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Pardon me if it's simple, but what is the most efficient way to do the following in scala:

Say I have two collections A and B with exactly same number of elements. For example,

A = {objectA1, objectA2, .... objectAN} 
B = {objectB1, objectB2, .... objectBN}

I would like to get {{objectA1, objectB1}, {objectA2, objectB2}, ... {objectAN, objectBN}}. Note that these collections might be very large.

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2 Answers 2

up vote 7 down vote accepted

Zip them:

A zip B

Example:

scala> val a = Seq(1, 2, 3, 4, 5)
a: Seq[Int] = List(1, 2, 3, 4, 5)

scala> val b = Seq('a', 'b', 'c', 'd', 'e')
b: Seq[Char] = List(a, b, c, d, e)

scala> a zip b
res5: Seq[(Int, Char)] = List((1,a), (2,b), (3,c), (4,d), (5,e))

If A and B are iterators, this will create an iterator of pairs as well.

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1  
Zipping is the easiest way. If you need the elements to be sequences and not tuples (like your question suggests), you could do (A zip B).map{(a,b)=>List(a,b)} –  Heinzi Jun 18 '12 at 7:10
1  
Thanks a lot Tomasz and Heinzi! –  Andy Jun 18 '12 at 7:23

Some additions to @Tomasz answer: If collections are very large it is inefficient to use a zip b because it will create a complete intermediate collection. There is an alternative:

scala> (a,b).zipped
res15: scala.runtime.Tuple2Zipped[Int,Seq[Int],Char,Seq[Char]] = scala.runtime.Tuple2Zipped@71060c3e

scala> (a,b,b).zipped // works also for Tuple3
res16: scala.runtime.Tuple3Zipped[Int,Seq[Int],Char,Seq[Char],Char,Seq[Char]] = scala.runtime.Tuple3Zipped@30b688e1

Internally, Tuple2Zipped and Tuple3Zipped use iterators. This makes it more efficient when you want to transform the zippers.

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