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Scala in Depth presents the following variance example.

scala> trait Function[-Arg, +Return] {
     |  def apply(arg: Arg): Return
     | }
defined trait Function

scala> val foo = new Function[Any, String] {
     |  override def apply(arg: Any): String =
     |    "Hello. I received " + arg
     | }
foo: Function[Any,String] = $anon$1@5db0e244

scala> val bar: Function[String, Any] = foo
bar: Function[String,Any] = $anon$1@5db0e244

What's the reason that we can assign foo to bar? I have a rough idea, but figured I'd ask outright.

share|improve this question
    
why the downvotes? –  Kevin Meredith Feb 19 at 17:49
    
Yeah, why the downvotes? –  Randall Schulz Feb 19 at 18:13
    
possible duplicate of Real-world examples of co- and contravariance in Scala –  Kevin Wright Feb 19 at 18:21
    
Seems like a valid question for me, and has my up-countervote. Even if there is an existing question that would help you here if you'd thought to search for the magic terms "covariance" and "contravariance" –  Kevin Wright Feb 19 at 18:24

1 Answer 1

up vote 3 down vote accepted

Exactly because the variance annotations make Function[Any, String] a subtype of Function[String, Any].

The covariance annotation, + means a narrower type argument yields a narrower constructed type and the contravariance annotation -, means a wider type parameter yields a narrower constructed type.

share|improve this answer
    
Ah, so String (-Arg) accepts its own type or super. Whereas Any (+Return) accepts its own type or sub-type? Is that reasoning legitimate towards understanding why the above val bar ... = foo works? –  Kevin Meredith Feb 19 at 17:07
    
Yes, that's basically it. Another corollary is: With no variance annotations, different parameter types yield unrelated constructed types regardless of the relationship between the parameters (if any). Other facts useful for reasoning about type compatibility include: Because the Scala type system is a full lattice, any two types have both a common supertype and a common subtype. Conversely any two types need not bear a supertype or a subtype relationship to each other. –  Randall Schulz Feb 19 at 17:27
1  
It's easier to explain with timelords :) stackoverflow.com/a/5279656/165009 –  Kevin Wright Feb 19 at 18:27
    
Cool. And... Agreed! –  Randall Schulz Feb 20 at 3:14

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