1

I'm trying to figure out how to create a custom unzip function in Haskell using a custom version of fold (basically works as foldl) but I've become stuck. I can get it to

unzip' :: [(a,b)] -> ([a],[b])
unzip' = fold (\x->([x!!0],[x!!1])) ([],[])

But that errors out with:

• Couldn't match expected type ‘[a]’
              with actual type ‘(Integer, Integer)’
• In the first argument of ‘tail’, namely ‘(1, 2)’
  In the expression: tail (1, 2)
  In an equation for ‘it’: it = tail (1, 2)
• Relevant bindings include
    it :: [a] (bound at <interactive>:114:1)

From what I figure, x is (1,2) but I'm not sure how to further split it into 1 and 2. Here is the fold function that I am using:

fold :: (a -> b -> b) -> b -> ([a] -> b)
fold c n =
  let f [] = n
      f (x:xs) = x `c` (f xs)
  in f

Thank you

  • 2
    !! is for list indexing, it looks like you want to access tuple elements. You can use fst and snd functions to access the first and second elements of tuples. – pdexter Mar 2 at 6:10
  • 2
    N.B. Your fold works more like foldr than foldl. The former receives a (a -> b -> b) while the latter receives a (b -> a -> b). – TrebledJ Mar 2 at 6:11
  • Not a pro haskellist but the error doesn't seem to match the result of running the unzip and fold. – TrebledJ Mar 2 at 7:47
4

There are several issues with your lambda function.

Firstly, fold expects a (a -> b -> b), so technically, a function with two arguments. Right now, your lambda only accepts 1 argument. Since your fold resembles foldr (folds from the right), the second argument should be the accumulator object, which collects the result from each fold.

Secondly, you are working with tuples, not lists (as pdexter noted in a comment). Thus, you should use the fst and snd functions.

After some modifications to the lambda:

\x acc -> (fst x:fst acc, snd x:snd acc)

This will append the first element from each tuple to the first list of the accumulator. And the second element from each tuple to the second list of the accumulator. Some results:

unzip' :: [(a,b)] -> ([a],[b])
unzip' = fold (\x acc -> (fst x:fst acc, snd x:snd acc)) ([],[])

unzip' [(1, 'a'), (2, 'b'), (3, 'c')]
([1,2,3],"abc")

Following Jon's comment, you can also take advantage of pattern matching in the lambda, replacing fst and snd. This may increase the strictness of the function. You can also replace ([], []) with mempty, a predefined empty tuple.

unzip' = fold (\(x, y) (xs, ys) -> (x:xs, y:ys)) mempty

Tip: Before jumping into the unzip function, you could isolate and test out the lambda with your fold first.

  • 2
    fst and snd can be replaced with pattern matching, which ought to improve the strictness somewhat: fold (\ (x, y) (xs, ys) -> (x : xs, y : ys)) ([], []). And if you prefer, ([], []) is mempty. – Jon Purdy Mar 2 at 7:18
  • Thank you so much! Somehow I didnt realize that it wasnt a list but in fact a tuple -_- – David Wolak Mar 3 at 7:00

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