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According to Wikipedia, the following code should compile,

{-# LANGUAGE RankNTypes #-}
data T = MkT (exists a. Show a => a)

But, I'm not having any luck. ghci 7.2.2 complains with,

test.hs:2:23:
    Illegal symbol '.' in type
    Perhaps you intended -XRankNTypes or similar flag
    to enable explicit-forall syntax: forall <tvs>. <type>
Failed, modules loaded: none.

The original link is here: http://en.wikibooks.org/wiki/Haskell/Existentially_quantified_types

Thanks in advance!

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1  
You need to use the ExistentialQuantification flag to do this without GADTs –  is7s Jan 16 '12 at 8:47
    
@is7s, Thanks, the answer "Existentials are subsumed by GADTs" is particularly helpful for me since I'm familiar with them in that context. –  gatoatigrado Jan 16 '12 at 9:31

1 Answer 1

The page you linked mentions that exists as a keyword doesn't exist but that you can get the same behavior using forall. Note that your particular example is captioned "(psuedo) haskell".

They say it would be equivalent to:

data T = forall a. MkT a

with

MkT :: forall a. a -> T
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oh, duh, thanks! In this case, it is as powerful as having an actual exists, right? I wanted to write some "f :: a -> exists t. t", but I see this is wrong for a number of reasons ... I'll probably have to use generics somehow ... –  gatoatigrado Jan 16 '12 at 7:02
    
I think it's just as powerful, but I've also only started learning about existential types recently :) –  Tikhon Jelvis Jan 16 '12 at 7:04
    
If you want to include the Show a context, it becomes data T = forall a. (Show a) => MkT a. If I'm not mistaken, UHC actually supports exists keyword. –  Vitus Jan 16 '12 at 10:47

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