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I am doing 20 intermediate Haskell exercises.

After finishing first 2 exercise there is this strange thing.

I would like to know what is ((->) t)?

-- Exercise 3
-- Relative Difficulty: 5
instance Fluffy ((->) t) where
  furry = error "todo"

Thanks! :-)

1
  • 3
    If you want, you can just think of it as instance Fluffy (t ->) where, except operator sections are syntactically illegal in this case.
    – Justin L.
    Aug 19, 2015 at 0:55

2 Answers 2

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(->) is the type constructor for functions which has kind * -> * -> * so it requires two type parameters - the input and result type of the function. ((->) t is a partial application of this constructor so it is functions with an argument type of t i.e. (t -> a) for some type a.

If you substitute that into the type of the furry function you get:

furry :: (a -> b) -> (t -> a) -> (t -> b)
0

You should read prefix (->) t a as infix t -> a.

If we have

instance Fluffy Maybe where

for Maybe a type (and * -> * kind), then

instance Fluffy ((->) t) where

is for (->) t a == t -> a type (and * -> * kind) - for any function with 1 argument

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