Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am new to haskell and trying out some exercises

I dont understand whats the error generated and why it is generated

split = foldr 
        (\x y -> y:x)
        [[]]

the error on the interpretator is as below

    Occurs check: cannot construct the infinite type: a0 = [a0]
    In the first argument of `(:)', namely `y'
    In the expression: y : x
    In the first argument of `foldr', namely `(\ x y -> y : x)'
Failed, modules loaded: none.

anyone can help? Thanks in advance

share|improve this question
1  
Can you give us more details about he expected type of split? Because just reversing y with x does nothing, it gives you back the same list of list that was given as input, it is the same as foldr (:) [[]] . –  user1105045 Oct 10 '12 at 15:45
    
like maybe for example splitting into even and odd numbers? –  edelweiss Oct 10 '12 at 15:49

3 Answers 3

The posts before me answer your question, but after your comment i can see that you want a function that splits your list by a predicate.

You can use groupWith::Ord b => (a -> b) -> [a] -> [[a]] from the module GHC.Exts and supply it with a function of type (a -> Bool) in your example:

groupWith even [1,2,3,4,5,6] yields [[1,3,5],[2,4,6]]

Also, something ugly but that achieves the type of "outing" you want is:

split::Eq a => (a -> Bool) -> [a] -> [[a]]
split f ls = (ls \\ rl):rl:[]
    where rl = filter f ls

But this will always split the supplied list in just two lists because of the binary function you supply.

share|improve this answer
    
Data.List.partition may be more appropriate here. –  hammar Oct 10 '12 at 16:15
    
That should be the way to go, and that would be also something that he could easily implement, but he was also interested that the output type be a list of lists and not a tuple. –  user1105045 Oct 10 '12 at 16:24

Recall the type of foldr: (a -> b -> b) -> b -> [a] -> b. This says that foldr expects a function that combines an element of the list with a value of the final result type, producing a new value of the result type.

For the first argument, you've given foldr the function \x y -> y:x, where x will be the list elements and y the result of the next step to the right; and the result of applying this lambda should have the same type as y.

But the type of (:) is a -> [a] -> [a]--that is, it appends a single element to the head of a list. In the expression y:x, you're taking something of the "result" type and using it as an element of a list used as the result.

Because of that, GHC attempts to infer that the result type b is the same as the type [b], which is then of course the same as the type [[b]], and [[[b]]]... and so on. Thus it complains about an "infinite type".

share|improve this answer
    
can u explain the last part?I dont quite catch. what does the '[[]]' refer to? –  edelweiss Oct 10 '12 at 15:29
    
@edelweiss: Just like [b] is a list with elements of type b, [[b]] is a list with elements of type [b]. In other words, a list of lists. Likewise, [[[b]]] is a list of lists of lists, &c. –  C. A. McCann Oct 10 '12 at 15:33
    
am i correct to say that '[[]]' refers to the type of output expected? –  edelweiss Oct 10 '12 at 15:33
    
how do I actually achieve this type of outing in haskell? –  edelweiss Oct 10 '12 at 15:34

Type of foldr is

foldr :: (a -> b -> b) -> b -> [a] -> b

so in split

split = foldr (\x y -> y:x) [[]]

y and y:x has to be of same type, which is not possible for any x and y as y:x will always be one step deeper in the list than y.

I think you wanted to do x:y?

share|improve this answer

Your Answer

 
discard

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.