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I'm trying to create dynamic variable and pass its address by reference within new_test function, but it doesn't work. What am I doing wrong?

The code:

#include <iostream>
using namespace std;

struct test
{   
    int a;
    int b;
};  

void new_test(test *ptr, int a, int b)
{   
    ptr = new test;
    ptr -> a = a;
    ptr -> b = b;
    cout << "ptr:   " << ptr << endl; // here displays memory address
};  

int main()
{   

    test *test1 = NULL;

    new_test(test1, 2, 4); 

    cout << "test1: " << test1 << endl; // always 0 - why?
    delete test1;

    return 0;
}
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All these pointer questions are no good (Please get used to RAII) -1 –  Dieter Lücking Sep 10 '13 at 15:04

2 Answers 2

up vote 8 down vote accepted

The code does not pass the pointer by reference so changes to the parameter ptr are local to the function and not visible to the caller. Change to:

void new_test (test*& ptr, int a, int b)
                  //^
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Just curious, wouldn't a pointer to pointer work as well? –  Davlog Sep 10 '13 at 14:57
1  
@Davlog, yes it would but it would require dereferencing within the function definition. –  hmjd Sep 10 '13 at 14:57
    
Now it works. Thank You! –  Silvia Torque Sep 10 '13 at 15:01

Here:

void new_test (test *ptr, int a, int b)
{   
    ptr = new test; //<< Here ptr itself is a local variable, and changing it does not affect the value outside the function
    //...

You are changing the pointer value itself, so you need a pointer to pointer, or a reference to a pointer:

Pointer of a pointer:

void new_test (test **ptr, int a, int b)
{   
    *ptr = new test;
    (*ptr) -> a = a;
    (*ptr) -> b = b;
    cout << "ptr:   " << *ptr << endl; // here displays memory address
}

and call using:

new_test (&test1, 2, 4);

Reference to a pointer:

void new_test (test *& ptr, int a, int b) {/.../ }

I don't recommend mixing pointer and reference, because it makes the program hard to read and track. But it is personal preference.

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