Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

when trying to define a function that would remove the largest subset of set m that is also a subset of set a from set a, I encountered the following error:

filename.hs:7:33:parse error (possibly incorrect indentation)

for the following code:

exclude :: Integral t => [t] -> [t] -> [t]
a `exclude` m
           | m == [] = a
           | a == (b ++ c) = b
           | otherwise = []
           where b /= []
           where c = [z | z <- m]

how do I implement multiple conditions/definitions (using where or otherwise), or correct the function to properly work in a different way?

share|improve this question
What is the intention of where b /= []? –  Daniel Fischer Jan 1 '12 at 12:39
Is the intended result the list of those elements of a that are not elements of m? –  Daniel Fischer Jan 1 '12 at 12:52
the intended result was indeed all elements of a that are not also elements of m. btw, thanks for the help on the syntax Daniel, even though it didn't solve the problem. –  Valentijn Pronk Jan 1 '12 at 14:26
a 'exclude' m = filter (notElem m) a worked. thanks joachifm/ Christian –  Valentijn Pronk Jan 1 '12 at 14:27

3 Answers 3

up vote 4 down vote accepted

Saying "the largest subset of set m that is also a subset of set a" is the same as saying "all elements of m that are also elements of a".

Then the solution to your problem is stated simply as:

exclude a = filter (`notElem` a)

which when applied to m will give you a subset of m modulo any elements that are also members of a. That is, it will "remove the largest subset of m that is also a subset of a".

share|improve this answer
+1 for cutting through everything and ending up with an elegant, readable and understandable one-liner. –  Christian Jonassen Jan 2 '12 at 0:07
-1 for not asking the question. Sorry, I came here for the where. –  ziggystar Jul 13 '14 at 19:19
@ziggystar, the question asks for solutions "using where or otherwise," or even solutions that "correct the function to properly work in a different way." It seems to me that joachifm answered the question as asked, so I don't see why they should be punished. –  Vectornaut Jun 24 at 19:56

One part of your question is easily answerable. You can have multiple definitions in one where clause, as in

foo n
    | even r = bar
    | s < 12 = baz
    | otherwise = quux
        r = n `mod` 1357
        h = a + b
            (a,b) = r `divMod` 53    -- nested where-clause
        s = r - 3*h

and you can have nested where-clauses. But in a where-clause, you can only have definitions. Conditions would go into the guards (or if then else expressions on the right hand side) and can be combined with the boolean operators, (&&), (||), not ...

As for your code, so far I haven't figured out what you intended it to do.

share|improve this answer
Thanks, very clear. –  vikingsteve Jan 6 '14 at 8:58

In fact,there is a function in Data.List and Data.Set called '\'. I'll show '\' function of Data.List .

import Data.List
exclude :: Integral t => [t] -> [t] -> [t]
a `exclude` m = a\\m
share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.