Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need a function wrapper for std::bind that will be called before the function it's wrapper, passing the arguments along to the wrapped functions.

std::function<void (int)> foo = postbind<int>(service, handle);

I've so far got down to that

std::function<void (int)> foo = postbind(service, handle);

How can I remove that template parameter? It seems to come down to the type deduction from the object generation function (postbind) not being intelligent enough.

#include <functional>

template<typename T>
void foo(std::function<void (T)> func)
{
}

void handler(int x)
{
}

int main()
{
    foo(handler);
    return 0;
}

Says error: no matching function for call to 'foo(void (&)(int))'

Yet, the code sample:

template<typename T>
void foo(T t)
{
}

int main()
{
    foo(99);
    return 0;
}

This works. Any ideas how to make this work? I need to be able to pass std::bind to it and have the result cast successfully to std::function.

How can I remove the template parameters? Thanks.


Q. What is service and this class meant to do?

A. Encapsulate a function wrapper that boost::asio::io_service->posts out of the current thread.


Full sourcecode:

#include <iostream>
#include <functional>
#include <memory>

class io_service
{
};

typedef std::shared_ptr<io_service> service_ptr;

template <typename Arg1>
class postbind_impl_1
{
public:
    typedef std::function<void (Arg1)> function;

    postbind_impl_1(service_ptr service, function memfunc)
      : service_(service), memfunc_(memfunc)
    {
    }

    void operator()(Arg1 arg1)
    {
        // do stuff using io_service
        memfunc_(arg1);
    }
private:
    service_ptr service_;
    function memfunc_;
};

template <typename Arg1>
postbind_impl_1<Arg1> postbind(service_ptr service, 
        typename postbind_impl_1<Arg1>::function handle)
{
    return postbind_impl_1<Arg1>(service, handle);
}

// ----------------

void handle(int x)
{
    std::cout << x << "\n";
}

int main()
{
    service_ptr service;
    std::function<void (int)> foo = postbind(service, handle);
    foo(110);
    return 0;
}
share|improve this question
    
What are service and handle? Can you give an example of the intended usage? –  Kerrek SB Aug 1 '11 at 15:12
    
answered your question above. ATM I pass a function using std::bind to an operation that calls the handle(...) after it finished (i.e handle_connect). If handle_connect is part of an api that runs in a separate thread, then I internally need to have handle_connect just post to do_handle_connect in order to switch threads- ugly. I'd rather have an automatic wrapper in which I pass the io_service along with it. –  genjix Aug 1 '11 at 19:43

4 Answers 4

AFAICT argument types of a bind expression are not deducible, so what you want is pretty much impossible.

share|improve this answer

How do you expect the compiler to know to use std::function? In this code:

#include <functional>

template<typename T>
void foo(T func)
{
}

void handler(int x)
{
}

int main()
{
    foo(handler);
    return 0;
}

T is NOT std::function<void (int)>. It's void (&)(int) (like the error message said), a reference to a function, not a functor object.

Deduction of the argument type of the passed function should work, try:

#include <functional>

template<typename T>
std::function<void (T)> foo(void (*func)(T))
{
}

void handler(int x)
{
}

int main()
{
    foo(handler);
    return 0;
}

Demo: http://ideone.com/NJCMS

If you need to extract argument types from either std::function or a plain function pointer, you'll need a helper structure:

template<typename>
struct getarg {};

template<typename TArg>
struct getarg<std::function<void (TArg)>> { typedef TArg type; };

template<typename TArg>
struct getarg<void (*)(TArg)> { typedef TArg type; };

template<typename TArg>
struct getarg<void (&)(TArg)> { typedef TArg type; };

template<typename T>
std::function<void (typename getarg<T>::type)> foo(T func)
{
}

void handler(int x)
{
}

int main()
{
    foo(handler);
    return 0;
}

Demo: http://ideone.com/jIzl7

With C++0x, you can also match anything that implicitly converts to std::function, including return values from std::bind and lambdas: http://ideone.com/6pbCC

share|improve this answer
    
The problem with that, is that it doesn't work with std::bind. i.e std::function<void (int)> foo = postbind(service, std::bind(handle, _1, 9)); –  genjix Aug 1 '11 at 19:37
    
@user: I showed how you can do that using partial specialization and typedef, see update. –  Ben Voigt Aug 1 '11 at 20:23
    
Amazing! Using those proxy objects works great. How can I get std::bind to autoconvert to std::function without needing, std::function<void (int)> b = postbind(service, std::function<void (int)>(std::bind(handle, _1, 9))); –  genjix Aug 1 '11 at 21:00
    
i.e the explicit typecast of std::bind to std::function –  genjix Aug 1 '11 at 21:00
    
@user: Instead of doing that, just add more specializations for whatever type std::bind returns (I'm too lazy to check right now). –  Ben Voigt Aug 1 '11 at 21:37

I'm not entirely sure what you're trying to achieve, but here's a naive wrapper that stores a list of actions:

template <typename R, typename A>
struct wrap
{
  typedef std::function<R(A)> func;

  wrap(func f_) : f(f_) { }

  void prebind(func g) { prebound.push_back(g); }

  R operator()(A arg)
  {
    for (auto it = prebound.cbegin(); it != prebound.cend(); ++it)
    {
      func g = *it;
      g(arg);
    }

    f(arg);
  }
private:
  std::vector<func> prebound;
  func f;
};

wrap<void, int> make_wrap(std::function<void(int)> f)
{
  return wrap<void, int>(f);
}

Usage:

auto foowrap = make_wrap(foo);

foowrap.prebind(std::function<void(int)>(action1);
foowrap.prebind(std::function<void(int)>(action2);

foowrap(12);  // calls action1(12), action2(12), foo(12)
share|improve this answer
    
Now try templating your function make_wrap so you don't have to provide any template arguments and it can deduce the types automatically from foo. –  genjix Aug 1 '11 at 15:54
    
Hm, wait, I think I just mispasted that -- you should already be able to omit the template parameters from make_wrap. Let me edit. –  Kerrek SB Aug 1 '11 at 16:40
    
This is the problem: template<typename T> std::function<void(T)> make_wrap(std::function<void(T)> f) { return wrap<void, T>(f); } That template parameterised your function. Now call it without template arguments: auto foowrap = make_wrap(foo); –  genjix Aug 1 '11 at 16:48
    
Yeah, if you want more general signature, you can make make_wrap a template. I sort of had this in mind anyway. You should probably make the arguments variadic, too, while you're at it :-) –  Kerrek SB Aug 1 '11 at 16:51
    
except that you cannot. If you try the code above, it won't work :p –  genjix Aug 1 '11 at 17:31
up vote 0 down vote accepted

To all the naysayers who said this wasn't possible :)

/*
 * Defines a function decorator ala Python
 *
 *   void foo(int x, int y);
 *   function<void ()> wrapper(function<void (int)> f);
 *
 *   auto f = decorator(wrapper, bind(foo, 110, _1));
 *   f();
 */

#include <functional>

template <typename Wrapper, typename Functor>
struct decorator_dispatch
{
    Wrapper wrapper;
    Functor functor;

    template <typename... Args>
    auto operator()(Args&&... args)
        -> decltype(wrapper(functor)(std::forward<Args>(args)...))
    {
        return wrapper(functor)(std::forward<Args>(args)...);
    }
};

template <typename Wrapper, typename Functor>
decorator_dispatch<
    Wrapper,
    typename std::decay<Functor>::type
>
decorator(Wrapper&& wrapper, Functor&& functor)
{
    return {wrapper, functor};
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.