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(Really awful title.)

Anyway: can I somehow make Scala infer the type of b in 2nd line?

scala> class A[B](val b: B, val fun: B => Unit)
defined class A

scala> new A("123", b => { })
<console>:9: error: missing parameter type
              new A("123", b => { })
                           ^

This works as expected after adding the type:

scala> new A("123", (b: String) => { })
res0: A[String] = A@478f6f48

And String is certainly the expected type:

scala> new A("123", (b: Int) => {})
<console>:9: error: type mismatch;
 found   : Int => Unit
 required: String => Unit
              new A("123", (b: Int) => {})
                                    ^
share|improve this question
up vote 4 down vote accepted

For such cases in Scala, like in many other languages, the concept of currying exists:

scala> class A[B](val b: B)(val fun: B => Unit)
defined class A

scala> new A("string")(_.toUpperCase)
res8: A[String] = A@5884888a

You also can simplify this with case classes:

scala> case class A[B](b: B)(fun: B => Unit)
defined class A

scala> A("string")(_.toUpperCase)
res9: A[String] = A(string)

As for your example:

new A("123", (b: Int) => {})

You can't do this, both arguments in class declaration have generic B type, so both parameters must have the same type

share|improve this answer
    
Thanks, I'll use currying, as you suggested. :) (I still don't understand, though, why can't the type be inferenced in my example.) – Michal Rus Oct 3 '13 at 20:46
2  
@MichałRus That's a limitation of Scala type inference, you can't do anything with this – 4lex1v Oct 3 '13 at 20:51
    
Kthx. :) Nice hair, btw. – Michal Rus Oct 3 '13 at 20:56

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