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Se original question in the bottom.

I think I understand what you guys are saying now – that because the internal structure of the member function pointer is compiler/machine specific it is really not possible to do that I am trying to. So even though it works when I test it – I have no guarantee that it will on other compilers/machines.

Is there another way to go about what I want then?

I have a template class and a base template class for that class, and I have a delegate class which contains a std::map of all the events the delegate class should invoke, when invoked.

The reason i need a map is, both to insure that the same member function (event pointing to member function) is not adde more that once, and to make it possible to remove events from the map using the object and member function originally used when instantiating the event object.

template <class T_arg1> struct EventBase1
    bool operator < (const EventBase1 &event1) const { return _key < event1._key; };
    virtual void operator()(T_arg1 t1) const {};
    std::pair<intptr_t, intptr_t> _key;

template <class T, class T_arg1> struct Event1: public EventBase1<T_arg1>
    template <class T_arg1> friend class Delegate1;
    typedef typename void (T::*Method)(T_arg1);
    Method _method;
    T* _object;
    Event1(T* object, Method method): _object(object), _method(method)
        _key = std::pair<intptr_t, intptr_t>(reinterpret_cast<intptr_t>(object), reinterpret_cast<intptr_t>( reinterpret_cast<void*&>(method)));
    virtual void operator()(T_arg1 t1) const {

template <class T_arg1> class Delegate1
    typedef typename EventBase1<T_arg1> T_event;
    void operator += (T_event* observer)
        _observers[*observer] = observer;
    void operator -= (const T_event &observer)
        std::map<T_event, T_event*>::iterator i = _observers.find(observer);
        if(i != _observers.end()) {
            delete i->second;
    void operator()(T_arg1 t1)
        for(std::map<T_event, T_event*>::iterator i = _observers.begin(); i != _observers.end(); i++) {
    std::map<T_event, T_event*> _observers;     

Original question:

I am storing function pointers in a std::map, and I am generating my key for the map as follows: std::pair<int, int>( (int)((int*)object), (int)(static_cast<const void*>(&method)) ).

method is a function (method) pointer, and object is a pointer to the object of the method.

It works, however I have a sneaky suspicion that the way I get the second part of the key isn’t entirely correct.

I have never fully understood function pointers, but I guess that I am getting the address of the pointer and not the address of the function, and the compiler won’t let me do like this ((int)(static_cast<const void*>(method))).

So my question is - how do I get a unique key from the function pointer which will the same if I later get a get the key from another function pointer pointing the same method?

Thanks in advance, Martin

share|improve this question
"method is a function (method) pointer" - it's better to show the code than to describe it. I've got a sneaking suspicion it's actually a Pointer to Member Function R (T::*method)(A1, A2, A3). –  MSalters Aug 16 '12 at 8:29
Point taken – yes it is a pointer to a member function - i will edit my question. –  Martin Aug 16 '12 at 9:21
It may be easier to just store a std::function<> instead. –  MSalters Aug 16 '12 at 9:23

2 Answers 2

up vote 3 down vote accepted

The second isn't legal: formally, you cannot convert a pointer to a function to a pointer to data (and a void* is a pointer to data). Also, you're not guaranteed to be able to convert any pointer into an int; the conversion is only legal if int is at least as large as a pointer (which means that your code should fail to compile on most 64 bit systems).

There are several ways around this. First, on most (all?) modern machines, poitners to functions and pointers to data do have the same size and representation. (Posix requires it, in fact. Even if it wasn't the case on the first Unix machines I used.) If we assume this, you can guarantee a large enough integral type by using intptr_t, and "trick" the compiler using an additional level of indirection:

std::pair<intptr_t, intptr_t>(
    reinterpret_cast<intptr_t>( reinterpret_cast<void*&>( object ) ),
    reinterpret_cast<intptr_t>( reinterpret_cast<void*&>( method ) ) )

(This supposes that object and method are your pointers to the object and the function.)

Note that this does not work for pointers to member functions. Pointer to member functions are completely different beasts, and I don't think that there is any effective way to use them as a key in this way (since they may, and often do, contain padding, or unset fields, in certain cases).

For that matter, formally, this isn't really guaranteed even for normal pointers. The standard allows pointers to have don't care bits, or for several different pointer representations to compare equal. In practice, however, it is safe on most (all?) modern machines.

share|improve this answer
Thanks a lot James - it both makes sense and it works :) –  Martin Aug 16 '12 at 8:34

You should be fine writing:


[edit] - for pointers to methods you will have to stay with c-style casts, as is explained in this SO: reinterpret_cast to void* not working with function pointers

&method is as you suspec pointer to pointer, so its not what you want

uintptr_t is better over int because it is guaranteed to be the same size as a pointer

share|improve this answer
The same size as a regular pointer. Pointers to member functions are different beasts. –  MSalters Aug 16 '12 at 8:29
Thanks, I tried this, however the compiler says: 'reinterpret_cast' : cannot convert from 'void (__thiscall Object::* )(int)' to 'uintptr_t. –  Martin Aug 16 '12 at 8:30
@MSalters What he's trying to do simply isn't possible with pointers to member functions, so there's no point in discussing it, except to point out the impossibility. He'll have to go through non-member (or static member) functions. (This is fairly trivial, given that he has the object. All he needs is a function template on the object type and the pointer to member value, and instantiate this each time.) –  James Kanze Aug 16 '12 at 8:33
I do use a template class to store the method pointer and object and to invoke the object. i only needed this key for the map, since methods pointers have no < operator. –  Martin Aug 16 '12 at 8:40

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