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I have a 3rd party interface Converter<PRESENTATION, MODEL> which contains a method

Class<MODEL> getModelType();

I need to have an implementation that extends Converter<String, Id<SOMETYPE>> so to satisfy the compiler, I need to implement the following method:

@Override
public Class<Id<SOMETYPE>> getModelType() {
    return Id<SOMETYPE>.class;  // does not compile
}

Is this a corner case where I need to revert to using raw types and implement Converter<String, Id> instead (using the raw type Id) ?

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2 Answers 2

up vote 4 down vote accepted

Due to type erasure, a Id<SOMETYPE>.class is the same as a Id.class, except that you can't return the former or the latter (compile error). So you need to trick the compiler, for example:

@Override @SuppressWarnings("unchecked")
Class<List<String>> getModelType() {
    return (Class<List<String>>)(Class<?>)List.class;
}
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I recently came across this problem as well. This is the question that helped me:

Java casting ".class"-operator used on a generic type, e.g. List, to "Class<List<?>>" and to "Class<List<Integer>>"

The solution in your case is this:

public interface Converter<PRESENTATION, MODEL>  {
    Class<MODEL> getModelType();
}

interface Id<E>  {
}

class MyConverter<E> implements Converter<String, Id<E>>  {
    @Override
    public Class<Id<E>> getModelType() {

        @SuppressWarnings("unchecked")  //We know this is okay
        Class<Id<E>> cls = (Class<Id<E>>)(Class)Id.class;
         return  cls;
    }
}
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+1 for mentioning a similar question, I didn't find any. –  herman Jan 14 '14 at 14:02

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