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Since I'm pretty sure that using global variables in Haskell is frowned upon. I'm wondering is there anyway I can achieve the following?

-- list has elements that are odd
listHasOdd :: [Integer] -> Bool
-- list has elements that are even
listHasEven :: [Integer] -> Bool
--list has a length > 5
longList :: [Integer] -> Bool

-- Maps the function to a [Bool]
-- This function cannot be modified to fix the problem.
checkList :: [Integer] -> [Bool]
checkList xs = map (\ y -> y xs) listChecker
where listChecker = [listHasOdd, listHasEven, longList]

Is there anyway that I can ensure that only one of them returns true?

For example, [1,2,3,5], I would want only want listHasOdd to return True which is [True, False, False]. (Evaluated from top to bottom).

Another example, [2,4,6,8,10,12,14], the returns should be [False, True, False].

In other words, checkList [1,2,3,5] returns [True, False, False], checkList[2,4,6,8,10,12,14] returns [False, True, False]

**The last function would always be False in my example, since it is unreachable.

I know I can do an if statement to check if the previous one is True but that seems like a pretty dumb idea. Or is that actually the way to do it? (Considering Haskell "remembers" the results of the previous function)

share|improve this question
    
    
Hm, you might have seen the question before I've updated it. Made it clearer now. and would really satisfy what I want when I'm returning a list of bool. –  user1043625 Mar 26 '13 at 18:55
    
So you want to actually have map (\y -> y xs, unless a previous function alreadyreturned True, in which case False)? –  Daniel Fischer Mar 26 '13 at 18:57
3  
I'm still not sure what you want. Only one of what returns true? List lists of numbers and you desired output please. –  DiegoNolan Mar 26 '13 at 18:58
    
@DanielFischer, I believe I have a restriction of not being allowed to modify the checkList function. –  user1043625 Mar 26 '13 at 18:58

2 Answers 2

up vote 2 down vote accepted

This is the best I can come up with. It generalises relatively painlessly to handle the number of possible outcomes of a poker hand, for example.

data Outcome
    = ListHasOdd
    | ListHasEven
    | LongList
    | Nope
  deriving Eq

outcomeFromList :: [Integer] -> Outcome
outcomeFromList xs
    | any odd xs    = ListHasOdd
    | any even xs   = ListHasEven
    | 5 < length xs = LongList
    | otherwise     = Nope

listHasOdd = (ListHasOdd ==) . outcomeFromList
listHasEven = (ListHasEven ==) . outcomeFromList
longList = (LongList ==) . outcomeFromList

But even this is stupid: instead of generating a [Bool], why not just use the Outcome directly?


Edit: Or we could pay attention to what the functions mean.

listHasOdd xs = any odd xs

listHasEven [] = False
listHasEven xs = all even xs
-- if not all of them are even, then at least one must be odd,
-- and `listHasOdd` would give `True`

longList _ = False
-- if the list has at least 5 elements,
-- then either the list has at least one odd element
-- (and `listHasOdd` would give `True`)
-- or the list has at least five even elements
-- (and `listHasEven` would give `True`)
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I'm choosing this answer over the other is because it "matches" my original question a lot better. –  user1043625 Mar 27 '13 at 1:09

I don't see the point of it, but

foldr foo [] $ map ($ xs) [listHasOdd, listHasEven, longList]
  where
    foo True zs = True : map (const False) zs
    foo False zs = False : zs

would produce the desired result, and it would only evaluate the functions until one of them returned True (or the end of the list of functions is reached).

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Doesn't this solution require modifications to checkList? (Which I'm not allowed to do). Unless I do this for listHasEven and longList. (Which is basically the same as calling each function every single time - Something I'm trying to avoid if possible). –  user1043625 Mar 26 '13 at 19:02
1  
If you can't modify checkList at all, and can't post-process the result of checkList, the only way to achieve the desired result would be to have listHasEven xs = not (listHasOdd xs) && any even xs, and include both other functions in longList. May I ask what the goal is, and what precisely the demands and restrictions? –  Daniel Fischer Mar 26 '13 at 19:06
    
This is basically a "toned-down" version of a more complex problem - such as calculation of points for a card game. If for example, the hand is a straight flush, I wouldn't want to calculate it as a straight flush + straight + flush. I'm basically given listChecker and I'm told to implement listHasEven and listHasOdd. –  user1043625 Mar 26 '13 at 19:09
1  
The right way to handle it is probably to not care. You probably need to consume the result of checkList only until you encounter the first True. Then you needn't bother about anything in checkList's result thereafter, these function calls will not be evaluated [not even the thunks for them created] unless you look at the result in some way. –  Daniel Fischer Mar 26 '13 at 19:14
1  
What are you actually trying to achieve. Not "have only one True in the result", but why would that matter? –  Daniel Fischer Mar 26 '13 at 19:20

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