12

I want to create a non-blocking connect. Like this:

socket.connect(); // returns immediately

For this, I use another thread, an infinite loop and Linux epoll. Like this(pseudocode):

// in another thread
{
  create_non_block_socket();
  connect();

  epoll_create();
  epoll_ctl(); // subscribe socket to all events
  while (true)
  {
    epoll_wait(); // wait a small time(~100 ms)
    check_socket(); // check on EPOLLOUT event
  }
}

If I run a server and then a client, all it works. If I first run a client, wait a some small time, run a server, then the client doesn't connect.

What am I doing wrong? Maybe it can be done differently?

  • If you are raising another thread to perform the connect, why are you doing it asynchronous? Also, may as well put the rest of the comms in there. – Martin James Jul 21 '13 at 8:27
  • Well, how to do it without epoll and nonblocking? If I just call connect() then it will block and wait for connect(am I right?). But then if I want to join this connecting thread to main thread, I can't to do it, because connecting thread will in blocking state. Sorry if I am wrong. – herolover Jul 21 '13 at 8:38
  • 1
    This is not 'async'. This is non-blocking. – user207421 Jul 21 '13 at 9:52
31

You should use the following steps for an async connect:

  • create socket with socket(..., SOCK_NONBLOCK, ...)
  • start connection with connect(fd, ...)
  • if return value is neither 0 nor EINPROGRESS, then abort with error
  • wait until fd is signalled as ready for output
  • check status of socket with getsockopt(fd, SOL_SOCKET, SO_ERROR, ...)
  • done

No loops - unless you want to handle EINTR.

If the client is started first, you should see the error ECONNREFUSED in the last step. If this happens, close the socket and start from the beginning.

It is difficult to tell what's wrong with your code, without seeing more details. I suppose, that you do not abort on errors in your check_socket operation.

  • I know this is an old comment, but I just wanted to note that I had to wait for read in order to catch ETIMEDOUT. This occurred when the SYN response was not returned. If I only waited for write then the socket would disappear from netstat (from SYN_SENT state) but I'd get no notification that the socket was writable to call getsockopt and find ETIMEDOUT. I also added a call immediately after connect to getsockopt to see if there were any immediate errors available before polling. – DreamWarrior Jun 10 '15 at 15:02
  • @DreamWarrior: That's weird. Take a look at connect(2) and connect(3) and search for poll. Both man pages state, that you should wait for indication, that the socket is writable. Can you prodive a minimal example, that shows the unexpected behavior? – nosid Jun 11 '15 at 20:02
  • the man page states "It is possible to select(2) or poll(2) for completion by selecting the socket for writing". My guess is the key word is "completion". Since it was never completed, as it never received a SYN-ACK (or RST which completes the handshake, but results in failure), it never became writable. – DreamWarrior Jun 18 '15 at 19:21
  • I was testing this by performing a non-blocking connect to port 10000 on 1.1.1.1. However, my code was using the Xt scheduler (via XtAppAddInput w/ XtInputWriteMask) to perform the select/poll, so I'm not sure which it used, I just know the write event never "fired". A read event, added with XtInputReadMask, did fire when the TCP stack timed out waiting for the SYN-ACK. In this case, getsockopt returned ETIMEDOUT. I do wonder if there are other errors that would only be sent to the read event, but I don't know how to provoke them; I can only test ECONNREFUSED and ETIMEDOUT. – DreamWarrior Jun 18 '15 at 19:22
  • 1
    @DreamWarrior: I can't reproduce the problem you have described. I have written a minimal test program, and it correctly reports ETIMEDOUT using POLLOUT. – nosid Jun 19 '15 at 18:57

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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