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hi guys can someone explain me as a haskell noob what the the operators:

(.) :: (b -> c) -> (a -> b) -> a -> c
(<$>) :: Functor f => (a -> b) -> f a -> f b
(<*>) :: Applicative f => f (a -> b) -> f a -> f b

do? i dont have any idea when i see the signatures, perhabs some example with a simple and easy to understand explanation will help me.

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For the first two see answer: stackoverflow.com/questions/3030675/… –  Jogusa Jun 8 '11 at 14:43
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BTW, (.) = (<$>), so you only need to learn two of them ;) –  FUZxxl Jun 8 '11 at 18:10
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@FUZxxl: Only in the (->) r functor :). –  adamse Jun 8 '11 at 22:12
    
@FUZxxl (<$>)=fmap and certainly fmap isn't the same as (.). adamse is correct. –  AndrewC Jan 20 '13 at 22:20
    
@AndrewC Thank you for the answer to my comment from one and a half year ago. (.) is a specialized version of (<$>). –  FUZxxl Jan 20 '13 at 22:33

3 Answers 3

up vote 8 down vote accepted

I am also learning Haskell, and my recommendation is to have a look into Learn You a Haskell for Great Good!, and more precisely:

In essence:

  • (.) is function composition: if you have g :: a -> b and f :: b -> c then f . g is essentially f(g(x)): first use g on an a to get a b and then use f on that b to get a c

  • <$> takes a function taking an a and returning a b, and a functor that contains an a, and it returns a functor that contains a b. So <$> is the same as fmap :: (a -> b) -> f a -> f b

  • <*> takes a functor that contains a function taking an a and returning a b, and a functor that contains an a, and it returns a functor that contains a b. So <*> kind of extract the function from a functor and applies it to an arguments also inside a functor, and finally returns the result into a functor

Note the explanations that you find in the book chapters are better than my attempt above

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RWH and the Typeclassopedia are also good sources for this question after reading LYAH. –  Dan Burton Jun 8 '11 at 18:01

The (.) operator composes functions. For example, \x -> f (g x) is the same as f . g. You can do this for arbitrary functions, e.g. \x -> f (g (h x)) equals f . g . h.

The <$> and <*> operators are not defined in terms of functionality. Their functionality depends on the actual type f that they are applied on. The <$> operator is an alternative for the fmap function in the Functor library. For example, for the Maybe type it takes the left operand and only applies it if the right operand is a Just value. So in order to find out what these operators do, just have a look at the implementations for the specific types.

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While the common uses of <$> and <*> is obscured by the fact that they are in a typeclass, you can usually read the haddock documentation for this information. Use Hoogle if you have a hard time finding to which module a function belongs.

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