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I'm trying to wrap my brain around Haskell's existential types, and my first example is a heterogeneous list of things that can be shown:

{-# LANGUAGE ExistentialQuantification #-}
data Showable = forall a. Show a => Showable a

showableList :: [Showable]
showableList = [Showable "frodo", Showable 1]

Now it seems to me that the next thing I would want to do is make Showable an instance of Show so that, for example, my showableList could be displayed in the repl:

instance Show Showable where
  show a = ...

The problem I am having is that what I really want to do here is call the a's underlying show implementation. But I'm having trouble referring to it:

instance Show Showable where
  show a = show a

picks out Showable's show method on the RHS which runs in circles. I tried auto-deriving Show, but that doesn't work:

data Showable = forall a. Show a => Showable a
  deriving Show

gives me:

Can't make a derived instance of `Show Showable':
  Constructor `Showable' does not have a Haskell-98 type
  Possible fix: use a standalone deriving declaration instead
In the data type declaration for `Showable'

I'm looking for someway to call the underlying Show::show implementation so that Showable does not have to reinvent the wheel.

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6  
The fanciness and complexity of data Showable = forall a . Show a => Showable a is leading you to forget that Showable (on the right hand side) is just another constructor like Just or Left. It's not different from a case where you'd written data Showable a = Showable a -- you wouldn't try to write instance Show a => Show (Showable a) where show x = ...?...; rather you'd instance with ... where show (Showable x) = show x or maybe where show (Showable x) = "Showable " ++ show x. You want to get your hands on the thing that is wrapped inside Showable as Logan notes. –  applicative Aug 13 '11 at 16:13
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1 Answer 1

up vote 15 down vote accepted
instance Show Showable where
   show (Showable a) = show a

show a = show a doesn't work as you realized because it recurses infinitely. If we try this without existential types we can see the same problem and solution

data D = D Int
instance Show D where show a = show a -- obviously not going to work

instance Show D where show (D a) = "D " ++ (show a) -- we have to pull out the underlying value to work with it
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Wow, thanks. I'm not sure why that works, but it does. –  Ara Vartanian Aug 13 '11 at 14:12
    
@Ara Vartanian I added a little elaboration. Do you see now why it's not really anything to do with existential types and just a matter of defining your function correctly? –  Logan Capaldo Aug 13 '11 at 14:14
3  
Ahh... Yes. Now I get it. I have to use pattern matching to pull apart the instance to get at the show method I want. Thank you so much. –  Ara Vartanian Aug 13 '11 at 14:17
    
Note that this example is a bit clearer if you use GADT syntax anyway, writing data Showable where Showable :: Show a => a -> Showable. That GADTs deprive you of some automatic deriving is a familiar point. –  applicative Aug 13 '11 at 16:23
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