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How can I pass member function pointer to std::function through a function. I am going to explain it by comparison (Live Test):

template<class R, class... FArgs, class... Args>
    void easy_bind(std::function<R(FArgs...)> f, Args&&... args){ 

int main() {
    fx::easy_bind(&Class::test_function, new Class);
    return 0;

I get an error message:

no matching function for call to ‘easy_bind(void (Class::*)(int, float, std::string), Class*)’

I just don't understand why a function pointer cannot be passed to std::function when its being passed through a function parameter. How can I pass that function? I am willing to change the easy_bind function parameter from std::function into a function pointer but I really don't know how.

EDIT: Question simplified.

EDIT: Thanks to @remyabel, I was able to get what I needed:

template <typename R, typename T, typename... FArgs, typename... Args>
auto easy_bind(R (T::*mf)(FArgs...), Args&&... args)
-> decltype(fx::easy_bind(std::function<R(T*,FArgs...)>(mf), args...)) {
    return fx::easy_bind(std::function<R(T*,FArgs...)>(mf), args...);
share|improve this question
I'm researching a work-around, so my answer is incomplete at the moment. Generic functor for functions with any argument list seems like a good candidate, but that doesn't take into account member function pointers. –  user1508519 Jan 22 '14 at 0:50
What types would you expect for R, FArgs, and Args? –  Ben Voigt Jan 22 '14 at 0:57
I got this easy_bind working with global functions: But member functions still fail to work :( –  Gasim Jan 22 '14 at 1:02
@BenVoigt R(FArgs...) is a function, in my case its the type of &Class::test_function; and the Args is the type of new Class –  Gasim Jan 22 '14 at 1:04
@Gasim I edited my answer, however I am derping hard and cannot figure out how to eliminate the need to pass a useless object to the function call. Perhaps someone can take a look. Edit: Scratch that, it works as intended. –  user1508519 Jan 22 '14 at 1:04

2 Answers 2

up vote 1 down vote accepted

I think the problem can be narrowed down to this:

template<class R, class... FArgs>
void test(std::function<R(FArgs...)> f)

int main() {

The error message is pretty similar without the rest of the easy_bind stuff:

main.cpp: In function 'int main()':
main.cpp:63:31: error: no matching function for call to 
'test(void (SomeStruct::*)(int, float, std::string))'
main.cpp:63:31: note: candidate is:
main.cpp:49:10: note: template<class R, class ... FArgs> 
void test(std::function<_Res(_ArgTypes ...)>)
     void test(std::function<R(FArgs...)> f)
main.cpp:49:10: note:   template argument deduction/substitution failed:
main.cpp:63:31: note:   'void (SomeStruct::*)(int, float, std::string) 
{aka void (SomeStruct::*)(int, float, std::basic_string<char>)}' 
is not derived from 'std::function<_Res(_ArgTypes ...)>'

Essentially, it can't magically create an std::function for you. You need something like your Functor alias.

So thanks to the answer provided in generic member function pointer as a template parameter, here's what you can do:

//Test Case:
struct SomeStruct {
 int function(int x, float y, std::string str) {
   std::cout << x << " " << y << " " << str << std::endl;
   return 42;

template <typename Ret, typename Struct, typename ...Args>
std::function<Ret (Struct*,Args...)> proxycall(Ret (Struct::*mf)(Args...))
    return std::function<Ret (Struct*,Args...)>(mf);

int main() {
    auto func3 = fx::easy_bind(proxycall(&SomeStruct::function), new SomeStruct);
    int ret = func3(5, 2.5, "Test3");
    std::cout << ret << "\n";

    return 0;

Now it works automatically.

Live Example

share|improve this answer is what you are supposed to use

struct Mem
    void MemFn() {}

std::function<void(Mem*)> m = std::mem_fn(&Mem::MemFn);
share|improve this answer
what is the advantage of it over m = &Mem::MemFn –  Gasim Jan 22 '14 at 1:29
it compiles! because std::mem_fn will construct a function object that takes a Mem* as its first arg when called and &Mem::MemFn will return a void (__thiscall Mem::* const &)(void) –  ACB Jan 22 '14 at 1:37
Nice, this pretty much makes my answer pointless. –  user1508519 Jan 22 '14 at 1:40
well you can still use your answer to get some template magic done like op did in the end so i wouldnt say its pointless. –  ACB Jan 22 '14 at 1:44
@ACB Yeah, auto func3 = fx::easy_bind(std::mem_fn(&SomeStruct::function), new SomeStruct); doesn't compile. Your answer could be improved (and possibly accepted instead of mine) if you figure out how to get it working. I assumed that I was simply reinventing mem_fn, but I guess they're not identical. –  user1508519 Jan 22 '14 at 1:51

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