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I want make a function which takes a list of string and a string and returns NONE if there is no string in the string list, otherwise it returns SOME of the list of string which is the same as the original list of string except it doesn't contain the initial string (pattern):

fun my_function (pattern, source_list) =
  case source_list 
    of [] => NONE
    | [x] => if pattern = x then SOME [] else NONE
    | x::xs => 
      if pattern = x 
      then SOME (xs) 
      else SOME (x) :: my_function (pattern, xs) (* this is wrong, what to do here?*)


val a = my_function ("haha", ["12", "aaa", "bbb", "haha", "ccc", "ddd"]) (* should be SOME ["12", "aaa", "bbb", "ccc", "ddd"]*)  
val a2 = my_function ("haha2", ["123", "aaa", "bbb", "haha", "ccc"]) (*should be NONE*)
val a3 = my_function ("haha3", ["haha3"]) (* should be SOME []*)

I'm confused by the 3rd case: x::xs => .... What should do there? Note that I'd like not to use any sml library function.

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What if the pattern occurs multiple times? Should they all be removed? –  tahatmat Oct 26 '13 at 9:58
    
@tahatmat, assume it can occur only one time. –  Alexander Supertramp Oct 26 '13 at 10:28
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3 Answers 3

up vote 0 down vote accepted

The problem doesn't strike me as very suitable for recursion, but why not use the build-in List.filter function to rid the list of pattern? If the length of the filtered list is the same as the original list, then the pattern did not occur in the list:

fun my_function (pattern, source_list) = let
  val flist = List.filter (fn x => pattern <> x) source_list
  in
    if (length flist) = (length source_list) then NONE
    else SOME flist
  end

Note that all occurences of pattern will be removed by List.filter.

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I'd like not to use any library function. –  Alexander Supertramp Oct 26 '13 at 11:05
    
@Alex, why not if I may ask? –  tahatmat Oct 26 '13 at 11:08
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Alex, your solution is the same as Tahamats, you just implement the filter function yourself, instead of using the one in the standard library. Why would you ever want to do that? You introduce more code prone to error and make more work for yourself, instead of using a well-tested, tried and true standard library function.

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in order to be able to understand how it works. –  Alexander Supertramp Oct 27 '13 at 3:10
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Here is what I got:

fun all_except_pattern (pattern, source_list) =
  let 
    fun filter (source_list2) =
      case source_list2
        of [] => []
        | [x] => if pattern = x then [] else [x]
        | x::xs => if pattern = x then filter (xs) else x :: filter (xs)

    val filtered = filter (source_list)
  in
    if length (filtered) < length (source_list)
    then SOME (filtered)
    else NONE
  end

val a = all_except_pattern ("haha", ["12", "aaa", "bbb", "haha", "ccc", "ddd"])
val a2 = all_except_pattern ("haha2", ["123", "aaa", "bbb", "haha", "ccc"])
val a3 = all_except_pattern ("haha3", ["haha3"])
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