Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I've been given a BST in haskell that is capable of adding, removing, lookup, findingMax, and removingMax. I have to make a function that converts the data to a list structure.

bstToList:: (BST k v) -> [String]
bstToList EmptyBST = ["hi"]
bstToList (BSTNode k v nl nr) = bstToList nl ++ bstToList nr

The reason I have EmptyBST = ["hi"] in there was to check what it was returning. When given an input of

bstToList (bstAdd 1 "Phil" (bstAdd 2 "Ip" EmptyBST))

returns a list of ["hi","hi","hi"] And I'm unclear as to why everything is returning the empty list. Assume that all functions other than bstToList is correct and working properly. Any help is appreciated!

share|improve this question

1 Answer 1

up vote 3 down vote accepted

The line

bstToList (BSTNode k v nl nr) = bstToList nl ++ bstToList nr

doesn't use the value at the node, which is why you only ever get data from the EmptyBST bits.

You need

BstToList :: BST k v -> [v] 
bstToList EmptyBST = []
bstToList (BSTNode k v nl nr) = bstToList nl ++ [v] ++ bstToList nr

so that the value at this node is inserted between the values on the left and the right of it. (This is called an in order traversal.)

If you want to list both the keys and values you need

BstToList :: BST k v -> [(k,v)] 
bstToList EmptyBST = []
bstToList (BSTNode k v nl nr) = bstToList nl ++ [(k,v)] ++ bstToList nr

Notice the brackets around (k, v) - they turn two items into a pair. The same goes for the type signature. (The missing pair syntax is why you got a kind error.)

[k,v] can only work as data if k and v are the same type, and [k,v] can't work as a type.

share|improve this answer
    
This is excellent thank you! I never realized I wasn't showing any values for the results. I've attempted to list both the [k,v] as a return type instead and now it gives me an error: Kind mis-match Expected kind 'OpenKind', but '[k, v]' has kind '[*]' In the type signature for 'bstToList': bstToList :: (BST k v) -> '[k, v] –  Phirip May 14 '13 at 6:42
    
Thank you very much, you've been a wonderful help in making me understand! :D –  Phirip May 14 '13 at 6:52

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.