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Making (a, a) a Functor

I wrote the following implementation of quicksort:

import Data.List (partition)

quicksort [] = []

quicksort (x:xs) =
    let (smaller, notSmaller) = partition (< x) xs
    in  quicksort smaller ++ x : quicksort notSmaller

Then I wanted to abbreviate the two recursive calls to quicksort by applying fmap to the list pair:

quicksort (x:xs) =
    let (smaller, notSmaller) = fmap quicksort $ partition (< x) xs
    in  smaller ++ x : notSmaller

But apparently, (a, a) is not a functor. Why is that? I tried to provide one:

instance Functor (a, a) where
    fmap f (x, y) = (f x, f y)

But ghci did not like my attempt:

Kind mis-match
The first argument of `Functor' should have kind `* -> *',
but `(a, a)' has kind `*'
In the instance declaration for `Functor (a, a)'

Could anyone explain that error to me? I tried various "fixes", but none of them worked.

Is it possible to make (a, a) an instance of Functor? Or is the type system not expressive enough?

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marked as duplicate by FredOverflow, nponeccop, Daniel Fischer, dave4420, Chris Taylor Oct 6 '12 at 15:15

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1 Answer 1

up vote 13 down vote accepted

It's important to realise that it's not (a,a) that would be the functor, in the same way that Maybe a and [a] aren't functors. Instead, the functors are Maybe and [].

A full explanation requires introducing the concept of kinds, which are like "types of types". Any concrete type has kind *. A type constructor like Maybe or [] takes a type and returns another type, so it has kind * -> *.

What's the kind of (,) (the constructor for pairs)? It needs two types, one for the first slot and one for the second slot, so it has kind * -> * -> *.

You can only make a functor out of things of kind * -> *, so the short answer to your question is no, you can't make (,) into a functor.

However, you can get around the limitation by wrapping the type. For example

newtype Pair a = P (a,a)

instance Functor Pair where
    fmap f (P (x,y)) = P (f x, f y)

The newtype wrapper will be optimized away by the compiler, so this isn't any more expensive than what you were trying to do originally - it's just a little more verbose.

share|improve this answer
    
Aha, I tried type Pair a = (a, a) and that didn't work. –  FredOverflow Oct 6 '12 at 11:57
    
@FredOverflow type is just similar to typedef in C++; it doesn't create a new type, just an alias (so it wouldn't make any difference). –  qox Oct 6 '12 at 12:02

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