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Is it possible to write a function which takes a function like (Something -> Something), and returns it, but with a type (Maybe Something -> Maybe Something)?

e.g.:

f :: Point -> Point
f x = [some code goes here]

makeItMaybe :: (Point -> Point) -> (Maybe Point -> Maybe Point)
makeItMaybe x = ???

I know it has something to do with Monads and Applicatives, but can't really figure out how. I played around a bit with <*> and <$>, but didn't get anywhere.

Any help or pointers in the right direction would be appreciated. Thanks!

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  • makeItMaybe = fmap
    – 4castle
    May 25, 2017 at 22:58

3 Answers 3

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I think you are looking for fmap, which has type Functor f => (a -> b) -> f a -> f b. If you replace f by Maybe (since Maybe is a functor) and put the parenthesis un the right place you get (a -> b) -> (Maybe a -> Maybe b). You were in the right direction with (<$>), which is just an alias for fmap.

So we have makeItMaybe f x = fmap f x or, more simply, makeItMaybe = fmap.

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3

The function you want is fmap:

makeItMaybe = fmap

fmap is defined by the Functor typeclass:

fmap :: Functor f => (a -> b) -> f a -> f b

Maybe has a functor instance so fmap specialised to Maybe has type

(a -> b) -> Maybe a -> Maybe b
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  • 2
    You're using f as a free variable in your answer, but in the question f is one of the parameters to makeItMaybe, so a more accurate answer is makeItMaybe = fmap, as in the accepted answer.
    – amalloy
    May 25, 2017 at 23:35
  • @amalloy - Thanks, fixed.
    – Lee
    May 26, 2017 at 8:38
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This functions satisfies the signature, but I don't know if it is what you want:

makeItMaybe :: (a -> a) -> (Maybe a -> Maybe a)
makeItMaybe f (Just x) = Just (f x)
makeItMaybe f Nothing  = Nothing

As @baxbaxwalanuksiwe and @Lee pointed out, it is fmap instance of Maybe from the Functor typeclass.

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  • What happens if the second argument is Nothing ? You could indeed define makeItMaybe f Nothing = Nothing, but then it's juste a definition of fmap. May 25, 2017 at 22:53

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