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Say I have the following functions:

infixr 0 <|

{-# INLINE (<|) #-}
(<|) :: (a -> b) -> a -> b
f <| x = f x

foo :: a -> (forall b. b -> b) -> a
foo x f = f x

The following does not type check:

ghci> foo 3 <| id

Couldn't match expected type `forall b. b -> b'
            with actual type `a0 -> a0'
In the second argument of `(<|)', namely `id'
In the expression: f 3 <| id
In an equation for `it': it = f 3 <| id

However, foo 3 $ id does.

The definition of (<|) is (as far as I know) identical to the definition of ($). I pretty much ripped out the definition from the base library sources, and changed every instance of ($) to (<|). Compiler magic?

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1 Answer 1

up vote 54 down vote accepted

Yes, there's a small amount of compiler magic around ($) to handle impredicative types. It was introduced because everyone expects

runST $ do
  foo
  bar
  baz

to typecheck, but it cannot normally. For more details see here (search runST), this email, and this email. The short of it is that there's actually a special rule in the type-checker specifically for ($) which gives it the ability to resolve the common case of impredicative types.

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Well, there goes my hope of ever renaming the ($) operator. Thanks anyway :) You get the check mark as soon as SO lets me... –  YellPika Dec 27 '13 at 6:25
18  
Also, unrelated to the answer per se, good find. It's hard to notice this particular compiler magic. –  J. Abrahamson Dec 27 '13 at 6:25
    
@YellPika Sadly, you're stuck with it if you use too many higher rank types. –  J. Abrahamson Dec 27 '13 at 6:29
5  
The trac page just says that GHC does left-to-right instantiation, not that it special-cases ($). Does it actually only do it for ($)? –  Ganesh Sittampalam Dec 27 '13 at 7:30
6  
Here's the email where Simon PJ talks about the impredicativity check and the ($) shortcut haskell.org/pipermail/glasgow-haskell-users/2010-November/… –  J. Abrahamson Dec 27 '13 at 23:36

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