why output is not zero

The reason is: virtual void f() {} The virtual method causes a function pointer address to get stored with your struct. That function pointer is the size of 2 int's. If the method wasn't virtual, there wouldn't be an address of f stored in each instance of the struct. Notice that the following will print 22 just the same. I commented out the virtual method and changed the array index from 2 to 0. #include <iostream> using namespace std; struct A { int data[2]; A(int x, int y) : data{x, y} {} //virtual void f() {} }; int main(int argc, char **argv) { A a(22, 33); int *arr = (int *) &a; cout << arr[0] << endl; cout << "Number of bytes in struct A: " << sizeof(struct A) << endl; return 0; } Note that you don't need the std:: prefix since you indicated that you're "using namespace std" above. The sizeof returns 8 in that example but 16 when f is declared as a virtual method because the function pointer is 8 bytes.