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I have been trying to implement the delete BST function but I don't know why it is not working, I think it's logically correct. Can any body please tell me, why I'm getting run time error and how should I correct it.

  #include <iostream>
  using namespace std;

class node{
public:
int data;
node *right;
node *left;
node(){
    data=0;
    right=NULL;
    left=NULL;
      }
};

class tree{
node *head;
int maxheight;
     public:
tree(){head=0;maxheight=-1;}
bool deletenode(int key,node* root);
int get_height(){return maxheight;}
void insert(int key);
void pre_display(node* root);
     void delete_tree(node *root);
     node* get_head(){return head;}
         };

void tree::insert(int key){
     node *current=head;
    node *newnode=new node;

    if(newnode==NULL)
    throw(key);

    newnode->data=key;
    int height=0;

if(head==0){
head=newnode;
     }
else
{
    while(1){
    if(current->right==NULL && current->data < newnode->data)
    {
        current->right=newnode;
        height++;
        break;
    }
    else if(current->left==NULL && current->data > newnode->data)
    {
        current->left=newnode;
        height++;
        break;
    }
    else if(current->right!=NULL && current->data < newnode->data)
    {
         current=current->right;
         height++;
   }
    else if(current->left!=NULL && current->data > newnode->data)
    {
               current=current->left;
          height++;
    }
         }
 }
 if(height>maxheight)
 maxheight=height;
 }

 void tree::pre_display(node *root){
 if(root!=NULL)
 {
 cout<<root->data<<" ";
 pre_display(root->left);
 pre_display(root->right);
 }
 }

 void tree::delete_tree(node *root){
  if(root!=NULL)
 {
 delete_tree(root->left);
 delete_tree(root->right);
 delete(root);
 if(root->left!=NULL)
 root->left=NULL;
 if(root->right!=NULL)
 root->right=NULL;
 root=NULL;
 }
 }

int main(){
tree BST;
int arr[9]={17,9,23,5,11,21,27,20,22},i=0;

for(i=0;i<9;i++)
BST.insert(arr[i]);

BST.pre_display(BST.get_head());
cout<<endl;
BST.delete_tree(BST.get_head());
BST.pre_display(BST.get_head());
cout<<endl;

system("pause");
return 0;
}

All the other functions are working correctly, you just need to check the delete_tree function, the other code is provided to give the idea of the structure of my BST.

share|improve this question
    
Please tick some answers. It's not just for the points (who's here for that, anyway...??), but it's a way for someone with the same problem to go directly to the right solution. –  Assaf Levy Nov 9 '11 at 8:44
    
I'll keep that in mind from now on, Thanks! –  Zohaib Nov 9 '11 at 8:57
    
Great, thank you :) –  Assaf Levy Nov 9 '11 at 9:01

5 Answers 5

up vote 2 down vote accepted

In your delete_tree

void tree::delete_tree(node *root){
    if(root!=NULL)
    {
        delete_tree(root->left);
        delete_tree(root->right);
        delete(root);
        if(root->left!=NULL)
            root->left=NULL;
        if(root->right!=NULL)
            root->right=NULL;
        root=NULL;
    }
}

you are accessing root variable after you have deleted it

Also you call

    BST.delete_tree(BST.get_head());
BST.pre_display(BST.get_head());

pre_display after deleting tree. delete_tree after deleting the tree should also set the BST.head to NULL

Also a critique. BST is of type tree. It already has a head member variable indicating the root node. So delete_tree/pre_display do not need any parameters at all.

share|improve this answer
    
Can i add the implementation of assigning null to the head in the function of delete_tree –  Zohaib Nov 9 '11 at 8:33
    
Change delete_tree not to have any args. Have a private iDeleteInternal which does the recursive calls. So delete_tree calls iDeleteInternal and then set head to NULL before returning –  parapura rajkumar Nov 9 '11 at 8:34
    
But if i will do it, as you have said previously to delete after making pointers null, does'nt it mean that i'am losing the position of allocated memory and then iam deleting the null pointer? –  Zohaib Nov 9 '11 at 8:50

You should not read from root after deleting it. Move the delete(root) line down.

share|improve this answer
    
But if i will do it, what you have said, it does'nt mean that i'am losing the position of allocated memory and then iam deleting the null pointer? –  Zohaib Nov 9 '11 at 8:46
    
You should also remove the lines that are setting things to NULL in that function. There is no need to write to memory which is about to get deleted. –  David Grayson Nov 9 '11 at 16:02

The problem is here:

 delete_tree(root->left);
 delete_tree(root->right);
 delete(root);
 if(root->left!=NULL)
 root->left=NULL;
 if(root->right!=NULL)
 root->right=NULL;
 root=NULL;

You're trying to assign NULL to a member of root:

root->left=NULL;

which was already deleted. There's no need to do that since you're already freeing the memory in delete_tree(root->left);

share|improve this answer
    
But if i don't write this statement: root->left=NULL; iam getting error. –  Zohaib Nov 9 '11 at 8:36
    
@Zohaib I doubt it. Did you remove everything after delete(root)? –  Luchian Grigore Nov 9 '11 at 8:39
    
No i have kept root=NULL; –  Zohaib Nov 9 '11 at 8:42
    
What error are you getting? –  Luchian Grigore Nov 9 '11 at 8:43
    
Iam getting many addresses being print and the run time error. –  Zohaib Nov 9 '11 at 8:47

Recursively delete left and right sub tree and your tree will be deleted as simple as:

void delete(node *root){
  if(root->left==NULL && root->right==NULL)  //leaf node, delete it!!
    free(root);
  delete(root->left);
  delete(root->right);
 }
share|improve this answer

You can delete by: //This is function of cleaning:

void cleantree(tree *root){
 if(root->left!=NULL)cleantree(root->left);
 if(root->right!=NULL)cleantree(root->right);
 delete root;}

//This is where we call the cleaning function:

cleantree(a);
a=NULL;

//Where "a" is pointer to root of the tree.

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