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Imagine a nested list as below.

["A","ABBA","ABABA"]

I would like to create a function which removes singleton elements from this list (in this example, "A"), and removes any lists containing that singleton element.

So that:

removeElems ["A","ABBA","CCC"] -> ["CCC"]

Below is my attempt at solving this problem:

badElements nested = concat $ filter (\c -> length c == 1) nested

removeElements nested = [c | c <- nested, u <- badElements nested, not $ any (==u) c]

This produces strange results where the multiple generators 'cycle' the nested list, such as below:

["A","ABBA","C","BCCB"] --> ["A","A","ABBA","ABBA","C","C","BCCB","BCCB"]--> ["A","ABBA","C","BCCB"]

Another example:

[[1],[1,2,3,4],[2],[5,6,7,8]] --> [5,6,7,8]
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1  
Define "strange results". Also, by De Morgan not $ any (== u) is better written as all (/= u). –  delnan Feb 7 '11 at 15:42
    
What do you define as a "bad element?" Should "A" be removed because it appears in the outer list? Could you please add some more examples of what you want the output to be like? –  Jeremiah Willcock Feb 7 '11 at 15:43
    
@delnan actually it's better written simply as notElem u, which is defined just like you wrote it, notElem x = all (/= x) source –  Dan Burton Feb 7 '11 at 16:52
    
@Dan: Thanks, my stdlib-fu is weak. –  delnan Feb 7 '11 at 16:53

3 Answers 3

up vote 2 down vote accepted

Since you only want to produce zero or one outputs for each list element, you don't want a list comprehension that iterates over badElements. Instead, you want to filter on a predicate that iterates over badElements.

What predicate? Well, a list is good if it doesn't contain a bad element. That is, all of its elements are not bad.

removeElements nested = filter (all (`notElem` badElements nested)) nested
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Here's an untested attempt at it:

removeElements ls = filter (null . intersect singletons) ls
                    where singletons = mapMaybe singleElem ls
                          singleElem [x] = Just x
                          singleElem _ = Nothing
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Or, without maybes, you could write singletons = let s [x] = True; s _ = False in filter s (where singletons is now a function [[x]] -> [[x]]) –  Dan Burton Feb 7 '11 at 17:02
    
In my code, singletons is a list, not a function (since it has the ls on the end of the mapMaybe). I used mapMaybe to avoid needing to flatten the list of singletons, but I agree that concat $ filter ... ls works too. –  Jeremiah Willcock Feb 7 '11 at 18:34

Another attempt:

badElements :: [[a]] -> [a]
badElements = concat . filter (\x -> 1 == length x)

removeBadElements :: (Eq a) => [[a]] -> [[a]]
removeBadElements xs = filter (\x -> not $ any ((flip elem) x) (badElements xs) ) xs

badElements will return a list with all the singleton elements of its parameter (similar to what your badElements is supposed to do:

badElements [[1],[1,2,3,4],[2],[5,6,7,8]]
[1,2]

removeBadElements, then, removes all the elements that contain an element of badElements.

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