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I was writing a simple server, just for fun and I realized that the third step meaning calling the listen(...) function takes two arguments. The second one being the backlog. While I don't fully understand the meaning of this argument but I think it queues up the clients. So assuming I'm right I was wondering how the server moves up the queue or do I actually've to implement that?

I did find many examples online about it but they mostly contain code. I would like a more theoretical explanation. Thanks!

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For more theoretical explanation u can read section 4.5 from Unix network programming by stevens...its a nice explanation for backlog. Read here link –  cyber_raj Oct 13 '11 at 13:12
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1 Answer

up vote 0 down vote accepted

Yes you are right - backlog is the supposed queue of possible connections (AFAIK it is ignored on Linux)

After you create a listening socket you call accept() on it and assuming your socket is blocking - the accept call shall not return until it pull the first client request off the queue.

So you can do something like

listen();
while(int in_socket=accept())
{
    if(in_socket>0)
    // process each client in order they are received
}  
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ah! interesting so i've to keep on accepting. Thanks! –  Shay Oct 12 '11 at 19:45
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