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I have an immutable list and I need to swap locations in it. Is there any easy way of doing it?

Below is my code:

def swap(i:Int, j:Int,li:List[T]):List[T]={
        if(i>=li.size && j >=li.size)
            throw new Error("invalie argument");

        val f = li(i)
        li(i) = li(j) //wont work
        li(j) = f;//wont work
        li;
    }

Initially, i tried it by converting it to an Array, changing the positions and then converting it to a List again. Any easy way?

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3  
The key bit here, and as you mentioned, is that the lists are immutable, so you can't swap the items. –  Sean Dec 9 '12 at 9:41

3 Answers 3

up vote 9 down vote accepted

An easy (but not very efficient way) of doing this would be

val l = List(1,2,3)
l: List[Int] = List(1, 2, 3)

l.updated(0,l(2)).updated(2,l(0))
res1: List[Int] = List(3, 2, 1)
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you can only create a new list in O(n). you may want to use a different data structure. you can do this by:

def swap[T](i:Int, j:Int,li:List[T]):List[T]={
    if(i>=li.size || j >=li.size || i >= j)
         throw new Error("invalid argument")

    li.dropRight(li.length - i) ::: (li(j) :: li.dropRight(li.length - j).drop(i+1)) ::: ((li(i) :: li.drop(j + 1)))
}

it's not very elegant, but it'll do the job. basically, i'm slicing the list on indexes i & j, so i have 5 parts: prefix of the list before i, i, the part between i & j exclusive, j, and the suffix of the list that comes after j. from there, it's simple concatenation with i & j swaped. it can be more efficient if you use list buffers, or even more efficient if you'll work on mutable Arrays...

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I'm not sure if this is good way to do this but i how about something like this?

def swapElements(list: List[Any], first: Int, second: Int) = {
 def elementForIndex(index: Int, element: Any) = {
   if(index == first) {
     list(second)
   } else if(index == second){
     list(first)
   } else {
     element
   }
 }

 for(element <- ((0 to list.size - 1) zip list).to[List])
   yield elementForIndex(element._1, element._2)
}
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