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I'm sure the answer is pretty simple, but I got stuck in this:

Welcome to Scala version 2.7.1.final (Java HotSpot(TM) 64-Bit Server VM, Java 1.6.0_14).
Type in expressions to have them evaluated.
Type :help for more information.

scala> def f(x:Int*)=0
f: (Int*)Int

scala> val xs:Seq[Int]=1::2::3::4::Nil
xs: Seq[Int] = List(1, 2, 3, 4)

scala> f (xs)
<console>:7: error: type mismatch;
 found   : Seq[Int]
 required: Int
       f (xs)
          ^

How I build an 'Int*' ?

share|improve this question
up vote 10 down vote accepted

To unpack a sequence into the argument list, use _*

scala> f(xs: _*)
res1: Int = 0
share|improve this answer
    
yes! that works!... feels a little like "forcing" the type, though – GClaramunt Dec 16 '09 at 13:38
2  
Well, it is forcing the type. The correct type is an argument list, not an argument which is a list. By the way, it works for any type of sequence, as well as any type that can be converted into a sequence, so you could have passed List directly. Also, it is symmetric. You could do xs match { case List(ys @ _*) => ... }. – Daniel C. Sobral Dec 16 '09 at 14:18

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