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If the type for ($) is (a -> b) -> a -> b, then why are you allowed to curry it as ($2)? 2 is not of type (a -> b). See below example.

map ($2)[(+1),(+2)]

This is legit, awesome and intuitively makes sense. Please tell me how it is consistent with the type system rules?

Cheers

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marked as duplicate by TheIronKnuckle, Daniel Fischer, Nicolas, Tikhon Jelvis, Louis Wasserman Jul 9 '13 at 17:36

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This seems very similar to this question from earlier today. –  shachaf Jul 9 '13 at 6:54
    
eek, didn't notice. It's pretty much exactly the same question. Most embarrasing SO post yet :3 voting to close –  TheIronKnuckle Jul 9 '13 at 6:56

1 Answer 1

up vote 11 down vote accepted

The behavior you are observing is due to how partial application works for infix operators. This is often called "section application" and you are applying 2 as the "right section" which would be the second argument. So you have:

($) :: (a -> b) -> a -> b
                   ^
                   |
                  This is the type variable for the argument '2'

And you can confirm this via:

ghci
> :t ($2)
($2) :: Num a => (a -> b) -> b

You can likely find this info hidden somewhere in most decently complete tutorials or you can see the Haskell report section on sections.

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Also see the possibly more accessible wiki page: haskell.org/haskellwiki/Section_of_an_infix_operator –  Jeff Burka Jul 9 '13 at 13:23

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