Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Hi Guys I have a problem root value is returning to NULL everytime I go out from the insert function I cant really understand why the pointer doesn't keep it's value.

int main(int argc, char *argv[])
{
    int input;
    node* root = NULL;
    while (input >0 ) {
          cout<< "Enter a Number:";
          cin>> input;
          insert (root,input);
    }
    printall(root);
    system("PAUSE");
    return 0;
}

void insert(node* _node,int val)
{

    //#if 0
    cout << "In insert before" << _node;
    if (_node == NULL) {
            _node = new node;
            _node->val = val;
            _node->left = NULL;
            _node->right = NULL;
            return;
    }
    //#endif
    if(_node->val > val) {
        insert(_node->left,val);
    } else if (_node->val < val) {
        insert(_node->right,val);
    }
    return;        
}
share|improve this question
    
This is a classic pointer problem. I had it so many times that i follow simple rule. Need to change a variable's value? Pass its address. Which means need to change pointer's value? pass its address! –  Abhinav Aug 17 '12 at 5:17

5 Answers 5

The pointer isn't "losing" it's value. You need to pass a pointer to pointer to node to insert -- then it can "return" a pointer to node through the parameter.

share|improve this answer

You are passing root by value so it cannot be modified by the callee, you have to pass it by reference

void insert(node** _node,int val);
insert (&root,input);
share|improve this answer

If you want to change the root pointer (or any pointer) within a function, you need to pass a pointer to that pointer (or more likely a reference if you're using C++, and I'm pretty sure you are since you're using new). Something like:

void fn (node **pRoot) {
    *pRoot = new node;
}

Both C and C++ are default pass-by-value so changes won't be echoed up to the higher levels.

Consider the following code:

void changeVals (int x, int *py, int &z) {
    x = 1;
    *py = 2;
    z = 3;
}

int X = 0;
int Y = 0;
int Z = 0;
changeVals (X, &Y, Z);

At this point, both Y and Z will have changed but X will still be zero.

It's no different with pointers. If you want to change the pointer itself in a function, it has to be passed as a pointer to it (and dereferenced within the function) or as a reference type.

share|improve this answer

Short answer: You are using C++ and you forgot to type a character or your keyboard is defective... correct code is

void insert(node *& _node, int value) // note '&'
{
    ...
}

Long answer:

Normally C and C++ functions parameters are "by value" and this means that the called function will receive a copy of what you pass them...

void foo(int x)
{
    x = 42;
}

void bar()
{
    int k = 12;
    foo(k);
    // Here k is still 12, not 42
}

C++ however has the concept of "reference" that allows you to pass a parameter without making a copy and the function can then for example change caller variables. Change foo(int x) to foo(int& x) and the value of k in bar will become 42 after the call.

If you are working with C++ the & character is telling the compiler that the node parameter should be passed by reference and not by value (i.e. you don't want to make a copy of the pointer, but the function should work directly with your variable.

If you are coming from Visual Basic then just remember that all parameters are byval in C and C++ unless told otherwise (and the same happens in most other modern languages).

Actually in C and in most other modern languages there is no way at all to have parameters passed by reference.

share|improve this answer

In addition to all the answers about pointers to pointers here, I would like to point out that your insert function is allocating memory that is never being deleted.

You need to design systems that handle both allocations and deallocations.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.