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How I can declare function that takes number and list of numbers, and returns NONE if there is no such number in the list, otherwise returns list option ('Maybe' in Haskell) without this number? If there more then one such number, function has to erase just first of them.

all_except_one : 'a * 'a list -> 'a list option

I have no idea how to do it :\ I ask any code in any language, just some tip about algorithm in functional style (initially I have to solve this problem in SML). Also I can't use higher order functions in my task.

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1  
you're violating the honor code – om-nom-nom Feb 2 '13 at 22:31
up vote 6 down vote accepted

what about this solution ?

fun all_except_one(s, lst) =
    let
        fun helper e =
            case e of
                ([], _) => NONE
               |(x::xs, acc) => if x = s
                                then SOME (acc @ xs)
                                else helper(xs, x :: acc)
    in helper(lst, []) end

The same without helper function and without tail recursion.

fun all_except_one (_, []) = NONE
  | all_except_one (s, x::xs) = if x = s
                                then SOME xs
                                else case all_except_one(s, xs) of
                                           NONE => NONE
                                         | SOME ys => SOME (x::ys)
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1  
Danke, this is it! P. S.: hello /proglang/! – vortexxx192 Jan 26 '13 at 18:32

How about (Haskell syntax):

allbutone n xs
    | n `elem` xs = Just (filter (!=n) xs)
    | otherwise   = Nothing
share|improve this answer
    
Thanks, but your function removes all such elements, while correct function has to remove just first one. Also I can't use higher order functions in my task. – vortexxx192 Jan 26 '13 at 18:16
4  
@vortexxx192 This is because your specification is contradictory, you say "otherwise returns list option ('Maybe' in Haskell) without this number", and then later, that only the first instance should be removed. One cannot fulfill both in all circumstances, hence I settled with the first option. – Ingo Jan 26 '13 at 18:22

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