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 try to bind boost::asio arguments. Function to bind is static member of structure:

template <typename T>
struct bind_struct{

   typedef boost::system::error_code                         error_code;
   typedef boost::asio::ip::tcp::acceptor                    tcp_acceptor_type;
   typedef std::shared_ptr<boost::asio::ip::tcp::socket>     socket_type;


   static void tcp_on_async_accept(error_code& er,
                                  tcp_acceptor_type* acc,
                                  socket_type socket){
       std::cout << "ok" << std::endl;
   }
   static void good_function(int m){
       std::cout << m << std::endl;
   }


};

Bind operation:

  /*Error*/
  bind_struct<void>::socket_type sock;
  bind_struct<void>::tcp_acceptor_type* acc;
  auto fn = boost::bind(bind_struct<void>::tcp_on_async_accept,
                                                boost::asio::placeholders::error,
                                                acc, sock);
  fn();


  /*Ok*/
  auto fn1 = boost::bind(bind_struct<void>::good_function,_1);
  fn1(10);

What is a problem here? Errors.

share|improve this question
    
bind() may be confused since you're trying to bind a member function without an object on which to call it (which in theory is OK, since the member is static). If you pass &sock as the second parameter to bind() does that change the errors? –  Chad Jan 14 at 6:12
    
@Chad smart_poiter by link it is normal? coliru.stacked-crooked.com/a/7615c6464bd2d488 –  crastinus Jan 14 at 6:52

1 Answer 1

fn() fails because the functor expects the first argument passed to it to be able to bind to boost::system::error_code&.

The Boost.Asio documentation for boost::asio::placeholders::error states:

An argument placeholder, for use with boost::bind(), that corresponds to the error argument of a handler for any of the asynchronous functions.

Hence, when the function:

void bind_struct::tcp_on_async_accept(
    boost::system::error_code&,
    boost::asio::ip::tcp::acceptor*,
    std::shared_ptr<boost::asio::ip::tcp::socket>)

is bound with:

boost::asio::ip::tcp::acceptor* acceptor;
std::shared_ptr<boost::asio::ip::tcp::socket> socket;
auto fn = boost::bind(
    bind_struct<void>::tcp_on_async_accept,
    boost::asio::placeholders::error, // _1
    acceptor, socket);

The resulting functor fn can only be invoked when the first argument passed to its invocation can bind to boost::system::error_code&. Thus, the following will fail:

fn();

where as the following will work:

boost::system::error_code error;
fn(error);

Consider reading this blog for a great illustrated example of bind().


If bind_struct::tcp_on_async_accept() is going to be used as the handler to an async_accept() operation, then consider changing the first parameter type to accept error_code by value or by const reference. The Asynchronous Operations type requirements specifies that the first parameter for handlers is an lvalue of type boost::system::error_code, and the AcceptHandler documentation states if h is a handler and ec is a const error_code, then the expression h(ec) must be valid. As a const error_code cannot be bound to boost::system::error_code&, bind_struct::tcp_on_async_accept() fails to meet the AcceptHandler type requirement.

share|improve this answer
    
I'll find an error. Function must receve just const boost::asio::error_code&. But it useful information. –  crastinus Jan 15 at 4:20
1  
@crastinus Per AcceptHandler documentation, if h is a handler and ec is a const error_code, then the expression h(ec) must be valid. Hence, the function may accept error_code by value or by const reference. When using bind(), addition arguments may be bound to the function when constructing the functor. While placeholders::error (_1) may appear in the binding zero or multiple times, placeholders for different positions, such as _2, may not appear in the binding. –  Tanner Sansbury Jan 15 at 13:22

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.