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.

So i have this data structure:

 class ordering a where

    order :: a-> Int

And i want to create a search tree, where every node is a list of elements, specified by their own order number( root is 1, root of left subtree is 2, root of right subtree is 3, and so on..). Every type of data that is inserted in the tree has an "order" number associated with it that only matters for "tree insertion purposes", and if it is equal to 1, it stays in the root, if it is two, it stays on the left side of the tree, and so on..

Here's my attempt at this:

data Tree a = EmptyTree
        | Node a order a (Tree [a]) (Tree [a]) deriving (Show, Read, Eq) 

What i've done, makes sense to me, but apparently is wrong, but honestly i have no idea why...

I'm new to Haskell, and i've been struggling to learn the language, so i appreciate any kind of help from you guys!

share|improve this question
1  
possible duplicate of Specifying class constraints in value constructors –  Robin Green Nov 6 '13 at 23:41
2  
I think the problem is that you're mixing up the meaning of types, of data, of type classes, and of classes in OO languages (which is perfectly usual for beginner Haskellers). Read some book(s) on Haskell, that's probably going to be the most effective fix to your issue. –  leftaroundabout Nov 6 '13 at 23:46
1  
1) class names must be written with a capital letter. 2) Ordering is a busy name in Prelude, try to use another name for class 3) data and class are connected through instance –  viorior Nov 7 '13 at 8:58

2 Answers 2

The ordering that you have defined is a type class, not a data structure. order is an operation, not a type. Putting the order operation in the Tree data structure makes no sense.

You also haven't shown us any code to actually insert data, so I'm unsure how this is supposed to work.

share|improve this answer
    
I'm trying to write the structure first, so i can make a function to add some data later :) –  user2878641 Nov 6 '13 at 23:15
    
@dcarou: it's reasonable to first specify the data types before implementing any function, but at least you should know what the type signature of those functions is going to be. –  leftaroundabout Nov 6 '13 at 23:17
    
You're right! So basically, in order to solve this problem, how can i use the type class "order" atribute in the tree definition ? Because every type of data has a order number associated to it, so it can be inserted in the right position in the tree –  user2878641 Nov 6 '13 at 23:22

Let's start from the function actually. Apparently you want this:

insert :: Ord key => (key,val) -> Tree key val -> Tree key val

since your tree carries values that are to be inserted according to keys, this Tree type must enclose both of them:

data Ord key => Tree key val = EmptyTree 
                             | Node key val (Tree key val) (Tree key val)

now it's easy to implement the insert function. Each tree of a type Tree key val will be able to carry keys of type key and values of type val. To accommodate for various concrete value types in one tree you can use a tagged union type for it:

data Myval = My_c1 | My_c2 | MyInt Int | MyInts [Int] | MyString String | ...

now a tree of type, e.g., Tree Int Myval will carry values tagged with Myval constructors, inserted according to the user supplied Int keys.

If you mean that every data type has its own key,

ordkey :: Myval -> Int
ordkey My_c1 = 1
ordkey My_c2 = 2
ordkey (MyInt _) = 3
....

then you won't use insert directly, but rather through an intermediary,

ordinsert val tree = insert (ordkey val,val) tree

This is of course a simple, unsophisticated way to go about it, maybe this is what you meant.

share|improve this answer
    
What i meant was that the code has to be compatible with every data type (int, char, string, etc...). and that every node has to be a list, so different data with the same ord key, is inserted in the same place –  user2878641 Nov 7 '13 at 10:55
    
@dcarou ah, that' something different from what I show, but similar. you want | Node key val (Tree key [val]) (Tree key [val]) and insert would cons a new element on top a list that's already there. But then each elem in [val] would be of same type... –  Will Ness Nov 7 '13 at 11:02
    
Exactly all the elements should be the same type, but the tree should support any type of data. But can you show it, so i can better understand what's really going on ? –  user2878641 Nov 7 '13 at 11:10
    
no, to support any type of data is too sophisticated for me. There are ways to do it (look for "printf in Haskell"). This is basic simple way, you'd have to add every type you need your tree to hold into the Myval union type explicitly, "by hand". –  Will Ness Nov 7 '13 at 11:34
    
@dcarou re | Node key val (Tree key [val]) (Tree key [val]) scratch that, it's wrong; it should be | Node key [val] (Tree key val) (Tree key val). –  Will Ness Nov 7 '13 at 11:39

Your Answer

 
discard

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