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I occasionally see bits of code similar to this:

class A {
    int b;
}

void foo() {
    int* blah = &A::b;
    // Other stuff.
}

But how could grabbing the address of a class' member variable without an instance of the class be useful? What does it do?

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Are you sure b isn't a static member of A? –  reuben Jul 5 '12 at 3:14
    
I'm sure. I've seen bits of code where it seemed to rely on it not being a static member. –  OniLink Jul 5 '12 at 3:14
    
In that case, are you sure the type of blah is int*? –  R. Martinho Fernandes Jul 5 '12 at 3:15

2 Answers 2

up vote 8 down vote accepted

Your code is ill-formed and will not compile. The type of blah is not int*, it is int (A::*). That is, it is not a "pointer to an int," it is a "pointer to a data member of class type A whose type is int."

Note that in order to obtain a pointer to a member, the member must be accessible. To compute &A::b in foo(), b would need to be a public data member, or foo() would need to be a friend of A.

A pointer-to-member does not point to an object. Rather, a pointer-to-member can be bound to an object to get the value of its data member. You can obtain the value of the b data member of an A object by binding the blah pointer-to-member to the instance of A. For example,

A x;
int b_value = x.*blah; // b_value has the value of x.b
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That... makes a lot of sense. Thank you! –  OniLink Jul 5 '12 at 3:19

The class A has int b. That mean b is data of class A, you can get pointer to b if you have an instance of A.

I think you want to ask for this case:

class A{
   int foo(int i) {
   }
}

after compiled,the method foo has address, you can get pointer to &A::foo.

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