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Context

I've got a List like this :

List[(User)]

and I need a List like this :

List[(String, String)]

With a user defined as following :

case class User(
    id:Pk[Long] = NotAssigned, 
    name: String
)    

If fact, the initial list is build from classes :

Tried :

My first "naive" attempt (coming from Java) was :

myList.map { u => u.id.get.toString, u.name }

And I've got a error :

required List[(String, String)] 
given List[(java.lang.String, String)]

Solution

As mentioned in the post referenced in comment, Scala has a String type which is a extending java.lang.String. When using inference, Scala is not going to convert to the Scala super class. In order to use the Scala String type, you have to explicitly define the return type.

Exemple :

// Returns List[(java.lang.String, String)]
myList.map { u => u.id.get.toString, u.name }

// Returns List[(String, String)]
def convert(m:List[User]):List[(String, String)] = {
    m.map { u => u.id.get.toString, u.name }    
}
share|improve this question
3  
There's something wrong with the story here. scala.Predef.String is an alias to java.lang.String. You freely mix their usage without any problems. –  Daniel C. Sobral Jul 24 '12 at 15:05

5 Answers 5

up vote 4 down vote accepted

Why this won't work?

def method(a:List[(Long,String)]):List[(String,String)] = a.map { case (value1,value2) => (value1.toString,value2)}
share|improve this answer
    
Nope, giving a List[(java.lang.String, String)] –  i.am.michiel Jul 24 '12 at 12:36
2  
It works on my repl –  Edmondo1984 Jul 24 '12 at 12:36
    
My bad this works. –  i.am.michiel Jul 24 '12 at 13:01

You are close. Just need to add parentheses.

myList.map { u => (u.id.get.toString, u.name) }

Or you could use the extractor for User.

myList.map { case User(id, name) => (id.get.toString, name) }
share|improve this answer
    
Yeah, well I forgot the parentheses when writing the question but I have them in my code. –  i.am.michiel Jul 24 '12 at 13:00

This works in my REPL:

scala> case class User (id: Option[Long] = None, name:String)
defined class User

scala> val users = User(name = "Name") :: User(name = "LastName") :: Nil
users: List[User] = List(User(None,Name), User(None,LastName))

scala> val pairs = users.map{u => u.id.toString -> u.name}
pairs: List[(String, String)] = List((None,Name), (None,LastName))
share|improve this answer
val xs: List[(Long, String)] = List((1l, "A"), (2l, "B"))
val ys: List[(String, String)] = xs.map{case (a, b) => (a.toString, b)}

In the above solution, a partial function (which actually happens to be a total one for the given domain) is uses for the sake of being able to decompose the tuple into its constituents (here a and b).

You can also use the tuple's accessor methods to get to the components:

val zs: List[(String, String)] = xs.map(t => (t._1.toString, t._2))
share|improve this answer

How about:

myList.map(t => t._1+"" -> t._2)

or alternatively:

myList.map { case(k,v) => (k.toString, v) }
share|improve this answer
    
Nope, tried both of these with the same result. –  i.am.michiel Jul 24 '12 at 12:35
    
@i.am.michiel are you sure that your initial list is List[(Long, String)]? –  om-nom-nom Jul 24 '12 at 12:40
    
It's a little bit more complex but yes. I shall add more information in my question. –  i.am.michiel Jul 24 '12 at 12:43
    
Added some more information. –  i.am.michiel Jul 24 '12 at 12:47

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