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I've got some variables, and I want to create new variables by running each of them through a function. So essentially I've currently got

val formatted1 = format(raw1)
val formatted2 = format(raw2)
val formatted3 = format(raw3)

Is there any way to do this all in one line? Looking for something like

val (formatted1, formatted2, formatted3) = (raw1, raw2, raw3).map(format)

but that seems to combine features of a List and features of a Tuple in incompatible ways.

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1 Answer 1

up vote 12 down vote accepted

You can map over tuple, but if you put your items in List:

val List(formatted1, formatted2, formatted3) = List(raw1, raw2, raw3).map(format)

This works with many other collections, like Seq, Array and so on (types on both sides has to be the same! but you can have more general type on the left: e.g. val Seq(...) = List(...)).

For Lists (but not for other types) you can also write something like this:

val formatted1::formatted2::formatted3::Nil = List(raw1, raw2, raw3).map(format)

Starting from Scala 2.10 you can perform same trick with Seq:

val formatted +: formatted2 +: formatted3 +: _ = ....
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Perfect, I'll accept your answer in 12 minutes :) –  Dax Fohl Mar 4 '13 at 19:50
    
Is there a performance difference depending on whether you go Seq or List or Array on lhs and/or rhs? Compilation speed difference? –  Dax Fohl Mar 4 '13 at 20:07
    
Such things done via extractors and in particular via unapplySeq so I guess there will be some really tiny impact for Arrays (to wrap them in IndexedSeq). –  om-nom-nom Mar 4 '13 at 20:18
    
@DaxFohl Actually, extractors are used for most things, but not for List -- these go through a shortcut instead of unapplySeq. Extracting to a List will most likely be a bit faster -- javap is your friend here, experiment with it! –  Daniel C. Sobral Mar 5 '13 at 1:48

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