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I am learning networking programming and trying to grasp the basics of sockets through this example.

import socket,sys

s = socket.socket(socket.AF_INET,socket.SOCK_DGRAM)

MAX = 65535
PORT = 1060

if sys.argv[1:] == ['server']:
    print 'Listening at ' , s.getsockname()
    while True:
        data,address = s.recvfrom(MAX)
        print ' The address at ' , address , ' says ' , repr(data)
        s.sendto('your data was %d bytes' % len(data),address)

elif  sys.argv[1:] == ['client']:
    print ' Address before sending ' ,s.getsockname()
    s.sendto('This is the message',('',PORT))
    print ' Address after sending ' ,s.getsockname()
    data,address = s.recvfrom(MAX)
    print ' The server at ' , address , ' says ' , repr(data)

    print >> sys.stderr, 'usage: server | client '

However,its throwing up an exception saying the arguments given by getsockname() were invalid specifically on line 22.The code is correct as far as I know.Here's the exception

Traceback (most recent call last):
  File "", line 23, in <module>
    print ' Address before sending ' ,s.getsockname()
  File "c:\Python27\lib\", line 224, in meth
    return getattr(self._sock,name)(*args)
error: [Errno 10022] An invalid argument was supplied

Using PyScripter x86

share|improve this question
Is that winsock? –  wRAR Mar 26 '13 at 13:55
A socket probably won't actually have an address before sending, unless you call bind on it first. On Mac, I don't get an error but the returned port is 0 (meaning it hasn't been assigned a port yet). –  robertklep Mar 26 '13 at 14:07
I'm using Python.The standard socket module –  DamnDev Mar 26 '13 at 14:27
What platform are you on? I don't get this error on python2.7 OSX 10.8 –  entropy Mar 26 '13 at 14:39
OK I commented the "before sending " getsockname() code out and turns out you are right, the socket won't actually have an address . –  DamnDev Mar 26 '13 at 19:32

1 Answer 1

up vote 7 down vote accepted

Well I got the problem.The socket doesn't have an address untill its either binded or data is sent. Just had to comment it out.

elif  sys.argv[1:] == ['client']:
 ## print ' Address before sending ' ,s.getsockname()


share|improve this answer
You should add a link and accept your answer –  Mr_and_Mrs_D Oct 1 '14 at 13:47

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