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I'm trying to write a function named split that takes a list and returns a list of pairs of all the different possiblities to partition it, e.g.

split [4,3,6] = [([],[4,3,6]),([4],[3,6]),([4,3],[6]),([4,3,6],[])]

Now I wrote this

split :: [a] -> [([a],[a])]
split []     = [([],[])]
split (x:xs) = ([],(x:xs)):(zip (map (x:) (map fst split(xs))) (map snd split(xs)))

piece of code and Hugs and the interpreter of my choice gets me this

ERROR file:.\split.hs:3 - Type error in application
*** Expression     : map snd split xs
*** Term           : map
*** Type           : (e -> f) -> [e] -> [f]
*** Does not match : a -> b -> c -> d

error message. What the heck am I doing wrong? Why would (map snd split xs) be of type
(a-> b -> c -> d)?

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Is ([4,6],[3]) also in the result? Because it fits your description. And if it is in there, the answer of Nicolas Wu is not sufficient –  kaan Feb 20 '13 at 11:55
    
No, it's not a result and I am sorry if my description suggests that. –  user2090667 Feb 20 '13 at 15:56

2 Answers 2

up vote 10 down vote accepted

You've misplaced your parens. Try

split (x:xs) = ([],(x:xs)):(zip (map (x:) (map fst (split xs))) (map snd (split xs)))

Haskell doesn't use parenthesis for function calls in the same way as something like C and Java. When you write map fst split(xs) this is the same as map fst split xs, i.e. the compiler thinks that you are trying to call map with three parameters. Therefore you need to parenthise the call to split like this: map fst (split xs).

What you are effectively trying to write is a simple zipper for a list. The easiest way to implement it is

import Data.List (inits, tails)

split xs = zip (inits xs) (tails xs)
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Thanks a lot, for the parens and the much simpler code. I was being very blind. –  user2090667 Feb 20 '13 at 15:57

Here's an alternative definition:

splits :: [a] -> [(a, a)]
splits xs = map (flip splitAt xs) [0 .. length xs]

Admittedly, it's not very efficient, but at least it's concise :-)

Another version that's even shorter, and probably more efficient, using inits and tails from Data.List:

splits :: [a] -> [(a, a)]
splits xs = zip (inits xs) (tails xs)

Now let's have a little fun. We can write inits and tails as foldrs, where we use initsA and tailsA to represent what are known as the algebras of the folds:

inits :: [a] -> [[a]]
inits = foldr initsA [[]]

initsA :: a -> [[a]] -> [[a]]
initsA x xss = [] : map (x:) xss

tails :: [a] -> [[a]]
tails = foldr tailsA [[]]

tailsA :: a -> [[a]] -> [[a]]
tailsA x xss = (x : head xss) : xss

Using these algebras, we can further combine them:

splits :: [a] -> [([a], [a])]
splits = foldr splitsA [([], [])]

splitsA :: a -> [([a], [a])] -> [([a], [a])]
splitsA xy xyss = zip (initsA xy xss) (tailsA xy yss)
  where (xss, yss) = unzip xyss

So now we have splits defined as a single foldr!

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Thanks alot, especially for the additional explanations. You forgot the list-parentheses, however. :) –  user2090667 Feb 20 '13 at 16:13

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