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I have to code some methods for a BST and I have some problems, let me explain.

I have the following structures :

struct node {
    struct node *lChild; 
    struct node *rChild; 
    int value; 
};

and

struct tree {
    struct node *root;
};

along with the following functions :

struct tree* constructNewTree()
{
    struct tree *T=malloc(sizeof(struct tree));
    T->root=NULL;

    return T;
}

and

struct node* constructNewNode(int i)
{
    struct node *N=malloc(sizeof(struct node));
    N->value=i;
    N->lChild=NULL;
    N->rChild=NULL;

    return N;
}

And in my main I must call this (for example) :

int main()
{
    struct tree *T;
    T=constructNewTree();

    insertKey(5,T);
    insertKey(2,T);
    insertKey(9,T);
    return 0;
}

What I have to do is to create the function insertKey(int i, struct tree *T) using the recursion.

I wanted to do something like

void insertKey(int i, struct tree *T)
{
    if (T->root==NULL) {
        T->root=constructNewNode(i);
        return;
    }
    else {
        if (i<=T->root->value) {
            T->root->lChild=constructNewNode(i);
        else if (i>T->root->value) {
            T->root->rChild=constructNewNode(i);
        }
    }
}

But it doesn't get very far, using the recursion would allow me to call insertKey again but I can't seem to use a node and a tree the same way.

Does anyone know how I could do that without altering the given structures?

Thank you very much.

share|improve this question
    
This looks like a homework question to me. Tags updated appropriately. –  BMitch Mar 20 '11 at 18:21

1 Answer 1

up vote 1 down vote accepted

Your insertKey takes a Tree as its argument. A Tree is only a pointer to the very top.

What I recommend you do is write a insertKey function that takes a Node for its argument. Also in this function, you have to check to see if there is another tree on the left/right child.

Currently you just construct a new node regardless of what is there. This will overwrite any previous insertions.

share|improve this answer
    
Thank you, but wouldn't that mess up with the code on the main() ? Maybe should I create an other function insertNode, that does the same thing but with nodes and then in insertKey check if the T->root is empty, if not use insertNode with T->root as an argument? –  Sword22 Mar 20 '11 at 19:01
    
+1 This is the right way to do it. Now give Starkey +15 so we can move on :) –  ralphtheninja Mar 20 '11 at 19:09
    
Just a last question before I do that, for the other methods I have to code like findKey(int i, struct tree *T), or deleteKey(int i, struct tree *T), the same problem will occur each time, should I proceed the same way? –  Sword22 Mar 20 '11 at 20:32
    
Yes you should. You should always just pass in a Node structure for the arguments and not the Tree. Honestly I don't know why you have a separate structure for the Tree, because it really is just a Node. –  Starkey Mar 20 '11 at 22:02
    
It was given like that, I have no clue why. Thank you very much anyway ;) –  Sword22 Mar 20 '11 at 22:04

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