Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Simply, I have two lists and I need to extract the new elements added to one of them. I have the following

val x = List(1,2,3)
val y = List(1,2,4)

val existing :List[Int]= x.map(xInstance => {
      if (!y.exists(yInstance =>
        yInstance == xInstance))
        xInstance
    })

Result :existing: List[AnyVal] = List((), (), 3)

I need to remove all other elements except the numbers with the minimum cost.

share|improve this question
add comment

4 Answers

up vote 4 down vote accepted

The easy way is to use filter instead so there's nothing to remove;

val existing :List[Int] = 
  x.filter(xInstance => !y.exists(yInstance => yInstance == xInstance))
share|improve this answer
4  
Be careful: exists and filter are O(N), so this combination here is O(N^2) –  retronym Mar 4 '12 at 22:41
    
@retronym Good point, the set solution is definitely the more efficient one, I was just aiming for as similar to the original code as possible. –  Joachim Isaksson Mar 4 '12 at 22:44
3  
Same thing but prettier: x.filterNot(y.contains) –  elbowich Mar 5 '12 at 5:41
add comment
val existing = x.filter(d => !y.exists(_ == d))

Returns

existing: List[Int] = List(3)
share|improve this answer
add comment

Pick a suitable data structure, and life becomes a lot easier.

scala> x.toSet -- y
res1: scala.collection.immutable.Set[Int] = Set(3)

Also beware that:

if (condition) expr1

Is shorthand for:

if (condition) expr1 else ()

Using the result of this, which will usually have the static type Any or AnyVal is almost always an error. It's only appropriate for side-effects:

if (condition) buffer += 1
if (condition) sys.error("boom!")
share|improve this answer
    
Fantastic !!!!! –  dotoree Mar 4 '12 at 22:45
add comment

retronym's solution is okay IF you don't have repeated elements that and you don't care about the order. However you don't indicate that this is so.

Hence it's probably going to be most efficient to convert y to a set (not x). We'll only need to traverse the list once and will have fast O(log(n)) access to the set.

All you need is

x filterNot y.toSet
// res1: List[Int] = List(3)

edit:

also, there's a built-in method that is even easier:

x diff y

(I had a look at the implementation; it looks pretty efficient, using a HashMap to count ocurrences.)

share|improve this answer
5  
Nice. Readers should not that Set[T] implements T => Boolean. –  retronym Mar 5 '12 at 8:20
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.