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I have the following interface

public interface Identifiable {

    public Comparable<?> getIdentifier();

}

And an implementing class

public class Agreement implements Identifiable {

    private Long id;

    public Comparable<Long> getIdentifier() {
        return id;
    }
}

EDIT: Note that there may be other implementations with different types of identifiers.
Now I would like to, yes, compare the comparables:

// Agreement a;
// Agreement b;
...
if (a.getIdentifier().compareTo(b.getIdentifier()) {
...

But the compareTo gives me the following compiler error:

The method compareTo(Long) in the type Comparable<Long> is not applicable for the arguments (Comparable<Long>)

How is this interface supposed to be used with Generics?

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1 Answer 1

up vote 10 down vote accepted

Comparable<T> is meant to be used as an upper bound for a generic parameter:

public interface Identifiable<T extends Comparable<T>> {    
    public T getIdentifier();
}

public class Agreement implements Identifiable<Long> {

    private final Long id;

    public Long getIdentifier() {
        return id;
    }
}

This forces the return type to be a T, not just something that can be compared to a T.


Your code is inherently unsafe.
To understand why, consider the following code:

class Funny implements Comparable<Long> { ... }
class Funnier implements Identifiable {
    public Comparable<Long> getIdentifier() {
        return new Funny();
    }
}

Identifiable<Funny> funnier;
funnier.getIdentifier().compareTo(funnier.getIdentifier());
// You just tried to pass a Funny to compareTo(Long)
share|improve this answer
    
Your example opened my eyes. Thank you! –  Zeemee Aug 22 '12 at 13:50
    
I think the bound here is not "lower" but upper, am I right ? –  Costi Ciudatu Aug 22 '12 at 13:51
    
@Mulmoth The first time I saw <T extends Comparable<T>> my eyes were pretty wide too. ;) –  Peter Lawrey Aug 22 '12 at 13:52
    
But what if I have several methods like getIdentifier, maybe with different types. Isn't it possible to use it more in the "raw" way without stating the return type of a method within the class' diamond operator? –  Zeemee Aug 22 '12 at 13:54
1  
@PeterLawrey: But it wouldn't be safe. See my edit –  SLaks Aug 22 '12 at 14:00

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