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I am looking to accept a templated member function as a template parameter.

For example, given this class:

class A
{
public:
    template<typename... Args>
    void Foo(Args...) {}

    void Bar() {}
};

I would like to be able to call:

Invoke<&A::Foo>(5, true);

And have this be similar to calling:

A a;
a.Foo(5, true);

I know how to do this for Bar():

template<void (A::*F)()>
void Invoke()
{
    A a;
    (a.*F)();
}

int main()
{
    Invoke<&A::Bar>();
}

Is it possible to extend this to a templated member function pointer? Or similarly, to write a forwarding function like this that can handle a function with any parameter types. This doesn't work, but something similar to:

template<typename... Args, void (A::*F)(Args...)>
void Invoke(Args... args)
{
    A a;
    (a.*F)(args...);
}

I can see why this might not be possible, but if that's true could you point to the standard for why? I am also trying to learn more about the specifics of the standard.

share|improve this question
    
Try Invoke<&A::Foo<int, bool>>(5, true). If that works, write a type-deducing wrapper function template. –  Kerrek SB Jan 5 '13 at 20:00
    
@KerrekSB But I don't know how to specify in the function types that Invoke should accept a function with this signature (without hardcoding it), because you seem to have to specify the parameters when you specify the member function pointer type. –  JaredC Jan 5 '13 at 20:02
    
Well, you can make Invoke a more powerful template... –  Kerrek SB Jan 5 '13 at 20:34
    
@KerrekSB And therein lies the question. –  JaredC Jan 5 '13 at 20:39
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1 Answer

up vote 2 down vote accepted

Is it possible to extend this to a templated member function pointer?

No. Although if you just need a particular instantiation of Foo you could use Invoke<&A::Foo<int, bool>>.

Or similarly, to write a forwarding function like this that can handle a function with any parameter types.

To be able to work with different signatures, you would have to modify Invoke to operate on any kind of callable object. Then, you would have to define a callable object that calls your actual function:

struct callable_foo
{
    explicit callable_foo( A& obj ) : _obj( obj ){}

    template< typename ...Args >
    void operator ()( Args&&... args )
    {
         _obj.Foo( std::forward< Args >( args )... );
    }

    A& _obj;
}
share|improve this answer
    
You mean std::forward<Args>(args)... instead of std::forward<Args...>(args) ? –  Nawaz Jan 5 '13 at 20:07
    
@Nawaz: Right, thank you. Still catching up with perfect forwarding –  K-ballo Jan 5 '13 at 20:10
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