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Let's say you have:

public interface A {}

public class B implements A {}

public class C {
  void foo (List<A>) {}
}

public class Test {
  //Declaration one
  List<A> x = new List<A>();

  //Declaration two
  List<A> x = new List<B>();

  B b = new B();
  x.add(b);


  new C().foo(x);
}

Now obviously declaration one is the correct way to do this, and you receive a compile error on declaration two. I would like to know though why Java chooses to enforce type safety in this specific manner; if a list of Cats is still a list of Animals, why does a method expecting a list of animals balk at receiving a bunch of cats?

Curiousity, more than anything else - and a chance to better refine my knowledge.

Cheers, Dave.

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As a side note, I'm aware we can change the method in C to be the following: void foo(List<? extends A>) {} but I still wonder why that substitution doesn't happen 'automagically' anyway :) –  f1dave Jun 16 '11 at 10:23
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3 Answers

up vote 8 down vote accepted

Java generics are not covariant. If you could do this:

ArrayList<Animal> x = new ArrayList<Cat>();

then you would be able to do:

x.add(new Dog());

which violates the concept that an ArrayList<Cat> can only hold Cat objects (or subclass objects).

Read this for for more details: Java theory and practice: Generics gotchas.

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Thank you good sir. A very helpful link to answer my questions. –  f1dave Jun 16 '11 at 10:26
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Why does a method expecting a list of animals balk at receiving a bunch of cats?

Because you can add any animal to that list, not just cats. This could result in a list of cats containing a dog, like so:

I think there's a spy aming us …

The caller still thinks it's a list of cats and a dog dies when the caller tries to make them fall on his feet when dropped.

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+1 for the image. :) –  Talha Ahmed Khan Jun 16 '11 at 10:27
    
Hehe... Ditto. :P –  f1dave Jun 16 '11 at 10:39
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Use "extends" instead of the class directly :

List<? extends A>x;

If you use only the class as generic then all the elements mus be only of this class.

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