I want to see if I can access an online API, but for that I need to have Internet access.

How can I see if there's a connection available and active using Python?

  • if you're in python, it will almost certainly throw an exception in the event of a connection failure or timeout. You can either try/catch around that, or just let it surface. – jdizzle Sep 21 '10 at 20:47
  • 1
    @Triptych: I hope that was a joke, because it doesn't work – inspectorG4dget Sep 21 '10 at 21:48
  • 1
    @inspectorG4dget: easy_install system_of_tubes – S.Lott Sep 21 '10 at 23:09
  • 2
    @aF: Look at Unutbu's solution. It shows (in the fastest possible way) how to check if you are able to access google.com. If your problem concerns accessing the API, then why not try accessing it, setting timeout=1? That will tell you exactly if the API that you want to access is accessible. Once you know that, then you can go ahead and access the API or wait for a time when you are able to access it. – inspectorG4dget Sep 22 '10 at 1:56
  • Like I said, I just needed a simple thing like unutbu said. You don't need to make such a fuss with this.. – aF. Sep 22 '10 at 8:54

13 Answers 13

up vote 105 down vote accepted

Perhaps you could use something like this:

import urllib2

def internet_on():
    try:
        urllib2.urlopen('http://216.58.192.142', timeout=1)
        return True
    except urllib2.URLError as err: 
        return False

Currently, 216.58.192.142 is one of the IP addresses for google.com. Change http://216.58.192.142 to whatever site can be expected to respond quickly.

This fixed IP will not map to google.com forever. So this code is not robust -- it will need constant maintenance to keep it working.

The reason why the code above uses a fixed IP address instead of fully qualified domain name (FQDN) is because a FQDN would require a DNS lookup. When the machine does not have a working internet connection, the DNS lookup itself may block the call to urllib_request.urlopen for more than a second. Thanks to @rzetterberg for pointing this out.


If the fixed IP address above is not working, you can find a current IP address for google.com (on unix) by running

% dig google.com  +trace 
...
google.com.     300 IN  A   216.58.192.142
  • thanks m8, simple as that and it works very weel! :) – aF. Sep 22 '10 at 8:52
  • 1
    Just a note on the "the call to urlopen will not take much longer than 1 second even if the internet is not "on"."-quote. This is not true if the url supplied is invalid, then the DNS lookup will block. It is only true for the actual connection to the web-server. The simplest way to avoid this DNS lookup block is to use the IP-adress instead, then it's guaranteed to only take 1 second :) – rzetterberg Dec 31 '11 at 11:56
  • 5
    THIS NO LONGER WORKS. As of Sep 2013, 74.125.113.99 times out after long time, so this function will always return False. I suppose Google has changed their network is set up. – theamk Sep 18 '13 at 12:00
  • 4
    Now the rest is simple. Google for "74.125.113.99 urllib". It will return thousands of open-source projects which incorporated the incorrect code. (for me, just the first page contains at least 5: nvpy, sweekychebot, malteseDict, upy, checkConnection). They are all broken now. – theamk Sep 19 '13 at 19:02
  • 2
    If it is not clear, I DO NOT RECOMMEND using this method. Old IP was good for less than 3 years. The new IP works today. Put it in your project, and it might mysteriously break in less than 3 years, again. – theamk Sep 19 '13 at 19:04

If we can connect to some Internet server, then we indeed have connectivity. However, for the fastest and most reliable approach, all solutions should comply with the following requirements, at the very least:

  • Avoid DNS resolution (we will need an IP that is well-known and guaranteed to be available for most of the time)
  • Avoid application layer based connections (connecting to a HTTP/FTP/IMAP service)
  • Avoid calls to external utilities from Python or other language of choice (we need to come up with a language-agnostic solution that doesn't rely on third-party solutions)

To comply with these, one approach could be to, check if one of the Google's public DNS servers is reachable. The IPv4 addresses for these servers are 8.8.8.8 and 8.8.4.4. We can try connecting to any of them.

A quick Nmap of the host 8.8.8.8 gave below result:

$ sudo nmap 8.8.8.8

Starting Nmap 6.40 ( http://nmap.org ) at 2015-10-14 10:17 IST
Nmap scan report for google-public-dns-a.google.com (8.8.8.8)
Host is up (0.0048s latency).
Not shown: 999 filtered ports
PORT   STATE SERVICE
53/tcp open  domain

Nmap done: 1 IP address (1 host up) scanned in 23.81 seconds

As we can see, TCP/53 is open and non-filtered. If you are a non-root user, remember to use sudo or the -Pn argument for Nmap to send crafted probe packets and determine if host is up.

Before we try with Python, let's test connectivity using an external tool, Netcat:

$ nc 8.8.8.8 53 -zv
Connection to 8.8.8.8 53 port [tcp/domain] succeeded!

Netcat confirms that we can reach 8.8.8.8 over TCP/53. Now we can set up a socket connection to 8.8.8.8:53/TCP in Python to check connection:

>>> import socket
>>>
>>> def internet(host="8.8.8.8", port=53, timeout=3):
...   """
...   Host: 8.8.8.8 (google-public-dns-a.google.com)
...   OpenPort: 53/tcp
...   Service: domain (DNS/TCP)
...   """
...   try:
...     socket.setdefaulttimeout(timeout)
...     socket.socket(socket.AF_INET, socket.SOCK_STREAM).connect((host, port))
...     return True
...   except Exception as ex:
...     print ex.message
...     return False
...
>>> internet()
True
>>>

Another approach could be to send a manually crafted DNS probe to one of these servers and wait for response. But, I assume, it might prove slower in comparison due to packet drops, DNS resolution failure, etc. Please comment if you think otherwise.

UPDATE #1: Thanks to @theamk's comment, timeout is now an argument and initialized to 3s by default.

UPDATE #2: I did quick tests to identify the fastest and most generic implementation of all valid answers to this question. Here's the summary:

$ ls *.py | sort -n | xargs -I % sh -c 'echo %; ./timeit.sh %; echo'
defos.py
True
00:00:00:00.487

iamaziz.py
True
00:00:00:00.335

ivelin.py
True
00:00:00:00.105

jaredb.py
True
00:00:00:00.533

kevinc.py
True
00:00:00:00.295

unutbu.py
True
00:00:00:00.546

7h3rAm.py
True
00:00:00:00.032

And once more:

$ ls *.py | sort -n | xargs -I % sh -c 'echo %; ./timeit.sh %; echo'
defos.py
True
00:00:00:00.450

iamaziz.py
True
00:00:00:00.358

ivelin.py
True
00:00:00:00.099

jaredb.py
True
00:00:00:00.585

kevinc.py
True
00:00:00:00.492

unutbu.py
True
00:00:00:00.485

7h3rAm.py
True
00:00:00:00.035

True in the above output signifies that all these implementations from respective authors correctly identify connectivity to Internet. Time is shown with milliseconds resolution.

UPDATE #3: Tested again after the exception handling change:

defos.py
True
00:00:00:00.410

iamaziz.py
True
00:00:00:00.240

ivelin.py
True
00:00:00:00.109

jaredb.py
True
00:00:00:00.520

kevinc.py
True
00:00:00:00.317

unutbu.py
True
00:00:00:00.436

7h3rAm.py
True
00:00:00:00.030
  • 2
    This is the best answer, avoiding DNS resolution, and ironically, consulting Google's DNS service on port 53. – erm3nda Dec 20 '15 at 9:59
  • 1
    @AviMehenwal Google provides this IP as part of its free to use DNS name resolution service. The IP is not supposed to change unless Google decides otherwise. I've been using it as an alternative DNS server for few years now without any issues. – 7h3rAm Apr 21 '16 at 15:11
  • 1
    @Luke Thanks for pointing that out. I've updated answer to inform users about the exception and return False as a default answer. – 7h3rAm Jun 10 '16 at 6:10
  • 1
    @JasonC Connecting to TCP/53 is different than DNS connection over port 53. Going by your analogy, every TCP port that is used by an application will be classified as application level protocol connection. No, that's not true. Connecting over a TCP socket to a port IS NOT application level connection. I'm not doing a DNS lookup, rather just a half-TCP handshake. It's not the same thing as doing a full DNS lookup. – 7h3rAm Nov 4 '16 at 9:46
  • 1
    1. TCP/IP uses a stacked architecture, where a higher layer uses services of lower layers. In this case, DNS will use UDP and IP for its (forward or reverse) name resolution operations. – 7h3rAm Nov 7 '16 at 5:38

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 :)

try:
    import httplib
except:
    import http.client as httplib

def have_internet():
    conn = httplib.HTTPConnection("www.google.com", timeout=5)
    try:
        conn.request("HEAD", "/")
        conn.close()
        return True
    except:
        conn.close()
        return False
  • 8
    Takes only 20 milli seconds while the top answer takes 1 second. – Wally Apr 6 '16 at 14:04
  • 7
    +1 It makes no sense to download the whole page if you only want to check if the server is reachable and responding. Download the content if you need the content – thatsIch Jan 5 '17 at 11:25
  • Lovely neat way to do the job. Should be the accepted one in my view. – Nam G VU Jul 31 at 6:29
  • For no reason, using the url '8.8' still work, which obviously, '8.8' or ' 8.8 ' does not work in a real web browser. – Polv Aug 17 at 16:40

Just to update what unutbu said for new code in Python 3.2

def check_connectivity(reference):
    try:
        urllib.request.urlopen(reference, timeout=1)
        return True
    except urllib.request.URLError:
        return False

And, just to note, the input here (reference) is the url that you want to check: I suggest choosing something that connects fast where you live -- i.e. I live in South Korea, so I would probably set reference to http://www.naver.com.

As an alternative to ubutnu's/Kevin C answers, I use the requests package like this:

import requests

def connected_to_internet(url='http://www.google.com/', timeout=5):
    try:
        _ = requests.get(url, timeout=timeout)
        return True
    except requests.ConnectionError:
        print("No internet connection available.")
    return False

Bonus: this can be extended to this function that pings a website.

def web_site_online(url='http://www.google.com/', timeout=5):
    try:
        req = requests.get(url, timeout=timeout)
        # HTTP errors are not raised by default, this statement does that
        req.raise_for_status()
        return True
    except requests.HTTPError as e:
        print("Checking internet connection failed, status code {0}.".format(
        e.response.status_code))
    except requests.ConnectionError:
        print("No internet connection available.")
    return False
  • Request is a great library. However unlike many examples here I would use IANA's example.com or example.org as a more reliable long-term choice since it's fully controlled by ICANN. – chirale May 6 '17 at 15:05

You can just try to download data, and if connection fail you will know that somethings with connection isn't fine.

Basically you can't check if computer is connected to internet. There can be many reasons for failure, like wrong DNS configuration, firewalls, NAT. So even if you make some tests, you can't have guaranteed that you will have connection with your API until you try.

  • 1
    "It's easier to ask for forgiveness than permission" – cobbal Sep 21 '10 at 20:45
  • this doesn't need to be that good. I simply need to try to connect to a site or ping something and if it gives timeout voilá. How can I do that? – aF. Sep 21 '10 at 20:45
  • Is there any reason you can't just try to connect to API? Why you must to check it before real connection? – Tomasz Wysocki Sep 21 '10 at 20:51
  • I make an html page using python. The html page deppends on the arguments that I give in the python program. I only need to put some html code if I can access to the api. That's why I need to know before. – aF. Sep 21 '10 at 20:58
import urllib

def connected(host='http://google.com'):
    try:
        urllib.urlopen(host)
        return True
    except:
        return False

# test
print( 'connected' if connected() else 'no internet!' )

For python 3, use urllib.request.urlopen(host)

Try the operation you were attempting to do anyway. If it fails python should throw you an exception to let you know.

To try some trivial operation first to detect a connection will be introducing a race condition. What if the internet connection is valid when you test but goes down before you need to do actual work?

Best way to do this is to make it check against an IP address that python always gives if it can't find the website. In this case this is my code:

import socket

print("website connection checker")
while True:
    website = input("please input website: ")
    print("")
    print(socket.gethostbyname(website))
    if socket.gethostbyname(website) == "92.242.140.2":
        print("Website could be experiencing an issue/Doesn't exist")
    else:
        socket.gethostbyname(website)
        print("Website is operational!")
        print("")

Taking unutbu's answer as a starting point, and having been burned in the past by a "static" IP address changing, I've made a simple class that checks once using a DNS lookup (i.e., using the URL "https://www.google.com"), and then stores the IP address of the responding server for use on subsequent checks. That way, the IP address is always up to date (assuming the class is re-initialized at least once every few years or so). I also give credit to gawry for this answer, which showed me how to get the server's IP address (after any redirection, etc.). Please disregard the apparent hackiness of this solution, I'm going for a minimal working example here. :)

Here is what I have:

import socket

try:
    from urllib2 import urlopen, URLError
    from urlparse import urlparse
except ImportError:  # Python 3
    from urllib.parse import urlparse
    from urllib.request import urlopen, URLError

class InternetChecker(object):
    conn_url = 'https://www.google.com/'

    def __init__(self):
        pass

    def test_internet(self):
        try:
            data = urlopen(self.conn_url, timeout=5)
        except URLError:
            return False

        try:
            host = data.fp._sock.fp._sock.getpeername()
        except AttributeError:  # Python 3
            host = data.fp.raw._sock.getpeername()

        # Ensure conn_url is an IPv4 address otherwise future queries will fail
        self.conn_url = 'http://' + (host[0] if len(host) == 2 else
                                     socket.gethostbyname(urlparse(data.geturl()).hostname))

        return True

# Usage example
checker = InternetChecker()
checker.test_internet()

This might not work if the localhost has been changed from 127.0.0.1 Try

import socket
ipaddress=socket.gethostbyname(socket.gethostname())
if ipaddress=="127.0.0.1":
    print("You are not connected to the internet!")
else:
    print("You are connected to the internet with the IP address of "+ ipaddress )

Unless edited , your computers IP will be 127.0.0.1 when not connected to the internet. This code basically gets the IP address and then asks if it is the localhost IP address . Hope that helps

  • That's an interesting check, though it will only identify if you are connected to a network. Whether it is the Internet or a NAT'd subnet will still remain a question. – 7h3rAm Apr 22 '16 at 5:42
  • @7h3rAm , that's a good point , the DCHP doesn't require internet connection , my mistake. – Steven Parkling Apr 23 '16 at 6:16

Taking Six' answer I think we could simplify somehow, an important issue as newcomers are lost in highly technical matters.

Here what I finally will use to wait for my connection (3G, slow) to be established once a day for my PV monitoring.

Works under Pyth3 with Raspbian 3.4.2

from urllib.request import urlopen
from time import sleep
urltotest=http://www.lsdx.eu             # my own web page
nboftrials=0
answer='NO'
while answer=='NO' and nboftrials<10:
    try:
        urlopen(urltotest)
        answer='YES'
    except:
        essai='NO'
        nboftrials+=1
        sleep(30)       

maximum running: 5 minutes if reached I will try in one hour's time but its another bit of script!

  • your essai var doesn't get used, does it? – kidCoder Mar 20 '17 at 3:04

my favorite one, when running scripts on a cluster or not

import subprocess

def online(timeout):
    try:
        return subprocess.run(
            ['wget', '-q', '--spider', 'google.com'],
            timeout=timeout
        ).returncode == 0
    except subprocess.TimeoutExpired:
        return False

this runs wget quietly, not downloading anything but checking that the given remote file exists on the web

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.