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constructing scala.collection.Map from other collections, I constantly find myself writing

val map = Map(foo.map(x=>(x, f(x)))

However, this doesn't really work since Map.apply takes variable arguments only - so I have to write

val map = Map(foo.map(x=>(x, f(x)) toSeq :_*)

to get what I want, but that seems painful. Is there a prettier way to construct a Map from an Iterable of tuples?

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up vote 21 down vote accepted

Use TraversableOnce.toMap which is defined if the elements of a Traversable/Iterable are of type Tuple2. (API)

val map = foo.map(x=>(x, f(x)).toMap
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1  
Thanks, exactly what I was looking for. – themel Jun 29 '11 at 14:48
1  
Or, foo.mapValues(f).toMap. – missingfaktor Feb 4 '12 at 9:06
    
@missingfaktor is mapValues a method to classes other than Map? – mayonesa May 27 at 1:18
    
@mayonesa, no, but I guess I didn't know any better at the time! :) – missingfaktor May 28 at 10:24

Alternatively you can use use collection.breakOut as the implicit CanBuildFrom argument to the map call; this will pick a result builder based on the expected type.

scala> val x: Map[Int, String] = (1 to 5).map(x => (x, "-" * x))(collection.breakOut)
x: Map[Int,String] = Map(5 -> -----, 1 -> -, 2 -> --, 3 -> ---, 4 -> ----)

It will perform better than the .toMap version, as it only iterates the collection once.

It's not so obvious, but this also works with a for-comprehension.

scala> val x: Map[Int, String] = (for (i <- (1 to 5)) yield (i, "-" * i))(collection.breakOut)
x: Map[Int,String] = Map(5 -> -----, 1 -> -, 2 -> --, 3 -> ---, 4 -> ----)
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Thanks for this - while I'm not going to use it in code that other people have to read without pasting in links to the numerous explanations to the CanBuildFrom craziness, it is useful for the case where I want to convert an immutable range to a mutable.Map, where the answer I accepted before just gives me a type error. – themel Jul 1 '11 at 7:50
val map = foo zip (foo map f) toMap
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