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This question will expand on: http://stackoverflow.com/questions/68774/best-way-to-open-a-socket-in-python
When opening a socket how can I test to see if it has been established, and that it did not timeout, or generally fail.

Edit: I tried this:

try:
    s.connect((address, '80'))
except:
    alert('failed' + address, 'down')

but the alert function is called even when that connection should have worked.

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You should always use print_exc() from traceback module in except clause ! that will indicate accidental mistakes. –  Alex Jul 29 '12 at 9:54

3 Answers 3

up vote 15 down vote accepted

It seems that you catch not the exception you wanna catch out there :)

if the s is a socket.socket() object, then the right way to call .connect would be:

import socket
s = socket.socket()
address = '127.0.0.1'
port = 80 # port number is a number, not string
try:
    s.connect((address, port)) 
except Exception, e:
    alert('something\'s wrong with %s:%d. Exception type is %s' % (address, port, `e`))

Always try to see what kind of exception is what you're catching in a try-except loop.

You can check what types of exceptions in a socket module represent what kind of errors (timeout, unable to resolve address, etc) and make separate except statement for each one of them - this way you'll be able to react diffrently for diffrent kind of problems.

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1  
This doesn't seem to be working, even still, the alert function is not being called. –  UnkwnTech Oct 7 '08 at 7:10
1  
try to move the s.connect out of the try: block. what error will you get? –  kender Oct 7 '08 at 7:18
    
don't forget to close the socket after testing it is open. :) –  marathon Feb 5 at 21:04

You can use the function connect_ex. It doesn't throw an exception. Instead of that, returns a C style integer value (referred to as errno in C):

s =  socket.socket(socket.AF_INET, socket.SOCK_STREAM)
result = s.connect_ex((host, port))
s.close()
if result > 0:
    print "problem with socket!"
else:
    print "everything it's ok!"
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2  
In case of result > 0 you will get the errno value of the failure. You can then do something like print errno.errorcode[result] to get a more useful hint about the failure. –  Jens Nov 5 at 18:21

You should really post:

  1. The complete source code of your example
  2. The actual result of it, not a summary

Here is my code, which works:

import socket, sys

def alert(msg):
    print >>sys.stderr, msg
    sys.exit(1)

(family, socktype, proto, garbage, address) = \
         socket.getaddrinfo("::1", "http")[0] # Use only the first tuple
s = socket.socket(family, socktype, proto)

try:
    s.connect(address) 
except Exception, e:
    alert("Something's wrong with %s. Exception type is %s" % (address, e))

When the server listens, I get nothing (this is normal), when it doesn't, I get the expected message:

Something's wrong with ('::1', 80, 0, 0). Exception type is (111, 'Connection refused')
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