2

I have implemented a quick solution to check for internet connection in one python program, using what I found on SO :

def check_internet(self):
    try:
        response=urllib2.urlopen('http://www.google.com',timeout=2)
        print "you are connected"
        return True
    except urllib2.URLError as err:
        print err
        print "you are disconnected"

It works well ONCE, and show that I am not connected if I try it once. But if I re-establish the connection and try again, then it still says I am not connected.

Is the urllib2 connection not closed somehow ? Should I do something to reset it ?

  • this won't work. Check your indenting of the code... – glglgl Jul 3 '13 at 5:55
  • Yeah my code was not indented, sorry about that. By it is correctly indented in my actual code. It works but works only once, and does not recognize when the connection is re-established. – ekianjo Jul 3 '13 at 6:04
  • 1
    what error do you see? – jfs Jul 3 '13 at 8:03
  • @ekianjo The error you see for print err could(!) be essential for answering your question. So it might really be helpful to tell us about that. – glglgl Jul 3 '13 at 9:41
  • Allright I will let you know. Give me a couple of hours (not able to do that right now). – ekianjo Jul 3 '13 at 9:44
3

This could be because of server-side caching.

Try this:

def check_internet(self):
    try:
        header = {"pragma" : "no-cache"} # Tells the server to send fresh copy
        req = urllib2.Request("http://www.google.com", headers=header)
        response=urllib2.urlopen(req,timeout=2)
        print "you are connected"
        return True
    except urllib2.URLError as err:
        print err

I haven't tested it. But according to the 'pragma' definition, it should work.

There is a good discussion here if you want to know about pragma: Difference between Pragma and Cache-control headers?

  • Thanks, I will try this! I will come back and confirm if it worked or not. – ekianjo Jul 3 '13 at 8:02
  • Which server side should have been cached if the 1st connection could not be established? – glglgl Jul 3 '13 at 8:04
  • glglgl, good point, but then what is happening that is causing the lack of detecting the second time you run this function with internet activated? There does seem to be a cache problem somewhere. – ekianjo Jul 3 '13 at 8:26
  • @ekianjo I thought about this as well - maybe a DNS cache problem - but normally the OS should be aware about that. That's why an answer to the most recent comment to your question might be very helpful... – glglgl Jul 3 '13 at 9:01
  • 1
    @ekianjo: Its actually DNS problem: Have a look at stackoverflow.com/questions/8356517/… – rajpy Jul 3 '13 at 13:53
0

This is how I used to check my connectivity for one of my applications.

import httplib
import socket
test_con_url = "www.google.com" # For connection testing
test_con_resouce = "/intl/en/policies/privacy/" # may change in future
test_con = httplib.HTTPConnection(test_con_url) # create a connection

try:
    test_con.request("GET", test_con_resouce) # do a GET request
    response = test_con.getresponse()
except httplib.ResponseNotReady as e:
    print "Improper connection state"
except socket.gaierror as e:
    print "Not connected"
else:
    print "Connected"

test_con.close()

I tested the code enabling/disabling my LAN connection repeatedly and it works.

  • How can you get a status if there is no internet connection? In this case, establishing the connection should have failed in the first place... – glglgl Jul 3 '13 at 8:05
  • @glglgl - updated the answer! – Babu Jul 3 '13 at 8:33
  • @Babu, i have not tested your solution yet, let me come back to you soon. – ekianjo Jul 4 '13 at 1:51
  • @Babu, i tried your solution, it works on desktop but it does not work either on the Python version used on the Linux handheld... :( Maybe it is the same problem as the usage of urllib2 : a bug in the Python version. – ekianjo Jul 6 '13 at 13:54
  • I tested it on my Ubuntu machine 12.04 with Python version 2.7. – Babu Jul 7 '13 at 15:02
0

It will be faster to just make a HEAD request so no HTML will be fetched.
Also I am sure google would like it better this way :)

import httplib
def have_internet():
    conn = httplib.HTTPConnection("www.google.com")
    try:
        conn.request("HEAD", "/")
        return True
    except:
        return False

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