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.

Would this be the appropriate way to create multiple clients on a single machine?

def main():
    threads = [None]*10

    for i in range(0, 10):
        threads[i] = ClientFactory()
        reactor.connectTCP('192.168.0.1', 8000, threads[i])

    reactor.run()

What I am finding is that when one on the clients receives a response from the server, all of them report that they received a response from the server, according to these epoch time stamps:

Connected to server...
Connected to server...
Connected to server...
Connected to server...
1370241372.33
THREAD: 0
1370241372.33
THREAD: 1
1370241372.33
THREAD: 2
1370241372.33
THREAD: 3
1370241376.05
THREAD: 2
1370241376.05
THREAD: 3
1370241376.05
THREAD: 0
1370241376.05
THREAD: 1

Are my clients for some reason listening on the same port? How can I ensure that the appropriate client receives their respective messages? I have done my best to ensure that the tasks/threads would not simply finish at the same exact time. Apologies in advance if I have not provided enough to assess the situation.

Also, I realize that an object != thread. That is just what I called the list.

share|improve this question
    
First of all, you mislead people, because all this has absolutely nothing to do with threads. Second, please, show your other classes. This part of the code seems fine. –  kirelagin Jun 3 '13 at 7:13
    
Another thing I'd like to point out is that you don't need that many ClientFactorys. One is enough. But that's not critical. –  kirelagin Jun 3 '13 at 7:40
    
Your clients aren't "listening" at all. They're connecting. Please attach a complete program though; your output shows numerous bits of output, but I don't see any 'print' statements in your code. –  Glyph Jun 3 '13 at 17:19
add comment

Your Answer

 
discard

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

Browse other questions tagged or ask your own question.