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The ListNode example, taken from Scalas homepage goes like this:

case class ListNode[+T](h: T, t: ListNode[T]) {
  def head: T = h
  def tail: ListNode[T] = t
  def prepend[U >: T](elem: U): ListNode[U] =
    ListNode(elem, this)

With this class, we can create objects like:

val empty: ListNode[Null] = ListNode(null, null)
val strList: ListNode[String] = empty.prepend("hello")
val anyList: ListNode[Any] = strList.prepend(12345)

As we can see, we can prepend an integer value to a String node. I guess, this works because the type parameter U will be automatically set to Any, when given the integer to the prepend method (because Int is not a supertype of String).

When trying this with an own lower bound example, I will get an error:

scala> class E[T >: String]
defined class E

scala> new E[Any]
res1: E[Any] = E@135f0a

scala> new E[Int]
<console>:11: error: type arguments [Int] do not conform to class E's type param
eter bounds [T >: String]
      val res2 =
<console>:12: error: type arguments [Int] do not conform to class E's type param
eter bounds [T >: String]
              new E[Int]

Why is the type Int here not automatically seen as type Any like in the ListNode example ?

UPDATE 1: This also works (without explicitley saying the new ListNode should be of type Any)

scala> val empty: ListNode[Null] = ListNode(null, null)
empty: example.listNode.ListNode[Null] = ListNode(null,null)

scala> empty.prepend("hello").prepend("world")
res0: example.listNode.ListNode[java.lang.String] = ListNode(world,ListNode(hell

scala> val strList: ListNode[String] = empty.prepend("hello").prepend("world")
strList: example.listNode.ListNode[String] = ListNode(world,ListNode(hello,ListN

scala> strList.prepend(12345)
res1: example.listNode.ListNode[Any] = ListNode(12345,ListNode(world,ListNode(he
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2 Answers 2

up vote 6 down vote accepted

You get the above error because Int is not a supertype of String.

Note that in the ListNode code above, String is a supertype of Null (see class hierarchy), and Any is a supertype of String (as you rightly pointed out).

I would guess the confusions is caused by comparing two operations that are not really the same: new E[Int] instantiates the class with the type parameter Int, which is not conformant to the lower bound String and hence fails.

In the ListNode code above, on the other hand, you call the prepend method that takes a supertype U of T. When creating anyList, U is (just as you guessed) resolved to Any since this is the only common supertype of String and Int, so you could think of it as not really passing an Int to it, but just some arbitrary instance of Any (which also happens to be of type Int).


val anyList: ListNode[Int] = strList.prepend(12345)

fails as well, as strList.prepend(12345) can only return ListNode[Any].

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Thank you. But why is no error thrown with the line 'strList.prepend(12345)', where an integer is clearly no supertype of a String ? – John Threepwood Jul 1 '12 at 9:31
Because you generate a ListNode[Any], which conforms to the lower bound. If you try val anyList: ListNode[Int] = strList.prepend(12345) this fails. – Roland Ewald Jul 1 '12 at 9:37
The prepend call also works without explicitly saying the result ListNode should be of type Any. So there seems to be an automatically setting behind it ? See Update 1 of my question for an example. – John Threepwood Jul 1 '12 at 9:48
This is because you specifically instantiate E with type parameter Int, and this cannot be done. Simply speaking, type inference only fills out the blanks, but there is no ambiguity in new E[Int] and hence no blanks to fill out (see 2nd & 3rd paragraph in my answer). Imagine you would say val x = new E[Int] and only later find out that x is actually not of that type. This would be pretty strange, right? – Roland Ewald Jul 1 '12 at 10:17
Just for completeness: you can 'disable' this kind of type inference by specifying to which type U should resolve. Just try strList.prepend[Int](12345) in the interpreter (this fails) and strList.prepend[Any](12345) (this works). – Roland Ewald Jul 1 '12 at 10:19

You are doing one thing that is fundamentally different: passing the Int type. Let's make the original code break, as an example:

scala> val anyList: ListNode[Any] = strList.prepend[Int](12345)
<console>:11: error: type arguments [Int] do not conform to method prepend's type parameter bounds [U >: String]
       val anyList: ListNode[Any] = strList.prepend[Int](12345)

See? If you do specify Int, it breaks. It worked in the original because 12345 was inferred as type Any, not as type Int.

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Thank you for providing another example. – John Threepwood Jul 1 '12 at 18:08

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