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I am not sure how to call this but I want something like this.

val x = List(1,2,3,...)
val y = List(4,5,6,...)
//want a result of List(1+4, 5+6, 7+8,...)

Is there an easy way to do this in scala ? My current implementation involving using looping from 0 to x.lenght which is pretty ugly. And if it is possible, I would like the solution that could use over nth number of list and maybe with other type of operator beside +.

Thanks !

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2  
    
Yeah, it's a duplicate. zipWith is still not in Scala, and Martin's answer still works - and is easy. – Julian Fondren Nov 30 '11 at 7:15
    
Thanks, but what if I have more than 3 list ? It seems those solution limit itself to tuple, which pretty much could do only over three list. – Tg. Nov 30 '11 at 7:17
1  
(List(1,2,3), List(4,5,6), List(7,8,9)).zipped map (_ + _ + _) // yields List(12, 15, 18) (EDIT: oops, I read '2 lists' there somehow. You're right, this doesn't extend to a fourth list.) – Julian Fondren Nov 30 '11 at 7:24
    
5+6, 7+8 or 2+5, 3+6...? – user unknown Nov 30 '11 at 8:20
up vote 7 down vote accepted

In response to "what if I have more than 3 list?":

def combineAll[T](xss: Seq[T]*)(f: (T, T) => T) = 
  xss reduceLeft ((_,_).zipped map f)

Use like this:

scala> combineAll(List(1,2,3), List(2,2,2), List(4,5,6), List(10,10,10))(_+_)
res5: Seq[Int] = List(17, 19, 21)

edit: alternatively

def combineAll[T](xss: Seq[T]*)(f: (T, T) => T) = 
  xss.transpose map (_ reduceLeft f)

does the same and is probably more efficient.

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