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 have little utility function for forwarding the call of type class method thru a sum type. The problem is I have to explicitly pass the constraint using Proxy. I would like to just use ScopedTypeVariables.

Here is the code

{-# LANGUAGE TypeOperators #-}
{-# LANGUAGE FlexibleInstances #-}
{-# LANGUAGE UndecidableInstances #-}
{-# LANGUAGE LambdaCase #-}
{-# LANGUAGE RankNTypes #-}
{-# LANGUAGE ConstraintKinds #-}
{-# LANGUAGE ScopedTypeVariables #-}
{-# LANGUAGE DeriveGeneric #-} 
{-# LANGUAGE KindSignatures #-}
{-# LANGUAGE MultiParamTypeClasses #-}
module Mitsuba.Generic where
import GHC.Generics
import Data.Proxy

class GFold f c b where
    genericFold :: p c -> (forall e. c e => e -> b) -> f a -> b 

instance GFold a c d => GFold (M1 x y a) c d where
   genericFold p f (M1 x) = genericFold p f x

instance ( GFold a c d
         , GFold b c d
         ) => GFold (a :+: b) c d where
   genericFold p f = \case
      L1 x -> genericFold (Proxy :: Proxy c) f x
      R1 x -> genericFold (Proxy :: Proxy c) f x

instance c a => GFold (K1 i a) c d where
   genericFold p f (K1 x) = f x

gfold :: (Generic a, GFold (Rep a) c d) 
      => p c -> (forall e. c e => e -> d) -> a -> d
gfold p h x = genericFold p h $ from x

data Foo = I Int | D Double | B Bool
   deriving(Generic)

test :: String
test = gfold (Proxy :: Proxy Show) show $ I 1

So the test works like I would like it to. However, I would like the 'gfold' function to be the following.

gfold :: forall a c d. (Generic a, GFold (Rep a) c d) 
      => (forall e. c e => e -> d) -> a -> d
gfold h x = genericFold (Proxy :: Proxy c) h $ from x

Which compiles, but then the test gives the following error.

src/Generic.hs:39:8:
Could not deduce (c0 Bool, c0 Double, c0 Int)
  arising from a use of `gfold'
In the expression: gfold show
In the expression: gfold show $ I 1
In an equation for `test': test = gfold show $ I 1

src/Generic.hs:39:14:
Could not deduce (Show e) arising from a use of `show'
from the context (c0 e)
  bound by a type expected by the context: (c0 e) => e -> String
  at src/Mitsuba/Generic.hs:39:8-17
Possible fix:
  add (Show e) to the context of
    a type expected by the context: (c0 e) => e -> String
In the first argument of `gfold', namely `show'
In the expression: gfold show
In the expression: gfold show $ I 1

Is there anyway I can write the version of gfold that I want?

share|improve this question
    
It's not called -XScopedTypeLevelVariablesOfAnyKind... – leftaroundabout Feb 18 '14 at 9:30
    
@leftaroundabout That explanation makes sense but is unfortunate – Jonathan Fischoff Feb 18 '14 at 15:34

I don't think you can unify c with Show in this case because Show is not the only possible constraint that matches c in (forall e. c e => e -> d). It could just as well be some other type-class which implies Show, for example:

class Show a => MyShow a where
  myShow :: a -> String
  myShow a = "foo: " ++ show a

instance MyShow Int
instance MyShow Double
instance MyShow Bool

and now

test = gfold (Proxy :: Proxy MyShow) show $ I 1

also type-checks.

share|improve this answer
    
You can't unify c with anything, you can't even write func = undefined :: forall c d . (forall e. c e => e -> d). The function passed to gfold must be fully polymorphic in c which doesn't actually make sense. – user2407038 Feb 18 '14 at 10:01
    
This doesn't typecheck for me with the latter version of gfold. Isn't the change to gfold meant to avoid passing the proxy parameter? – Danny Navarro Feb 18 '14 at 10:28

I don't know if using a more explicit concrete type signature for your gfold function defeats the purpose of what you are trying to do, but you can make test typecheck with the more generic gfold version writing it like this:

test :: String
test = (gfold :: ((forall e. Show e => e -> String) -> Foo -> String)) show $ I 1
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.