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How does it come, that the following type checks

{-# LANGUAGE RankNTypes #-}
module Main where

class Foo a where


type FunFoo = (Foo a) => a -> IO ()

data Bar = Bar {
  funFoo :: FunFoo
}

setFunFoo :: FunFoo -> Bar -> Bar
setFunFoo action bar = bar {funFoo = action}

but when changing the type signature off setFunFoo to

setFunFoo :: ((Foo a) => a -> IO ()) -> Bar -> Bar

it does not? Is there a way to express the above code without the type synonym FunFoo?

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3  
Are you sure you intended to use rank-n types? That's a fairly advanced topic for someone asking how type synonyms work. –  pelotom Nov 20 '10 at 6:17

1 Answer 1

up vote 7 down vote accepted

You need to add an explicit forall like so:

setFunFoo :: (forall a. (Foo a) => a -> IO ()) -> Bar -> Bar

The reason for this is because you want the scope of the type variable a to be limited to the type of the first argument to setFunFoo. Without the explicit forall, the desugared type is this:

setFunFoo :: forall a. ((Foo a) => a -> IO ()) -> Bar -> Bar
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