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How can I fix this type error?

object Test extends App {
  def printOption[A](a: Option[A]): Option[A] = { println(a getOrElse("none")); a }

  def printHashCodeAndMap[A, B](fn: Option[A] => Option[B], list: List[Option[A]]): List[Option[B]] = {
    for (elem <- list) yield fn({a => println(a.hashCode()); a})

  val optListA = List(Some("aa"), None, Some(5))

  val optListB = printHashCodeAndMap(printOption, optListA)
  for (x <- optListB) printOption(x)

The error I get is:

error: type mismatch;
found   : Option[Nothing] => Option[Nothing]
required: Option[Any] => Option[Nothing]
val optListB = printHashCodeAndMap(printOption, optListA)
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2 Answers 2

up vote 2 down vote accepted

The problem is with how scala infers type parameters. Types information flows from left to right across parameter groups but not within the same parameter group.

What that means is: the type parameter of printOption, A can be inferred only if A has been bound to a real type in a parameter group that precedes it's occurrence. In your printHashCodeAndMap, this is not the case. So, there are two ways to get this to work.

i. You can forsake the type inference and explicitly specify the types of fn by passing it printOption[Any]. Or you could just specify the type parameters of printHashCodeAndMap when you call it (i.e. printHashCodeAndMap[Any, Any](printOption, optListA))

ii. If you wanted to use scala's type inferrence, you'd want the type information for A to come from optListA which is of type List[Option[Any]]. To make that happen the parameter list has to be in a parameter group that precedes fn. Like this:

def printHashCodeAndMap[A, B](list: List[Option[A]])(fn: Option[A] => Option[B]): List[Option[B]] = { ... }

Then you will be able to call it like this:

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This was really helpful info. Any idea why type inference does not work left-to-right within the same parameter group? – Adrian Jan 31 '13 at 1:23
I don't think I really completely understand the reasons behind it. But I think this blog post and the comments on it point in the right direction. – rjsvaljean Jan 31 '13 at 14:02
val optListB = printHashCodeAndMap(printOption[Any], optListA)
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Thanks. This means that we cannot pass a generic function to a higher-order function? Still, I expected that it would default to printOption[Any], not to printOption[Nothing]... – Adrian Jan 31 '13 at 0:37
Nothing is a subclass in the very bottom of Scala hierarchy. Elements of argument list to a method, are in a [-] variance position by default, so a function which does not make its input type explicitly set gets Nothing in the end. – idonnie Jan 31 '13 at 0:46
This can be explained clearer by Liskov substitution principle. If function<Any> is the subclass of function<A>, then each and every time you use function<A> - you could use a function<Any> instead, but its clearly not true, - because A can be different, and you could expect AnyVal-s in your function[A <: AnyVal], for example – idonnie Jan 31 '13 at 0:49
good explanations! – Adrian Jan 31 '13 at 2:41

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