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I have a List, which may contain elements that will compare as equal. I would like a similar List, but with one element removed. So from (A, B, C, B, D) I would like to be able to "remove" just one B to get e.g. (A, C, B, D). The order of the elements in the result does not matter.

I have working code, written in a Lisp-inspired way in Scala. Is there a more idiomatic way to do this?

The context is a card game where two decks of standard cards are in play, so there may be duplicate cards but still played one at a time.

def removeOne(c: Card, left: List[Card], right: List[Card]): List[Card] = {
  if (Nil == right) {
    return left
  }
  if (c == right.head) {
    return left ::: right.tail
  }
  return removeOne(c, right.head :: left, right.tail)
}

def removeCard(c: Card, cards: List[Card]): List[Card] = {
  return removeOne(c, Nil, cards)
}
share|improve this question
    
Added a note that the order of the result List does not matter in this specific case. –  James Petry Apr 12 '11 at 15:10
    
so the List[Card] in this question is a player's hand? –  Ken Bloom Apr 13 '11 at 1:10
    
@Ken Bloom, yes that's right a player's hand. –  James Petry Apr 13 '11 at 9:25
    
You know, I searched for a question like this for a while, then posted the same question, then found this one while I was browsing and waiting for people to answer mine. Guess I should vote to close my own question now as a duplicate. ;-) –  Joe Carnahan Oct 10 '11 at 19:24
    
This question for Clojure: stackoverflow.com/questions/7662447/… –  James Petry Oct 11 '11 at 13:18

10 Answers 10

up vote 58 down vote accepted

I haven't seen this possibility in the answers above, so:

scala> def remove(num: Int, list: List[Int]) = list diff List(num)
remove: (num: Int,list: List[Int])List[Int]

scala> remove(2,List(1,2,3,4,5))
res2: List[Int] = List(1, 3, 4, 5)

Edit:

scala> remove(2,List(2,2,2))
res0: List[Int] = List(2, 2)

Like a charm :-).

share|improve this answer
5  
Nice! I would add another 2 to the list to make clear that only one element is removed. –  Frank S. Thomas Apr 13 '11 at 10:13
val list : Array[Int] = Array(6, 5, 3, 1, 8, 7, 2)
val test2 = list.splitAt(list.length / 2)._2
val res = test2.patch(1, Nil, 1)
share|improve this answer
 def removeAtIdx[T](idx: Int, listToRemoveFrom: List[T]): List[T] = {
    assert(listToRemoveFrom.length > idx && idx >= 0)
    val (left, _ :: right) = listToRemoveFrom.splitAt(idx)
    left ++ right
 }
share|improve this answer

You could use the filterNot method.

val data = "test"
list = List("this", "is", "a", "test")
list.filterNot(elm => elm == data)
share|improve this answer
5  
This will remove all elements that are equal to "test" - not what is asked for ;) –  Aleksey Izmailov Oct 5 '13 at 15:20
    
Actually it will do exactly what you need. It will return all elements from the list except those which aren't equal to "test". Pay attention that it uses filterNot –  btbvoy Aug 12 at 7:36

Just another thought on how to do this using a fold:

def remove[A](item : A, lst : List[A]) : List[A] = {
    lst.:\[List[A]](Nil)((lst, lstItem) => 
       if (lstItem == item) lst else lstItem::lst )
}
share|improve this answer

You could try this:

scala> val (left,right) = List(1,2,3,2,4).span(_ != 2)
left: List[Int] = List(1)
right: List[Int] = List(2, 3, 2, 4)

scala> left ::: right.tail                            
res7: List[Int] = List(1, 3, 2, 4)

And as method:

def removeInt(i: Int, li: List[Int]) = {
   val (left, right) = li.span(_ != i)
   left ::: right.drop(1)
}
share|improve this answer
2  
It's worth noting that left ::: right.drop(1) is shorter than the if statement with isEmpty. –  Rex Kerr Apr 12 '11 at 14:59
    
@Rex Kerr - Good idea, I edited the method accordingly. –  Frank S. Thomas Apr 12 '11 at 15:05
    
Thanks, is there any circumstance to prefer .drop(1) over .tail, or vice versa? –  James Petry Apr 12 '11 at 15:23
4  
@James Petry - If you call tail on an empty list you get an exception: scala> List().tail java.lang.UnsupportedOperationException: tail of empty list. drop(1) on an empty list however returns an empty list. –  Frank S. Thomas Apr 12 '11 at 15:25
3  
tail throws an exception if the list is empty (i.e. there is no head). drop(1) on an empty list just yields another empty list. –  Rex Kerr Apr 12 '11 at 15:26

Unfortunately, the collections hierarchy got itself into a bit of a mess with - on List. For ArrayBuffer it works just like you might hope:

scala> collection.mutable.ArrayBuffer(1,2,3,2,4) - 2
res0: scala.collection.mutable.ArrayBuffer[Int] = ArrayBuffer(1, 3, 2, 4)

but, sadly, List ended up with a filterNot-style implementation and thus does the "wrong thing" and throws a deprecation warning at you (sensible enough, since it is actually filterNoting):

scala> List(1,2,3,2,4) - 2                          
warning: there were deprecation warnings; re-run with -deprecation for details
res1: List[Int] = List(1, 3, 4)

So arguably the easiest thing to do is convert List into a collection that does this right, and then convert back again:

import collection.mutable.ArrayBuffer._
scala> ((ArrayBuffer() ++ List(1,2,3,2,4)) - 2).toList
res2: List[Int] = List(1, 3, 2, 4)

Alternatively, you could keep the logic of the code you've got but make the style more idiomatic:

def removeInt(i: Int, li: List[Int]) = {
  def removeOne(i: Int, left: List[Int], right: List[Int]): List[Int] = right match {
    case r :: rest =>
      if (r == i) left.reverse ::: rest
      else removeOne(i, r :: left, rest)
    case Nil => left.reverse
  }
  removeOne(i, Nil, li)
}

scala> removeInt(2, List(1,2,3,2,4))
res3: List[Int] = List(1, 3, 2, 4)
share|improve this answer
    
removeInt(5,List(1,2,6,4,5,3,6,4,6,5,1)) yields List(4, 6, 2, 1, 3, 6, 4, 6, 5, 1). I think this is not what you wanted. –  Ken Bloom Apr 12 '11 at 14:45
    
@Ken Bloom - Indeed. It's an error in the original algorithm, which I copied without thinking enough. Fixed now. –  Rex Kerr Apr 12 '11 at 14:55
    
More an omission in the question spec, as the order doesn't matter in my specific case. Good to see the order-preserving version though, thanks. –  James Petry Apr 12 '11 at 15:15
    
@Rex: what do you mean by 'filterNot does the "wrong thing"'? That it's removing all occurrences? And why does it throw a deprecation warning? Thanks –  teo Jan 22 '13 at 11:45
1  
@teo - It removes all occurrences (which is not what is desired here), and it is deprecated because it is arguably broken (or perhaps the desired behavior is unclear--either way, it's deprecated in 2.9 and gone in 2.10). –  Rex Kerr Jan 22 '13 at 16:55
// throws a MatchError exception if i isn't found in li
def remove[A](i:A, li:List[A]) = {
   val (head,_::tail) = li.span(i != _)
   head ::: tail
}
share|improve this answer

How about

def removeCard(c: Card, cards: List[Card]) = {
  val (head, tail) = cards span {c!=}   
  head ::: 
  (tail match {
    case x :: xs => xs
    case Nil => Nil
  })
}

If you see return, there's something wrong.

share|improve this answer
1  
This doesn't do what he wants, which is to remove only the first instance of c –  Ken Bloom Apr 12 '11 at 14:46
1  
This will remove all cards c, but only first should be removed. –  tenshi Apr 12 '11 at 14:46
    
I should read the questions more carefully! corrected my answer. –  Eugene Yokota Apr 12 '11 at 14:57
    
OK, point noted about the returns, thanks. –  James Petry Apr 12 '11 at 15:24
    
+1 for "If you see return, there's something wrong." That's a very important "idiomatic Scala" lesson by itself. –  Joe Carnahan Oct 10 '11 at 19:35

As one possible solutions you can find index of the first suitable element and then remove element at this index:

def removeOne(l: List[Card], c: Card) = l indexOf c match {
    case -1 => l
    case n => (l take n) ++ (l drop (n + 1))
}
share|improve this answer
    
See my answer using span to do the same thing. –  Ken Bloom Apr 12 '11 at 14:52

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