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I'm having a real brain fart here. I'm working with the Play Framework. I have a method which takes a map and turns it into a HTML select element. I had a one-liner to take a list of objects and convert it into a map of two of the object's fields, id and name. However, I'm a Java programmer and my Scala is weak, and I've only gone and forgotten the syntax of how I did it.

I had something like

organizations.all.map {org => /* org.prop1, org.prop2 */ }

Can anyone complete the commented part?

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2 Answers 2

up vote 6 down vote accepted

I would suggest:

map { org => (org.id, org.name) } toMap

e.g.

scala> case class T(val a : Int, val b : String)
defined class T

scala> List(T(1, "A"), T(2, "B"))
res0: List[T] = List(T(1,A), T(2,B))

scala> res0.map(t => (t.a, t.b))
res1: List[(Int, String)] = List((1,A), (2,B))

scala> res0.map(t => (t.a, t.b)).toMap
res2: scala.collection.immutable.Map[Int,String] = Map(1 -> A, 2 -> B)
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1  
and .toMap, since original type is List –  om-nom-nom Aug 19 '13 at 16:15
    
Thx for that. Noted –  Brian Agnew Aug 19 '13 at 16:15
    
That is the line I was forgetting. Such a flexible language. –  evanjdooner Aug 20 '13 at 10:42

You could also take an intermediary List out of the equation and go straight to the Map like this:

case class Org(prop1:String, prop2:Int)
val list = List(Org("foo", 1), Org("bar", 2))  
val map:Map[String,Int] = list.map(org => (org.prop1, org.prop2))(collection.breakOut)

Using collection.breakOut as the implicit CanBuildFrom allows you to basically skip a step in the process of getting a Map from a List.

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1  
I found your answer here really interesting, I'd never heard of breakOut... fyi a little more reference information for those also learning: stackoverflow.com/questions/1715681/scala-2-8-breakout –  LaloInDublin Aug 19 '13 at 16:29
    
Thanks for the suggestion. However, I tried to use a variant of your line list.map(org => (org.prop1, org.prop2))(collection.breakOut) in a scala html template but it returns an object of type scala.collection.immutable.IndexedSeq[(String, String). The code I've used is Organization.all.map(org => (org.id.toString, org.name))(collection.breakOut) where Organization.all() is a Java method that returns a List<Organization>. –  evanjdooner Aug 22 '13 at 11:39
1  
@evanjdooner, did you type the val or var you were assigning the result to. It must be explicitly typed for it to end up as a Map as my example shows. –  cmbaxter Aug 22 '13 at 17:32
    
Ah, I see. I omitted the variable assignment as I was passing it as a parameter. I'll try it your way. –  evanjdooner Aug 23 '13 at 8:25
    
Yes, that way works perfectly. –  evanjdooner Aug 23 '13 at 9:01

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