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I'm very much a Haskell novice, so apologies if the answer is obvious, but I'm working through the Typeclassopedia in an effort to better understand categories. When doing the exercises for the section on Functors, I came across this problem:

Give an example of a type of kind * -> * which cannot be made an instance of Functor (without using undefined).

My first thought was to define some kind of infinitely recursing definition of fmap, but wouldn't that essentially be the same as if undefined was used in the definition?

If someone could explain the answer it would be greatly appreciated.

Thanks!

Source of original exercise here, section 3: http://www.haskell.org/haskellwiki/Typeclassopedia#Introduction

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What about (-> int)? –  Ramon Snir Apr 20 '13 at 8:57
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@RamonSnir ((->) Int) is actually fine, you need something like data K a = K (a -> Int). –  Mikhail Glushenkov Apr 20 '13 at 8:59
    
@MikhailGlushenkov, that's almost certainly what Ramon means, just like (+ 1) = \a -> a + 1. –  huon-dbaupp Apr 20 '13 at 9:02
    
@MikhailGlushenkov as @dbaupp noted, (-> int) <> ((->) int). –  Ramon Snir Apr 20 '13 at 9:10
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2 Answers 2

up vote 16 down vote accepted

A simple example is

data K a = K (a -> Int)

Here's what ghci tells us is we try to automatically derive a Functor instance for K:

Prelude> :set -XDeriveFunctor
Prelude> data K a = K (a -> Int)
Prelude> :k K
K :: * -> *
Prelude> data K a = K (a -> Int) deriving Functor

<interactive>:14:34:
    Can't make a derived instance of `Functor K':
      Constructor `K' must not use the type variable in a function argument
    In the data type declaration for `K'

The problem is that the standard Functor class actually represents covariant functors (fmap lifts its argument to f a -> f b), but there is no way you can compose a -> b and a -> Int to get a function of type b -> Int (see Ramon's answer). However, it's possible to define a type class for contravariant functors:

class Contravariant f where
    contramap :: (a -> b) -> f b -> f a 

and make K an instance of it:

instance Contravariant K where
    contramap f (K g) = K (g . f)

For more on covariance/contravariance in Haskell, see here.

Edit: Here's also a nice comment on this topic from Chris Smith on Reddit.

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1  
+1 for CoFunctors. –  Ramon Snir Apr 20 '13 at 9:18
    
Thanks, so if I understand correctly, the issue is that for the fmap definition for K, we have (a -> b) -> K (a -> Int) -> K (a -> b) which would be defined by attempting to compose a function of type a -> Int and a function of type a -> b, which doesn't work because type a would have to be fixed to Int? –  JS. Apr 20 '13 at 9:20
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@JS You have a function of type a -> b and a function of type a -> Int, and you must produce a function of type b -> Int. But there is no way you can compose the inputs to get the desired output. –  Mikhail Glushenkov Apr 20 '13 at 9:31
    
No need to define the Contravariant class, use the one from Hackage! –  leftaroundabout Apr 20 '13 at 9:50
    
@mikhail-glushenkov ah yes I see it now, thanks again. –  JS. Apr 20 '13 at 12:53

To expand on my (short) comment and on Mikhail's answer:

Given (-> Int), you'd expect fmap to look as such:

(a -> Int) -> (a -> b) -> (b -> Int)

or:

(a -> Int) -> (a -> b) -> b -> Int

It is easy to prove that from the three arguments (a -> Int), (a -> b), b there is no possible way to reach Int (without undefined), thus from (a -> Int), (a -> b) there is no way to reach (b -> Int). Conclusion: no Functor instance exists for (-> Int).

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The proof is simply: We have two theorems, both require proof for a. We only have a proof for b. No new proofs can be derived (as none of the theorems is applicable) => no proof can be derived for Int. –  Ramon Snir Apr 20 '13 at 9:09

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