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I have an input something like this: "1 2 3 4 5".

What I would like to do, is to create a set of new variables, let a be the first one of the sequence, b the second, and xs the rest as a sequence (obviously I can do it in 3 different lines, but I would like to use multiple assignment).

A bit of search helped me by finding the right-ignoring sequence patterns, which I was able to use:

val Array(a, b, xs @ _*) = "1 2 3 4 5".split(" ")

What I do not understand is that why doesn't it work if I try it with a tuple? I get an error for this:

val (a, b, xs @ _*) = "1 2 3 4 5".split(" ")

The error message is:

<console>:1: error: illegal start of simple pattern

Are there any alternatives for multiple-assignment without using Array?

I have just started playing with Scala a few days ago, so please bear with me :-) Thanks in advance!

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4 Answers 4

up vote 8 down vote accepted

Other answers tell you why you can't use tuples, but arrays are awkward for this purpose. I prefer lists:

val a :: b :: xs = "1 2 3 4 5".split(" ").toList
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Hm... Thanks, Rex! It is definitely looks nicer! –  rlegendi Apr 24 '12 at 18:04
    
yes, indeed, I posted my answer, only to see Rex's, chicken and the egg... –  virtualeyes Apr 24 '12 at 18:05

Simple answer

val Array(a, b, xs @ _*) = "1 2 3 4 5".split(" ")

The syntax you are seeing here is a simple pattern-match. It works because "1 2 3 4 5".split(" ") evaluates to an Array:

scala> "1 2 3 4 5".split(" ")
res0: Array[java.lang.String] = Array(1, 2, 3, 4, 5)

Since the right-hand-side is an Array, the pattern on the left-hand-size must, also, be an Array

The left-hand-side can be a tuple only if the right-hand-size evaluates to a tuple as well:

val (a, b, xs) = (1, 2, Seq(3,4,5))

More complex answer

Technically what's happening here is that the pattern match syntax is invoking the unapply method on the Array object, which looks like this:

def unapplySeq[T](x: Array[T]): Option[IndexedSeq[T]] =
  if (x == null) None else Some(x.toIndexedSeq)

Note that the method accepts an Array. This is what Scala must see on the right-hand-size of the assignment. And it returns a Seq, which allows for the @_* syntax you used.

Your version with the tuple doesn't work because Tuple3's unapplySeq is defined with a Product3 as its parameter, not an Array:

def unapply[T1, T2, T3](x: Product3[T1, T2, T3]): Option[Product3[T1, T2, T3]] =
  Some(x)

You can actually "extractors" like this that do whatever you want by simply creating an object and writing an unapply or unapplySeq method.

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Now I see, great, thanks @dhg! –  rlegendi Apr 24 '12 at 17:53

I'm not an expert in Scala by any means, but I think this might have to do with the fact that Tuples in Scala are just syntatic sugar for classes ranging from Tuple2 to Tuple22.

Meaning, Tuples in Scala aren't flexible structures like in Python or other languages of the sort, so it can't really create a Tuple with an unknown a priori size.

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Ahh, now you mention it I can also recall that I read about that (I recall Tuple22, but the point is the same, it is strictly limited). –  rlegendi Apr 24 '12 at 17:52
    
You're right, it's Tuple22 –  pcalcao Apr 24 '12 at 17:55

The answer is:

val a :: b :: c = "1 2 3 4 5".split(" ").toList

Should clarify that in some cases one may want to bind just the first n elements in a list, ignoring the non-matched elements. To do that, just add a trailing underscore:

val a :: b :: c :: _ = "1 2 3 4 5".split(" ").toList

That way:

c = "3" vs. c = List("3","4","5")
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I posted apparently seconds after @Rex. Well, nice to know I had the same thought as a Scala "heavy" ;-) –  virtualeyes Apr 24 '12 at 18:08

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