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I'm new to scala and have what is probably a pretty simple question. I have two lists of the form List((Int,String)) and want to combine the Integers where the strings are the same. For instance:

l1 = List((1,"a"),(3,"b"))
l2 = List((3,"a"),(4,"c"))

I want to combine these into a third list like so:

l3 = List((4,"a"),(3,"b"),(4,"c"))

Right now I'm traversing both of the lists and adding if the strings are the same, but I think there should be a simple solution with pattern matching. Any help is appreciated.

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1  
similar question: stackoverflow.com/questions/7076128/… –  Infinity Oct 1 '11 at 17:45
    
Is it just me, or does this problem seem easier to solve when you have List[(String, Int)] rather than List[(Int, String)]? –  Duncan McGregor Oct 1 '11 at 20:20

6 Answers 6

up vote 18 down vote accepted
val l = l1 ::: l2
val m = Map[String, Int]()
(m /: l) {
  case (map, (i, s)) => { map.updated(s, i + (map.get(s) getOrElse 0))}
}.toList // Note: Tuples are reversed.

But I suppose there is a more elegant way to do the updated part.

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Thanks for this. It's exactly what I'm looking for. I would vote you up if I could. –  Samuel Thomas Oct 1 '11 at 18:06

How about,

(l1 ++ l2).groupBy(_._2).mapValues(_.unzip._1.sum).toList.map(_.swap)

Unpacking this a little on the REPL helps to show what's going on,

scala> l1 ++ l2
res0: List[(Int, java.lang.String)] = List((1,a), (3,b), (3,a), (4,c))

scala> res0.groupBy(_._2)
res1: ... = Map(c -> List((4,c)), a -> List((1,a), (3,a)), b -> List((3,b)))

scala> res1.mapValues(_.unzip)
res2: ... = Map(c -> (List(4),List(c)), a -> (List(1, 3),List(a, a)), b -> (List(3),List(b)))                         

scala> res1.mapValues(_.unzip._1)                                                                                                                                                                      
res3: ... = Map(c -> List(4), a -> List(1, 3), b -> List(3))                                                                                    

scala> res1.mapValues(_.unzip._1.sum)
res4: ... = Map(c -> 4, a -> 4, b -> 3)                                                                                                               

scala> res4.toList                                                                                                                                                                                     
res5: List[(java.lang.String, Int)] = List((c,4), (a,4), (b,3))                                                                                                                                        

scala> res5.map(_.swap)
res6: List[(Int, java.lang.String)] = List((4,c), (4,a), (3,b))
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1  
While I tend to give myself a pat on the back every time I can implement a function without a newline, that's pretty opaque! Can you give some names to the intermediates that would make it obvious that it is correct? –  Duncan McGregor Oct 1 '11 at 19:45
    
I'd recommend working through each intermediate result from beginning to the end on the REPL, starting with (l1 ++ l2) then (l1 ++ l2).groupBy(_._2) ... etc. –  Miles Sabin Oct 2 '11 at 8:05
    
As it happens I had - but I'm interested - would you really leave a line of code like that in a source-base, or would you split it with explaining variable names? –  Duncan McGregor Oct 4 '11 at 11:59
    
@DuncanMcGregor That's a very context dependent question ... maybe yes, maybe no. –  Miles Sabin Oct 5 '11 at 8:10
    
The group by was a little confusing... I prefer use .groupBy(x => x._2), it does the same thing. –  Jaider May 2 '13 at 3:21

With Scalaz, this is a snap.

import scalaz._
import Scalaz._

val l3 = (l1.map(_.swap).toMap |+| l2.map(_.swap).toMap) toList

The |+| method is exposed on all types T for which there exists an implementation of Semigroup[T]. And it just so happens that the semigroup for Map[String, Int] is exactly what you want.

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for ( (k,v) <- (l1++l2).groupBy(_._2).toList ) yield ( v.map(_._1).sum, k )
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Note that with this solution, the lists are traversed twice.

val l3 = (l1 zip l2).foldRight(List[(Int, String)]()) {
  case ((firstPair @ (firstNumber, firstWord),
        secondPair @ (secondNumber, secondWord)),
        result) =>
    if (firstWord == secondWord)
      ((firstNumber + secondNumber), firstWord) :: result
    else
      firstPair :: secondPair :: result
}
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Another opaque onetwo-liner of questionable efficiency yet indubitable efficacy:

val lst = l1 ++ l2
lst.map(_._2).distinct.map(i => (lst.filter(_._2 == i).map(_._1).sum, i))
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