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I can't figure out how this works, to my mind, once it gets to the answer it doesn't do anything with it.

Node* FindNode(Node *rootNode, int data)
 {
  if (!rootNode)
   return NULL;
  else
  {
   if (rootNode->data == data)
    return rootNode;
   else
   {
    FindNode(rootNode->left, data);
    FindNode(rootNode->right, data);
   }
  }  
 }
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2 Answers 2

up vote 10 down vote accepted

It doesn't. It should be:

Node* FindNode(Node *rootNode, int data) {
    if (!rootNode) {
        return NULL;
    }else if (rootNode->data == data) {
        return rootNode;
    }else if (data < rootNode->data) {
        return FindNode(rootNode->left, data);
    }else{
        return FindNode(rootNode->right, data);
    }
 }

Note the extra return statements, and the extra else if clause.

EDIT — To sum up the comments below: The only reason the code you posted could be working is if an odd combination of compiler-implementation details and test data came together in your favour. You should definitely fix the problem rather than keeping the code how it was.

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Well that's what I thought... but it works, atleast as part of a bigger system. –  fauxCoder Aug 13 '10 at 4:44
    
It is possible that the return value is ending up in the right place due to your compiler's particular implementation of the return statement; however, you can't rely on it always working. Also, because you always were searching both the left and right subtrees you weren't getting any advantage out of using a BST over an array. –  David Aug 13 '10 at 4:46
    
@Shraptnel: No it doesn't. More precisely, what you posted in your original post doesn't work. Most likely you reproduced the code incorrectly. –  AndreyT Aug 13 '10 at 4:46
    
@David: I'd find it working by accident highly unlikely, since the result of the second recursive call will override the result of the first. It simply can't work. –  AndreyT Aug 13 '10 at 4:48
3  
You are assuming that the tree is ordered. The question does not specify this. –  Loki Astari Aug 13 '10 at 5:25

This is assuming that the FindNode returns on the first match.

   Node* FindNode(Node *rootNode, int data)
    { 
       Node *ptr;
       if (!rootNode) 
          return NULL; 
       else 
       { 
          if (rootNode->data == data) 
             return rootNode; 
          else 
          {
             ptr = NULL;
             // if either left or right child is there
             if(rootNode->left || rootNode->right)
             { 
                // if not found in left subtree
                if(NULL == (ptr = FindNode(rootNode->left, data))){
                   // check in right subtree
                   ptr = FindNode(rootNode->right, data);
                }
             }
             return ptr;
          }   
       }
    }
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