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I've been learning how to program Binary Tree Search using Linked Lists in C++. Everything works fine and I understand how the Binary Tree works however I would like to be able to print the tree with the head on top and all the nodes following bellow as I try to demonstrate here:

                                     [root or head]
                            [left]                    [right]

                      [left]      [right]       [left]       [right]

I am using the Console to print the tree, therefore feel free to use 'cout' or 'printf'. I believe I need to set the width of the console but I'm not sure how to start.

Thanks, Y_Y

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1  
Y: what does the abstract-class tag have to do with your question? :) –  Armen Tsirunyan Oct 10 '10 at 8:51
1  
If you want to do it in such a symmetrical fashion, you will need to know the depth and the length of the data you need to print in advance, in order to properly align the parent nodes. It might be easier to be content with a left-aligned output. –  sbi Oct 10 '10 at 8:52

3 Answers 3

up vote 5 down vote accepted

As sbi mentioned, making a left-aligned version is easier than a center-aligned one. But whichever alignment you choose your fundamental algorithmic approach should be:

Traverse the tree breadth-first. Do this by using a queue with the following algorithm:

  1. Declare a queue
  2. Add the root node to the queue
  3. While the queue contains more nodes, do 4 - 6:
  4. Dequeue a node
  5. Print the node. After every print that is one less than a power of 2th time (starting from 1), also print a newline.
  6. Enqueue the node's children

(See http://www.cs.bu.edu/teaching/c/tree/breadth-first/ )

In order to print a center-aligned tree, also do the following (only works if the tree is complete. If it's not complete, the easiest thing to do is make a complete copy where every place that should have a node gets some kind of a null node):

  • Instead of printing to the screen, "print" each line into a string in an array of strings.
  • As you go, keep track of the length in characters of the longest element you print. Let's call this maxElemLen.
  • Whenever you print an element, print one tab character before it and one tab character after it.
  • At the very end, go back, and in every line in the array, replace each tab character with 2^(nLines - lineNum) tab characters.
  • Then expand each tab that comes after a tab or newline to maxElemLen+1 spaces, and expand each tab that comes after anything else (i.e., after a printed elem) to (maxElemLen + 1 - (the number of characters elapsed since the last tab)) spaces.
  • Finally, print each line of your array, in order.
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Note that the part "After every print that is one less than a power of 2th time (starting from 0), also print a newline." is only correct if the tree is complete. If it is not complete, you need a different way to keep track of when you have finished a level. –  AlcubierreDrive Oct 10 '10 at 9:21
    
@Jon: What about the requited amount of spaces/tabs, which was the essential part of the question, i guess? –  Armen Tsirunyan Oct 10 '10 at 9:23
    
@Armen: Isn't that handled in the first sentence. –  sbi Oct 10 '10 at 9:26
    
@sbi: yeah, after the edit, which happened 3 minutes ago, it is :) –  Armen Tsirunyan Oct 10 '10 at 9:28
    
@Armen Tsirunyan: There ya go. :-) –  AlcubierreDrive Oct 10 '10 at 9:38

@IsAs's solution. 90 degree CCW rotated tree in C++. I advise this be used on trees no larger than 2^4.

print(root);
void BinarySearchTree::print(BinaryNode* n, int pos = 0){
    if (n==NULL) {
        for(int i = 0; i < pos; ++i)
            cout << "\t";
        cout << 'X' << endl;
        return;
    }
    print(n->right,pos+1);
    for(int i = 0; i < pos; i++)
        cout << "\t";
    cout << n->key << endl;
    print(n->left,pos+1);
}
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This is the code to print binary tree - below code prints binary tree from left to right fashion

private void printTree(Node nNode,int pos){
    if (nNode==null) {
        for(int i=0;i<pos;i++) System.out.print("\t");
        System.out.println("*");
        return;
    }
    printTree(nNode.right,pos+1);
    for(int i=0;i<pos;i++) System.out.print("\t");
    System.out.println(nNode.data);
    printTree(nNode.left,pos+1);
}

Here is the output of above method

enter image description here

'*' in above output indicates a null

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1  
So we tilt our head sideways to obtain the expected output? –  Thomas Oct 13 '13 at 7:07
    
yes, it is easy to visualize for small trees. –  IsAs Oct 13 '13 at 7:36
    
Very nice solution! –  BajaBob Mar 20 '14 at 22:10

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