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I am implementing some asio operations using boost, I've encountered an interface problem, whom which I am not receiving 'handlers' in initialization, but right after,

This forces me to write a 'busy' loop, what I'd like to do is have the io_service run even without having at least 1 handler, is it possible? what is the way to handle this? do a wait on handlers on the service? this is my code..

    /** : */
    void                Run             () { while(true) {m_srv.run(); Sleep(1);} } // once 1 handler is inside service, thread will not be in busy loop
private: // members:

    io_service  m_srv;

Any suggestions? thanks

This is the code problem: (m_drv is a task that operates boost::thread(io_service::run..))

class App : public Base::Application
{
public:
    /** : */
    App(char* name, char* id) : Application(name, id), m_drv("NetTask"), m_worker("Worker"), m_acceptor(m_worker, Drv(), &OnAccept, 4567)
    {
        m_acceptor.Accept(Drv());
    }

    /** : */
    inline DriverImp& Drv() { return static_cast<DriverImp&>(m_drv.Imp());}

    /** : */
    inline Reactor& Worker() { return m_worker; }
public: 
    APTR(Socket) m_sock;
private: // members:
    Driver      m_drv;
    Reactor     m_worker;
    Acceptor    m_acceptor;
};
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You have a slight problem with your loop: The documentation for run states that if run returns you have to call reset before calling run again. –  Joachim Pileborg Nov 21 '13 at 9:25
    
I don't want to ever leave run :), handlers are supposed to exist after start.. but ok, I will look it up, still what is the way to avoid the busy loop? –  Alon Nov 21 '13 at 9:25
    
It was a couple of years ago since I last used Boost ASIO, and I don't have my source available right now, but as I remember I just put the io_service.run() call in its own thread, and didn't have a loop. I think it was done before any async calls were made, and it worked fine anyway. –  Joachim Pileborg Nov 21 '13 at 9:28
    
not according to the boost documentation.. they say you must call run after at least 1 handler is inside the service –  Alon Nov 21 '13 at 9:35
    
Also, since the run will exit after it's out of work, I don't need to call reset..? –  Alon Nov 21 '13 at 9:36
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1 Answer

up vote 4 down vote accepted

You need to use io_service::work:

boost::asio::io_service        service;
boost::asio::io_service::work  work( service );

Note: in destructor the work object notifies the service that the work is complete and io_service::run() may return.

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I agree, is why I asked :), did with work, it still exits.. –  Alon Nov 21 '13 at 9:52
    
I don't see how it helps, worker says it will finish when there are no more handlers, I don't want it to ever finish –  Alon Nov 21 '13 at 9:55
    
@Alon, sorry, didn't get you. Is the problem solved? –  Ivan Grynko Nov 21 '13 at 9:59
    
nope, the worker still exits since it has no work, so I would still have to do while(true) –  Alon Nov 21 '13 at 10:01
3  
I do not see you use io_service::work anywhere in your code. But it is exactly what you need. As long as the work object remains alive, any subsequent calls to io_service.run() will not return. So you create the io_service, then create the work(io_service) and then you can call io_service.run() whenever you want and be sure that it does not return until you destroy the work object (and then finishes all ahndlers). –  DeVadder Nov 21 '13 at 12:36
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