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I have two enums that implement a common interface. I've tried to declare the interface so only enums can implement it.

interface CommonEnumInterface<E extends Enum<?>> {

    /** It doesn't matter what this does. */
    E commonInterfaceMethod();

}

enum Enum1 implements CommonEnumInterface<Enum1> {
    FOO,
    BAR,
    BAZ;

    @Override
    public Enum1 commonInterfaceMethod() {
        return null;
    }
}

enum Enum2 implements CommonEnumInterface<Enum2> {
    BLAH,
    YADDA,
    RHUBARB;

    @Override
    public Enum2 commonInterfaceMethod() {
        return Enum2.BLAH;
    }
}

Now I want to declare a generic type parameter that extends CommonEnumInterface, which should imply the generic type is also an enum:

class CreatingGenericEnumSet<E extends Enum<E> & CommonEnumInterface<E>> {

    CreatingGenericEnumSet() {

        // Is it possible to instantiate an EnumSet of a generic type?
        EnumSet<E> enumSet = EnumSet.noneOf(E.class); // Illegal class literal

        // According to a comment by @tackline, this is illegal, too.
        Collection<E> hackyVariable = Collections.emptyList();
        EnumSet<E> jankyWay = EnumSet.copyOf(hackyVariable);

    }
}

My question is in the comments above. Is there a way, preferably in one line, to declare an EnumSet of a generic type?

Is this the right way to declare the interface and type parameters?

share|improve this question
1  
Note API docs for EnumSet.copyOf(Collection) state "IllegalArgumentException - if c is not an EnumSet instance and contains no elements". Nasty API. –  Tom Hawtin - tackline Jan 10 at 3:32
    
Thanks, @Tom. I've edited my question. –  Michael Scheper Jan 10 at 3:39

1 Answer 1

up vote 2 down vote accepted
class CreatingGenericEnumSet<E extends Enum<E> & CommonEnumInterface<E>> {

    CreatingGenericEnumSet(Class<E> enumClass) {

        EnumSet<E> enumSet = EnumSet.<E>noneOf(enumClass);


    }
}

similar question can be found here

share|improve this answer
    
This works. Thanks. Unfortunately, though, the 'trick' mentioned in the answer I link to here does not. stackoverflow.com/a/623691/1450294 Your way may be the only way. –  Michael Scheper Jan 10 at 5:21

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