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Possible Duplicate:
C++, function pointer to member function

The question is the following: consider this piece of code:

#include <iostream>


class aClass
{
public:
    void aTest(int a, int b)
    {
        printf("%d+%d=%d",a,b,a+b);
    }
};

void function1(void (*function)(int,int))
{
    function(1,1);
}

void test(int a,int b)
{
    printf("%d-%d=%d",a,b,a-b);
}


int main (int argc, const char * argv[])
{
    aClass a();

    function1(&test);
    function1(&aClass::aTest ); // <-- how should I point to a's aClass::test function?

    return 0;
}

How can I use the a's aClass::test as an argument to function1? I'm stuck in doing this; i've search like 30m for this, and I don't find a clear example.

I know function pointers are evil, but I fundamentally need this. I don't want this to be bothering anyone... That is not the topic...

EDIT: I would like to access a member of the class.

share|improve this question

marked as duplicate by Paul Manta, martin clayton, Jon Lin, Sergey K., Toon Krijthe Oct 1 '12 at 7:00

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
Function pointers aren't evil... –  Paul Manta Sep 30 '12 at 16:31
    
Take a look at this answer stackoverflow.com/questions/2402579/… and also this C++ FAQ parashift.com/c++-faq/pointers-to-members.html –  amdn Sep 30 '12 at 16:31
1  
Ok, not evil, but not the best design... –  J. C. Leitão Sep 30 '12 at 16:33
    
@J.C.Leitão - there's not enough information here to determine whether a pointer to member function is "the best design". –  Pete Becker Sep 30 '12 at 16:36
    
This is absolutely not a duplicate (at least not of the particular question that is linked). That question is about how to declare a member that is a pointer to a function; this is about how to pass a pointer to a non-static member function as a parameter. –  CarLuva Jul 23 at 15:12

4 Answers 4

up vote 17 down vote accepted

There isn't anything wrong with using function pointers. However, pointers to non-static member functions are not like normal function pointers: member functions need to be called on an object which is passed as an implicit argument to the function. The signature of your member function above is, thus

void (aClass::*)(int, int)

rather than the type you try to use

void (*)(int, int)

One approach could consist in making the member function static in which case it doesn't require any object to be called on and you can use it with the type void (*)(int, int). If you need to access any member of your class your best option is to always pass a void* to your function taking function pointers and call your member through a forwarding function which obtains an object from the void* and then calls the member function. Alternatively, you might want to have a look at having your function take templateed argument for function objects or something like std::function<void(int, int)>: you can create a suitably callable function object for these, e.g., using std::bind().

To clarify how using a function pointer to call a member function, here is an example:

// the function using the function pointers:
void somefunction(void (*fptr)(void*, int, int), void* context) {
    fptr(context, 17, 42);
}

void non_member(void*, int i0, int i1) {
    std::cout << "I don't need any context! i0=" << i0 << " i1=" << i1 << "\n";
}

struct foo {
    void member(int i0, int i1) {
        std::cout << "member function: this=" << this << " i0=" << i0 << " i1=" << i1 << "\n";
    }
};

void forwarder(void* context, int i0, int i1) {
    static_cast<foo*>(context)->member(i0, i1);
}

int main() {
    somefunction(&non_member, 0);
    foo object;
    somefunction(&forwarder, &object);
}
share|improve this answer
    
Ok, I like this answer! Can you please specify what you mean with "call your member through a forwarding function which obtains an object from the void* and then calls the member function", or share a useful link to it? Thanks –  J. C. Leitão Sep 30 '12 at 16:44
    
I think I got it. (I've edited your post) Thanks for the explanation and example, really helpful. Just to confirm: for every member function that I want to point, I have to make a forwarder. Right? –  J. C. Leitão Sep 30 '12 at 17:06
    
Well, yes, kind of. Depending on how effective you are using templates, you can get away with creating forwarding templates which can work with different classes and member functions. How to do this would be a separate function, I'd think ;-) –  Dietmar Kühl Sep 30 '12 at 17:10

A pointer to member function is different from a pointer to function. In order to use a member function through a pointer you need a pointer to it (obviously ) and an object to apply it to. So the appropriate version of function1 would be

void function1(void (aClass::*function)(int, int), aClass& a) {
    (a.*function)(1, 1);
}

and to call it:

aClass a; // note: no parentheses; with parentheses it's a function declaration
function1(&aClass::test, a);
share|improve this answer
    
I guess there should be (a.*function)(1, 1); instead of (a->*function)(1, 1); as a is passed by reference, not pointer. –  Ondřej Bouda Nov 23 '13 at 14:47
    
@OndřejBouda - fixed. Thanks. –  Pete Becker Nov 23 '13 at 16:21

@Pete Becker's answer is fine but you can also do it without passing the class instance as an explicit parameter to function1 in C++11:

#include <functional>
using namespace std::placeholders;

void function1(std::function<void(int, int)>)
{
    function(1,1);
}

int main (int argc, const char * argv[])
{
   ...

   aClass a;
   auto fp = std::bind(&aClass::test, a, _1, _2);
    function1(fp);

    return 0;
}
share|improve this answer

Since aTest doesn't depend on other class members, I suggest you make it static.

You can't pass non-static member functions as callbacks the way you would non-member or static members, because of the implicit this parameter.

share|improve this answer
    
ok, my minimal example does not work them xD. what if I need a non-static member function? –  J. C. Leitão Sep 30 '12 at 16:35
    
@J.C.Leitão see other answer. –  Luchian Grigore Sep 30 '12 at 16:36

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