AsTypeParameterType() public method

public AsTypeParameterType ( ) : Microsoft.CSharp.RuntimeBinder.Semantics.TypeParameterType
return Microsoft.CSharp.RuntimeBinder.Semantics.TypeParameterType
Beispiel #1
0
        public bool DependsOn(TypeParameterType pType)
        {
            Debug.Assert(pType != null);

            // * If a type parameter T is used as a constraint for type parameter S
            //   then S depends on T.
            // * If a type parameter S depends on a type parameter T and T depends on
            //   U then S depends on U.

            TypeArray pConstraints = GetBounds();

            for (int iConstraint = 0; iConstraint < pConstraints.Count; ++iConstraint)
            {
                CType pConstraint = pConstraints[iConstraint];
                if (pConstraint == pType)
                {
                    return(true);
                }
                if (pConstraint.IsTypeParameterType() &&
                    pConstraint.AsTypeParameterType().DependsOn(pType))
                {
                    return(true);
                }
            }
            return(false);
        }
Beispiel #2
0
            private bool bindImplicitConversionFromNull()
            {
                // null type can be implicitly converted to any reference type or pointer type or type
                // variable with reference-type constraint.

                FUNDTYPE ftDest = typeDest.fundType();

                if (ftDest != FUNDTYPE.FT_REF && ftDest != FUNDTYPE.FT_PTR &&
                    (ftDest != FUNDTYPE.FT_VAR || !typeDest.AsTypeParameterType().IsReferenceType()) &&
                    // null is convertible to System.Nullable<T>.
                    !typeDest.isPredefType(PredefinedType.PT_G_OPTIONAL))
                {
                    return(false);
                }
                if (needsExprDest)
                {
                    // If the conversion argument is a constant null then return a ZEROINIT.
                    // Otherwise, bind this as a cast to the destination type. In a later
                    // rewrite pass we will rewrite the cast as SEQ(side effects, ZEROINIT).
                    if (exprSrc.isCONSTANT_OK())
                    {
                        exprDest = GetExprFactory().CreateZeroInit(typeDest);
                    }
                    else
                    {
                        exprDest = GetExprFactory().CreateCast(0x00, typeDest, exprSrc);
                    }
                }
                return(true);
            }
Beispiel #3
0
        // It would be nice to make this a virtual method on typeSym.
        public AggregateType GetAggTypeSym(CType typeSym)
        {
            Debug.Assert(typeSym != null);
            Debug.Assert(typeSym.IsAggregateType() ||
                         typeSym.IsTypeParameterType() ||
                         typeSym.IsArrayType() ||
                         typeSym.IsNullableType());

            switch (typeSym.GetTypeKind())
            {
            case TypeKind.TK_AggregateType:
                return(typeSym.AsAggregateType());

            case TypeKind.TK_ArrayType:
                return(GetReqPredefType(PredefinedType.PT_ARRAY));

            case TypeKind.TK_TypeParameterType:
                return(typeSym.AsTypeParameterType().GetEffectiveBaseClass());

            case TypeKind.TK_NullableType:
                return(typeSym.AsNullableType().GetAts(ErrorContext));
            }
            Debug.Assert(false, "Bad typeSym!");
            return(null);
        }
Beispiel #4
0
        public bool HasBaseConversion(CType pSource, CType pDest)
        {
            // By a "base conversion" we mean:
            //
            // * an identity conversion
            // * an implicit reference conversion
            // * an implicit boxing conversion
            // * an implicit type parameter conversion
            //
            // In other words, these are conversions that can be made to a base
            // class, base interface or co/contravariant type without any change in
            // representation other than boxing.  A conversion from, say, int to double,
            // is NOT a "base conversion", because representation is changed.  A conversion
            // from, say, lambda to expression tree is not a "base conversion" because
            // do not have a type.
            //
            // The existence of a base conversion depends solely upon the source and
            // destination types, not the source expression.
            //
            // This notion is not found in the spec but it is useful in the implementation.

            if (pSource.IsAggregateType() && pDest.isPredefType(PredefinedType.PT_OBJECT))
            {
                // If we are going from any aggregate type (class, struct, interface, enum or delegate)
                // to object, we immediately return true. This may seem like a mere optimization --
                // after all, if we have an aggregate then we have some kind of implicit conversion
                // to object.
                //
                // However, it is not a mere optimization; this introduces a control flow change
                // in error reporting scenarios for unresolved type forwarders. If a type forwarder
                // cannot be resolved then the resulting type symbol will be an aggregate, but
                // we will not be able to classify it into class, struct, etc.
                //
                // We know that we will have an error in this case; we do not wish to compound
                // that error by giving a spurious "you cannot convert this thing to object"
                // error, which, after all, will go away when the type forwarding problem is
                // fixed.
                return(true);
            }

            if (HasIdentityOrImplicitReferenceConversion(pSource, pDest))
            {
                return(true);
            }
            if (HasImplicitBoxingConversion(pSource, pDest))
            {
                return(true);
            }
            if (pSource.IsTypeParameterType() &&
                HasImplicitTypeParameterBaseConversion(pSource.AsTypeParameterType(), pDest))
            {
                return(true);
            }
            return(false);
        }
Beispiel #5
0
 public static IEnumerable <CType> AllPossibleInterfaces(this CType type)
 {
     Debug.Assert(type != null);
     if (type.IsAggregateType())
     {
         foreach (CType t in type.AsAggregateType().TypeAndBaseClassInterfaces())
         {
             yield return(t);
         }
     }
     else if (type.IsTypeParameterType())
     {
         foreach (CType t in type.AsTypeParameterType().GetEffectiveBaseClass().TypeAndBaseClassInterfaces())
         {
             yield return(t);
         }
         foreach (CType t in type.AsTypeParameterType().GetInterfaceBounds().AllConstraintInterfaces())
         {
             yield return(t);
         }
     }
 }
Beispiel #6
0
        private bool HasImplicitReferenceTypeParameterConversion(
            TypeParameterType pSource, CType pDest)
        {
            Debug.Assert(pSource != null);
            Debug.Assert(pDest != null);

            if (!pSource.IsRefType())
            {
                // Not a reference conversion.
                return(false);
            }

            // The following implicit conversions exist for a given type parameter T:
            //
            // * From T to its effective base class C.
            AggregateType pEBC = pSource.GetEffectiveBaseClass();

            if (pDest == pEBC)
            {
                return(true);
            }
            // * From T to any base class of C.
            if (IsBaseClass(pEBC, pDest))
            {
                return(true);
            }
            // * From T to any interface implemented by C.
            if (IsBaseInterface(pEBC, pDest))
            {
                return(true);
            }
            // * From T to any interface type I in T's effective interface set, and
            //   from T to any base interface of I.
            TypeArray pInterfaces = pSource.GetInterfaceBounds();

            for (int i = 0; i < pInterfaces.Count; ++i)
            {
                if (pInterfaces[i] == pDest)
                {
                    return(true);
                }
            }
            // * From T to a type parameter U, provided T depends on U.
            if (pDest.IsTypeParameterType() && pSource.DependsOn(pDest.AsTypeParameterType()))
            {
                return(true);
            }
            return(false);
        }
Beispiel #7
0
        public bool HasImplicitBoxingConversion(CType pSource, CType pDest)
        {
            Debug.Assert(pSource != null);
            Debug.Assert(pDest != null);

            // Certain type parameter conversions are classified as boxing conversions.

            if (pSource.IsTypeParameterType() &&
                HasImplicitBoxingTypeParameterConversion(pSource.AsTypeParameterType(), pDest))
            {
                return(true);
            }

            // The rest of the boxing conversions only operate when going from a value type
            // to a reference type.

            if (!pSource.IsValType() || !pDest.IsRefType())
            {
                return(false);
            }

            // A boxing conversion exists from a nullable type to a reference type
            // if and only if a boxing conversion exists from the underlying type.

            if (pSource.IsNullableType())
            {
                return(HasImplicitBoxingConversion(pSource.AsNullableType().GetUnderlyingType(), pDest));
            }

            // A boxing conversion exists from any non-nullable value type to object,
            // to System.ValueType, and to any interface type implemented by the
            // non-nullable value type.  Furthermore, an enum type can be converted
            // to the type System.Enum.

            // We set the base class of the structs to System.ValueType, System.Enum, etc,
            // so we can just check here.

            if (IsBaseClass(pSource, pDest))
            {
                return(true);
            }
            if (HasAnyBaseInterfaceConversion(pSource, pDest))
            {
                return(true);
            }
            return(false);
        }
Beispiel #8
0
        private bool HasImplicitTypeParameterBaseConversion(
            TypeParameterType pSource, CType pDest)
        {
            Debug.Assert(pSource != null);
            Debug.Assert(pDest != null);

            if (HasImplicitReferenceTypeParameterConversion(pSource, pDest))
            {
                return(true);
            }
            if (HasImplicitBoxingTypeParameterConversion(pSource, pDest))
            {
                return(true);
            }
            if (pDest.IsTypeParameterType() && pSource.DependsOn(pDest.AsTypeParameterType()))
            {
                return(true);
            }
            return(false);
        }
Beispiel #9
0
        public void ErrAppendType(CType pType, SubstContext pctx, bool fArgs)
        {
            if (pctx != null)
            {
                if (!pctx.FNop())
                {
                    pType = GetTypeManager().SubstType(pType, pctx);
                }
                // We shouldn't use the SubstContext again so set it to NULL.
                pctx = null;
            }

            switch (pType.GetTypeKind())
            {
                case TypeKind.TK_AggregateType:
                    {
                        AggregateType pAggType = pType.AsAggregateType();

                        // Check for a predefined class with a special "nice" name for
                        // error reported.
                        string text = PredefinedTypes.GetNiceName(pAggType.getAggregate());
                        if (text != null)
                        {
                            // Found a nice name.
                            ErrAppendString(text);
                        }
                        else if (pAggType.getAggregate().IsAnonymousType())
                        {
                            ErrAppendPrintf("AnonymousType#{0}", GetTypeID(pAggType));
                            break;
                        }
                        else
                        {
                            if (pAggType.outerType != null)
                            {
                                ErrAppendType(pAggType.outerType, pctx);
                                ErrAppendChar('.');
                            }
                            else
                            {
                                // In a namespace.
                                ErrAppendParentSym(pAggType.getAggregate(), pctx);
                            }
                            ErrAppendName(pAggType.getAggregate().name);
                        }
                        ErrAppendTypeParameters(pAggType.GetTypeArgsThis(), pctx, true);
                        break;
                    }

                case TypeKind.TK_TypeParameterType:
                    if (null == pType.GetName())
                    {
                        // It's a standard type variable.
                        if (pType.AsTypeParameterType().IsMethodTypeParameter())
                        {
                            ErrAppendChar('!');
                        }
                        ErrAppendChar('!');
                        ErrAppendPrintf("{0}", pType.AsTypeParameterType().GetIndexInTotalParameters());
                    }
                    else
                    {
                        ErrAppendName(pType.GetName());
                    }
                    break;

                case TypeKind.TK_ErrorType:
                    if (pType.AsErrorType().HasParent())
                    {
                        Debug.Assert(pType.AsErrorType().nameText != null && pType.AsErrorType().typeArgs != null);
                        ErrAppendParentType(pType, pctx);
                        ErrAppendName(pType.AsErrorType().nameText);
                        ErrAppendTypeParameters(pType.AsErrorType().typeArgs, pctx, true);
                    }
                    else
                    {
                        // Load the string "<error>".
                        Debug.Assert(null == pType.AsErrorType().typeArgs);
                        ErrAppendId(MessageID.ERRORSYM);
                    }
                    break;

                case TypeKind.TK_NullType:
                    // Load the string "<null>".
                    ErrAppendId(MessageID.NULL);
                    break;

                case TypeKind.TK_OpenTypePlaceholderType:
                    // Leave blank.
                    break;

                case TypeKind.TK_BoundLambdaType:
                    ErrAppendId(MessageID.AnonMethod);
                    break;

                case TypeKind.TK_UnboundLambdaType:
                    ErrAppendId(MessageID.Lambda);
                    break;

                case TypeKind.TK_MethodGroupType:
                    ErrAppendId(MessageID.MethodGroup);
                    break;

                case TypeKind.TK_ArgumentListType:
                    ErrAppendString(TokenFacts.GetText(TokenKind.ArgList));
                    break;

                case TypeKind.TK_ArrayType:
                    {
                        CType elementType = pType.AsArrayType().GetBaseElementType();
                        int rank;

                        if (null == elementType)
                        {
                            Debug.Assert(false, "No element type");
                            break;
                        }

                        ErrAppendType(elementType, pctx);

                        for (elementType = pType;
                                elementType != null && elementType.IsArrayType();
                                elementType = elementType.AsArrayType().GetElementType())
                        {
                            rank = elementType.AsArrayType().rank;

                            // Add [] with (rank-1) commas inside
                            ErrAppendChar('[');

#if ! CSEE
                            // known rank.
                            if (rank > 1)
                            {
                                ErrAppendChar('*');
                            }
#endif

                            for (int i = rank; i > 1; --i)
                            {
                                ErrAppendChar(',');
#if ! CSEE

                                ErrAppendChar('*');
#endif
                            }

                            ErrAppendChar(']');
                        }
                        break;
                    }

                case TypeKind.TK_VoidType:
                    ErrAppendName(GetNameManager().Lookup(TokenFacts.GetText(TokenKind.Void)));
                    break;

                case TypeKind.TK_ParameterModifierType:
                    // add ref or out
                    ErrAppendString(pType.AsParameterModifierType().isOut ? "out " : "ref ");

                    // add base type name
                    ErrAppendType(pType.AsParameterModifierType().GetParameterType(), pctx);
                    break;

                case TypeKind.TK_PointerType:
                    // Generate the base type.
                    ErrAppendType(pType.AsPointerType().GetReferentType(), pctx);
                    {
                        // add the trailing *
                        ErrAppendChar('*');
                    }
                    break;

                case TypeKind.TK_NullableType:
                    ErrAppendType(pType.AsNullableType().GetUnderlyingType(), pctx);
                    ErrAppendChar('?');
                    break;

                case TypeKind.TK_NaturalIntegerType:
                default:
                    // Shouldn't happen.
                    Debug.Assert(false, "Bad type kind");
                    break;
            }
        }
Beispiel #10
0
        private static Type CalculateAssociatedSystemType(CType src)
        {
            Type result = null;

            switch (src.GetTypeKind())
            {
                case TypeKind.TK_ArrayType:
                    ArrayType a = src.AsArrayType();
                    Type elementType = a.GetElementType().AssociatedSystemType;
                    if (a.rank == 1)
                    {
                        result = elementType.MakeArrayType();
                    }
                    else
                    {
                        result = elementType.MakeArrayType(a.rank);
                    }
                    break;

                case TypeKind.TK_NullableType:
                    NullableType n = src.AsNullableType();
                    Type underlyingType = n.GetUnderlyingType().AssociatedSystemType;
                    result = typeof(Nullable<>).MakeGenericType(underlyingType);
                    break;

                case TypeKind.TK_PointerType:
                    PointerType p = src.AsPointerType();
                    Type referentType = p.GetReferentType().AssociatedSystemType;
                    result = referentType.MakePointerType();
                    break;

                case TypeKind.TK_ParameterModifierType:
                    ParameterModifierType r = src.AsParameterModifierType();
                    Type parameterType = r.GetParameterType().AssociatedSystemType;
                    result = parameterType.MakeByRefType();
                    break;

                case TypeKind.TK_AggregateType:
                    result = CalculateAssociatedSystemTypeForAggregate(src.AsAggregateType());
                    break;

                case TypeKind.TK_TypeParameterType:
                    TypeParameterType t = src.AsTypeParameterType();
                    if (t.IsMethodTypeParameter())
                    {
                        MethodInfo meth = t.GetOwningSymbol().AsMethodSymbol().AssociatedMemberInfo as MethodInfo;
                        result = meth.GetGenericArguments()[t.GetIndexInOwnParameters()];
                    }
                    else
                    {
                        Type parentType = t.GetOwningSymbol().AsAggregateSymbol().AssociatedSystemType;
                        result = parentType.GetTypeInfo().GenericTypeParameters[t.GetIndexInOwnParameters()];
                    }
                    break;

                case TypeKind.TK_ArgumentListType:
                case TypeKind.TK_BoundLambdaType:
                case TypeKind.TK_ErrorType:
                case TypeKind.TK_MethodGroupType:
                case TypeKind.TK_NaturalIntegerType:
                case TypeKind.TK_NullType:
                case TypeKind.TK_OpenTypePlaceholderType:
                case TypeKind.TK_UnboundLambdaType:
                case TypeKind.TK_VoidType:

                default:
                    break;
            }

            Debug.Assert(result != null || src.GetTypeKind() == TypeKind.TK_AggregateType);
            return result;
        }
Beispiel #11
0
        private static Type CalculateAssociatedSystemType(CType src)
        {
            Type result = null;

            switch (src.GetTypeKind())
            {
            case TypeKind.TK_ArrayType:
                ArrayType a           = src.AsArrayType();
                Type      elementType = a.GetElementType().AssociatedSystemType;
                if (a.rank == 1)
                {
                    result = elementType.MakeArrayType();
                }
                else
                {
                    result = elementType.MakeArrayType(a.rank);
                }
                break;

            case TypeKind.TK_NullableType:
                NullableType n = src.AsNullableType();
                Type         underlyingType = n.GetUnderlyingType().AssociatedSystemType;
                result = typeof(Nullable <>).MakeGenericType(underlyingType);
                break;

            case TypeKind.TK_PointerType:
                PointerType p            = src.AsPointerType();
                Type        referentType = p.GetReferentType().AssociatedSystemType;
                result = referentType.MakePointerType();
                break;

            case TypeKind.TK_ParameterModifierType:
                ParameterModifierType r = src.AsParameterModifierType();
                Type parameterType      = r.GetParameterType().AssociatedSystemType;
                result = parameterType.MakeByRefType();
                break;

            case TypeKind.TK_AggregateType:
                result = CalculateAssociatedSystemTypeForAggregate(src.AsAggregateType());
                break;

            case TypeKind.TK_TypeParameterType:
                TypeParameterType t = src.AsTypeParameterType();
                Type parentType     = null;
                if (t.IsMethodTypeParameter())
                {
                    MethodInfo meth = t.GetOwningSymbol().AsMethodSymbol().AssociatedMemberInfo as MethodInfo;
                    result = meth.GetGenericArguments()[t.GetIndexInOwnParameters()];
                }
                else
                {
                    parentType = t.GetOwningSymbol().AsAggregateSymbol().AssociatedSystemType;
                    result     = parentType.GetTypeInfo().GenericTypeParameters[t.GetIndexInOwnParameters()];
                }
                break;

            case TypeKind.TK_ArgumentListType:
            case TypeKind.TK_BoundLambdaType:
            case TypeKind.TK_ErrorType:
            case TypeKind.TK_MethodGroupType:
            case TypeKind.TK_NaturalIntegerType:
            case TypeKind.TK_NullType:
            case TypeKind.TK_OpenTypePlaceholderType:
            case TypeKind.TK_UnboundLambdaType:
            case TypeKind.TK_VoidType:

            default:
                break;
            }

            Debug.Assert(result != null || src.GetTypeKind() == TypeKind.TK_AggregateType);
            return(result);
        }
Beispiel #12
0
        public bool SubstEqualTypesCore(CType typeDst, CType typeSrc, SubstContext pctx)
        {
        LRecurse:  // Label used for "tail" recursion.

            if (typeDst == typeSrc || typeDst.Equals(typeSrc))
            {
                return true;
            }

            switch (typeSrc.GetTypeKind())
            {
                default:
                    Debug.Assert(false, "Bad Symbol kind in SubstEqualTypesCore");
                    return false;

                case TypeKind.TK_NullType:
                case TypeKind.TK_VoidType:
                case TypeKind.TK_OpenTypePlaceholderType:
                    // There should only be a single instance of these.
                    Debug.Assert(typeDst.GetTypeKind() != typeSrc.GetTypeKind());
                    return false;

                case TypeKind.TK_ArrayType:
                    if (typeDst.GetTypeKind() != TypeKind.TK_ArrayType || typeDst.AsArrayType().rank != typeSrc.AsArrayType().rank)
                        return false;
                    goto LCheckBases;

                case TypeKind.TK_ParameterModifierType:
                    if (typeDst.GetTypeKind() != TypeKind.TK_ParameterModifierType ||
                        ((pctx.grfst & SubstTypeFlags.NoRefOutDifference) == 0 &&
                         typeDst.AsParameterModifierType().isOut != typeSrc.AsParameterModifierType().isOut))
                        return false;
                    goto LCheckBases;

                case TypeKind.TK_PointerType:
                case TypeKind.TK_NullableType:
                    if (typeDst.GetTypeKind() != typeSrc.GetTypeKind())
                        return false;
                    LCheckBases:
                    typeSrc = typeSrc.GetBaseOrParameterOrElementType();
                    typeDst = typeDst.GetBaseOrParameterOrElementType();
                    goto LRecurse;

                case TypeKind.TK_AggregateType:
                    if (typeDst.GetTypeKind() != TypeKind.TK_AggregateType)
                        return false;
                    { // BLOCK
                        AggregateType atsSrc = typeSrc.AsAggregateType();
                        AggregateType atsDst = typeDst.AsAggregateType();

                        if (atsSrc.getAggregate() != atsDst.getAggregate())
                            return false;

                        Debug.Assert(atsSrc.GetTypeArgsAll().Size == atsDst.GetTypeArgsAll().Size);

                        // All the args must unify.
                        for (int i = 0; i < atsSrc.GetTypeArgsAll().Size; i++)
                        {
                            if (!SubstEqualTypesCore(atsDst.GetTypeArgsAll().Item(i), atsSrc.GetTypeArgsAll().Item(i), pctx))
                                return false;
                        }
                    }
                    return true;

                case TypeKind.TK_ErrorType:
                    if (!typeDst.IsErrorType() || !typeSrc.AsErrorType().HasParent() || !typeDst.AsErrorType().HasParent())
                        return false;
                    {
                        ErrorType errSrc = typeSrc.AsErrorType();
                        ErrorType errDst = typeDst.AsErrorType();
                        Debug.Assert(errSrc.nameText != null && errSrc.typeArgs != null);
                        Debug.Assert(errDst.nameText != null && errDst.typeArgs != null);

                        if (errSrc.nameText != errDst.nameText || errSrc.typeArgs.Size != errDst.typeArgs.Size)
                            return false;

                        if (errSrc.HasTypeParent() != errDst.HasTypeParent())
                        {
                            return false;
                        }
                        if (errSrc.HasTypeParent())
                        {
                            if (errSrc.GetTypeParent() != errDst.GetTypeParent())
                            {
                                return false;
                            }
                            if (!SubstEqualTypesCore(errDst.GetTypeParent(), errSrc.GetTypeParent(), pctx))
                            {
                                return false;
                            }
                        }
                        else
                        {
                            if (errSrc.GetNSParent() != errDst.GetNSParent())
                            {
                                return false;
                            }
                        }

                        // All the args must unify.
                        for (int i = 0; i < errSrc.typeArgs.Size; i++)
                        {
                            if (!SubstEqualTypesCore(errDst.typeArgs.Item(i), errSrc.typeArgs.Item(i), pctx))
                                return false;
                        }
                    }
                    return true;

                case TypeKind.TK_TypeParameterType:
                    { // BLOCK
                        TypeParameterSymbol tvs = typeSrc.AsTypeParameterType().GetTypeParameterSymbol();
                        int index = tvs.GetIndexInTotalParameters();

                        if (tvs.IsMethodTypeParameter())
                        {
                            if ((pctx.grfst & SubstTypeFlags.DenormMeth) != 0 && tvs.parent != null)
                            {
                                // typeDst == typeSrc was handled above.
                                Debug.Assert(typeDst != typeSrc);
                                return false;
                            }
                            Debug.Assert(tvs.GetIndexInOwnParameters() == tvs.GetIndexInTotalParameters());
                            Debug.Assert(pctx.prgtypeMeth == null || tvs.GetIndexInTotalParameters() < pctx.ctypeMeth);
                            if (index < pctx.ctypeMeth && pctx.prgtypeMeth != null)
                            {
                                return typeDst == pctx.prgtypeMeth[index];
                            }
                            if ((pctx.grfst & SubstTypeFlags.NormMeth) != 0)
                            {
                                return typeDst == GetStdMethTypeVar(index);
                            }
                        }
                        else
                        {
                            if ((pctx.grfst & SubstTypeFlags.DenormClass) != 0 && tvs.parent != null)
                            {
                                // typeDst == typeSrc was handled above.
                                Debug.Assert(typeDst != typeSrc);
                                return false;
                            }
                            Debug.Assert(pctx.prgtypeCls == null || tvs.GetIndexInTotalParameters() < pctx.ctypeCls);
                            if (index < pctx.ctypeCls)
                                return typeDst == pctx.prgtypeCls[index];
                            if ((pctx.grfst & SubstTypeFlags.NormClass) != 0)
                                return typeDst == GetStdClsTypeVar(index);
                        }
                    }
                    return false;
            }
        }
Beispiel #13
0
        public static bool TypeContainsTyVars(CType type, TypeArray typeVars)
        {
        LRecurse:  // Label used for "tail" recursion.
            switch (type.GetTypeKind())
            {
                default:
                    Debug.Assert(false, "Bad Symbol kind in TypeContainsTyVars");
                    return false;

                case TypeKind.TK_UnboundLambdaType:
                case TypeKind.TK_BoundLambdaType:
                case TypeKind.TK_NullType:
                case TypeKind.TK_VoidType:
                case TypeKind.TK_OpenTypePlaceholderType:
                case TypeKind.TK_MethodGroupType:
                    return false;

                case TypeKind.TK_ArrayType:
                case TypeKind.TK_NullableType:
                case TypeKind.TK_ParameterModifierType:
                case TypeKind.TK_PointerType:
                    type = type.GetBaseOrParameterOrElementType();
                    goto LRecurse;

                case TypeKind.TK_AggregateType:
                    { // BLOCK
                        AggregateType ats = type.AsAggregateType();

                        for (int i = 0; i < ats.GetTypeArgsAll().Size; i++)
                        {
                            if (TypeContainsTyVars(ats.GetTypeArgsAll().Item(i), typeVars))
                            {
                                return true;
                            }
                        }
                    }
                    return false;

                case TypeKind.TK_ErrorType:
                    if (type.AsErrorType().HasParent())
                    {
                        ErrorType err = type.AsErrorType();
                        Debug.Assert(err.nameText != null && err.typeArgs != null);

                        for (int i = 0; i < err.typeArgs.Size; i++)
                        {
                            if (TypeContainsTyVars(err.typeArgs.Item(i), typeVars))
                            {
                                return true;
                            }
                        }
                        if (err.HasTypeParent())
                        {
                            type = err.GetTypeParent();
                            goto LRecurse;
                        }
                    }
                    return false;

                case TypeKind.TK_TypeParameterType:
                    if (typeVars != null && typeVars.Size > 0)
                    {
                        int ivar = type.AsTypeParameterType().GetIndexInTotalParameters();
                        return ivar < typeVars.Size && type == typeVars.Item(ivar);
                    }
                    return true;
            }
        }
Beispiel #14
0
        ////////////////////////////////////////////////////////////////////////////////

        private bool LowerBoundClassInference(CType pSource, AggregateType pDest)
        {
            if (!pDest.isClassType())
            {
                return false;
            }

            // SPEC:  Otherwise, if V is a class CType C<V1...Vk> and U is a class CType which
            // SPEC:   inherits directly or indirectly from C<U1...Uk> 
            // SPEC:   then an exact inference is made from each Ui to the corresponding Vi.
            // SPEC:  Otherwise, if V is a class CType C<V1...Vk> and U is a CType parameter
            // SPEC:   with effective base class C<U1...Uk> 
            // SPEC:   then an exact inference is made from each Ui to the corresponding Vi.
            // SPEC:  Otherwise, if V is a class CType C<V1...Vk> and U is a CType parameter
            // SPEC:   with an effective base class which inherits directly or indirectly from
            // SPEC:   C<U1...Uk> then an exact inference is made
            // SPEC:   from each Ui to the corresponding Vi.

            AggregateType pSourceBase = null;

            if (pSource.isClassType())
            {
                pSourceBase = pSource.AsAggregateType().GetBaseClass();
            }
            else if (pSource.IsTypeParameterType())
            {
                pSourceBase = pSource.AsTypeParameterType().GetEffectiveBaseClass();
            }

            while (pSourceBase != null)
            {
                if (pSourceBase.GetOwningAggregate() == pDest.GetOwningAggregate())
                {
                    ExactTypeArgumentInference(pSourceBase, pDest);
                    return true;
                }
                pSourceBase = pSourceBase.GetBaseClass();
            }
            return false;
        }
Beispiel #15
0
        public bool HasBaseConversion(CType pSource, CType pDest)
        {
            // By a "base conversion" we mean:
            //
            // * an identity conversion
            // * an implicit reference conversion
            // * an implicit boxing conversion
            // * an implicit type parameter conversion
            //
            // In other words, these are conversions that can be made to a base
            // class, base interface or co/contravariant type without any change in
            // representation other than boxing.  A conversion from, say, int to double, 
            // is NOT a "base conversion", because representation is changed.  A conversion
            // from, say, lambda to expression tree is not a "base conversion" because 
            // do not have a type.
            //
            // The existence of a base conversion depends solely upon the source and
            // destination types, not the source expression.
            //
            // This notion is not found in the spec but it is useful in the implementation.

            if (pSource.IsAggregateType() && pDest.isPredefType(PredefinedType.PT_OBJECT))
            {
                // If we are going from any aggregate type (class, struct, interface, enum or delegate)
                // to object, we immediately return true. This may seem like a mere optimization --
                // after all, if we have an aggregate then we have some kind of implicit conversion
                // to object.
                //
                // However, it is not a mere optimization; this introduces a control flow change
                // in error reporting scenarios for unresolved type forwarders. If a type forwarder
                // cannot be resolved then the resulting type symbol will be an aggregate, but
                // we will not be able to classify it into class, struct, etc.
                //
                // We know that we will have an error in this case; we do not wish to compound
                // that error by giving a spurious "you cannot convert this thing to object"
                // error, which, after all, will go away when the type forwarding problem is
                // fixed.
                return true;
            }

            if (HasIdentityOrImplicitReferenceConversion(pSource, pDest))
            {
                return true;
            }
            if (HasImplicitBoxingConversion(pSource, pDest))
            {
                return true;
            }
            if (pSource.IsTypeParameterType() &&
                HasImplicitTypeParameterBaseConversion(pSource.AsTypeParameterType(), pDest))
            {
                return true;
            }
            return false;
        }
Beispiel #16
0
        // It would be nice to make this a virtual method on typeSym.
        public AggregateType GetAggTypeSym(CType typeSym)
        {
            Debug.Assert(typeSym != null);
            Debug.Assert(typeSym.IsAggregateType() ||
                   typeSym.IsTypeParameterType() ||
                   typeSym.IsArrayType() ||
                   typeSym.IsNullableType());

            switch (typeSym.GetTypeKind())
            {
                case TypeKind.TK_AggregateType:
                    return typeSym.AsAggregateType();
                case TypeKind.TK_ArrayType:
                    return GetReqPredefType(PredefinedType.PT_ARRAY);
                case TypeKind.TK_TypeParameterType:
                    return typeSym.AsTypeParameterType().GetEffectiveBaseClass();
                case TypeKind.TK_NullableType:
                    return typeSym.AsNullableType().GetAts(ErrorContext);
            }
            Debug.Assert(false, "Bad typeSym!");
            return null;
        }
Beispiel #17
0
        private static bool CheckSingleConstraint(CSemanticChecker checker, ErrorHandling errHandling, Symbol symErr, TypeParameterType var, CType arg, TypeArray typeArgsCls, TypeArray typeArgsMeth, CheckConstraintsFlags flags)
        {
            bool fReportErrors = 0 == (flags & CheckConstraintsFlags.NoErrors);

            if (arg.IsOpenTypePlaceholderType())
            {
                return(true);
            }

            if (arg.IsErrorType())
            {
                // Error should have been reported previously.
                return(false);
            }

            if (checker.CheckBogus(arg))
            {
                if (fReportErrors)
                {
                    errHandling.ErrorRef(ErrorCode.ERR_BogusType, arg);
                }

                return(false);
            }

            if (arg.IsPointerType() || arg.isSpecialByRefType())
            {
                if (fReportErrors)
                {
                    errHandling.Error(ErrorCode.ERR_BadTypeArgument, arg);
                }

                return(false);
            }

            if (arg.isStaticClass())
            {
                if (fReportErrors)
                {
                    checker.ReportStaticClassError(null, arg, ErrorCode.ERR_GenericArgIsStaticClass);
                }

                return(false);
            }

            bool fError = false;

            if (var.HasRefConstraint() && !arg.IsRefType())
            {
                if (fReportErrors)
                {
                    errHandling.ErrorRef(ErrorCode.ERR_RefConstraintNotSatisfied, symErr, new ErrArgNoRef(var), arg);
                }

                fError = true;
            }

            TypeArray bnds     = checker.GetSymbolLoader().GetTypeManager().SubstTypeArray(var.GetBounds(), typeArgsCls, typeArgsMeth);
            int       itypeMin = 0;

            if (var.HasValConstraint())
            {
                // If we have a type variable that is constrained to a value type, then we
                // want to check if its a nullable type, so that we can report the
                // constraint error below. In order to do this however, we need to check
                // that either the type arg is not a value type, or it is a nullable type.
                //
                // To check whether or not its a nullable type, we need to get the resolved
                // bound from the type argument and check against that.

                bool bIsValueType = arg.IsValType();
                bool bIsNullable  = arg.IsNullableType();
                if (bIsValueType && arg.IsTypeParameterType())
                {
                    TypeArray pArgBnds = arg.AsTypeParameterType().GetBounds();
                    if (pArgBnds.Count > 0)
                    {
                        bIsNullable = pArgBnds[0].IsNullableType();
                    }
                }

                if (!bIsValueType || bIsNullable)
                {
                    if (fReportErrors)
                    {
                        errHandling.ErrorRef(ErrorCode.ERR_ValConstraintNotSatisfied, symErr, new ErrArgNoRef(var), arg);
                    }

                    fError = true;
                }

                // Since FValCon() is set it is redundant to check System.ValueType as well.
                if (bnds.Count != 0 && bnds[0].isPredefType(PredefinedType.PT_VALUE))
                {
                    itypeMin = 1;
                }
            }

            for (int j = itypeMin; j < bnds.Count; j++)
            {
                CType typeBnd = bnds[j];
                if (!SatisfiesBound(checker, arg, typeBnd))
                {
                    if (fReportErrors)
                    {
                        // The bound isn't satisfied because of a constraint type. Explain to the user why not.
                        // There are 4 main cases, based on the type of the supplied type argument:
                        //  - reference type, or type parameter known to be a reference type
                        //  - nullable type, from which there is a boxing conversion to the constraint type(see below for details)
                        //  - type variable
                        //  - value type
                        // These cases are broken out because: a) The sets of conversions which can be used
                        // for constraint satisfaction is different based on the type argument supplied,
                        // and b) Nullable is one funky type, and user's can use all the help they can get
                        // when using it.
                        ErrorCode error;
                        if (arg.IsRefType())
                        {
                            // A reference type can only satisfy bounds to types
                            // to which they have an implicit reference conversion
                            error = ErrorCode.ERR_GenericConstraintNotSatisfiedRefType;
                        }
                        else if (arg.IsNullableType() && checker.GetSymbolLoader().HasBaseConversion(arg.AsNullableType().GetUnderlyingType(), typeBnd))    // This is inlining FBoxingConv
                        {
                            // nullable types do not satisfy bounds to every type that they are boxable to
                            // They only satisfy bounds of object and ValueType
                            if (typeBnd.isPredefType(PredefinedType.PT_ENUM) || arg.AsNullableType().GetUnderlyingType() == typeBnd)
                            {
                                // Nullable types don't satisfy bounds of EnumType, or the underlying type of the enum
                                // even though the conversion from Nullable to these types is a boxing conversion
                                // This is a rare case, because these bounds can never be directly stated ...
                                // These bounds can only occur when one type paramter is constrained to a second type parameter
                                // and the second type parameter is instantiated with Enum or the underlying type of the first type
                                // parameter
                                error = ErrorCode.ERR_GenericConstraintNotSatisfiedNullableEnum;
                            }
                            else
                            {
                                // Nullable types don't satisfy the bounds of any interface type
                                // even when there is a boxing conversion from the Nullable type to
                                // the interface type. This will be a relatively common scenario
                                // so we cal it out separately from the previous case.
                                Debug.Assert(typeBnd.isInterfaceType());
                                error = ErrorCode.ERR_GenericConstraintNotSatisfiedNullableInterface;
                            }
                        }
                        else if (arg.IsTypeParameterType())
                        {
                            // Type variables can satisfy bounds through boxing and type variable conversions
                            Debug.Assert(!arg.IsRefType());
                            error = ErrorCode.ERR_GenericConstraintNotSatisfiedTyVar;
                        }
                        else
                        {
                            // Value types can only satisfy bounds through boxing conversions.
                            // Note that the exceptional case of Nullable types and boxing is handled above.
                            error = ErrorCode.ERR_GenericConstraintNotSatisfiedValType;
                        }
                        errHandling.Error(error, new ErrArgRef(symErr), new ErrArg(typeBnd, ErrArgFlags.Unique), var, new ErrArgRef(arg, ErrArgFlags.Unique));
                    }
                    fError = true;
                }
            }

            // Check the newable constraint.
            if (!var.HasNewConstraint() || arg.IsValType())
            {
                return(!fError);
            }

            if (arg.isClassType())
            {
                AggregateSymbol agg = arg.AsAggregateType().getAggregate();

                // Due to late binding nature of IDE created symbols, the AggregateSymbol might not
                // have all the information necessary yet, if it is not fully bound.
                // by calling LookupAggMember, it will ensure that we will update all the
                // information necessary at least for the given method.
                checker.GetSymbolLoader().LookupAggMember(checker.GetNameManager().GetPredefName(PredefinedName.PN_CTOR), agg, symbmask_t.MASK_ALL);

                if (agg.HasPubNoArgCtor() && !agg.IsAbstract())
                {
                    return(!fError);
                }
            }
            else if (arg.IsTypeParameterType() && arg.AsTypeParameterType().HasNewConstraint())
            {
                return(!fError);
            }

            if (fReportErrors)
            {
                errHandling.ErrorRef(ErrorCode.ERR_NewConstraintNotSatisfied, symErr, new ErrArgNoRef(var), arg);
            }

            return(false);
        }
Beispiel #18
0
        private bool HasImplicitReferenceTypeParameterConversion(
            TypeParameterType pSource, CType pDest)
        {
            Debug.Assert(pSource != null);
            Debug.Assert(pDest != null);

            if (!pSource.IsRefType())
            {
                // Not a reference conversion.
                return false;
            }

            // The following implicit conversions exist for a given type parameter T:
            //
            // * From T to its effective base class C.
            AggregateType pEBC = pSource.GetEffectiveBaseClass();
            if (pDest == pEBC)
            {
                return true;
            }
            // * From T to any base class of C.
            if (IsBaseClass(pEBC, pDest))
            {
                return true;
            }
            // * From T to any interface implemented by C.
            if (IsBaseInterface(pEBC, pDest))
            {
                return true;
            }
            // * From T to any interface type I in T's effective interface set, and
            //   from T to any base interface of I.
            TypeArray pInterfaces = pSource.GetInterfaceBounds();
            for (int i = 0; i < pInterfaces.Size; ++i)
            {
                if (pInterfaces.Item(i) == pDest)
                {
                    return true;
                }
            }
            // * From T to a type parameter U, provided T depends on U.
            if (pDest.IsTypeParameterType() && pSource.DependsOn(pDest.AsTypeParameterType()))
            {
                return true;
            }
            return false;
        }
Beispiel #19
0
        public bool HasImplicitReferenceConversion(CType pSource, CType pDest)
        {
            Debug.Assert(pSource != null);
            Debug.Assert(pDest != null);

            // The implicit reference conversions are:
            // * From any reference type to Object.
            if (pSource.IsRefType() && pDest.isPredefType(PredefinedType.PT_OBJECT))
            {
                return true;
            }
            // * From any class type S to any class type T provided S is derived from T.
            if (pSource.isClassType() && pDest.isClassType() && IsBaseClass(pSource, pDest))
            {
                return true;
            }

            // ORIGINAL RULES:
            //    // * From any class type S to any interface type T provided S implements T.
            //    if (pSource.isClassType() && pDest.isInterfaceType() && IsBaseInterface(pSource, pDest))
            //    {
            //        return true;
            //    }
            //    // * from any interface type S to any interface type T, provided S is derived from T.
            //    if (pSource.isInterfaceType() && pDest.isInterfaceType() && IsBaseInterface(pSource, pDest))
            //    {
            //        return true;
            //    }

            // VARIANCE EXTENSIONS:
            // * From any class type S to any interface type T provided S implements an interface
            //   convertible to T.
            // * From any interface type S to any interface type T provided S implements an interface
            //   convertible to T.
            // * From any interface type S to any interface type T provided S is not T and S is 
            //   an interface convertible to T.

            if (pSource.isClassType() && pDest.isInterfaceType() && HasAnyBaseInterfaceConversion(pSource, pDest))
            {
                return true;
            }
            if (pSource.isInterfaceType() && pDest.isInterfaceType() && HasAnyBaseInterfaceConversion(pSource, pDest))
            {
                return true;
            }
            if (pSource.isInterfaceType() && pDest.isInterfaceType() && pSource != pDest &&
                HasInterfaceConversion(pSource.AsAggregateType(), pDest.AsAggregateType()))
            {
                return true;
            }

            // * From an array type S with an element type SE to an array type T with element type TE
            //   provided that all of the following are true:
            //   * S and T differ only in element type. In other words, S and T have the same number of dimensions.
            //   * Both SE and TE are reference types.
            //   * An implicit reference conversion exists from SE to TE.
            if (pSource.IsArrayType() && pDest.IsArrayType() &&
                HasCovariantArrayConversion(pSource.AsArrayType(), pDest.AsArrayType()))
            {
                return true;
            }
            // * From any array type to System.Array or any interface implemented by System.Array.
            if (pSource.IsArrayType() && (pDest.isPredefType(PredefinedType.PT_ARRAY) ||
                IsBaseInterface(GetReqPredefType(PredefinedType.PT_ARRAY, false), pDest)))
            {
                return true;
            }
            // * From a single-dimensional array type S[] to IList<T> and its base
            //   interfaces, provided that there is an implicit identity or reference
            //   conversion from S to T.
            if (pSource.IsArrayType() && HasArrayConversionToInterface(pSource.AsArrayType(), pDest))
            {
                return true;
            }

            // * From any delegate type to System.Delegate
            // 
            // SPEC OMISSION:
            // 
            // The spec should actually say
            //
            // * From any delegate type to System.Delegate 
            // * From any delegate type to System.MulticastDelegate
            // * From any delegate type to any interface implemented by System.MulticastDelegate
            if (pSource.isDelegateType() &&
                (pDest.isPredefType(PredefinedType.PT_MULTIDEL) ||
                pDest.isPredefType(PredefinedType.PT_DELEGATE) ||
                IsBaseInterface(GetReqPredefType(PredefinedType.PT_MULTIDEL, false), pDest)))
            {
                return true;
            }

            // VARIANCE EXTENSION:
            // * From any delegate type S to a delegate type T provided S is not T and
            //   S is a delegate convertible to T

            if (pSource.isDelegateType() && pDest.isDelegateType() &&
                HasDelegateConversion(pSource.AsAggregateType(), pDest.AsAggregateType()))
            {
                return true;
            }

            // * From the null literal to any reference type
            // NOTE: We extend the specification here. The C# 3.0 spec does not describe
            // a "null type". Rather, it says that the null literal is typeless, and is
            // convertible to any reference or nullable type. However, the C# 2.0 and 3.0
            // implementations have a "null type" which some expressions other than the
            // null literal may have. (For example, (null??null), which is also an
            // extension to the specification.)
            if (pSource.IsNullType() && pDest.IsRefType())
            {
                return true;
            }
            if (pSource.IsNullType() && pDest.IsNullableType())
            {
                return true;
            }

            // * Implicit conversions involving type parameters that are known to be reference types.
            if (pSource.IsTypeParameterType() &&
                HasImplicitReferenceTypeParameterConversion(pSource.AsTypeParameterType(), pDest))
            {
                return true;
            }

            return false;
        }
Beispiel #20
0
        private bool HasImplicitReferenceConversion(CType pSource, CType pDest)
        {
            Debug.Assert(pSource != null);
            Debug.Assert(pDest != null);

            // The implicit reference conversions are:
            // * From any reference type to Object.
            if (pSource.IsRefType() && pDest.isPredefType(PredefinedType.PT_OBJECT))
            {
                return(true);
            }
            // * From any class type S to any class type T provided S is derived from T.
            if (pSource.isClassType() && pDest.isClassType() && IsBaseClass(pSource, pDest))
            {
                return(true);
            }

            // ORIGINAL RULES:
            //    // * From any class type S to any interface type T provided S implements T.
            //    if (pSource.isClassType() && pDest.isInterfaceType() && IsBaseInterface(pSource, pDest))
            //    {
            //        return true;
            //    }
            //    // * from any interface type S to any interface type T, provided S is derived from T.
            //    if (pSource.isInterfaceType() && pDest.isInterfaceType() && IsBaseInterface(pSource, pDest))
            //    {
            //        return true;
            //    }

            // VARIANCE EXTENSIONS:
            // * From any class type S to any interface type T provided S implements an interface
            //   convertible to T.
            // * From any interface type S to any interface type T provided S implements an interface
            //   convertible to T.
            // * From any interface type S to any interface type T provided S is not T and S is
            //   an interface convertible to T.

            if (pSource.isClassType() && pDest.isInterfaceType() && HasAnyBaseInterfaceConversion(pSource, pDest))
            {
                return(true);
            }
            if (pSource.isInterfaceType() && pDest.isInterfaceType() && HasAnyBaseInterfaceConversion(pSource, pDest))
            {
                return(true);
            }
            if (pSource.isInterfaceType() && pDest.isInterfaceType() && pSource != pDest &&
                HasInterfaceConversion(pSource.AsAggregateType(), pDest.AsAggregateType()))
            {
                return(true);
            }

            // * From an array type S with an element type SE to an array type T with element type TE
            //   provided that all of the following are true:
            //   * S and T differ only in element type. In other words, S and T have the same number of dimensions.
            //   * Both SE and TE are reference types.
            //   * An implicit reference conversion exists from SE to TE.
            if (pSource.IsArrayType() && pDest.IsArrayType() &&
                HasCovariantArrayConversion(pSource.AsArrayType(), pDest.AsArrayType()))
            {
                return(true);
            }
            // * From any array type to System.Array or any interface implemented by System.Array.
            if (pSource.IsArrayType() && (pDest.isPredefType(PredefinedType.PT_ARRAY) ||
                                          IsBaseInterface(GetReqPredefType(PredefinedType.PT_ARRAY, false), pDest)))
            {
                return(true);
            }
            // * From a single-dimensional array type S[] to IList<T> and its base
            //   interfaces, provided that there is an implicit identity or reference
            //   conversion from S to T.
            if (pSource.IsArrayType() && HasArrayConversionToInterface(pSource.AsArrayType(), pDest))
            {
                return(true);
            }

            // * From any delegate type to System.Delegate
            //
            // SPEC OMISSION:
            //
            // The spec should actually say
            //
            // * From any delegate type to System.Delegate
            // * From any delegate type to System.MulticastDelegate
            // * From any delegate type to any interface implemented by System.MulticastDelegate
            if (pSource.isDelegateType() &&
                (pDest.isPredefType(PredefinedType.PT_MULTIDEL) ||
                 pDest.isPredefType(PredefinedType.PT_DELEGATE) ||
                 IsBaseInterface(GetReqPredefType(PredefinedType.PT_MULTIDEL, false), pDest)))
            {
                return(true);
            }

            // VARIANCE EXTENSION:
            // * From any delegate type S to a delegate type T provided S is not T and
            //   S is a delegate convertible to T

            if (pSource.isDelegateType() && pDest.isDelegateType() &&
                HasDelegateConversion(pSource.AsAggregateType(), pDest.AsAggregateType()))
            {
                return(true);
            }

            // * From the null literal to any reference type
            // NOTE: We extend the specification here. The C# 3.0 spec does not describe
            // a "null type". Rather, it says that the null literal is typeless, and is
            // convertible to any reference or nullable type. However, the C# 2.0 and 3.0
            // implementations have a "null type" which some expressions other than the
            // null literal may have. (For example, (null??null), which is also an
            // extension to the specification.)
            if (pSource.IsNullType() && pDest.IsRefType())
            {
                return(true);
            }
            if (pSource.IsNullType() && pDest.IsNullableType())
            {
                return(true);
            }

            // * Implicit conversions involving type parameters that are known to be reference types.
            if (pSource.IsTypeParameterType() &&
                HasImplicitReferenceTypeParameterConversion(pSource.AsTypeParameterType(), pDest))
            {
                return(true);
            }

            return(false);
        }
Beispiel #21
0
        private bool HasImplicitTypeParameterBaseConversion(
            TypeParameterType pSource, CType pDest)
        {
            Debug.Assert(pSource != null);
            Debug.Assert(pDest != null);

            if (HasImplicitReferenceTypeParameterConversion(pSource, pDest))
            {
                return true;
            }
            if (HasImplicitBoxingTypeParameterConversion(pSource, pDest))
            {
                return true;
            }
            if (pDest.IsTypeParameterType() && pSource.DependsOn(pDest.AsTypeParameterType()))
            {
                return true;
            }
            return false;
        }
Beispiel #22
0
 private AggregateType GetUserDefinedBinopArgumentType(CType type)
 {
     for (; ;)
     {
         switch (type.GetTypeKind())
         {
             case TypeKind.TK_NullableType:
                 type = type.StripNubs();
                 break;
             case TypeKind.TK_TypeParameterType:
                 type = type.AsTypeParameterType().GetEffectiveBaseClass();
                 break;
             case TypeKind.TK_AggregateType:
                 if ((type.isClassType() || type.isStructType()) && !type.AsAggregateType().getAggregate().IsSkipUDOps())
                 {
                     return type.AsAggregateType();
                 }
                 return null;
             default:
                 return null;
         }
     }
 }
Beispiel #23
0
            /*
             * BindImplicitConversion
             *
             * This is a complex routine with complex parameters. Generally, this should
             * be called through one of the helper methods that insulates you
             * from the complexity of the interface. This routine handles all the logic
             * associated with implicit conversions.
             *
             * exprSrc - the expression being converted. Can be null if only type conversion
             *           info is being supplied.
             * typeSrc - type of the source
             * typeDest - type of the destination
             * exprDest - returns an expression of the src converted to the dest. If null, we
             *            only care about whether the conversion can be attempted, not the
             *            expression tree.
             * flags    - flags possibly customizing the conversions allowed. E.g., can suppress
             *            user-defined conversions.
             *
             * returns true if the conversion can be made, false if not.
             */
            public bool Bind()
            {
                // 13.1 Implicit conversions
                //
                // The following conversions are classified as implicit conversions:
                //
                // *   Identity conversions
                // *   Implicit numeric conversions
                // *   Implicit enumeration conversions
                // *   Implicit reference conversions
                // *   Boxing conversions
                // *   Implicit type parameter conversions
                // *   Implicit constant expression conversions
                // *   User-defined implicit conversions
                // *   Implicit conversions from an anonymous method expression to a compatible delegate type
                // *   Implicit conversion from a method group to a compatible delegate type
                // *   Conversions from the null type (11.2.7) to any nullable type
                // *   Implicit nullable conversions
                // *   Lifted user-defined implicit conversions
                //
                // Implicit conversions can occur in a variety of situations, including function member invocations
                // (14.4.3), cast expressions (14.6.6), and assignments (14.14).

                // Can't convert to or from the error type.
                if (typeSrc == null || typeDest == null || typeDest.IsNeverSameType())
                {
                    return(false);
                }

                Debug.Assert(typeSrc != null && typeDest != null);         // types must be supplied.
                Debug.Assert(exprSrc == null || typeSrc == exprSrc.type);  // type of source should be correct if source supplied
                Debug.Assert(!needsExprDest || exprSrc != null);           // need source expr to create dest expr

                switch (typeDest.GetTypeKind())
                {
                case TypeKind.TK_ErrorType:
                    Debug.Assert(typeDest.AsErrorType().HasTypeParent() || typeDest.AsErrorType().HasNSParent());
                    if (typeSrc != typeDest)
                    {
                        return(false);
                    }
                    if (needsExprDest)
                    {
                        exprDest = exprSrc;
                    }
                    return(true);

                case TypeKind.TK_NullType:
                    // Can only convert to the null type if src is null.
                    if (!typeSrc.IsNullType())
                    {
                        return(false);
                    }
                    if (needsExprDest)
                    {
                        exprDest = exprSrc;
                    }
                    return(true);

                case TypeKind.TK_MethodGroupType:
                    VSFAIL("Something is wrong with Type.IsNeverSameType()");
                    return(false);

                case TypeKind.TK_NaturalIntegerType:
                case TypeKind.TK_ArgumentListType:
                    return(typeSrc == typeDest);

                case TypeKind.TK_VoidType:
                    return(false);

                default:
                    break;
                }

                if (typeSrc.IsErrorType())
                {
                    Debug.Assert(!typeDest.IsErrorType());
                    return(false);
                }

                // 13.1.1 Identity conversion
                //
                // An identity conversion converts from any type to the same type. This conversion exists only
                // such that an entity that already has a required type can be said to be convertible to that type.

                if (typeSrc == typeDest &&
                    ((flags & CONVERTTYPE.ISEXPLICIT) == 0 || (!typeSrc.isPredefType(PredefinedType.PT_FLOAT) && !typeSrc.isPredefType(PredefinedType.PT_DOUBLE))))
                {
                    if (needsExprDest)
                    {
                        exprDest = exprSrc;
                    }
                    return(true);
                }

                if (typeDest.IsNullableType())
                {
                    return(BindNubConversion(typeDest.AsNullableType()));
                }

                if (typeSrc.IsNullableType())
                {
                    return(bindImplicitConversionFromNullable(typeSrc.AsNullableType()));
                }

                if ((flags & CONVERTTYPE.ISEXPLICIT) != 0)
                {
                    flags |= CONVERTTYPE.NOUDC;
                }

                // Get the fundamental types of destination.
                FUNDTYPE ftDest = typeDest.fundType();

                Debug.Assert(ftDest != FUNDTYPE.FT_NONE || typeDest.IsParameterModifierType());

                switch (typeSrc.GetTypeKind())
                {
                default:
                    VSFAIL("Bad type symbol kind");
                    break;

                case TypeKind.TK_MethodGroupType:
                    if (exprSrc.isMEMGRP())
                    {
                        EXPRCALL outExpr;
                        bool     retVal = binder.BindGrpConversion(exprSrc.asMEMGRP(), typeDest, needsExprDest, out outExpr, false);
                        exprDest = outExpr;
                        return(retVal);
                    }
                    return(false);

                case TypeKind.TK_VoidType:
                case TypeKind.TK_ErrorType:
                case TypeKind.TK_ParameterModifierType:
                case TypeKind.TK_ArgumentListType:
                    return(false);

                case TypeKind.TK_NullType:
                    if (bindImplicitConversionFromNull())
                    {
                        return(true);
                    }
                    // If not, try user defined implicit conversions.
                    break;

                case TypeKind.TK_ArrayType:
                    if (bindImplicitConversionFromArray())
                    {
                        return(true);
                    }
                    // If not, try user defined implicit conversions.
                    break;

                case TypeKind.TK_PointerType:
                    if (bindImplicitConversionFromPointer())
                    {
                        return(true);
                    }
                    // If not, try user defined implicit conversions.
                    break;

                case TypeKind.TK_TypeParameterType:
                    if (bindImplicitConversionFromTypeVar(typeSrc.AsTypeParameterType()))
                    {
                        return(true);
                    }
                    // If not, try user defined implicit conversions.
                    break;

                case TypeKind.TK_AggregateType:
                    // TypeReference and ArgIterator can't be boxed (or converted to anything else)
                    if (typeSrc.isSpecialByRefType())
                    {
                        return(false);
                    }
                    if (bindImplicitConversionFromAgg(typeSrc.AsAggregateType()))
                    {
                        return(true);
                    }
                    // If not, try user defined implicit conversions.
                    break;
                }

                // !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!
                // RUNTIME BINDER ONLY CHANGE
                // !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!
                //
                // Every incoming dynamic operand should be implicitly convertible
                // to any type that it is an instance of.

                if (exprSrc != null &&
                    exprSrc.RuntimeObject != null &&
                    typeDest.AssociatedSystemType.IsInstanceOfType(exprSrc.RuntimeObject) &&
                    binder.GetSemanticChecker().CheckTypeAccess(typeDest, binder.Context.ContextForMemberLookup()))
                {
                    if (needsExprDest)
                    {
                        binder.bindSimpleCast(exprSrc, exprTypeDest, out exprDest, exprSrc.flags & EXPRFLAG.EXF_CANTBENULL);
                    }
                    return(true);
                }

                // !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!
                // END RUNTIME BINDER ONLY CHANGE
                // !!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!

                // 13.1.8 User-defined implicit conversions
                //
                // A user-defined implicit conversion consists of an optional standard implicit conversion,
                // followed by execution of a user-defined implicit conversion operator, followed by another
                // optional standard implicit conversion. The exact rules for evaluating user-defined
                // conversions are described in 13.4.3.

                if (0 == (flags & CONVERTTYPE.NOUDC))
                {
                    return(binder.bindUserDefinedConversion(exprSrc, typeSrc, typeDest, needsExprDest, out exprDest, true));
                }

                // No conversion was found.

                return(false);
            }
Beispiel #24
0
        private static bool CheckSingleConstraint(CSemanticChecker checker, ErrorHandling errHandling, Symbol symErr, TypeParameterType var, CType arg, TypeArray typeArgsCls, TypeArray typeArgsMeth, CheckConstraintsFlags flags)
        {
            bool fReportErrors = 0 == (flags & CheckConstraintsFlags.NoErrors);

            if (arg.IsOpenTypePlaceholderType())
            {
                return true;
            }

            if (arg.IsErrorType())
            {
                // Error should have been reported previously.
                return false;
            }

            if (checker.CheckBogus(arg))
            {
                if (fReportErrors)
                {
                    errHandling.ErrorRef(ErrorCode.ERR_BogusType, arg);
                }

                return false;
            }

            if (arg.IsPointerType() || arg.isSpecialByRefType())
            {
                if (fReportErrors)
                {
                    errHandling.Error(ErrorCode.ERR_BadTypeArgument, arg);
                }

                return false;
            }

            if (arg.isStaticClass())
            {
                if (fReportErrors)
                {
                    checker.ReportStaticClassError(null, arg, ErrorCode.ERR_GenericArgIsStaticClass);
                }

                return false;
            }

            bool fError = false;
            if (var.HasRefConstraint() && !arg.IsRefType())
            {
                if (fReportErrors)
                {
                    errHandling.ErrorRef(ErrorCode.ERR_RefConstraintNotSatisfied, symErr, new ErrArgNoRef(var), arg);
                }

                fError = true;
            }

            TypeArray bnds = checker.GetSymbolLoader().GetTypeManager().SubstTypeArray(var.GetBounds(), typeArgsCls, typeArgsMeth);
            int itypeMin = 0;

            if (var.HasValConstraint())
            {
                // If we have a type variable that is constrained to a value type, then we
                // want to check if its a nullable type, so that we can report the 
                // constraint error below. In order to do this however, we need to check 
                // that either the type arg is not a value type, or it is a nullable type.
                //
                // To check whether or not its a nullable type, we need to get the resolved
                // bound from the type argument and check against that.

                bool bIsValueType = arg.IsValType();
                bool bIsNullable = arg.IsNullableType();
                if (bIsValueType && arg.IsTypeParameterType())
                {
                    TypeArray pArgBnds = arg.AsTypeParameterType().GetBounds();
                    if (pArgBnds.size > 0)
                    {
                        bIsNullable = pArgBnds.Item(0).IsNullableType();
                    }
                }

                if (!bIsValueType || bIsNullable)
                {
                    if (fReportErrors)
                    {
                        errHandling.ErrorRef(ErrorCode.ERR_ValConstraintNotSatisfied, symErr, new ErrArgNoRef(var), arg);
                    }

                    fError = true;
                }

                // Since FValCon() is set it is redundant to check System.ValueType as well.
                if (bnds.size != 0 && bnds.Item(0).isPredefType(PredefinedType.PT_VALUE))
                {
                    itypeMin = 1;
                }
            }

            for (int j = itypeMin; j < bnds.size; j++)
            {
                CType typeBnd = bnds.Item(j);
                if (!SatisfiesBound(checker, arg, typeBnd))
                {
                    if (fReportErrors)
                    {
                        // The bound isn't satisfied because of a constaint type. Explain to the user why not.
                        // There are 4 main cases, based on the type of the supplied type argument:
                        //  - reference type, or type parameter known to be a reference type
                        //  - nullable type, from which there is a boxing conversion to the constraint type(see below for details)
                        //  - type varaiable
                        //  - value type
                        // These cases are broken out because: a) The sets of conversions which can be used 
                        // for constraint satisfaction is different based on the type argument supplied, 
                        // and b) Nullable is one funky type, and user's can use all the help they can get
                        // when using it.
                        ErrorCode error;
                        if (arg.IsRefType())
                        {
                            // A reference type can only satisfy bounds to types 
                            // to which they have an implicit reference conversion
                            error = ErrorCode.ERR_GenericConstraintNotSatisfiedRefType;
                        }
                        else if (arg.IsNullableType() && checker.GetSymbolLoader().HasBaseConversion(arg.AsNullableType().GetUnderlyingType(), typeBnd))    // This is inlining FBoxingConv
                        {
                            // nullable types do not satisfy bounds to every type that they are boxable to
                            // They only satisfy bounds of object and ValueType
                            if (typeBnd.isPredefType(PredefinedType.PT_ENUM) || arg.AsNullableType().GetUnderlyingType() == typeBnd)
                            {
                                // Nullable types don't satisfy bounds of EnumType, or the underlying type of the enum
                                // even though the conversion from Nullable to these types is a boxing conversion
                                // This is a rare case, because these bounds can never be directly stated ...
                                // These bounds can only occur when one type paramter is constrained to a second type parameter
                                // and the second type parameter is instantiated with Enum or the underlying type of the first type
                                // parameter
                                error = ErrorCode.ERR_GenericConstraintNotSatisfiedNullableEnum;
                            }
                            else
                            {
                                // Nullable types don't satisfy the bounds of any interface type
                                // even when there is a boxing conversion from the Nullable type to 
                                // the interface type. This will be a relatively common scenario
                                // so we cal it out separately from the previous case.
                                Debug.Assert(typeBnd.isInterfaceType());
                                error = ErrorCode.ERR_GenericConstraintNotSatisfiedNullableInterface;
                            }
                        }
                        else if (arg.IsTypeParameterType())
                        {
                            // Type variables can satisfy bounds through boxing and type variable conversions
                            Debug.Assert(!arg.IsRefType());
                            error = ErrorCode.ERR_GenericConstraintNotSatisfiedTyVar;
                        }
                        else
                        {
                            // Value types can only satisfy bounds through boxing conversions.
                            // Note that the exceptional case of Nullable types and boxing is handled above.
                            error = ErrorCode.ERR_GenericConstraintNotSatisfiedValType;
                        }
                        errHandling.Error(error, new ErrArgRef(symErr), new ErrArg(typeBnd, ErrArgFlags.Unique), var, new ErrArgRef(arg, ErrArgFlags.Unique));
                    }
                    fError = true;
                }
            }

            // Check the newable constraint.
            if (!var.HasNewConstraint() || arg.IsValType())
            {
                return !fError;
            }

            if (arg.isClassType())
            {
                AggregateSymbol agg = arg.AsAggregateType().getAggregate();

                // Due to late binding nature of IDE created symbols, the AggregateSymbol might not
                // have all the information necessary yet, if it is not fully bound.
                // by calling LookupAggMember, it will ensure that we will update all the
                // information necessary at least for the given method.
                checker.GetSymbolLoader().LookupAggMember(checker.GetNameManager().GetPredefName(PredefinedName.PN_CTOR), agg, symbmask_t.MASK_ALL);

                if (agg.HasPubNoArgCtor() && !agg.IsAbstract())
                {
                    return !fError;
                }
            }
            else if (arg.IsTypeParameterType() && arg.AsTypeParameterType().HasNewConstraint())
            {
                return !fError;
            }

            if (fReportErrors)
            {
                errHandling.ErrorRef(ErrorCode.ERR_NewConstraintNotSatisfied, symErr, new ErrArgNoRef(var), arg);
            }

            return false;
        }
Beispiel #25
0
        ////////////////////////////////////////////////////////////////////////////////

        private bool LowerBoundArrayInference(CType pSource, CType pDest)
        {
            // SPEC:  Otherwise, if U is an array CType Ue[...] and V is either an array
            // SPEC:   CType Ve[...] of the same rank, or if U is a one-dimensional array
            // SPEC:   CType Ue[] and V is one of IEnumerable<Ve>, ICollection<Ve>, 
            // SPEC:   IList<Ve>, IReadOnlyCollection<Ve> or IReadOnlyList<Ve> then
            // SPEC:    if Ue is known to be a reference CType then a lower-bound inference
            // SPEC:     from Ue to Ve is made.
            // SPEC:    otherwise an exact inference from Ue to Ve is made.

            // Consider the following:
            //
            // abstract class B<T> { public abstract M<U>(U u) : where U : T; }
            // class D : B<int[]> {
            //   static void M<X>(X[] x) { }
            //   public override M<U>(U u) { M(u); } // should infer M<int>
            // }

            if (pSource.IsTypeParameterType())
            {
                pSource = pSource.AsTypeParameterType().GetEffectiveBaseClass();
            }

            if (!pSource.IsArrayType())
            {
                return false;
            }
            ArrayType pArraySource = pSource.AsArrayType();
            CType pElementSource = pArraySource.GetElementType();
            CType pElementDest = null;

            if (pDest.IsArrayType())
            {
                ArrayType pArrayDest = pDest.AsArrayType();
                if (pArrayDest.rank != pArraySource.rank)
                {
                    return false;
                }
                pElementDest = pArrayDest.GetElementType();
            }
            else if (pDest.isPredefType(PredefinedType.PT_G_IENUMERABLE) ||
                pDest.isPredefType(PredefinedType.PT_G_ICOLLECTION) ||
                pDest.isPredefType(PredefinedType.PT_G_ILIST) ||
                pDest.isPredefType(PredefinedType.PT_G_IREADONLYCOLLECTION) ||
                pDest.isPredefType(PredefinedType.PT_G_IREADONLYLIST))
            {
                if (pArraySource.rank != 1)
                {
                    return false;
                }
                AggregateType pAggregateDest = pDest.AsAggregateType();
                pElementDest = pAggregateDest.GetTypeArgsThis().Item(0);
            }
            else
            {
                return false;
            }

            if (pElementSource.IsRefType())
            {
                LowerBoundInference(pElementSource, pElementDest);
            }
            else
            {
                ExactInference(pElementSource, pElementDest);
            }
            return true;
        }
Beispiel #26
0
        private CType SubstTypeCore(CType type, SubstContext pctx)
        {
            CType typeSrc;
            CType typeDst;

            switch (type.GetTypeKind())
            {
                default:
                    Debug.Assert(false);
                    return type;

                case TypeKind.TK_NullType:
                case TypeKind.TK_VoidType:
                case TypeKind.TK_OpenTypePlaceholderType:
                case TypeKind.TK_MethodGroupType:
                case TypeKind.TK_BoundLambdaType:
                case TypeKind.TK_UnboundLambdaType:
                case TypeKind.TK_NaturalIntegerType:
                case TypeKind.TK_ArgumentListType:
                    return type;

                case TypeKind.TK_ParameterModifierType:
                    typeDst = SubstTypeCore(typeSrc = type.AsParameterModifierType().GetParameterType(), pctx);
                    return (typeDst == typeSrc) ? type : GetParameterModifier(typeDst, type.AsParameterModifierType().isOut);

                case TypeKind.TK_ArrayType:
                    typeDst = SubstTypeCore(typeSrc = type.AsArrayType().GetElementType(), pctx);
                    return (typeDst == typeSrc) ? type : GetArray(typeDst, type.AsArrayType().rank);

                case TypeKind.TK_PointerType:
                    typeDst = SubstTypeCore(typeSrc = type.AsPointerType().GetReferentType(), pctx);
                    return (typeDst == typeSrc) ? type : GetPointer(typeDst);

                case TypeKind.TK_NullableType:
                    typeDst = SubstTypeCore(typeSrc = type.AsNullableType().GetUnderlyingType(), pctx);
                    return (typeDst == typeSrc) ? type : GetNullable(typeDst);

                case TypeKind.TK_AggregateType:
                    if (type.AsAggregateType().GetTypeArgsAll().size > 0)
                    {
                        AggregateType ats = type.AsAggregateType();

                        TypeArray typeArgs = SubstTypeArray(ats.GetTypeArgsAll(), pctx);
                        if (ats.GetTypeArgsAll() != typeArgs)
                            return GetAggregate(ats.getAggregate(), typeArgs);
                    }
                    return type;

                case TypeKind.TK_ErrorType:
                    if (type.AsErrorType().HasParent())
                    {
                        ErrorType err = type.AsErrorType();
                        Debug.Assert(err.nameText != null && err.typeArgs != null);

                        CType pParentType = null;
                        if (err.HasTypeParent())
                        {
                            pParentType = SubstTypeCore(err.GetTypeParent(), pctx);
                        }

                        TypeArray typeArgs = SubstTypeArray(err.typeArgs, pctx);
                        if (typeArgs != err.typeArgs || (err.HasTypeParent() && pParentType != err.GetTypeParent()))
                        {
                            return GetErrorType(pParentType, err.GetNSParent(), err.nameText, typeArgs);
                        }
                    }
                    return type;

                case TypeKind.TK_TypeParameterType:
                    {
                        TypeParameterSymbol tvs = type.AsTypeParameterType().GetTypeParameterSymbol();
                        int index = tvs.GetIndexInTotalParameters();
                        if (tvs.IsMethodTypeParameter())
                        {
                            if ((pctx.grfst & SubstTypeFlags.DenormMeth) != 0 && tvs.parent != null)
                                return type;
                            Debug.Assert(tvs.GetIndexInOwnParameters() == tvs.GetIndexInTotalParameters());
                            if (index < pctx.ctypeMeth)
                            {
                                Debug.Assert(pctx.prgtypeMeth != null);
                                return pctx.prgtypeMeth[index];
                            }
                            else
                            {
                                return ((pctx.grfst & SubstTypeFlags.NormMeth) != 0 ? GetStdMethTypeVar(index) : type);
                            }
                        }
                        if ((pctx.grfst & SubstTypeFlags.DenormClass) != 0 && tvs.parent != null)
                            return type;
                        return index < pctx.ctypeCls ? pctx.prgtypeCls[index] :
                               ((pctx.grfst & SubstTypeFlags.NormClass) != 0 ? GetStdClsTypeVar(index) : type);
                    }
            }
        }
Beispiel #27
0
        ////////////////////////////////////////////////////////////////////////////////

        private bool UpperBoundTypeParameterInference(CType pSource, CType pDest)
        {
            // SPEC:  If V is one of the unfixed Xi then U is added to the set of upper bounds
            // SPEC:   for Xi.
            if (pDest.IsTypeParameterType())
            {
                TypeParameterType pTPType = pDest.AsTypeParameterType();
                if (pTPType.IsMethodTypeParameter() && IsUnfixed(pTPType))
                {
                    AddUpperBound(pTPType, pSource);
                    return true;
                }
            }
            return false;
        }
Beispiel #28
0
        public bool HasImplicitBoxingConversion(CType pSource, CType pDest)
        {
            Debug.Assert(pSource != null);
            Debug.Assert(pDest != null);

            // Certain type parameter conversions are classified as boxing conversions.

            if (pSource.IsTypeParameterType() &&
                HasImplicitBoxingTypeParameterConversion(pSource.AsTypeParameterType(), pDest))
            {
                return true;
            }

            // The rest of the boxing conversions only operate when going from a value type
            // to a reference type.

            if (!pSource.IsValType() || !pDest.IsRefType())
            {
                return false;
            }

            // A boxing conversion exists from a nullable type to a reference type
            // if and only if a boxing conversion exists from the underlying type.

            if (pSource.IsNullableType())
            {
                return HasImplicitBoxingConversion(pSource.AsNullableType().GetUnderlyingType(), pDest);
            }

            // A boxing conversion exists from any non-nullable value type to object,
            // to System.ValueType, and to any interface type implemented by the
            // non-nullable value type.  Furthermore, an enum type can be converted
            // to the type System.Enum.

            // We set the base class of the structs to System.ValueType, System.Enum, etc,
            // so we can just check here.

            if (IsBaseClass(pSource, pDest))
            {
                return true;
            }
            if (HasAnyBaseInterfaceConversion(pSource, pDest))
            {
                return true;
            }
            return false;
        }
Beispiel #29
0
        /***************************************************************************************************
        *   Lookup must be called before anything else can be called.
        *
        *   typeSrc - Must be an AggregateType or TypeParameterType.
        *   obj - the expression through which the member is being accessed. This is used for accessibility
        *       of protected members and for constructing a MEMGRP from the results of the lookup.
        *       It is legal for obj to be an EK_CLASS, in which case it may be used for accessibility, but
        *       will not be used for MEMGRP construction.
        *   symWhere - the symbol from with the name is being accessed (for checking accessibility).
        *   name - the name to look for.
        *   arity - the number of type args specified. Only members that support this arity are found.
        *       Note that when arity is zero, all methods are considered since we do type argument
        *       inferencing.
        *
        *   flags - See MemLookFlags.
        *       TypeVarsAllowed only applies to the most derived type (not base types).
        ***************************************************************************************************/
        public bool Lookup(CSemanticChecker checker, CType typeSrc, EXPR obj, ParentSymbol symWhere, Name name, int arity, MemLookFlags flags)
        {
            Debug.Assert((flags & ~MemLookFlags.All) == 0);
            Debug.Assert(obj == null || obj.type != null);
            Debug.Assert(typeSrc.IsAggregateType() || typeSrc.IsTypeParameterType());
            Debug.Assert(checker != null);

            _prgtype = _rgtypeStart;

            // Save the inputs for error handling, etc.
            _pSemanticChecker = checker;
            _pSymbolLoader    = checker.GetSymbolLoader();
            _typeSrc          = typeSrc;
            _obj      = (obj != null && !obj.isCLASS()) ? obj : null;
            _symWhere = symWhere;
            _name     = name;
            _arity    = arity;
            _flags    = flags;

            if ((_flags & MemLookFlags.BaseCall) != 0)
            {
                _typeQual = null;
            }
            else if ((_flags & MemLookFlags.Ctor) != 0)
            {
                _typeQual = _typeSrc;
            }
            else if (obj != null)
            {
                _typeQual = (CType)obj.type;
            }
            else
            {
                _typeQual = null;
            }

            // Determine what to search.
            AggregateType typeCls1  = null;
            AggregateType typeIface = null;
            TypeArray     ifaces    = BSYMMGR.EmptyTypeArray();
            AggregateType typeCls2  = null;

            if (typeSrc.IsTypeParameterType())
            {
                Debug.Assert((_flags & (MemLookFlags.Ctor | MemLookFlags.NewObj | MemLookFlags.Operator | MemLookFlags.BaseCall | MemLookFlags.TypeVarsAllowed)) == 0);
                _flags  &= ~MemLookFlags.TypeVarsAllowed;
                ifaces   = typeSrc.AsTypeParameterType().GetInterfaceBounds();
                typeCls1 = typeSrc.AsTypeParameterType().GetEffectiveBaseClass();
                if (ifaces.size > 0 && typeCls1.isPredefType(PredefinedType.PT_OBJECT))
                {
                    typeCls1 = null;
                }
            }
            else if (!typeSrc.isInterfaceType())
            {
                typeCls1 = typeSrc.AsAggregateType();

                if (typeCls1.IsWindowsRuntimeType())
                {
                    ifaces = typeCls1.GetWinRTCollectionIfacesAll(GetSymbolLoader());
                }
            }
            else
            {
                Debug.Assert(typeSrc.isInterfaceType());
                Debug.Assert((_flags & (MemLookFlags.Ctor | MemLookFlags.NewObj | MemLookFlags.Operator | MemLookFlags.BaseCall)) == 0);
                typeIface = typeSrc.AsAggregateType();
                ifaces    = typeIface.GetIfacesAll();
            }

            if (typeIface != null || ifaces.size > 0)
            {
                typeCls2 = GetSymbolLoader().GetReqPredefType(PredefinedType.PT_OBJECT);
            }

            // Search the class first (except possibly object).
            if (typeCls1 == null || LookupInClass(typeCls1, ref typeCls2))
            {
                // Search the interfaces.
                if ((typeIface != null || ifaces.size > 0) && LookupInInterfaces(typeIface, ifaces) && typeCls2 != null)
                {
                    // Search object last.
                    Debug.Assert(typeCls2 != null && typeCls2.isPredefType(PredefinedType.PT_OBJECT));

                    AggregateType result = null;
                    LookupInClass(typeCls2, ref result);
                }
            }

            // if we are requested with extension methods
            _results = new CMemberLookupResults(GetAllTypes(), _name);

            return(!FError());
        }
Beispiel #30
0
        /***************************************************************************************************
            Lookup must be called before anything else can be called.
         
            typeSrc - Must be an AggregateType or TypeParameterType.
            obj - the expression through which the member is being accessed. This is used for accessibility
                of protected members and for constructing a MEMGRP from the results of the lookup.
                It is legal for obj to be an EK_CLASS, in which case it may be used for accessibility, but
                will not be used for MEMGRP construction.
            symWhere - the symbol from with the name is being accessed (for checking accessibility).
            name - the name to look for.
            arity - the number of type args specified. Only members that support this arity are found.
                Note that when arity is zero, all methods are considered since we do type argument
                inferencing.
         
            flags - See MemLookFlags.
                TypeVarsAllowed only applies to the most derived type (not base types).
        ***************************************************************************************************/
        public bool Lookup(CSemanticChecker checker, CType typeSrc, EXPR obj, ParentSymbol symWhere, Name name, int arity, MemLookFlags flags)
        {
            Debug.Assert((flags & ~MemLookFlags.All) == 0);
            Debug.Assert(obj == null || obj.type != null);
            Debug.Assert(typeSrc.IsAggregateType() || typeSrc.IsTypeParameterType());
            Debug.Assert(checker != null);

            _prgtype = _rgtypeStart;

            // Save the inputs for error handling, etc.
            _pSemanticChecker = checker;
            _pSymbolLoader = checker.GetSymbolLoader();
            _typeSrc = typeSrc;
            _obj = (obj != null && !obj.isCLASS()) ? obj : null;
            _symWhere = symWhere;
            _name = name;
            _arity = arity;
            _flags = flags;

            if ((_flags & MemLookFlags.BaseCall) != 0)
                _typeQual = null;
            else if ((_flags & MemLookFlags.Ctor) != 0)
                _typeQual = _typeSrc;
            else if (obj != null)
                _typeQual = (CType)obj.type;
            else
                _typeQual = null;

            // Determine what to search.
            AggregateType typeCls1 = null;
            AggregateType typeIface = null;
            TypeArray ifaces = BSYMMGR.EmptyTypeArray();
            AggregateType typeCls2 = null;

            if (typeSrc.IsTypeParameterType())
            {
                Debug.Assert((_flags & (MemLookFlags.Ctor | MemLookFlags.NewObj | MemLookFlags.Operator | MemLookFlags.BaseCall | MemLookFlags.TypeVarsAllowed)) == 0);
                _flags &= ~MemLookFlags.TypeVarsAllowed;
                ifaces = typeSrc.AsTypeParameterType().GetInterfaceBounds();
                typeCls1 = typeSrc.AsTypeParameterType().GetEffectiveBaseClass();
                if (ifaces.size > 0 && typeCls1.isPredefType(PredefinedType.PT_OBJECT))
                    typeCls1 = null;
            }
            else if (!typeSrc.isInterfaceType())
            {
                typeCls1 = typeSrc.AsAggregateType();

                if (typeCls1.IsWindowsRuntimeType())
                {
                    ifaces = typeCls1.GetWinRTCollectionIfacesAll(GetSymbolLoader());
                }
            }
            else
            {
                Debug.Assert(typeSrc.isInterfaceType());
                Debug.Assert((_flags & (MemLookFlags.Ctor | MemLookFlags.NewObj | MemLookFlags.Operator | MemLookFlags.BaseCall)) == 0);
                typeIface = typeSrc.AsAggregateType();
                ifaces = typeIface.GetIfacesAll();
            }

            if (typeIface != null || ifaces.size > 0)
                typeCls2 = GetSymbolLoader().GetReqPredefType(PredefinedType.PT_OBJECT);

            // Search the class first (except possibly object).
            if (typeCls1 == null || LookupInClass(typeCls1, ref typeCls2))
            {
                // Search the interfaces.
                if ((typeIface != null || ifaces.size > 0) && LookupInInterfaces(typeIface, ifaces) && typeCls2 != null)
                {
                    // Search object last.
                    Debug.Assert(typeCls2 != null && typeCls2.isPredefType(PredefinedType.PT_OBJECT));

                    AggregateType result = null;
                    LookupInClass(typeCls2, ref result);
                }
            }

            // if we are requested with extension methods
            _results = new CMemberLookupResults(GetAllTypes(), _name);

            return !FError();
        }