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How to define a generic return type for an interface, so that it's implementing class can have a return type of its own?

public interface A {
    public <T> T doSomething();     
}


public class ImplA implements A {
    public SomethingElseA doSomething() {
        return obj.doSomething();
    }
}

public class ImplB implements A {
    public SomethingElseB doSomething() {
        return obj.doSomething();
    }
}
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do is not a valid identifier. –  oldrinb Sep 3 '12 at 5:38
    
edited to doSomething –  humansg Sep 3 '12 at 5:40
    
now it should be ok, right? –  MaVRoSCy Sep 3 '12 at 5:42
    
@MaVRoSCy ok in what sense? It still won't compile. –  oldrinb Sep 3 '12 at 5:43
    
@MaVRoSCy remove the brackets around T and specify that T is a type parameter for the interface. –  oldrinb Sep 3 '12 at 5:46

2 Answers 2

up vote 5 down vote accepted

Try something as follows.

interface A<T> {

  T doSomething();
}

class ImplA implements A<SomethingElseA> {

  public SomethingElseA doSomething() {
    ...
  }
}

class ImplB implements A<SomethingElseB> {

  public SomethingElseB doSomething() {
    ...
  }
}
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I'm guessing you mean like this? I changed do() to foo() as do is a reserved word...

public interface A<T> {
    public T foo();      
}

public class ImplA implements A<SomethingElseA> {
    @Override
    public SomethingElseA foo() {
        return obj.doSomething();
    }
}

public class ImplB implements A<SomethingElseB> {
    @Override
    public SomethingElseB foo() {
        return obj.doSomething();
    }
}
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