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By using python, how can I check if a website is up? From what I read, I need to check the "HTTP HEAD" and see status code "200 OK", but how to do so ?

Cheers

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1  
Duplicate: stackoverflow.com/questions/107405/… – Daniel Roseman Dec 22 '09 at 21:43
up vote 34 down vote accepted

You could try to do this with getcode() from urllib

>>> print urllib.urlopen("http://www.stackoverflow.com").getcode()
>>> 200
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3  
Following question, using urlopen.getcode does fetch the entire page or not? – OscarRyz Dec 22 '09 at 23:13
    
As far as i know, getcode retreives the status from the response that is sent back – Anthony Forloney Dec 23 '09 at 0:38
    
@Oscar, there's nothing in urllib to indicate it uses HEAD instead of GET, but the duplicate question referenced by Daniel above shows how to do the former. – Peter Hansen Dec 23 '09 at 2:38
    
+1 didn't even read the answer :) – Dead account Jan 26 '10 at 16:56
1  
@l1zard like so: req = urllib.request.Request(url, headers = headers) resp = urllib.request.urlopen(req) – jamescampbell Jan 14 at 17:23

You can use httplib

import httplib
conn = httplib.HTTPConnection("www.python.org")
conn.request("HEAD", "/")
r1 = conn.getresponse()
print r1.status, r1.reason

prints

200 OK

Of course, only if www.python.org is up.

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This only checks domains, need something efficient like this for webpages. – User Jan 9 '14 at 21:59

The HTTPConnection object from the httplib module in the standard library will probably do the trick for you. BTW, if you start doing anything advanced with HTTP in Python, be sure to check out httplib2; it's a great library.

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If by up, you simply mean "the server is serving", then you could use cURL, and if you get a response than it's up.

I can't give you specific advice because I'm not a python programmer, however here is a link to pycurl http://pycurl.sourceforge.net/.

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I think the easiest way to do it is by using Requests module.

import requests

def url_ok(url):
    r = requests.head(url)
    return r.status_code == 200
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1  
this does not work here for url = "http://foo.example.org/" I would expect 404, but get a crash. – Jonas Stein Jun 2 '13 at 0:11
    
This returns False for any other response code than 200 (OK). So you wouldn't know if it's a 404. It only checks if the site is up and available for public. – caisah Jun 3 '13 at 20:42
    
@caisah, did you test it? Jonas is right; I get an exception; raise ConnectionError(e) requests.exceptions.ConnectionError: HTTPConnectionPool(host='nosuch.org2', port=80): Max retries exceeded with url: / (Caused by <class 'socket.gaierror'>: [Errno 8] nodename nor servname provided, or not known) – AnneTheAgile Nov 14 '13 at 16:27
1  
I've test it before posting it. The thing is, that this checks if a site is up and doesn't handle the situtation when host name is invalid or other thing that go wrong. You should think of those exceptions and catch them. – caisah Nov 17 '13 at 13:56
import httplib
import socket
import re

def is_website_online(host):
    """ This function checks to see if a host name has a DNS entry by checking
        for socket info. If the website gets something in return, 
        we know it's available to DNS.
    """
    try:
        socket.gethostbyname(host)
    except socket.gaierror:
        return False
    else:
        return True


def is_page_available(host, path="/"):
    """ This function retreives the status code of a website by requesting
        HEAD data from the host. This means that it only requests the headers.
        If the host cannot be reached or something else goes wrong, it returns
        False.
    """
    try:
        conn = httplib.HTTPConnection(host)
        conn.request("HEAD", path)
        if re.match("^[23]\d\d$", str(conn.getresponse().status)):
            return True
    except StandardError:
        return None
share|improve this answer
1  
is_website_online just tells you if a host name has a DNS entry, not whether a website is online. – Craig McQueen Dec 22 '09 at 23:38
    
Whoops, you're right Craig. I'll update it in a bit. – Evan Fosmark Dec 23 '09 at 0:02

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