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I found an implementation of the Morris tree traversal,

It works fine,,, but having a bit of a problem trying to traverse the tree in reverse order.. -

    void MorrisTraversal(struct Node *root)
    {  
    struct Node *p,*pre;
    if(root==0) { return; }
    for(p=root;p!=0;)
    {
    if(p->Left==0) { printf(" %d ",p->Data); p=p->Right; continue; }
    for(pre=p->Left;pre->Right!=0 && pre->Right!=p;pre=pre->Right) { }
    if(pre->Right==0)
        { pre->Right=p; p=p->Left; continue; }
    else
        { pre->Right=0; printf(" %d ",p->Data); p=p->Right; continue; }

    }
}
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What have you tried? The code above is the standard forward-order Morris traversal. You can find an explanation of how it works here: geeksforgeeks.org/archives/6358. If you read and understand that, it should be a straightforward exercise to go the other way. –  Jim Mischel Apr 21 '12 at 4:35

1 Answer 1

By reverse order, I'm assuming you mean reverse inorder traversal. You have at least two options:

  1. You could modify the code and swap all the ->Right pointer references with ->Left ones.

  2. You could replace the two printf statements with pushes onto a stack. Once the algorithm completes, you would then pop off the data from the stack to print them. This however defeats the whole purpose of the Morris traversal algorithm, which was to be stackless.

This related SO thread might help you understanding.

I hope this helps.

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