6

I want to put the result of this:

std::tr1::mem_fn(&ClassA::method);

Inside a variable, what is the type of this variable ?

That will look something like this:

MagicalType fun = std::tr1::mem_fn(&ClassA::method);

Also, what is the result type of std::tr1::bind ?

Thank you !

5

The return types of both std::tr1::mem_fn and std::tr1::bind are unspecified.

You can store the result of std::tr1::bind in a std::tr1::function:

struct ClassA { 
    void Func() { }
};

ClassA obj;
std::tr1::function<void()> bound_memfun(std::tr1::bind(&ClassA::Func, obj));

You can also store the result of std::tr1::mem_fn in a std::tr1::function:

std::tr1::function<void(ClassA&)> memfun_wrap(std::tr1::mem_fn(&ClassA::Func));
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  • I'm trying to use std::tr1::function<void(MyType*)> fun = std::tr1::mem_fn(&ClassA::method); but it doesn't compile, what's wrong ? – Tarantula Aug 2 '10 at 18:13
  • @Tarantula: The callable object returned by mem_fn takes a reference, not a pointer. See the updated answer. – James McNellis Aug 2 '10 at 18:17
  • Still doesn't work, my prototype for Func is: virtual void Func(MyType *argument) = 0; – Tarantula Aug 2 '10 at 18:19
  • @Tarantula: If it is a member function that takes an argument, then the resulting callable object will take two arguments: a reference to the object on which to call the member function and the pointer to pass as the argument to the member function. In that case, it would be a function<void(ClassA&, MyType*)>. – James McNellis Aug 2 '10 at 18:25
3

The return type of mem_fn and bind is unspecified. That means, depending on the arguments a different kind of object is returned, and the standard doesn't prescribe the details how this functionality must be implemented.

If you want to find out what the type is in a particular case with a particular library implementation (for theoretical interest, I hope), you can always cause an error, and get the type from the error message. E.g:

#include <functional>

struct X
{
    double method(float);
};

int x = std::mem_fn(&X::method);

9 Untitled.cpp cannot convert 'std::_Mem_fn<double (X::*)(float)>' to 'int' in initialization

In this case, note that the type's name is reserved for internal use. In your code, you shouldn't use anything with a leading underscore (and a capital letter).

In C++0x, I suppose the return type would be auto :)

auto fun = std::mem_fn(&ClassA::method);
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0

The function could be implemented in the following way (you thus also see the return type): You can try this piece of code here http://webcompiler.cloudapp.net/. Unfortunately, it makes use of variadic templates https://en.wikipedia.org/wiki/Variadic_template which are only part of the C++11 standard.

 #include <iostream>
#include <string>

template <class R, class T, class... Args > class MemFunFunctor
{
  private:
  R (T::*mfp)(Args... ); //Pointer to a member function of T which returns something of type R and taking an arbitrary number of arguments of any type 

public:
  explicit MemFunFunctor(R (T::*fp)(Args... ) ):mfp(fp) {}

  R operator()(T* t, Args... parameters)
  {
      (t->*mfp)(parameters... );
  }

};

template <class R,class T, class... Args> MemFunFunctor<R,T,Args... > my_mem_fn( R (T::*fp)(Args... ) )
{
    return MemFunFunctor<R,T,Args... >(fp);   
}


class Foo //Test class
{
    public:
        void someFunction(int i, double d, const std::string& s )
        {
            std::cout << i << " " << d << " " << s << std::endl;
        }
};


int main() //Testing the above code
{

    Foo foo;
    auto f = my_mem_fn(&Foo::someFunction);

    f(&foo, 4, 6.7, "Hello World!" ); //same as foo.someFunction(4, 6.7, "Hello World!");

    return 0;
}
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  • Could you provide some comments/description for your code? – kvorobiev Sep 29 '15 at 19:40

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