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Here's the declaration:

#include <functional>    

class A { ... };

double fA( std::function<double((A::*)(double))> fp) { ... }

which gives me error

In function ‘double fA(std::function)’: tb.cpp:32:8: error: ‘fp’ has incomplete type

Though there is no problem with

double fA( double ((A::*fp)(double)) ) { ... }

What's the right way to supply this type as a template parameter to std::function?

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1  
There's probably a better way, but you can take out the A::* and use std::bind to bind the object as the this argument: liveworkspace.org/code/dcd70739787666936ab49df680cc92ea – chris Sep 21 '12 at 3:00
    
@chris Thanks, that's a good idea. But I have a lot of instances of 'bar' and so I'd like the <functional> magic to happen in fA. But I'm going to look into your solution as well. – Matt Phillips Sep 21 '12 at 3:06
    
How did you want to call fA to distinguish instances? – chris Sep 21 '12 at 3:08
    
Another option along those lines that you might find a bit better is to change the signature to double fA(std::function<double(A &, double)> fp, A &thisArg) and call fp(thisArg, whateverDouble) inside of fA. That way you can call fA by saying A a; fA(&A::foo, a);. Here's what I mean for that. – chris Sep 21 '12 at 3:18
    
@chris Well this is just a extremely simplified version of more complex code, basically the instance in question would be known to fA by fA being in its scope, rather than being passed as a separate parameter. But I might go with passing it as a parameter actually, then binding along your lines probably would be the right thing to do. To keep my options open though and just for general knowledge I'd like to know the answer to the question as asked, unless it really is ill-posed (doesn't seem that way to me now though). – Matt Phillips Sep 21 '12 at 3:19

I am not really sure of what you really want. The argument to std::function must be a free function signature as stated in the standard:

template<class R, class... ArgTypes>
class function<R(ArgTypes...)>;

Note that the argument is the signature of the operator() that will be offered by the function object. It cannot be a pointer-to-member to a different type, it is just the return type and the arguments to the std::function<> object being created.

The extra set of parenthesis in the function declaration could indicate that you actually want to create a std::function function object that takes as argument a pointer to member and returns a double. If that is the case, the signature of the argument to the std::function is missing the return type:

std::function<double (void (A::*)(double))> fp;

Which could be initialized with:

double myfunc( void (A::*mptr)(double) ) {}
// ...
fp = myfunc;
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up vote 0 down vote accepted

Ended up doing something very similar to @chris's suggestion, the code from his example is the following:

#include <functional>
#include <iostream>

struct S {
   void foo() {std::cout << i;};
   int i;
};

void bar(std::function<void()> func) {
    func();
}

int main() {
   S s1, s2;
   s1.i = 5;
   s2.i = 6;

   bar(std::bind(&S::foo, s1));
   bar(std::bind(&S::foo, s2));
}
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