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What is the best way to create a Map[K,V] from a Set[K] and function from K to V?

For example, suppose I have

scala> val s = Set(2, 3, 5)
s: scala.collection.immutable.Set[Int] = Set(2, 3, 5)

and

scala> def func(i: Int) = "" + i + i
func: (i: Int)java.lang.String

What is the easiest way of creating a Map[Int, String](2 -> "22", 3 -> "33", 5 -> "55")

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1  
Can you please clarify whether you are talking about a function or a method? You mention twice that you mean a function, but you use a method in your code example. Which is it? –  Jörg W Mittag Apr 7 '11 at 15:31
2  
The easiest way is as you did: Map[Int, String](2 -> "22", 3 -> "33", 5 -> "55") –  Viktor Klang Apr 7 '11 at 22:15

7 Answers 7

up vote 14 down vote accepted

You can use foldLeft:

val func2 = (r: Map[Int,String], i: Int) => r + (i -> func(i))
s.foldLeft(Map.empty[Int,String])(func2)

This will perform better than Jesper's solution, because foldLeft constructs the Map in one pass. Jesper's code creates an intermediate data structure first, which then needs to be converted to the final Map.

Update: I wrote a micro benchmark testing the speed of each of the answers:

Jesper (original): 35s 738ms
Jesper (improved): 11s 618ms
           dbyrne: 11s 906ms
         Rex Kerr: 12s 206ms
          Eastsun: 11s 988ms

Looks like they are all pretty much the same as long as you avoid constructing an intermediate data structure.

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What if I'd add a .view before the .toMap in my solution - would that prevent building the intermediate collection? –  Jesper Apr 7 '11 at 20:44
    
@Jesper: You would need to add the .view before the map, like this - (s.view.map { i => i -> func(i) }).toMap –  dbyrne Apr 7 '11 at 20:57
    
@Jesper: Updated my answer. Shows what a dramatic improvement adding .view makes. –  dbyrne Apr 7 '11 at 21:14

The other solutions lack creativity. Here's my own version, though I'd really like to get rid of the _.head map.

s groupBy identity mapValues (_.head) mapValues func
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What about this:

(s map { i => i -> func(i) }).toMap

This maps the elements of s to tuples (i, func(i)) and then converts the resulting collection to a Map.

Note: i -> func(i) is the same as (i, func(i)).

dbyrne suggests creating a view of the set first (see his answer and comments), which prevents an intermediate collection from being made, improving performance:

(s.view map { i => i -> func(i) }).toMap
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I wonder, is there a way to supply the func explicitly to toMap (i.e., specifying the implicit argument). –  subsub Apr 7 '11 at 15:32
    
@subsub if you change func to: def func(i: Int) = i -> ("" + i + i) then you could do: (s.view map func).toMap. So, you'd let func return the tuple. –  Jesper Apr 7 '11 at 21:47

Without definition of func(i: Int) using "string repeating" operator *:

scala> s map { x => x -> x.toString*2 } toMap
res2: scala.collection.immutable.Map[Int,String] = Map(2 -> 22, 3 -> 33, 5 -> 55)
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As with all great languages, there's a million ways to do everything.

Here's a strategy that zips the set with itself.

val s = Set(1,2,3,4,5)
Map(s.zip(s.map(_.toString)).toArray : _*)

EDIT: (_.toString) could be replaced with some function that returns something of type V

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Clever, but slow. The three fast solutions are 4x faster than this one. –  Rex Kerr Apr 7 '11 at 21:22

In addition to the existing answers,

Map() ++ set.view.map(i => i -> f(i))

is pretty short and performs as well as the faster answers (fold/breakOut).

(Note the view to prevent creation of a new collection; it does the remapping as it goes.)

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@Luigi Plinge - Everything gets mapped to () if you use a function that returns (). –  Rex Kerr Jun 20 '11 at 15:03
scala> import collection.breakOut
import collection.breakOut

scala> val set = Set(2,3,5)
set: scala.collection.immutable.Set[Int] = Set(2, 3, 5)

scala> def func(i: Int) = ""+i+i
func: (i: Int)java.lang.String

scala> val map: Map[Int,String] = set.map(i => i -> func(i))(breakOut)
map: Map[Int,String] = Map(2 -> 22, 3 -> 33, 5 -> 55)

scala>
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What is the breakOut for exactly; what does it do? –  Jesper Apr 7 '11 at 20:44
    
@Jesper It's a long story, I refer to stackoverflow.com/questions/1715681/scala-2-8-breakout for an introduction. –  Eastsun Apr 8 '11 at 2:21

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