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I want to perform level-order traversal of a binary tree. Hence, for a given tree, say:

     3
    / \
   2   1
  / \   \
 4   6   10

the output would be:

3 2 1 4 6 10

I understand that I could use some sort of queue, but what is the algorithm to do this in C recursively? Any help appreciated.

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up vote 7 down vote accepted

The graph algorithm is called Breadth First Search, it uses a queue to perform the level-order traversal, here is the pseudo-code

void breadth_first(Node root)
{
  Queue q;
  q.push(root);
  breadth_first_recursive(q)
}

void breadth_first_recursive(Queue q)
{
  if q.empty() return;
  Node node = q.pop()
  print Node
  if (n.left) q.push(n.left)
  if (n.right) q.push(n.right)
  breadth_first_recursive(q)
}
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I understand this, I'm asking for the algorithm to do this recursively with no loops. – Jonathan Swiecki Mar 1 '13 at 20:51
    
Ok, I'm gonna post a recursive example, give me a while – igarcia Mar 1 '13 at 20:53
    
Thanks, I think I can implement this very easily with the que system I have. – Jonathan Swiecki Mar 1 '13 at 21:00

here to you the pseudocode from wikipedia

levelorder(root)
  q = empty queue
  q.enqueue(root)
  while not q.empty do
    node := q.dequeue()
    visit(node)
    if node.left ≠ null
    q.enqueue(node.left)
    if node.right ≠ null
    q.enqueue(node.right)

you can then transform it into C that is trivial...

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I already have this but not sure how to get rid of while loop. – Jonathan Swiecki Mar 1 '13 at 20:55
    
@JonathanSwiecki here this explained nicely cs.bu.edu/teaching/c/tree/breadth-first also consider this link stackoverflow.com/questions/6025632/bfs-in-binary-tree – Grijesh Chauhan Mar 1 '13 at 21:02

Here code (no recursive function) from C5 library : C5 UserGuideExamples - TreeTraversal

public static void BreadthFirst(Tree<T> t, Action<T> action)
{
  IQueue<Tree<T>> work = new CircularQueue<Tree<T>>();
  work.Enqueue(t);
  while (!work.IsEmpty)
  {
    Tree<T> cur = work.Dequeue();
    if (cur != null)
    {
      work.Enqueue(cur.t1);
      work.Enqueue(cur.t2);
      action(cur.val);
    }
  }
}
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Another No-recursive apporoach..

void LevelOrder(node * root)
{
  queue<node *> q;
    node *n=new node;
    n=root;
    while(n)
    {
        cout<<n->data<<" ";
        if(n->left)
            q.push(n->left);
        if(n->right)
            q.push(n->right);
        n=q.front();
        q.pop();


    }



}
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