AssemblerOptions.back()->isReorder())
+ createNop(true, IDLoc, Instructions);
+
+ return false;
+}
+
void MipsAsmParser::expandMemInst(MCInst &Inst, SMLoc IDLoc,
SmallVectorImpl<MCInst> &Instructions,
bool isLoad, bool isImmOpnd) {
TempInst.clear();
}
+bool
+MipsAsmParser::expandLoadStoreMultiple(MCInst &Inst, SMLoc IDLoc,
+ SmallVectorImpl<MCInst> &Instructions) {
+ unsigned OpNum = Inst.getNumOperands();
+ unsigned Opcode = Inst.getOpcode();
+ unsigned NewOpcode = Opcode == Mips::SWM_MM ? Mips::SWM32_MM : Mips::LWM32_MM;
+
+ assert (Inst.getOperand(OpNum - 1).isImm() &&
+ Inst.getOperand(OpNum - 2).isReg() &&
+ Inst.getOperand(OpNum - 3).isReg() && "Invalid instruction operand.");
+
+ if (OpNum < 8 && Inst.getOperand(OpNum - 1).getImm() <= 60 &&
+ Inst.getOperand(OpNum - 1).getImm() >= 0 &&
+ Inst.getOperand(OpNum - 2).getReg() == Mips::SP &&
+ Inst.getOperand(OpNum - 3).getReg() == Mips::RA)
+ // It can be implemented as SWM16 or LWM16 instruction.
+ NewOpcode = Opcode == Mips::SWM_MM ? Mips::SWM16_MM : Mips::LWM16_MM;
+
+ Inst.setOpcode(NewOpcode);
+ Instructions.push_back(Inst);
+ return false;
+}
+
+void MipsAsmParser::createNop(bool hasShortDelaySlot, SMLoc IDLoc,
+ SmallVectorImpl<MCInst> &Instructions) {
+ MCInst NopInst;
+ if (hasShortDelaySlot) {
+ NopInst.setOpcode(Mips::MOVE16_MM);
+ NopInst.addOperand(MCOperand::CreateReg(Mips::ZERO));
+ NopInst.addOperand(MCOperand::CreateReg(Mips::ZERO));
+ } else {
+ NopInst.setOpcode(Mips::SLL);
+ NopInst.addOperand(MCOperand::CreateReg(Mips::ZERO));
+ NopInst.addOperand(MCOperand::CreateReg(Mips::ZERO));
+ NopInst.addOperand(MCOperand::CreateImm(0));
+ }
+ Instructions.push_back(NopInst);
+}
+
unsigned MipsAsmParser::checkTargetMatchPredicate(MCInst &Inst) {
// As described by the Mips32r2 spec, the registers Rd and Rs for
// jalr.hb must be different.
MatchInstructionImpl(Operands, Inst, ErrorInfo, MatchingInlineAsm);
switch (MatchResult) {
- default:
- break;
case Match_Success: {
if (processInstruction(Inst, IDLoc, Instructions))
return true;
case Match_RequiresDifferentSrcAndDst:
return Error(IDLoc, "source and destination must be different");
}
- return true;
+
+ llvm_unreachable("Implement any new match types added!");
}
-void MipsAsmParser::WarnIfAssemblerTemporary(int RegIndex, SMLoc Loc) {
- if ((RegIndex != 0) && ((int)Options.getATRegNum() == RegIndex)) {
+void MipsAsmParser::warnIfAssemblerTemporary(int RegIndex, SMLoc Loc) {
+ if ((RegIndex != 0) &&
+ ((int)AssemblerOptions.back()->getATRegNum() == RegIndex)) {
if (RegIndex == 1)
- Warning(Loc, "Used $at without \".set noat\"");
+ Warning(Loc, "used $at without \".set noat\"");
else
- Warning(Loc, Twine("Used $") + Twine(RegIndex) + " with \".set at=$" +
+ Warning(Loc, Twine("used $") + Twine(RegIndex) + " with \".set at=$" +
Twine(RegIndex) + "\"");
}
}
+void
+MipsAsmParser::printWarningWithFixIt(const Twine &Msg, const Twine &FixMsg,
+ SMRange Range, bool ShowColors) {
+ getSourceManager().PrintMessage(Range.Start, SourceMgr::DK_Warning, Msg,
+ Range, SMFixIt(Range, FixMsg),
+ ShowColors);
+}
+
int MipsAsmParser::matchCPURegisterName(StringRef Name) {
int CC;
.Case("t9", 25)
.Default(-1);
- if (isABI_N32() || isABI_N64()) {
- // Although SGI documentation just cuts out t0-t3 for n32/n64,
- // GNU pushes the values of t0-t3 to override the o32/o64 values for t4-t7
- // We are supporting both cases, so for t0-t3 we'll just push them to t4-t7.
- if (8 <= CC && CC <= 11)
- CC += 4;
+ if (!(isABI_N32() || isABI_N64()))
+ return CC;
+
+ if (12 <= CC && CC <= 15) {
+ // Name is one of t4-t7
+ AsmToken RegTok = getLexer().peekTok();
+ SMRange RegRange = RegTok.getLocRange();
+
+ StringRef FixedName = StringSwitch<StringRef>(Name)
+ .Case("t4", "t0")
+ .Case("t5", "t1")
+ .Case("t6", "t2")
+ .Case("t7", "t3")
+ .Default("");
+ assert(FixedName != "" && "Register name is not one of t4-t7.");
+
+ printWarningWithFixIt("register names $t4-$t7 are only available in O32.",
+ "Did you mean $" + FixedName + "?", RegRange);
+ }
+
+ // Although SGI documentation just cuts out t0-t3 for n32/n64,
+ // GNU pushes the values of t0-t3 to override the o32/o64 values for t4-t7
+ // We are supporting both cases, so for t0-t3 we'll just push them to t4-t7.
+ if (8 <= CC && CC <= 11)
+ CC += 4;
+
+ if (CC == -1)
+ CC = StringSwitch<unsigned>(Name)
+ .Case("a4", 8)
+ .Case("a5", 9)
+ .Case("a6", 10)
+ .Case("a7", 11)
+ .Case("kt0", 26)
+ .Case("kt1", 27)
+ .Default(-1);
- if (CC == -1)
- CC = StringSwitch<unsigned>(Name)
- .Case("a4", 8)
- .Case("a5", 9)
- .Case("a6", 10)
- .Case("a7", 11)
- .Case("kt0", 26)
- .Case("kt1", 27)
- .Default(-1);
- }
+ return CC;
+}
+
+int MipsAsmParser::matchHWRegsRegisterName(StringRef Name) {
+ int CC;
+
+ CC = StringSwitch<unsigned>(Name)
+ .Case("hwr_cpunum", 0)
+ .Case("hwr_synci_step", 1)
+ .Case("hwr_cc", 2)
+ .Case("hwr_ccres", 3)
+ .Case("hwr_ulr", 29)
+ .Default(-1);
return CC;
}
if (Reg > 31)
return false;
- aTReg = Reg;
+ ATReg = Reg;
return true;
}
int MipsAsmParser::getATReg(SMLoc Loc) {
- int AT = Options.getATRegNum();
+ int AT = AssemblerOptions.back()->getATRegNum();
if (AT == 0)
reportParseError(Loc,
- "Pseudo instruction requires $at, which is not available");
+ "pseudo-instruction requires $at, which is not available");
return AT;
}
return getReg(RegClass, RegNum);
}
-bool MipsAsmParser::ParseOperand(OperandVector &Operands, StringRef Mnemonic) {
- DEBUG(dbgs() << "ParseOperand\n");
+bool MipsAsmParser::parseOperand(OperandVector &Operands, StringRef Mnemonic) {
+ MCAsmParser &Parser = getParser();
+ DEBUG(dbgs() << "parseOperand\n");
// Check if the current operand has a custom associated parser, if so, try to
// custom parse the operand, or fallback to the general approach.
// for div, divu, and similar instructions because it is not an operand
// to the instruction definition but an explicit register. Special case
// this situation for now.
- if (ParseAnyRegister(Operands) != MatchOperand_NoMatch)
+ if (parseAnyRegister(Operands) != MatchOperand_NoMatch)
return false;
// Maybe it is a symbol reference.
case AsmToken::Tilde:
case AsmToken::String: {
DEBUG(dbgs() << ".. generic integer\n");
- OperandMatchResultTy ResTy = ParseImm(Operands);
+ OperandMatchResultTy ResTy = parseImm(Operands);
return ResTy != MatchOperand_Success;
}
case AsmToken::Percent: {
Val = ((MCE->getValue() + 0x800080008000LL) >> 48) & 0xffff;
break;
default:
- report_fatal_error("Unsupported reloc value!");
+ report_fatal_error("unsupported reloc value");
}
return MCConstantExpr::Create(Val, getContext());
}
}
bool MipsAsmParser::parseRelocOperand(const MCExpr *&Res) {
+ MCAsmParser &Parser = getParser();
Parser.Lex(); // Eat the % token.
const AsmToken &Tok = Parser.getTok(); // Get next token, operation.
if (Tok.isNot(AsmToken::Identifier))
bool MipsAsmParser::ParseRegister(unsigned &RegNo, SMLoc &StartLoc,
SMLoc &EndLoc) {
SmallVector<std::unique_ptr<MCParsedAsmOperand>, 1> Operands;
- OperandMatchResultTy ResTy = ParseAnyRegister(Operands);
+ OperandMatchResultTy ResTy = parseAnyRegister(Operands);
if (ResTy == MatchOperand_Success) {
assert(Operands.size() == 1);
MipsOperand &Operand = static_cast<MipsOperand &>(*Operands.front());
}
bool MipsAsmParser::parseMemOffset(const MCExpr *&Res, bool isParenExpr) {
+ MCAsmParser &Parser = getParser();
SMLoc S;
bool Result = true;
MipsAsmParser::OperandMatchResultTy
MipsAsmParser::parseMemOperand(OperandVector &Operands) {
+ MCAsmParser &Parser = getParser();
DEBUG(dbgs() << "parseMemOperand\n");
const MCExpr *IdVal = nullptr;
SMLoc S;
// Zero register assumed, add a memory operand with ZERO as its base.
// "Base" will be managed by k_Memory.
- auto Base = MipsOperand::CreateGPRReg(0, getContext().getRegisterInfo(),
+ auto Base = MipsOperand::createGPRReg(0, getContext().getRegisterInfo(),
S, E, *this);
Operands.push_back(
MipsOperand::CreateMem(std::move(Base), IdVal, S, E, *this));
Parser.Lex(); // Eat the '(' token.
}
- Res = ParseAnyRegister(Operands);
+ Res = parseAnyRegister(Operands);
if (Res != MatchOperand_Success)
return Res;
}
bool MipsAsmParser::searchSymbolAlias(OperandVector &Operands) {
-
+ MCAsmParser &Parser = getParser();
MCSymbol *Sym = getContext().LookupSymbol(Parser.getTok().getIdentifier());
if (Sym) {
SMLoc S = Parser.getTok().getLoc();
return false;
if (Expr->getKind() == MCExpr::SymbolRef) {
const MCSymbolRefExpr *Ref = static_cast<const MCSymbolRefExpr *>(Expr);
- const StringRef DefSymbol = Ref->getSymbol().getName();
+ StringRef DefSymbol = Ref->getSymbol().getName();
if (DefSymbol.startswith("$")) {
OperandMatchResultTy ResTy =
- MatchAnyRegisterNameWithoutDollar(Operands, DefSymbol.substr(1), S);
+ matchAnyRegisterNameWithoutDollar(Operands, DefSymbol.substr(1), S);
if (ResTy == MatchOperand_Success) {
Parser.Lex();
return true;
}
MipsAsmParser::OperandMatchResultTy
-MipsAsmParser::MatchAnyRegisterNameWithoutDollar(OperandVector &Operands,
+MipsAsmParser::matchAnyRegisterNameWithoutDollar(OperandVector &Operands,
StringRef Identifier,
SMLoc S) {
int Index = matchCPURegisterName(Identifier);
if (Index != -1) {
- Operands.push_back(MipsOperand::CreateGPRReg(
+ Operands.push_back(MipsOperand::createGPRReg(
+ Index, getContext().getRegisterInfo(), S, getLexer().getLoc(), *this));
+ return MatchOperand_Success;
+ }
+
+ Index = matchHWRegsRegisterName(Identifier);
+ if (Index != -1) {
+ Operands.push_back(MipsOperand::createHWRegsReg(
Index, getContext().getRegisterInfo(), S, getLexer().getLoc(), *this));
return MatchOperand_Success;
}
Index = matchFPURegisterName(Identifier);
if (Index != -1) {
- Operands.push_back(MipsOperand::CreateFGRReg(
+ Operands.push_back(MipsOperand::createFGRReg(
Index, getContext().getRegisterInfo(), S, getLexer().getLoc(), *this));
return MatchOperand_Success;
}
Index = matchFCCRegisterName(Identifier);
if (Index != -1) {
- Operands.push_back(MipsOperand::CreateFCCReg(
+ Operands.push_back(MipsOperand::createFCCReg(
Index, getContext().getRegisterInfo(), S, getLexer().getLoc(), *this));
return MatchOperand_Success;
}
Index = matchACRegisterName(Identifier);
if (Index != -1) {
- Operands.push_back(MipsOperand::CreateACCReg(
+ Operands.push_back(MipsOperand::createACCReg(
Index, getContext().getRegisterInfo(), S, getLexer().getLoc(), *this));
return MatchOperand_Success;
}
Index = matchMSA128RegisterName(Identifier);
if (Index != -1) {
- Operands.push_back(MipsOperand::CreateMSA128Reg(
+ Operands.push_back(MipsOperand::createMSA128Reg(
Index, getContext().getRegisterInfo(), S, getLexer().getLoc(), *this));
return MatchOperand_Success;
}
Index = matchMSA128CtrlRegisterName(Identifier);
if (Index != -1) {
- Operands.push_back(MipsOperand::CreateMSACtrlReg(
+ Operands.push_back(MipsOperand::createMSACtrlReg(
Index, getContext().getRegisterInfo(), S, getLexer().getLoc(), *this));
return MatchOperand_Success;
}
}
MipsAsmParser::OperandMatchResultTy
-MipsAsmParser::MatchAnyRegisterWithoutDollar(OperandVector &Operands, SMLoc S) {
+MipsAsmParser::matchAnyRegisterWithoutDollar(OperandVector &Operands, SMLoc S) {
+ MCAsmParser &Parser = getParser();
auto Token = Parser.getLexer().peekTok(false);
if (Token.is(AsmToken::Identifier)) {
DEBUG(dbgs() << ".. identifier\n");
StringRef Identifier = Token.getIdentifier();
OperandMatchResultTy ResTy =
- MatchAnyRegisterNameWithoutDollar(Operands, Identifier, S);
+ matchAnyRegisterNameWithoutDollar(Operands, Identifier, S);
return ResTy;
} else if (Token.is(AsmToken::Integer)) {
DEBUG(dbgs() << ".. integer\n");
- Operands.push_back(MipsOperand::CreateNumericReg(
+ Operands.push_back(MipsOperand::createNumericReg(
Token.getIntVal(), getContext().getRegisterInfo(), S, Token.getLoc(),
*this));
return MatchOperand_Success;
}
MipsAsmParser::OperandMatchResultTy
-MipsAsmParser::ParseAnyRegister(OperandVector &Operands) {
- DEBUG(dbgs() << "ParseAnyRegister\n");
+MipsAsmParser::parseAnyRegister(OperandVector &Operands) {
+ MCAsmParser &Parser = getParser();
+ DEBUG(dbgs() << "parseAnyRegister\n");
auto Token = Parser.getTok();
}
DEBUG(dbgs() << ".. $\n");
- OperandMatchResultTy ResTy = MatchAnyRegisterWithoutDollar(Operands, S);
+ OperandMatchResultTy ResTy = matchAnyRegisterWithoutDollar(Operands, S);
if (ResTy == MatchOperand_Success) {
Parser.Lex(); // $
Parser.Lex(); // identifier
}
MipsAsmParser::OperandMatchResultTy
-MipsAsmParser::ParseImm(OperandVector &Operands) {
+MipsAsmParser::parseImm(OperandVector &Operands) {
+ MCAsmParser &Parser = getParser();
switch (getLexer().getKind()) {
default:
return MatchOperand_NoMatch;
}
MipsAsmParser::OperandMatchResultTy
-MipsAsmParser::ParseJumpTarget(OperandVector &Operands) {
- DEBUG(dbgs() << "ParseJumpTarget\n");
+MipsAsmParser::parseJumpTarget(OperandVector &Operands) {
+ MCAsmParser &Parser = getParser();
+ DEBUG(dbgs() << "parseJumpTarget\n");
SMLoc S = getLexer().getLoc();
// Integers and expressions are acceptable
- OperandMatchResultTy ResTy = ParseImm(Operands);
+ OperandMatchResultTy ResTy = parseImm(Operands);
if (ResTy != MatchOperand_NoMatch)
return ResTy;
// Registers are a valid target and have priority over symbols.
- ResTy = ParseAnyRegister(Operands);
+ ResTy = parseAnyRegister(Operands);
if (ResTy != MatchOperand_NoMatch)
return ResTy;
MipsAsmParser::OperandMatchResultTy
MipsAsmParser::parseInvNum(OperandVector &Operands) {
+ MCAsmParser &Parser = getParser();
const MCExpr *IdVal;
// If the first token is '$' we may have register operand.
if (Parser.getTok().is(AsmToken::Dollar))
}
MipsAsmParser::OperandMatchResultTy
-MipsAsmParser::ParseLSAImm(OperandVector &Operands) {
+MipsAsmParser::parseLSAImm(OperandVector &Operands) {
+ MCAsmParser &Parser = getParser();
switch (getLexer().getKind()) {
default:
return MatchOperand_NoMatch;
return MatchOperand_Success;
}
+MipsAsmParser::OperandMatchResultTy
+MipsAsmParser::parseRegisterList(OperandVector &Operands) {
+ MCAsmParser &Parser = getParser();
+ SmallVector<unsigned, 10> Regs;
+ unsigned RegNo;
+ unsigned PrevReg = Mips::NoRegister;
+ bool RegRange = false;
+ SmallVector<std::unique_ptr<MCParsedAsmOperand>, 8> TmpOperands;
+
+ if (Parser.getTok().isNot(AsmToken::Dollar))
+ return MatchOperand_ParseFail;
+
+ SMLoc S = Parser.getTok().getLoc();
+ while (parseAnyRegister(TmpOperands) == MatchOperand_Success) {
+ SMLoc E = getLexer().getLoc();
+ MipsOperand &Reg = static_cast<MipsOperand &>(*TmpOperands.back());
+ RegNo = isGP64bit() ? Reg.getGPR64Reg() : Reg.getGPR32Reg();
+ if (RegRange) {
+ // Remove last register operand because registers from register range
+ // should be inserted first.
+ if (RegNo == Mips::RA) {
+ Regs.push_back(RegNo);
+ } else {
+ unsigned TmpReg = PrevReg + 1;
+ while (TmpReg <= RegNo) {
+ if ((TmpReg < Mips::S0) || (TmpReg > Mips::S7)) {
+ Error(E, "invalid register operand");
+ return MatchOperand_ParseFail;
+ }
+
+ PrevReg = TmpReg;
+ Regs.push_back(TmpReg++);
+ }
+ }
+
+ RegRange = false;
+ } else {
+ if ((PrevReg == Mips::NoRegister) && (RegNo != Mips::S0) &&
+ (RegNo != Mips::RA)) {
+ Error(E, "$16 or $31 expected");
+ return MatchOperand_ParseFail;
+ } else if (((RegNo < Mips::S0) || (RegNo > Mips::S7)) &&
+ (RegNo != Mips::FP) && (RegNo != Mips::RA)) {
+ Error(E, "invalid register operand");
+ return MatchOperand_ParseFail;
+ } else if ((PrevReg != Mips::NoRegister) && (RegNo != PrevReg + 1) &&
+ (RegNo != Mips::FP) && (RegNo != Mips::RA)) {
+ Error(E, "consecutive register numbers expected");
+ return MatchOperand_ParseFail;
+ }
+
+ Regs.push_back(RegNo);
+ }
+
+ if (Parser.getTok().is(AsmToken::Minus))
+ RegRange = true;
+
+ if (!Parser.getTok().isNot(AsmToken::Minus) &&
+ !Parser.getTok().isNot(AsmToken::Comma)) {
+ Error(E, "',' or '-' expected");
+ return MatchOperand_ParseFail;
+ }
+
+ Lex(); // Consume comma or minus
+ if (Parser.getTok().isNot(AsmToken::Dollar))
+ break;
+
+ PrevReg = RegNo;
+ }
+
+ SMLoc E = Parser.getTok().getLoc();
+ Operands.push_back(MipsOperand::CreateRegList(Regs, S, E, *this));
+ parseMemOperand(Operands);
+ return MatchOperand_Success;
+}
+
+MipsAsmParser::OperandMatchResultTy
+MipsAsmParser::parseRegisterPair(OperandVector &Operands) {
+ MCAsmParser &Parser = getParser();
+
+ SMLoc S = Parser.getTok().getLoc();
+ if (parseAnyRegister(Operands) != MatchOperand_Success)
+ return MatchOperand_ParseFail;
+
+ SMLoc E = Parser.getTok().getLoc();
+ MipsOperand &Op = static_cast<MipsOperand &>(*Operands.back());
+ unsigned Reg = Op.getGPR32Reg();
+ Operands.pop_back();
+ Operands.push_back(MipsOperand::CreateRegPair(Reg, S, E, *this));
+ return MatchOperand_Success;
+}
+
+MipsAsmParser::OperandMatchResultTy
+MipsAsmParser::parseMovePRegPair(OperandVector &Operands) {
+ MCAsmParser &Parser = getParser();
+ SmallVector<std::unique_ptr<MCParsedAsmOperand>, 8> TmpOperands;
+ SmallVector<unsigned, 10> Regs;
+
+ if (Parser.getTok().isNot(AsmToken::Dollar))
+ return MatchOperand_ParseFail;
+
+ SMLoc S = Parser.getTok().getLoc();
+
+ if (parseAnyRegister(TmpOperands) != MatchOperand_Success)
+ return MatchOperand_ParseFail;
+
+ MipsOperand *Reg = &static_cast<MipsOperand &>(*TmpOperands.back());
+ unsigned RegNo = isGP64bit() ? Reg->getGPR64Reg() : Reg->getGPR32Reg();
+ Regs.push_back(RegNo);
+
+ SMLoc E = Parser.getTok().getLoc();
+ if (Parser.getTok().isNot(AsmToken::Comma)) {
+ Error(E, "',' expected");
+ return MatchOperand_ParseFail;
+ }
+
+ // Remove comma.
+ Parser.Lex();
+
+ if (parseAnyRegister(TmpOperands) != MatchOperand_Success)
+ return MatchOperand_ParseFail;
+
+ Reg = &static_cast<MipsOperand &>(*TmpOperands.back());
+ RegNo = isGP64bit() ? Reg->getGPR64Reg() : Reg->getGPR32Reg();
+ Regs.push_back(RegNo);
+
+ Operands.push_back(MipsOperand::CreateRegList(Regs, S, E, *this));
+
+ return MatchOperand_Success;
+}
+
MCSymbolRefExpr::VariantKind MipsAsmParser::getVariantKind(StringRef Symbol) {
MCSymbolRefExpr::VariantKind VK =
/// ::= '(', register, ')'
/// handle it before we iterate so we don't get tripped up by the lack of
/// a comma.
-bool MipsAsmParser::ParseParenSuffix(StringRef Name, OperandVector &Operands) {
+bool MipsAsmParser::parseParenSuffix(StringRef Name, OperandVector &Operands) {
+ MCAsmParser &Parser = getParser();
if (getLexer().is(AsmToken::LParen)) {
Operands.push_back(
MipsOperand::CreateToken("(", getLexer().getLoc(), *this));
Parser.Lex();
- if (ParseOperand(Operands, Name)) {
+ if (parseOperand(Operands, Name)) {
SMLoc Loc = getLexer().getLoc();
Parser.eatToEndOfStatement();
return Error(Loc, "unexpected token in argument list");
/// ::= '[', integer, ']'
/// handle it before we iterate so we don't get tripped up by the lack of
/// a comma.
-bool MipsAsmParser::ParseBracketSuffix(StringRef Name,
+bool MipsAsmParser::parseBracketSuffix(StringRef Name,
OperandVector &Operands) {
+ MCAsmParser &Parser = getParser();
if (getLexer().is(AsmToken::LBrac)) {
Operands.push_back(
MipsOperand::CreateToken("[", getLexer().getLoc(), *this));
Parser.Lex();
- if (ParseOperand(Operands, Name)) {
+ if (parseOperand(Operands, Name)) {
SMLoc Loc = getLexer().getLoc();
Parser.eatToEndOfStatement();
return Error(Loc, "unexpected token in argument list");
bool MipsAsmParser::ParseInstruction(ParseInstructionInfo &Info, StringRef Name,
SMLoc NameLoc, OperandVector &Operands) {
+ MCAsmParser &Parser = getParser();
DEBUG(dbgs() << "ParseInstruction\n");
// We have reached first instruction, module directive are now forbidden.
// Check if we have valid mnemonic
if (!mnemonicIsValid(Name, 0)) {
Parser.eatToEndOfStatement();
- return Error(NameLoc, "Unknown instruction");
+ return Error(NameLoc, "unknown instruction");
}
// First operand in MCInst is instruction mnemonic.
Operands.push_back(MipsOperand::CreateToken(Name, NameLoc, *this));
// Read the remaining operands.
if (getLexer().isNot(AsmToken::EndOfStatement)) {
// Read the first operand.
- if (ParseOperand(Operands, Name)) {
+ if (parseOperand(Operands, Name)) {
SMLoc Loc = getLexer().getLoc();
Parser.eatToEndOfStatement();
return Error(Loc, "unexpected token in argument list");
}
- if (getLexer().is(AsmToken::LBrac) && ParseBracketSuffix(Name, Operands))
+ if (getLexer().is(AsmToken::LBrac) && parseBracketSuffix(Name, Operands))
return true;
// AFAIK, parenthesis suffixes are never on the first operand
while (getLexer().is(AsmToken::Comma)) {
Parser.Lex(); // Eat the comma.
// Parse and remember the operand.
- if (ParseOperand(Operands, Name)) {
+ if (parseOperand(Operands, Name)) {
SMLoc Loc = getLexer().getLoc();
Parser.eatToEndOfStatement();
return Error(Loc, "unexpected token in argument list");
}
// Parse bracket and parenthesis suffixes before we iterate
if (getLexer().is(AsmToken::LBrac)) {
- if (ParseBracketSuffix(Name, Operands))
+ if (parseBracketSuffix(Name, Operands))
return true;
} else if (getLexer().is(AsmToken::LParen) &&
- ParseParenSuffix(Name, Operands))
+ parseParenSuffix(Name, Operands))
return true;
}
}
}
bool MipsAsmParser::reportParseError(Twine ErrorMsg) {
+ MCAsmParser &Parser = getParser();
SMLoc Loc = getLexer().getLoc();
Parser.eatToEndOfStatement();
return Error(Loc, ErrorMsg);
}
bool MipsAsmParser::parseSetNoAtDirective() {
+ MCAsmParser &Parser = getParser();
// Line should look like: ".set noat".
- // set at reg to 0.
- Options.setATReg(0);
- // eat noat
- Parser.Lex();
+
+ // Set the $at register to $0.
+ AssemblerOptions.back()->setATReg(0);
+
+ Parser.Lex(); // Eat "noat".
+
// If this is not the end of the statement, report an error.
if (getLexer().isNot(AsmToken::EndOfStatement)) {
- reportParseError("unexpected token in statement");
+ reportParseError("unexpected token, expected end of statement");
return false;
}
+
+ getTargetStreamer().emitDirectiveSetNoAt();
Parser.Lex(); // Consume the EndOfStatement.
return false;
}
bool MipsAsmParser::parseSetAtDirective() {
- // Line can be .set at - defaults to $1
- // or .set at=$reg
- int AtRegNo;
- getParser().Lex();
+ // Line can be: ".set at", which sets $at to $1
+ // or ".set at=$reg", which sets $at to $reg.
+ MCAsmParser &Parser = getParser();
+ Parser.Lex(); // Eat "at".
+
if (getLexer().is(AsmToken::EndOfStatement)) {
- Options.setATReg(1);
+ // No register was specified, so we set $at to $1.
+ AssemblerOptions.back()->setATReg(1);
+
+ getTargetStreamer().emitDirectiveSetAt();
Parser.Lex(); // Consume the EndOfStatement.
return false;
- } else if (getLexer().is(AsmToken::Equal)) {
- getParser().Lex(); // Eat the '='.
- if (getLexer().isNot(AsmToken::Dollar)) {
- reportParseError("unexpected token in statement");
+ }
+
+ if (getLexer().isNot(AsmToken::Equal)) {
+ reportParseError("unexpected token, expected equals sign");
+ return false;
+ }
+ Parser.Lex(); // Eat "=".
+
+ if (getLexer().isNot(AsmToken::Dollar)) {
+ if (getLexer().is(AsmToken::EndOfStatement)) {
+ reportParseError("no register specified");
return false;
- }
- Parser.Lex(); // Eat the '$'.
- const AsmToken &Reg = Parser.getTok();
- if (Reg.is(AsmToken::Identifier)) {
- AtRegNo = matchCPURegisterName(Reg.getIdentifier());
- } else if (Reg.is(AsmToken::Integer)) {
- AtRegNo = Reg.getIntVal();
} else {
- reportParseError("unexpected token in statement");
- return false;
- }
-
- if (AtRegNo < 0 || AtRegNo > 31) {
- reportParseError("unexpected token in statement");
+ reportParseError("unexpected token, expected dollar sign '$'");
return false;
}
+ }
+ Parser.Lex(); // Eat "$".
- if (!Options.setATReg(AtRegNo)) {
- reportParseError("unexpected token in statement");
- return false;
- }
- getParser().Lex(); // Eat the register.
+ // Find out what "reg" is.
+ unsigned AtRegNo;
+ const AsmToken &Reg = Parser.getTok();
+ if (Reg.is(AsmToken::Identifier)) {
+ AtRegNo = matchCPURegisterName(Reg.getIdentifier());
+ } else if (Reg.is(AsmToken::Integer)) {
+ AtRegNo = Reg.getIntVal();
+ } else {
+ reportParseError("unexpected token, expected identifier or integer");
+ return false;
+ }
- if (getLexer().isNot(AsmToken::EndOfStatement)) {
- reportParseError("unexpected token in statement");
- return false;
- }
- Parser.Lex(); // Consume the EndOfStatement.
+ // Check if $reg is a valid register. If it is, set $at to $reg.
+ if (!AssemblerOptions.back()->setATReg(AtRegNo)) {
+ reportParseError("invalid register");
return false;
- } else {
- reportParseError("unexpected token in statement");
+ }
+ Parser.Lex(); // Eat "reg".
+
+ // If this is not the end of the statement, report an error.
+ if (getLexer().isNot(AsmToken::EndOfStatement)) {
+ reportParseError("unexpected token, expected end of statement");
return false;
}
+
+ getTargetStreamer().emitDirectiveSetAtWithArg(AtRegNo);
+
+ Parser.Lex(); // Consume the EndOfStatement.
+ return false;
}
bool MipsAsmParser::parseSetReorderDirective() {
+ MCAsmParser &Parser = getParser();
Parser.Lex();
// If this is not the end of the statement, report an error.
if (getLexer().isNot(AsmToken::EndOfStatement)) {
- reportParseError("unexpected token in statement");
+ reportParseError("unexpected token, expected end of statement");
return false;
}
- Options.setReorder();
+ AssemblerOptions.back()->setReorder();
getTargetStreamer().emitDirectiveSetReorder();
Parser.Lex(); // Consume the EndOfStatement.
return false;
}
bool MipsAsmParser::parseSetNoReorderDirective() {
+ MCAsmParser &Parser = getParser();
Parser.Lex();
// If this is not the end of the statement, report an error.
if (getLexer().isNot(AsmToken::EndOfStatement)) {
- reportParseError("unexpected token in statement");
+ reportParseError("unexpected token, expected end of statement");
return false;
}
- Options.setNoreorder();
+ AssemblerOptions.back()->setNoReorder();
getTargetStreamer().emitDirectiveSetNoReorder();
Parser.Lex(); // Consume the EndOfStatement.
return false;
}
bool MipsAsmParser::parseSetMacroDirective() {
+ MCAsmParser &Parser = getParser();
Parser.Lex();
// If this is not the end of the statement, report an error.
if (getLexer().isNot(AsmToken::EndOfStatement)) {
- reportParseError("unexpected token in statement");
+ reportParseError("unexpected token, expected end of statement");
return false;
}
- Options.setMacro();
+ AssemblerOptions.back()->setMacro();
Parser.Lex(); // Consume the EndOfStatement.
return false;
}
bool MipsAsmParser::parseSetNoMacroDirective() {
+ MCAsmParser &Parser = getParser();
Parser.Lex();
// If this is not the end of the statement, report an error.
if (getLexer().isNot(AsmToken::EndOfStatement)) {
- reportParseError("`noreorder' must be set before `nomacro'");
+ reportParseError("unexpected token, expected end of statement");
return false;
}
- if (Options.isReorder()) {
+ if (AssemblerOptions.back()->isReorder()) {
reportParseError("`noreorder' must be set before `nomacro'");
return false;
}
- Options.setNomacro();
+ AssemblerOptions.back()->setNoMacro();
Parser.Lex(); // Consume the EndOfStatement.
return false;
}
bool MipsAsmParser::parseSetMsaDirective() {
+ MCAsmParser &Parser = getParser();
Parser.Lex();
// If this is not the end of the statement, report an error.
if (getLexer().isNot(AsmToken::EndOfStatement))
- return reportParseError("unexpected token in statement");
+ return reportParseError("unexpected token, expected end of statement");
setFeatureBits(Mips::FeatureMSA, "msa");
getTargetStreamer().emitDirectiveSetMsa();
}
bool MipsAsmParser::parseSetNoMsaDirective() {
+ MCAsmParser &Parser = getParser();
Parser.Lex();
// If this is not the end of the statement, report an error.
if (getLexer().isNot(AsmToken::EndOfStatement))
- return reportParseError("unexpected token in statement");
+ return reportParseError("unexpected token, expected end of statement");
clearFeatureBits(Mips::FeatureMSA, "msa");
getTargetStreamer().emitDirectiveSetNoMsa();
return false;
}
+bool MipsAsmParser::parseSetNoDspDirective() {
+ MCAsmParser &Parser = getParser();
+ Parser.Lex(); // Eat "nodsp".
+
+ // If this is not the end of the statement, report an error.
+ if (getLexer().isNot(AsmToken::EndOfStatement)) {
+ reportParseError("unexpected token, expected end of statement");
+ return false;
+ }
+
+ clearFeatureBits(Mips::FeatureDSP, "dsp");
+ getTargetStreamer().emitDirectiveSetNoDsp();
+ return false;
+}
+
+bool MipsAsmParser::parseSetMips16Directive() {
+ MCAsmParser &Parser = getParser();
+ Parser.Lex(); // Eat "mips16".
+
+ // If this is not the end of the statement, report an error.
+ if (getLexer().isNot(AsmToken::EndOfStatement)) {
+ reportParseError("unexpected token, expected end of statement");
+ return false;
+ }
+
+ setFeatureBits(Mips::FeatureMips16, "mips16");
+ getTargetStreamer().emitDirectiveSetMips16();
+ Parser.Lex(); // Consume the EndOfStatement.
+ return false;
+}
+
bool MipsAsmParser::parseSetNoMips16Directive() {
- Parser.Lex();
+ MCAsmParser &Parser = getParser();
+ Parser.Lex(); // Eat "nomips16".
+
// If this is not the end of the statement, report an error.
if (getLexer().isNot(AsmToken::EndOfStatement)) {
- reportParseError("unexpected token in statement");
+ reportParseError("unexpected token, expected end of statement");
return false;
}
- // For now do nothing.
+
+ clearFeatureBits(Mips::FeatureMips16, "mips16");
+ getTargetStreamer().emitDirectiveSetNoMips16();
Parser.Lex(); // Consume the EndOfStatement.
return false;
}
bool MipsAsmParser::parseSetFpDirective() {
+ MCAsmParser &Parser = getParser();
MipsABIFlagsSection::FpABIKind FpAbiVal;
// Line can be: .set fp=32
// .set fp=xx
Parser.Lex(); // Eat fp token
AsmToken Tok = Parser.getTok();
if (Tok.isNot(AsmToken::Equal)) {
- reportParseError("unexpected token in statement");
+ reportParseError("unexpected token, expected equals sign '='");
return false;
}
Parser.Lex(); // Eat '=' token.
return false;
if (getLexer().isNot(AsmToken::EndOfStatement)) {
- reportParseError("unexpected token in statement");
+ reportParseError("unexpected token, expected end of statement");
return false;
}
getTargetStreamer().emitDirectiveSetFp(FpAbiVal);
return false;
}
+bool MipsAsmParser::parseSetPopDirective() {
+ MCAsmParser &Parser = getParser();
+ SMLoc Loc = getLexer().getLoc();
+
+ Parser.Lex();
+ if (getLexer().isNot(AsmToken::EndOfStatement))
+ return reportParseError("unexpected token, expected end of statement");
+
+ // Always keep an element on the options "stack" to prevent the user
+ // from changing the initial options. This is how we remember them.
+ if (AssemblerOptions.size() == 2)
+ return reportParseError(Loc, ".set pop with no .set push");
+
+ AssemblerOptions.pop_back();
+ setAvailableFeatures(AssemblerOptions.back()->getFeatures());
+
+ getTargetStreamer().emitDirectiveSetPop();
+ return false;
+}
+
+bool MipsAsmParser::parseSetPushDirective() {
+ MCAsmParser &Parser = getParser();
+ Parser.Lex();
+ if (getLexer().isNot(AsmToken::EndOfStatement))
+ return reportParseError("unexpected token, expected end of statement");
+
+ // Create a copy of the current assembler options environment and push it.
+ AssemblerOptions.push_back(
+ make_unique<MipsAssemblerOptions>(AssemblerOptions.back().get()));
+
+ getTargetStreamer().emitDirectiveSetPush();
+ return false;
+}
+
bool MipsAsmParser::parseSetAssignment() {
StringRef Name;
const MCExpr *Value;
+ MCAsmParser &Parser = getParser();
if (Parser.parseIdentifier(Name))
reportParseError("expected identifier after .set");
if (getLexer().isNot(AsmToken::Comma))
- return reportParseError("unexpected token in .set directive");
+ return reportParseError("unexpected token, expected comma");
Lex(); // Eat comma
if (Parser.parseExpression(Value))
return false;
}
+bool MipsAsmParser::parseSetMips0Directive() {
+ MCAsmParser &Parser = getParser();
+ Parser.Lex();
+ if (getLexer().isNot(AsmToken::EndOfStatement))
+ return reportParseError("unexpected token, expected end of statement");
+
+ // Reset assembler options to their initial values.
+ setAvailableFeatures(AssemblerOptions.front()->getFeatures());
+ AssemblerOptions.back()->setFeatures(AssemblerOptions.front()->getFeatures());
+
+ getTargetStreamer().emitDirectiveSetMips0();
+ return false;
+}
+
+bool MipsAsmParser::parseSetArchDirective() {
+ MCAsmParser &Parser = getParser();
+ Parser.Lex();
+ if (getLexer().isNot(AsmToken::Equal))
+ return reportParseError("unexpected token, expected equals sign");
+
+ Parser.Lex();
+ StringRef Arch;
+ if (Parser.parseIdentifier(Arch))
+ return reportParseError("expected arch identifier");
+
+ StringRef ArchFeatureName =
+ StringSwitch<StringRef>(Arch)
+ .Case("mips1", "mips1")
+ .Case("mips2", "mips2")
+ .Case("mips3", "mips3")
+ .Case("mips4", "mips4")
+ .Case("mips5", "mips5")
+ .Case("mips32", "mips32")
+ .Case("mips32r2", "mips32r2")
+ .Case("mips32r3", "mips32r3")
+ .Case("mips32r5", "mips32r5")
+ .Case("mips32r6", "mips32r6")
+ .Case("mips64", "mips64")
+ .Case("mips64r2", "mips64r2")
+ .Case("mips64r3", "mips64r3")
+ .Case("mips64r5", "mips64r5")
+ .Case("mips64r6", "mips64r6")
+ .Case("cnmips", "cnmips")
+ .Case("r4000", "mips3") // This is an implementation of Mips3.
+ .Default("");
+
+ if (ArchFeatureName.empty())
+ return reportParseError("unsupported architecture");
+
+ selectArch(ArchFeatureName);
+ getTargetStreamer().emitDirectiveSetArch(Arch);
+ return false;
+}
+
bool MipsAsmParser::parseSetFeature(uint64_t Feature) {
+ MCAsmParser &Parser = getParser();
Parser.Lex();
if (getLexer().isNot(AsmToken::EndOfStatement))
- return reportParseError("unexpected token in .set directive");
+ return reportParseError("unexpected token, expected end of statement");
switch (Feature) {
default:
case Mips::FeatureMicroMips:
getTargetStreamer().emitDirectiveSetMicroMips();
break;
- case Mips::FeatureMips16:
- getTargetStreamer().emitDirectiveSetMips16();
- break;
case Mips::FeatureMips1:
selectArch("mips1");
getTargetStreamer().emitDirectiveSetMips1();
selectArch("mips32r2");
getTargetStreamer().emitDirectiveSetMips32R2();
break;
+ case Mips::FeatureMips32r3:
+ selectArch("mips32r3");
+ getTargetStreamer().emitDirectiveSetMips32R3();
+ break;
+ case Mips::FeatureMips32r5:
+ selectArch("mips32r5");
+ getTargetStreamer().emitDirectiveSetMips32R5();
+ break;
case Mips::FeatureMips32r6:
selectArch("mips32r6");
getTargetStreamer().emitDirectiveSetMips32R6();
selectArch("mips64r2");
getTargetStreamer().emitDirectiveSetMips64R2();
break;
+ case Mips::FeatureMips64r3:
+ selectArch("mips64r3");
+ getTargetStreamer().emitDirectiveSetMips64R3();
+ break;
+ case Mips::FeatureMips64r5:
+ selectArch("mips64r5");
+ getTargetStreamer().emitDirectiveSetMips64R5();
+ break;
case Mips::FeatureMips64r6:
selectArch("mips64r6");
getTargetStreamer().emitDirectiveSetMips64R6();
}
bool MipsAsmParser::eatComma(StringRef ErrorStr) {
+ MCAsmParser &Parser = getParser();
if (getLexer().isNot(AsmToken::Comma)) {
SMLoc Loc = getLexer().getLoc();
Parser.eatToEndOfStatement();
return true;
}
-bool MipsAsmParser::parseDirectiveCPLoad(SMLoc Loc) {
- if (Options.isReorder())
- Warning(Loc, ".cpload in reorder section");
+bool MipsAsmParser::parseDirectiveCpLoad(SMLoc Loc) {
+ if (AssemblerOptions.back()->isReorder())
+ Warning(Loc, ".cpload should be inside a noreorder section");
- // FIXME: Warn if cpload is used in Mips16 mode.
+ if (inMips16Mode()) {
+ reportParseError(".cpload is not supported in Mips16 mode");
+ return false;
+ }
SmallVector<std::unique_ptr<MCParsedAsmOperand>, 1> Reg;
- OperandMatchResultTy ResTy = ParseAnyRegister(Reg);
+ OperandMatchResultTy ResTy = parseAnyRegister(Reg);
if (ResTy == MatchOperand_NoMatch || ResTy == MatchOperand_ParseFail) {
reportParseError("expected register containing function address");
return false;
return false;
}
- getTargetStreamer().emitDirectiveCpload(RegOpnd.getGPR32Reg());
+ // If this is not the end of the statement, report an error.
+ if (getLexer().isNot(AsmToken::EndOfStatement)) {
+ reportParseError("unexpected token, expected end of statement");
+ return false;
+ }
+
+ getTargetStreamer().emitDirectiveCpLoad(RegOpnd.getGPR32Reg());
return false;
}
bool MipsAsmParser::parseDirectiveCPSetup() {
+ MCAsmParser &Parser = getParser();
unsigned FuncReg;
unsigned Save;
bool SaveIsReg = true;
SmallVector<std::unique_ptr<MCParsedAsmOperand>, 1> TmpReg;
- OperandMatchResultTy ResTy = ParseAnyRegister(TmpReg);
+ OperandMatchResultTy ResTy = parseAnyRegister(TmpReg);
if (ResTy == MatchOperand_NoMatch) {
reportParseError("expected register containing function address");
Parser.eatToEndOfStatement();
FuncReg = FuncRegOpnd.getGPR32Reg();
TmpReg.clear();
- if (!eatComma("expected comma parsing directive"))
+ if (!eatComma("unexpected token, expected comma"))
return true;
- ResTy = ParseAnyRegister(TmpReg);
+ ResTy = parseAnyRegister(TmpReg);
if (ResTy == MatchOperand_NoMatch) {
const AsmToken &Tok = Parser.getTok();
if (Tok.is(AsmToken::Integer)) {
Save = SaveOpnd.getGPR32Reg();
}
- if (!eatComma("expected comma parsing directive"))
+ if (!eatComma("unexpected token, expected comma"))
return true;
- StringRef Name;
- if (Parser.parseIdentifier(Name))
- reportParseError("expected identifier");
- MCSymbol *Sym = getContext().GetOrCreateSymbol(Name);
+ const MCExpr *Expr;
+ if (Parser.parseExpression(Expr)) {
+ reportParseError("expected expression");
+ return false;
+ }
- getTargetStreamer().emitDirectiveCpsetup(FuncReg, Save, *Sym, SaveIsReg);
+ if (Expr->getKind() != MCExpr::SymbolRef) {
+ reportParseError("expected symbol");
+ return false;
+ }
+ const MCSymbolRefExpr *Ref = static_cast<const MCSymbolRefExpr *>(Expr);
+
+ getTargetStreamer().emitDirectiveCpsetup(FuncReg, Save, Ref->getSymbol(),
+ SaveIsReg);
return false;
}
bool MipsAsmParser::parseDirectiveNaN() {
+ MCAsmParser &Parser = getParser();
if (getLexer().isNot(AsmToken::EndOfStatement)) {
const AsmToken &Tok = Parser.getTok();
}
bool MipsAsmParser::parseDirectiveSet() {
-
+ MCAsmParser &Parser = getParser();
// Get the next token.
const AsmToken &Tok = Parser.getTok();
return parseSetNoAtDirective();
} else if (Tok.getString() == "at") {
return parseSetAtDirective();
+ } else if (Tok.getString() == "arch") {
+ return parseSetArchDirective();
} else if (Tok.getString() == "fp") {
return parseSetFpDirective();
+ } else if (Tok.getString() == "pop") {
+ return parseSetPopDirective();
+ } else if (Tok.getString() == "push") {
+ return parseSetPushDirective();
} else if (Tok.getString() == "reorder") {
return parseSetReorderDirective();
} else if (Tok.getString() == "noreorder") {
} else if (Tok.getString() == "nomacro") {
return parseSetNoMacroDirective();
} else if (Tok.getString() == "mips16") {
- return parseSetFeature(Mips::FeatureMips16);
+ return parseSetMips16Directive();
} else if (Tok.getString() == "nomips16") {
return parseSetNoMips16Directive();
} else if (Tok.getString() == "nomicromips") {
return false;
} else if (Tok.getString() == "micromips") {
return parseSetFeature(Mips::FeatureMicroMips);
+ } else if (Tok.getString() == "mips0") {
+ return parseSetMips0Directive();
} else if (Tok.getString() == "mips1") {
return parseSetFeature(Mips::FeatureMips1);
} else if (Tok.getString() == "mips2") {
return parseSetFeature(Mips::FeatureMips32);
} else if (Tok.getString() == "mips32r2") {
return parseSetFeature(Mips::FeatureMips32r2);
+ } else if (Tok.getString() == "mips32r3") {
+ return parseSetFeature(Mips::FeatureMips32r3);
+ } else if (Tok.getString() == "mips32r5") {
+ return parseSetFeature(Mips::FeatureMips32r5);
} else if (Tok.getString() == "mips32r6") {
return parseSetFeature(Mips::FeatureMips32r6);
} else if (Tok.getString() == "mips64") {
return parseSetFeature(Mips::FeatureMips64);
} else if (Tok.getString() == "mips64r2") {
return parseSetFeature(Mips::FeatureMips64r2);
+ } else if (Tok.getString() == "mips64r3") {
+ return parseSetFeature(Mips::FeatureMips64r3);
+ } else if (Tok.getString() == "mips64r5") {
+ return parseSetFeature(Mips::FeatureMips64r5);
} else if (Tok.getString() == "mips64r6") {
return parseSetFeature(Mips::FeatureMips64r6);
} else if (Tok.getString() == "dsp") {
return parseSetFeature(Mips::FeatureDSP);
+ } else if (Tok.getString() == "nodsp") {
+ return parseSetNoDspDirective();
} else if (Tok.getString() == "msa") {
return parseSetMsaDirective();
} else if (Tok.getString() == "nomsa") {
/// parseDataDirective
/// ::= .word [ expression (, expression)* ]
bool MipsAsmParser::parseDataDirective(unsigned Size, SMLoc L) {
+ MCAsmParser &Parser = getParser();
if (getLexer().isNot(AsmToken::EndOfStatement)) {
for (;;) {
const MCExpr *Value;
if (getLexer().is(AsmToken::EndOfStatement))
break;
- // FIXME: Improve diagnostic.
if (getLexer().isNot(AsmToken::Comma))
- return Error(L, "unexpected token in directive");
+ return Error(L, "unexpected token, expected comma");
Parser.Lex();
}
}
/// parseDirectiveGpWord
/// ::= .gpword local_sym
bool MipsAsmParser::parseDirectiveGpWord() {
+ MCAsmParser &Parser = getParser();
const MCExpr *Value;
// EmitGPRel32Value requires an expression, so we are using base class
// method to evaluate the expression.
getParser().getStreamer().EmitGPRel32Value(Value);
if (getLexer().isNot(AsmToken::EndOfStatement))
- return Error(getLexer().getLoc(), "unexpected token in directive");
+ return Error(getLexer().getLoc(),
+ "unexpected token, expected end of statement");
Parser.Lex(); // Eat EndOfStatement token.
return false;
}
/// parseDirectiveGpDWord
/// ::= .gpdword local_sym
bool MipsAsmParser::parseDirectiveGpDWord() {
+ MCAsmParser &Parser = getParser();
const MCExpr *Value;
// EmitGPRel64Value requires an expression, so we are using base class
// method to evaluate the expression.
getParser().getStreamer().EmitGPRel64Value(Value);
if (getLexer().isNot(AsmToken::EndOfStatement))
- return Error(getLexer().getLoc(), "unexpected token in directive");
+ return Error(getLexer().getLoc(),
+ "unexpected token, expected end of statement");
Parser.Lex(); // Eat EndOfStatement token.
return false;
}
bool MipsAsmParser::parseDirectiveOption() {
+ MCAsmParser &Parser = getParser();
// Get the option token.
AsmToken Tok = Parser.getTok();
// At the moment only identifiers are supported.
if (Tok.isNot(AsmToken::Identifier)) {
- Error(Parser.getTok().getLoc(), "unexpected token in .option directive");
+ Error(Parser.getTok().getLoc(), "unexpected token, expected identifier");
Parser.eatToEndOfStatement();
return false;
}
Parser.Lex();
if (Parser.getTok().isNot(AsmToken::EndOfStatement)) {
Error(Parser.getTok().getLoc(),
- "unexpected token in .option pic0 directive");
+ "unexpected token, expected end of statement");
Parser.eatToEndOfStatement();
}
return false;
Parser.Lex();
if (Parser.getTok().isNot(AsmToken::EndOfStatement)) {
Error(Parser.getTok().getLoc(),
- "unexpected token in .option pic2 directive");
+ "unexpected token, expected end of statement");
Parser.eatToEndOfStatement();
}
return false;
}
// Unknown option.
- Warning(Parser.getTok().getLoc(), "unknown option in .option directive");
+ Warning(Parser.getTok().getLoc(),
+ "unknown option, expected 'pic0' or 'pic2'");
Parser.eatToEndOfStatement();
return false;
}
/// ::= .module nooddspreg
/// ::= .module fp=value
bool MipsAsmParser::parseDirectiveModule() {
+ MCAsmParser &Parser = getParser();
MCAsmLexer &Lexer = getLexer();
SMLoc L = Lexer.getLoc();
return false;
}
- if (Lexer.is(AsmToken::Identifier)) {
- StringRef Option = Parser.getTok().getString();
- Parser.Lex();
-
- if (Option == "oddspreg") {
- getTargetStreamer().emitDirectiveModuleOddSPReg(true, isABI_O32());
- clearFeatureBits(Mips::FeatureNoOddSPReg, "nooddspreg");
+ StringRef Option;
+ if (Parser.parseIdentifier(Option)) {
+ reportParseError("expected .module option identifier");
+ return false;
+ }
- if (getLexer().isNot(AsmToken::EndOfStatement)) {
- reportParseError("Expected end of statement");
- return false;
- }
+ if (Option == "oddspreg") {
+ getTargetStreamer().emitDirectiveModuleOddSPReg(true, isABI_O32());
+ clearFeatureBits(Mips::FeatureNoOddSPReg, "nooddspreg");
+ // If this is not the end of the statement, report an error.
+ if (getLexer().isNot(AsmToken::EndOfStatement)) {
+ reportParseError("unexpected token, expected end of statement");
return false;
- } else if (Option == "nooddspreg") {
- if (!isABI_O32()) {
- Error(L, "'.module nooddspreg' requires the O32 ABI");
- return false;
- }
+ }
- getTargetStreamer().emitDirectiveModuleOddSPReg(false, isABI_O32());
- setFeatureBits(Mips::FeatureNoOddSPReg, "nooddspreg");
+ return false; // parseDirectiveModule has finished successfully.
+ } else if (Option == "nooddspreg") {
+ if (!isABI_O32()) {
+ Error(L, "'.module nooddspreg' requires the O32 ABI");
+ return false;
+ }
- if (getLexer().isNot(AsmToken::EndOfStatement)) {
- reportParseError("Expected end of statement");
- return false;
- }
+ getTargetStreamer().emitDirectiveModuleOddSPReg(false, isABI_O32());
+ setFeatureBits(Mips::FeatureNoOddSPReg, "nooddspreg");
+ // If this is not the end of the statement, report an error.
+ if (getLexer().isNot(AsmToken::EndOfStatement)) {
+ reportParseError("unexpected token, expected end of statement");
return false;
- } else if (Option == "fp") {
- return parseDirectiveModuleFP();
}
+ return false; // parseDirectiveModule has finished successfully.
+ } else if (Option == "fp") {
+ return parseDirectiveModuleFP();
+ } else {
return Error(L, "'" + Twine(Option) + "' is not a valid .module option.");
}
-
- return false;
}
/// parseDirectiveModuleFP
/// ::= =xx
/// ::= =64
bool MipsAsmParser::parseDirectiveModuleFP() {
+ MCAsmParser &Parser = getParser();
MCAsmLexer &Lexer = getLexer();
if (Lexer.isNot(AsmToken::Equal)) {
- reportParseError("unexpected token in statement");
+ reportParseError("unexpected token, expected equals sign '='");
return false;
}
Parser.Lex(); // Eat '=' token.
return false;
if (getLexer().isNot(AsmToken::EndOfStatement)) {
- reportParseError("unexpected token in statement");
+ reportParseError("unexpected token, expected end of statement");
return false;
}
bool MipsAsmParser::parseFpABIValue(MipsABIFlagsSection::FpABIKind &FpABI,
StringRef Directive) {
+ MCAsmParser &Parser = getParser();
MCAsmLexer &Lexer = getLexer();
if (Lexer.is(AsmToken::Identifier)) {
}
bool MipsAsmParser::ParseDirective(AsmToken DirectiveID) {
+ MCAsmParser &Parser = getParser();
StringRef IDVal = DirectiveID.getString();
if (IDVal == ".cpload")
- return parseDirectiveCPLoad(DirectiveID.getLoc());
+ return parseDirectiveCpLoad(DirectiveID.getLoc());
if (IDVal == ".dword") {
parseDataDirective(8, DirectiveID.getLoc());
return false;
if (IDVal == ".frame") {
// .frame $stack_reg, frame_size_in_bytes, $return_reg
SmallVector<std::unique_ptr<MCParsedAsmOperand>, 1> TmpReg;
- OperandMatchResultTy ResTy = ParseAnyRegister(TmpReg);
+ OperandMatchResultTy ResTy = parseAnyRegister(TmpReg);
if (ResTy == MatchOperand_NoMatch || ResTy == MatchOperand_ParseFail) {
reportParseError("expected stack register");
return false;
// Parse the return register.
TmpReg.clear();
- ResTy = ParseAnyRegister(TmpReg);
+ ResTy = parseAnyRegister(TmpReg);
if (ResTy == MatchOperand_NoMatch || ResTy == MatchOperand_ParseFail) {
reportParseError("expected return register");
return false;
if (IDVal == ".abicalls") {
getTargetStreamer().emitDirectiveAbiCalls();
if (Parser.getTok().isNot(AsmToken::EndOfStatement)) {
- Error(Parser.getTok().getLoc(), "unexpected token in directive");
+ Error(Parser.getTok().getLoc(),
+ "unexpected token, expected end of statement");
// Clear line
Parser.eatToEndOfStatement();
}
if (IDVal == ".module")
return parseDirectiveModule();
+ if (IDVal == ".llvm_internal_mips_reallow_module_directive")
+ return parseInternalDirectiveReallowModule();
+
return true;
}
+bool MipsAsmParser::parseInternalDirectiveReallowModule() {
+ // If this is not the end of the statement, report an error.
+ if (getLexer().isNot(AsmToken::EndOfStatement)) {
+ reportParseError("unexpected token, expected end of statement");
+ return false;
+ }
+
+ getTargetStreamer().reallowModuleDirective();
+
+ getParser().Lex(); // Eat EndOfStatement token.
+ return false;
+}
+
extern "C" void LLVMInitializeMipsAsmParser() {
RegisterMCAsmParser<MipsAsmParser> X(TheMipsTarget);
RegisterMCAsmParser<MipsAsmParser> Y(TheMipselTarget);