-3

This question already has an answer here:

Why instance of class with user defined destructor has member pointer set to zero and class without user-defined destructor does not set default pointer value?

#include <stdio.h>

struct A
{
    int *p;
    ~A(){};
};

struct B
{
    int *p;
};

int main()
{
    A a;
    printf("a.p=%p\n", a.p);

    B b;
    printf("b.p=%p\n", b.p);
}

The output is:

a.p=00000000
b.p=7667ADF9

*using gcc version 3.4.5 (mingw-vista special r3).

marked as duplicate by 101010, genpfault, lpapp c++ Jun 22 '14 at 1:47

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  • 1
    is the behavior consistent? – Rakib Jun 17 '14 at 8:44
  • 6
    No reason. Pure chance. You can't rely on that behaviour. – juanchopanza Jun 17 '14 at 8:44
  • @Rakibul Hasan Yes. Zero is always zero. Junk is random. – jacekmigacz Jun 17 '14 at 8:45
  • 3
    It is not guaranteed to be zero by the language. It is, as @juanchopanza said, pure chance. – Nawaz Jun 17 '14 at 8:48
  • Your answer: stackoverflow.com/a/2418195/2352671 – 101010 Jun 17 '14 at 8:59
1

The values are undefined. It's a coincidence that a is zero.

You are getting a value that was on the stack, and by pure chance, the first variable a has its internal value on a value that is always left 0x00000000 by the code that runs your main. However, this completely dependent on the implementation that code and it is not defined, and certainly not portable. The proper thing is to initialize the pointers to a defined value in a constructor or through default initialization.

In answer to your question: There is no difference, you are observing a side effect. If you remove the destructor from A and add one to B the values do not change. (i.e. a.p is still 0)

  • This is corrent, but it's not full answer. Still, why instance of struct A { int *p; }; (.p) is aligned to stack address while instance of struct A { int *p; ~A(){} }; is not. – jacekmigacz Jun 17 '14 at 9:19
  • @jacekmigacz Adding a destructor might change the relative position of the values on the stack, but they are still uninitialized and undefined. – tillaert Jun 17 '14 at 9:28
  • Yes. Allocation of TWO object one after another proves that user-defined destructor does not force zero initialization. – jacekmigacz Jun 17 '14 at 9:32
0

It doesn't. The pointer has an unspecified value. If you're seeing zero then that's just down to pure chance.

Note that reading this uninitialised value actually has undefined behaviour, so you could see a supernova form behind your left eyelid instead of seeing any numbers whatsoever.

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