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I'm learning about functors this afternoon and am trying to write one for a tree data type I just wrote up.

data GTree a = Node a [GTree a] deriving (Show, Read, Eq)  

instance Functor GTree where
        fmap f n [] = f n
        fmap f n a = f n fmap a

I'm trying to write it so that if the list is empty, map over the single node. Otherwise, recursively map over the list. Here's the error I get.

The equation(s) for `fmap' have three arguments,
but its type `(a -> b) -> GTree a -> GTree b' has only two
In the instance declaration for `Functor GTree'

I understand that I have too many arguments for fmap, but I can't figure out how to write this out so that it reflects what I want it to do.

If anybody could help me out with this it would be much appreciated. Thank you!

EDIT: Here's one possible solution I found, I don't really understand it though.

instance Functor GTree where
    fmap f (Node a ts) = Node (f a) (map (fmap f) ts)
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You need to use the constructor: fmap f (Node n []) = ... –  luqui Feb 22 '11 at 1:38
    
@luqui Thanks for the comment. That makes sense. I tried changing that line to fmap f (Node n []) = Node (f n) and comment out the second one for now but I'm still getting errors. –  Cody Bonney Feb 22 '11 at 1:46
    
Node takes two arguments, you have only given it one. Needs to be Node (f n) []. Don't give up, especially regarding the left-associative application (f x y = (f x) y), that can take some getting used to. –  luqui Feb 22 '11 at 2:04
    
Cool, thank you for pointing this stuff out to me. I'm very new to haskell so it's kind of melting my brain. I'll definitely stick with it. :) –  Cody Bonney Feb 22 '11 at 2:12

1 Answer 1

up vote 3 down vote accepted

What fmap does is it takes a function with type a -> b plus a box of a and it'll return box of b. Instead of n [] and n a you should use (Node a []) and (Node a xs), which will match against Node without any children and Node with children.

instance Functor GTree where
        fmap f (Node a xs) = Node (f a) (fmap (fmap f) xs)
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Ahhhhhh, that solution I found totally makes sense now. Thanks for taking the time to explain it to me! –  Cody Bonney Feb 22 '11 at 2:14
1  
You don't really need two cases here ... map works fine for empty list. –  Antoine Latter Feb 22 '11 at 3:28
    
I am an fmap > map bigot. Therefore it should totally be 'fmap (fmap f) xs' –  Robert Massaioli Feb 22 '11 at 3:51
2  
@Robert, as long as you're doing that, use it like a Semantic Editor Combinator: (fmap.fmap) f xs, which you can see as spelling out the path to the a through two functors. I'm sure we have lost Cody at this point :-P –  luqui Feb 22 '11 at 5:27
1  
@luqui Yes you are right of course, it should really be written that way for extreme clarity and good practise. Cody here is the article that we are referring to: conal.net/blog/posts/semantic-editor-combinators –  Robert Massaioli Feb 22 '11 at 10:03

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