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template <class T>
bool BST<T>::search(const T& x, int& len) const
{
    return search(BT<T>::root, x);
}


template <class T>
bool BST<T>::search(struct Node<T>*& root, const T& x)
{
   if (root == NULL)
	   return false;
   else
      {
	     if (root->data == x)
			 return true;
		 else if(root->data < x)
			 search(root->left, x);
		 else 
			 search(root->right, x);

	  } 

}

So this is my search function for my BST class with a T node. x is the data being searched for within the tree, len is just the amount of nodes it has to travel to come up with the matching node if it exists. I have not implented that yet, I'm just incrementally developing my assignment. I'm calling it by doing this:

if(t.search(v[1], len) == true)
	   cout << endl << "true";

v is just a vector I had to create to compare it to, and so this is just supplying it with an int. The error I'm getting:

BST.h: In member function âbool BST::search(const T&, int&) const [with T = int]â: prog5.cc:24: instantiated from here

BST.h:78: error: no matching function for call to âBST::search(Node* const&, const int&) constâ

BST.h:76: note: candidates are: bool BST::search(const T&, int&) const [with T = int]

BST.h:83: note: bool BST::search(Node*&, const T&) [with T = int]

So I'm not sure what I'm doing wrong or where I'm doing wrong. Probably something silly and small :\

share|improve this question
    
Huge pieces of information missing. What is BT<T>::root? Is BST and BT the same thing? is Node and node the same thing? Please cut and paste, don't type. –  Arkadiy Oct 29 '08 at 2:55
    
well this is part of a derived function, so for me to pass on the root node I have to tell it specifically BT<T>::root otherwise I get errors. –  Doug Oct 29 '08 at 2:57
    
I get root was not declared in this scope if I don't do that. –  Doug Oct 29 '08 at 2:58

1 Answer 1

up vote 2 down vote accepted

Okay, bool BST<T>::search(struct Node<T>*& root, const T& x) should probably have const after it like so: bool BST<T>::search(struct Node<T>*& root, const T& x) const. Basically, you've called a non-const function from a const function and this is a no-no.

BTW, this looks suspect to me "struct Node<T>*&"... I'd probably drop the & and work with Node<T>*... but maybe you need that because of the struct?

Also, this is C++, there is no reason to leave Node as a struct... needing to have struct in the parameter definition just looks bad, IMHO. Why not make Node a class?

share|improve this answer
    
I pasted the full message. But it wasn't playing nice with the formatting before so I cut it down, but I repasted it back in. –  Doug Oct 29 '08 at 2:52
    
It is a node class, but for some reason for me to be able to access it this way I've had to make it a struct in the insert and search functions. It's what was supplied to me via wikipedia and my prof –  Doug Oct 29 '08 at 3:18
    
Remove 'probably' –  Loki Astari Oct 29 '08 at 3:45

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