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Im reading this page http://www.scala-lang.org/node/137, I understand what covariance is and lower bounds as well, but what it's not clear is this line:

Unfortunately, this program does not compile, because a covariance annotation is only possible if the type variable is used only in covariant positions. Since type variable T appears as a parameter type of method prepend, this rule is broken.

why elem has to be an instance of a supertype of T, if ListNode is already covariant why elem cannot be prepended to the current list.

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The explanation is pretty straightforward. Type variable T appears as a parameter type. This is not a covariant position. What exactly poses a problem here? –  n.m. May 12 '12 at 8:43

1 Answer 1

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class Super             {override def toString = "Super"}
class Sub extends Super {override def toString = "Sub"; def subMethod {} }
val sup = new Super
val sub = new Sub

Imagine the following were allowed:

// invalid code
class Foo[+T] {
  def bar(x: T) = println(x)
}

Since Foo is covariant on T, this is valid (a simple upcast, since a Foo[Sub] is a Foo[Super]):

val foo : Foo[Super] = new Foo[Sub] {
  override def bar(x: Sub) = x.subMethod
}

Now foo is, as far as we know, a Foo[Super] like any other, but its bar method won't work, because the bar implementation requires a Sub:

foo.bar(sup) // would cause error!
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Ok, i understand, now from the line 'this program does not compile' form the scala site it, doesn't mean that we are actualy violating something in this particular code and we are not subclassing Foo[SomeClass] explicitly, the compiler is just protecting against a potential runtime error, am i wrong? –  loki May 12 '12 at 15:43
    
You're right, but it's just like the compiler applying any other rule of static typing, like not letting you call List methods on Strings. As the above shows, it would be logically inconsistent to allow a method's arguement to be a covariant type, so it doesn't let you. –  Luigi Plinge May 12 '12 at 17:00

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