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I am trying to print the address of a virtual member function. If I only wants to print the address of the function I can write:

print("address: %p", &A::func);

But I want to do something like this:

A *b = new B();

printf("address: %p", &b->func); 
printf("address: %p", &b->A::func);

however this does not compile, is it possible to do something like this even do looking up the address in the vtable is done in runtime?

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+1 Great question. – GManNickG Jun 18 '10 at 8:33

6 Answers 6

Pointers to member functions are not always simple memory addresses. See the table in this article showing the sizes of member function pointers on different compilers - some go up to 20 bytes.

As the article outlines a member function pointer is actually a blob of implementation-defined data to help resolve a call through the pointer. You can store and call them OK, but if you want to print them, what do you print? Best to treat it as a sequence of bytes and get its length via sizeof.

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Yet the problem remains: how do you identify the function that get's called through a virtual call :) ? – Matthieu M. Jun 18 '10 at 13:01
That wasn't part of the question was it? But I'd answer 'by calling it' :) – AshleysBrain Jun 18 '10 at 14:24

Actually there is no standard way of doing this in C++ although the information must be available somewhere. Otherwise, how could the program call the function. However, GCC provides an extension that allows us to retrieve the address of a virtual function:

void (A::*mfp)() = &A::func;
printf("address: %p", (void*)(b->*mfp));

...assuming the member function has the prototype void func() This can be pretty useful when you want to cache the address of a virtual function or use it in generated code. GCC will warn you about this construct unless you specify -Wno-pmf-conversions. It's unlikely that it works with any other compiler.

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up vote 5 down vote accepted

Will this code print the right address? It will print the address of the function in the vtable, but is it correct:)?

struct A
    virtual void func() { cout << "A::func" << endl; }

struct B : public A
    void func() { cout << "B::func" << endl; }

typedef void (*functionPtr)();

int main()
    A *b = new B();

    int *vptr = *(int**)&b;
    int *vtable = (int *)*vptr; 

    functionPtr fp = (functionPtr)vtable[0];

    printf("address A::func = %p\n", fp);

    return 0;
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What's with the ints? – James McLaughlin Apr 6 '14 at 19:03

Doesn't make a lot a of sense to me. If you have a normal function:

void f( int n ) {

then you can take its address:


but you cannot take the address of a function call, which is what you seem to want to do.

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@GMan That's what I thought I said. Anyhow, I don't think this is possible. – anon Jun 18 '10 at 8:44

First, you could be a bit more specific on what your compiler fails. Then you should have a look into pointer to member syntax, this is a bit tricky. Googling for that immediately found me that:

Also this is definitively not a C question.

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+1 for the great link – krisnik Jun 18 '10 at 8:44
That doesn't answer the qestion, its about how to get the adress of the virtual function that will be called for some arbitrary instance. – Georg Fritzsche Jun 18 '10 at 8:56
Already in my demand to be more specific in what the compiler error is implicitly there is the answer. Mine gives: <pre> error: ISO C++ forbids taking the address of a bound member function to form a pointer to member function. Say '&A::f' </pre> which basically says, no, this is not possible in a portable way. And I guess any reasonable compiler should have give some similar answer. – Jens Gustedt Jun 18 '10 at 9:12
Thinking of it, already your idea to print the address of a function at all is not well defined. With "%p" you can only print pointers that are compatible with void*. Function pointers aren't, not every pointer is `just an address'. Any decent compiler should already give you at least a warning on your first printf line. – Jens Gustedt Jun 19 '10 at 7:47
+1 for the link. – Patrick Sep 3 '10 at 7:35

From what I can tell in the standard, the only time you get dynamic binding is during a virtual function call. And once you've called a function, you're executing the statements within the function (i.e., you can't "stop halfway" into the call and get the address.)

I think it's impossible.

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I suppose it's impossible portably, but knowing the implementation it should be possible to inspect the virtual table of an object at runtime. – Matthieu M. Jun 18 '10 at 13:03

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