Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I'm stuck on implementing groupBy with a foldr. For some reason when I change a guard condition, the type signature goes ape on me.

I can compile this, albeit its incorrect:

groupBy' :: (a -> a -> Bool) -> [a] -> [[a]]

groupBy' f xs = foldr step [] xs
    where    step x [] = [x] : []
             step x (y:ys)
                 | True = []:(y:ys)
                 | otherwise = (x:y):ys

But this does not compile:

groupBy' :: (a -> a -> Bool) -> [a] -> [[a]]

groupBy' f xs = foldr step [] xs
    where    step x [] = [x] : []
             step x (y:ys)
                 | f x y = []:(y:ys)
                 | otherwise = (x:y):ys

giving me this error.

Couldn't match type `a' with `[a]'
  `a' is an unknown type variable
Expected type: [[a]]
  Actual type: [a]
In the second argument of `(:)', namely `ys'
In the expression: (x : y) : ys
In an equation for `step':
    step x (y : ys)
      | f x y = [] : (y : ys)
      | otherwise = (x : y) : ys

I don't get it. Using "f x y" makes it not compile and spit out this error, but when I replace f x y with either True or False, it compiles. I wanna know how I can return []:(y:ys) when "f x y" is true.

share|improve this question

Well, in short, the first version y is of type [a], as it is not bound by type signature of f, and the second you bind y to be of type a.

Notice that (y:ys) of step is of type [[a]], so you really want something like

step x ((y:ys):yss) | f x y = (x:y:ys):yss
step x ys = [x]:ys
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.