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What is the easiest way to subtract one list from another? Do I need to use ListPair to solve this task? Notic that I need to compare ROWS, not single elements. For instance, there are two lists "L1" and "L2":

L1 = 
[(1, 2, 3), 
(4, 5, 6)]

L2 = 
[(1, 2, 3), 
(4, 5, 6),  
(3, 2, 3]

I need to get "L3" by applying L3 = L2-L1:

L3 = 
[(3, 2, 3)]

Thanks.

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Is it correct that you want to remove the elements from L2 which are also in L1, but only once per occurrence in L1? –  Sarah Dec 21 '11 at 9:53
    
What do you intend if L1 is not a prefix of L2? –  Michael J. Barber Dec 21 '11 at 10:21
    
It`s correct. But there might be multiple occurences, which should be removed as well. –  Klausos Klausos Dec 21 '11 at 10:25
    
But in your example, you did not remove multiple occurrences of 3 and 2 in L2. –  Sarah Dec 21 '11 at 10:30
    
You say multiple occurrences should be removed, however your example contains multiple occurrences of 2 and 3, which you leave. Your example currently just removes the prefix. –  Jesper.Reenberg Dec 21 '11 at 10:33

1 Answer 1

up vote 1 down vote accepted

As I understand the question, you want to remove the elements in L2 which are also in L1, but only once per occurrence.

A simple solution might involve a helper function to tell you if an element was found in L1, along with the rest of L1 with this element removed.

fun remFirst _ [] rest = (false, rev rest)
  | remFirst x (y::ys) rest =
    if x = y then
        (true, rev rest @ ys)
    else
        remFirst x ys (y :: rest)

Now you can iterate through L2, discarding elements each time remFirst returns true, and then proceeding with the rest of the list.

If instead you want to remove the prefix which L2 has in common with L1, things get a bit simpler.

fun remPref [] _            = []
  | remPref xs []           = xs
  | remPref (x::xs) (y::ys) = if x = y then remPref xs ys else (x::xs)

UPDATE: The question has now been altered.

If the requirement is now to remove elements from L2 that are in L1, filter is useful.

List.filter (fn x => List.all (fn y => x <> y) L1) L2
share|improve this answer
    
Thanks, but I need to compare ROWS, and not single elements of the list. –  Klausos Klausos Dec 21 '11 at 19:39
    
Your question never mentioned lists of tuples, but fine, I will adapt my answer. Try to be more exact, though. –  Sarah Dec 22 '11 at 10:08

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