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I am a relative haskell newbie and am trying to create a list of tuples with an equation I named splits that arises from a single list originally, like this:

splits [1..4] --> [ ([1],[2,3,4]), ([1,2],[3,4]), ([1,2,3],[4]) ]

or

splits "xyz" --> [ ("x","yz"), ("xy","z") ]

Creating a list of tuples that take 1, then 2, then 3 elements, etc. I figured out I should probably use the take/drop functions, but this is what I have so far and I'm running into a lot of type declaration errors... Any ideas?

splits :: (Num a) => [a] -> [([a], [a])]

splits [] = error "shortList"

splits [x]
       | length [x] <= 1 = error "shortList"
       | otherwise = splits' [x] 1
         where splits' [x] n = [(take n [x], drop n [x])] + splits' [x] (n+1)
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As you declared, the type of the first parameter is a list. But you don't need the type in the function itself, unless you are pattern matching, rather just the parameter name. In other words, try to replace "[x]" with just "x", the parameter name, which we know is a list. ("[x]" in this case would mean a list with one element, x) –  גלעד ברקן Feb 12 at 1:51
    
Even when I try the above, I get a type error: "Could not deduce (Num [([a], [a])]) arising from a use of splits' from the context (Num a) bound by the type signature for splits :: Num a => [a] -> [([a], [a])] at splits.hs:4:10-39 Possible fix: add an instance declaration for (Num [([a], [a])]) In the expression: splits' x 1" And I did not believe I had to define splits' in this way, I'm also unsure as to how. –  user3290526 Feb 12 at 2:01
    
This 'Could not deduce' error is because you are trying to "add" [(take n [x], drop n [x])] and splits' [x] (n+1) together, which doesn't really make sense. –  Adam Wagner Feb 12 at 2:08
1  
In the last line you use the operator "+" which is reserved for Num's or some such types. Think about which operator might better combine the return type. –  גלעד ברקן Feb 12 at 2:08
    
Oh wow that was all I needed? Haha it works perfectly! Thank you so much, I guess I'm prone to newbie mistakes like that. :) –  user3290526 Feb 12 at 2:28

4 Answers 4

The Haskell-y approach is to use the inits and tails functions from Data.List:

inits [1,2,3,4] = [ [],        [1],     [1,2], [1,2,3], [1,2,3,4] ]
tails [1,2,3,4] = [ [1,2,3,4], [2,3,4], [3,4], [4],     [] ]

We then just zip these two lists together and drop the first pair:

splits xs = tail $ zip (inits xs) (tails xs)

or equivalently, drop the first element of each of the constituent lists first:

          = zip (tail (inits xs)) (tail (tails xs))
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splits [] = []
splits [_] = []
splits (x:xs) = ([x], xs) : map (\(ys, zs) -> (x:ys, zs)) (splits xs)
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You have several mistakes.

You don't need to have Num a class for a.

use [] or [x] as pattern, but not a variable, use xs instead.

Use ++ instead of + for concatenating lists.

In our case use (:) to add list to value instead of ++.

Add stop for recursion, like additional variable maxn to splits'

splits :: [a] -> [([a], [a])]
splits [] = error "shortList"
splits xs
       | lxs <= 1 = error "shortList"
       | otherwise = splits' xs 1 lxs
         where
           lxs = length xs
           splits' xs n maxn 
               | n > maxn  = []
               | otherwise = (take n xs, drop n xs) : splits' xs (n+1) maxn
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There is a built in function that kind of does a part of what you want:

splitAt :: Int -> [a] -> ([a], [a])

which does what it looks like it would do:

> splitAt 2 [1..4]
([1,2],[3,4])

Using this function, you can just define splits like this:

splits xs = map (flip splitAt xs) [1..length xs - 1]
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