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I want to write a treeFold function that takes: A function f of type 'a -> b -> a, A value x of type a, A Tree b named t, and returns a value of type a. The return value is computed by performing an in-order traversal of the Tree, passing along the partial results via x. HERE IS MY CODE:

import Control.Exception
import Control.Monad
import Control.DeepSeq
import qualified Data.List as List
import Test.HUnit

data Tree a  =  Empty
             |  Node a (Tree a) (Tree a)
             deriving (Show, Eq)



insertTree :: ( Ord a, Show a ) => Tree a -> a -> Tree a
insertTree Empty x  =  Node x Empty Empty
insertTree ( Node v tLeft tRight ) x
    | x == v = Node v tLeft tRight
    | x < v = Node v (insertTree tLeft x) tRight
    | x > v = Node v tLeft (insertTree tRight x)


createTree :: ( Ord a, Show a ) => [ a ] -> Tree a
createTree = foldl insertTree Empty

intTree = createTree [ 9, 7, 2, 8, 6, 0, 5, 3, 1 ]

listTree = createTree ( List.permutations [ 0 .. 3 ] )

strTree = createTree [ "hello"
                     , "world"
                     , "lorem"
                     , "ipsum"
                     , "dolor"
                     , "sit"
                     , "amet"
                     ]
treeFold :: (a -> b -> b -> b) -> b -> Tree a -> b
treeFold f z Empty = z
treeFold f z (Node v l r) = f v (subfold l) (subfold r)
    where subfold = foldTree f z

But when I run the code, I got a "Couldn't match type error". I was wondering how can I fix this problem? for exmaple: Main> treeFold (+) 10 intTree, instead of getting Main> 51, i got could't match type error. Any help is greatly appreciated.

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Look at the type of the first argument that treeFold expects: a -> b -> b -> b. Now look at the type of (+): (Num a) => a -> a -> a. They do not match. You need to supply a function of three arguments, but (+) only accepts two arguments. –  Gabriel Gonzalez May 7 '13 at 0:50
    
here is the fixed treeFold code: treeFold :: (a -> b -> a) -> a -> Tree b -> a treeFold f z Empty = z treeFold f z (Node l x r) = treeFold f (f x (treeFold f z r)) l... But is till get the sam e error. –  user2210328 May 7 '13 at 1:44
    
Your original treeFold code was correct. The error was that you supplied it with (+) as an argument. You need to supply something other than (+) to treeFold. –  Gabriel Gonzalez May 7 '13 at 2:18

1 Answer 1

In your function

treeFold :: (a -> b -> b -> b) -> b -> Tree a -> b
treeFold f z Empty = z
treeFold f z (Node v l r) = f v (subfold l) (subfold r)
    where subfold = foldTree f z

you use f on three values: v, (subfold l) and (subfold r). This is why your type signature requires f to take three arguments.

It seems to me that you'd be better off applying a two-argument f twice, once to combine v and (subfold l), the other to combine that with (subfold r):

treeFold f z Empty = z
treeFold f z (Node v l r) = f (f v (subfold l)) (subfold r)
    where subfold = treeFold f z

That does mean that if we assume f :: a -> b -> c, then subfold l :: b because of f v (subfold l), but also subfold l :: c because it's returned from treeFold. Thus c and b are the same type (c ~ b), and f v (subfold l) :: b. That's used as the first argument of the first f, so a ~ b too. Thus for this new use-f-twice version,

treeFold :: (b -> b -> b) -> b -> Tree b -> b
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