Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

Where let's say:

datatype bin_tree = Empty |
                    Node of value * bin_tree * bin_tree

How would I go about filling a binary tree (not a binary search tree where left is smaller than root and right bigger). Just values from a list inserted at each node in a binary tree.

share|improve this question
    
Sebastian gave a fine example below, as how to construct one specific tree, however to construct such a bin_tree from any list of integers require that you give an algorithm or explanation as how you require the tree to be built. –  Jesper.Reenberg Oct 30 '11 at 18:13

3 Answers 3

You use the value constructors you've declared.

If we assume for a moment that value is int instead, then we for instance have that the tree

     1
    / \
   2   4
  /
 3

is represented by:

Node (1,
    Node (2,
        Node (3, Empty, Empty),
        Empty
    ),
    Node (4, Empty, Empty)
)

Or, equivalently, on one line:

Node (1, Node (2, Node (3, Empty, Empty), Empty), Node (4, Empty, Empty))
share|improve this answer

It's not really possible to help you, without knowing more about how you wan't your tree constructed from a given list. However here is an example that creates a balanced tree. It takes the first element and uses it as the node value, and then it splits the rest of the list into two sub lists of equal size (if possible), by taking all "even" element in the "left" list and all "odd" elements in the "right" list:

datatype 'a bin_tree = Empty
                  | Node of 'a * 'a bin_tree * 'a bin_tree

fun list_split xs =
    let
      fun loop [] (left, right) = (rev left, rev right)
        | loop (x::y::xs) (left, right) = loop xs (x :: left, y :: right)
        | loop (x :: xs) (left, right) = loop xs (x :: left, right)
    in
      loop xs ([], [])
    end

fun built_tree [] = Empty
  | built_tree (x :: xs)  =
    let
      val (left, right) = list_split xs
      val left_tree = built_tree left
      val right_tree = built_tree right
    in
      Node (x, left_tree, right_tree)
    end

The result:

- built_tree [1,2,3,4,5,6,7,8,9];
val it =
  Node
    (1,Node (2,Node (4,Node (8,Empty,Empty),Empty),Node (6,Empty,Empty)),
     Node (3,Node (5,Node (9,Empty,Empty),Empty),Node (7,Empty,Empty)))
  : int bin_tree
share|improve this answer

Here is an answer to the same question done in Java. This will probably help a good bit :).

share|improve this answer
1  
I'm sorry to say, but you couldn't be further from the truth. That answer is (utterly) useless, specially in this context. –  Jesper.Reenberg Oct 30 '11 at 18:49

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.