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Is it possible to define a generic bound that:

  • implements an interface SomeInterface
  • is a superclass of some class MyClass

Something like:

Collection<? extends SomeInterface & super MyClass> c; // doesn't compile
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For the sake of records, Angelika Langer offers an interesting point of view in this article as to why lower bounds on class type parameters practically makes no sense. – pagoda_5b Dec 23 '15 at 16:33
up vote 3 down vote accepted

According to the spec, the answer would be no (you can have super or extends, but not both):

 TypeArguments:
    < TypeArgumentList >

TypeArgumentList: 
    TypeArgument
    TypeArgumentList , TypeArgument

TypeArgument:
    ReferenceType
    Wildcard

Wildcard:
    ? WildcardBoundsopt

WildcardBounds:
    extends ReferenceType
    super ReferenceType 
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I think the answer is as simple as you have phrased it. The other answer waffled on, but did not actually offer a workaround. – Bohemian Jan 3 '13 at 0:44

You cannot use generic type (T in your case) with bounds when declaring a variable.

It should be either a wildcard (?), or just use the full generic type of the class.

E.g.

// Here only extends is allowed
class My< T extends SomeInterface >
{

  // If using T, then no bounds are allowed
  private Collection<T> var1;

  private Collection< ? extends SomeInterface > var2;

  // Cannot have extends and super on the same wildcard declaration
  private Collection< ? super MyClass > var3;

  // You can use T as a bound for wildcard
  private Collection< ? super T > var4;

  private Collection< ? extends T > var5;

}

In some cases, you may tighten the declaration by adding extra generic parameter to a class (or method) and adding a bound on that particular parameter:

class My <
  T extends MyClass< I >,
  I extends SomeInterface 
>
{
}
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Alex - you're right about the T - I changed it to ?. (It was for illustrative purposed only) – Bohemian Jan 2 '13 at 20:42

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