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If a class has a convariant type parameter such as Iterable[+A], is there any difference between declaring

def foo(bar: Iterable[_])

and

def foo(bar: Iterable[Any])

?


If a class has a contravariant type parameter such as Growable[-A], is there any difference between declaring

def foo(bar: Growable[_])

and

def foo(bar: Growable[Nothing])

?

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2  
possible duplicate of scala - Any vs underscore in generics –  Régis Jean-Gilles Mar 9 '13 at 14:49
    
Not an exact duplicate, but close enough. I'll let others judge. –  Régis Jean-Gilles Mar 9 '13 at 14:50

1 Answer 1

It does make a little difference when generic parameter is bounded. For example, if you had

class BoundedIterable[+A <: Something]
class BoundedGrowable[-A >: Something]

then type BoundedIterable[Any] and BoundedGrowable[Nothing] would be illegal.

I don't know if there is any other difference, but I can say for sure that you should prefer the wildcard-less variant wherever possible. That is because, actually, the very purpose of declaration-site type variance is to get rid of wildcards (which are a form of usage-site variance). When you say List[Any] you mean "list of anything", but when you say List[_] then you mean "list of we-don't-know-what". So the former is just way more clear, even though they may be equivalent in some particular case.

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If a type parameter is bounded by Something, we could simply use Something in the place of Any/Nothing. In such a case, we could write def foo(bar: MyBoundedType[Something]) (for both the covariant and contravariant case). –  Petr Pudlák Mar 9 '13 at 13:52
    
@Peter That's true. That's why I called it "a little" difference :) –  ghik Mar 9 '13 at 13:58

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