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I have:

scala> val alphaList = List("a", "b")
alphaList: List[java.lang.String] = List(a, b)

and I'd like a list of tuples like:

List((a,1),(b,2))

Normally in Java I'd do something like:

List alphaList = new ArrayList<String>()
alphaList.add("a");alphaList.add("b");
List newList = new ArrayList<String>();
for ( int i = 0; ii < alphaList.size(); i++ )
  newList.add(alphaList[i] + i);

What I'm trying to get at, is how do I get an incrementing variable that I can use while processing a List?

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3 Answers 3

up vote 7 down vote accepted
alphaList.zipWithIndex.map {
  case (k, v) => (k, v + 1)
}

The zipWithIndex replaces each element with a tuple of itself and its index (starting from 0). The map matches the tuple, and creates a new tuple with the index incremented by 1, so that you start from 1, instead of 0.

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As an alternative to Axel22's answer, which is fine :

alphaList.zip(Stream.from(1))
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2  
Would be better, though, if Iterator.from(1) compiled. –  Debilski Oct 21 '11 at 10:16
    
Indeed that is what I tried to do first, don't see why that should not be available on Iterator. –  Didier Dupont Oct 21 '11 at 11:14
    
Sorry, I meant Iterable. I think from should be available on Iterable, and that is the one I was looking for. I do not like using Iterator directly very much. –  Didier Dupont Oct 21 '11 at 12:48

How about...

def zipWithIndex1[A](xs:Seq[A]) = xs.map{var i = 0; x => i+=1; (x,i)}

Test:

zipWithIndex1("sdlfkjsdlf")
//--> Vector((s,1), (d,2), (l,3), (f,4), (k,5), (j,6), (s,7), (d,8), (l,9), (f,10))
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1  
This depends on map implementation: does it process Seq elements in order. I don't think it is required to do so –  Didier Dupont Oct 21 '11 at 9:53
1  
I think that this should be ensured for sequences... But, very interesting solution... I didn't know that everything after the x => becomes a closure, even without adding braces. –  axel22 Oct 21 '11 at 10:45
    
I don't see why it should. Scala collection implementation is very regular, and as long as map is not redefined it will work that way, but I don't think implementations are precluded to do otherwise should it be more efficient. Of course it will not work with a ParSeq, but I aggree a ParSeq is not a Seq –  Didier Dupont Oct 21 '11 at 11:25
    
@didierd: you're probably right, but I can't find this explicitly stated in the docs anywhere. –  axel22 Oct 21 '11 at 11:42

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