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This is a question I thought it would be easy but I found I'm wrong in the last. I can finish the program without recursive but I want to ask whether this problem can be finished in recursive version or not?

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2 Answers 2

up vote 2 down vote accepted

A recursive binary search tree traversal is basically (pseudo-code in case this is coursework):

def traverse (node):
    if (node == NULL):
        return
    traverse (node.left)
    doSomethingWith (node.payload)
    traverse (node.right)
:
traverse (root)

That's all there is to it really, just replace doSomethingWith() with whatever you want to do (such as print).

That will traverse in left to right order so, if your BST is ordered in such a way that left means lower, simply swap over the two traverse calls.

By way of example, consider the following tree:

       20
      /  \
    10    25
   /     /  \
  5    24    27
 /          /
2         28

as embodied in this example C program:

#include <stdio.h>

typedef struct s {
    int payload;
    int left;
    int right;
} tNode;

tNode node[] = {  // Trust me, this is the tree from above :-)
    {20,  1,  4}, {10,  2, -1}, { 5,  3, -1}, { 2, -1, -1},
    {25,  5,  6}, {24, -1, -1}, {27, -1,  7}, {28, -1, -1}};

static void traverse (int idx) {
    if (idx == -1) return;
    traverse (node[idx].right);
    printf ("%d ", node[idx].payload);
    traverse (node[idx].left);
}

int main (void) {
    traverse (0);
    putchar ('\n');
    return 0;
}

Running that program gives you the following output:

28 27 25 24 20 10 5 2
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@Roger, for reverse in-order traversal, you just swap the traverse calls as I've stated. Or do you have some other definition of highest and lowest? If so, you need to share that info with us. –  paxdiablo Nov 30 '12 at 5:46
    
I used this method before but I can not get the correct order –  Roger Zhu Nov 30 '12 at 5:47
    
@Roger, that code will definitely produce reverse-sorted nodes. Is that the order you want? –  paxdiablo Nov 30 '12 at 5:49
    
Sorry, the method is right. I made something wrong in the program by myself in the previous programming. thx. –  Roger Zhu Nov 30 '12 at 5:53

Sure. Assuming the BST is sorted such that "greater than" nodes are on the right and "less than" nodes are on the left, a recursive function like this would work:

void recurse(Node* node)
{
    if (node == nullptr) return;
    recurse(node->right); // Explore all the "greater than" nodes first
    std::cout << node->value << std::endl; // Then print the value
    recurse(node->left); // Then explore "less than" nodes
}
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I have tried this, but it seems not right. –  Roger Zhu Nov 30 '12 at 5:46
    
@RogerZhu: define "seems not right." –  Cornstalks Nov 30 '12 at 5:49
    
Sorry, the method is right. I made something wrong in the program by myself in the previous programming. thx. –  Roger Zhu Nov 30 '12 at 5:52

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