Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I’m looking for a quick way to get an HTTP response code from a URL (i.e. 200, 404, etc). I’m not sure which library to use.

share|improve this question

6 Answers 6

Here's a solution that uses httplib instead.

import httplib

def get_status_code(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
        None instead.
    """
    try:
        conn = httplib.HTTPConnection(host)
        conn.request("HEAD", path)
        return conn.getresponse().status
    except StandardError:
        return None


print get_status_code("stackoverflow.com") # prints 200
print get_status_code("stackoverflow.com", "/nonexistant") # prints 404
share|improve this answer
11  
+1 for HEAD request — no need to retrieve the entire entity for a status check. –  Ben Blank Jul 16 '09 at 23:46
5  
Although you really should restrict that except block to at least StandardError so that you don't incorrectly catch things like KeyboardInterrupt. –  Ben Blank Jul 16 '09 at 23:47
1  
I was wondering if HEAD requests are reliable. Because websites might not have (properly) implemented the HEAD method, which could result in status codes like 404, 501 or 500. Or am I being paranoid? –  Blaise Dec 5 '12 at 10:58
1  
How would one make this follow 301s ? –  ranman Aug 27 '13 at 16:13
1  
@Blaise If a website doesn't allow HEAD requests then performing a HEAD request should result in a 405 error. For an example of this, try running curl -I http://www.amazon.com/. –  Nick Jul 22 '14 at 3:12

Update using the wonderful requests library. Note we are using the head request, which should happen more quickly then a full GET or POST request.

import requests
try:
    r = requests.head("http://stackoverflow.com")
    print(r.status_code)
    #prints the int of the status code. Find more at httpstatusrappers.com :)
except requests.ConnectionError:
    print("failed to connect")
share|improve this answer
    
requests is much better than urllib2, for such a link: dianping.com/promo/208721#mod=4, urllib2 give me a 404 and requests give a 200 just as what I get from a browser. –  WKPlus Dec 18 '13 at 12:32
1  
httpstatusrappers.com...awesome!! My code is on that Lil Jon status, son! –  tmthyjames Dec 3 '14 at 2:33
    
This is the best solution. Much better than any of the others. –  Aurora Apr 25 at 7:58

You should use urllib2, like this:

import urllib2
for url in ["http://entrian.com/", "http://entrian.com/does-not-exist/"]:
    try:
        connection = urllib2.urlopen(url)
        print connection.getcode()
        connection.close()
    except urllib2.HTTPError, e:
        print e.getcode()

# Prints:
# 200 [from the try block]
# 404 [from the except block]
share|improve this answer
2  
This is not a valid solution because urllib2 will follow redirects, so you will not get any 3xx responses. –  sorin Jan 31 '13 at 12:35
1  
@sorin: That depends - you might well want to follow redirects. Perhaps you want to ask the question "If I were to visit this URL with a browser, would it show content or give an error?" In that case, if I changed http://entrian.com/ to http://entrian.com/blog in my example, the resulting 200 would be correct even though it involved a redirect to http://entrian.com/blog/ (note the trailing slash). –  RichieHindle Jan 31 '13 at 14:12

In future, for those that use python3 and later, here's another code to find response code.

import urllib.request

def getResponseCode(url):
    conn = urllib.request.urlopen(url)
    return conn.getcode()
share|improve this answer
    
This will raise a HTTPError for status codes like 404, 500, etc. –  Niklas R Jun 27 '14 at 20:38

The urllib2.HTTPError exception does not contain a getcode() method. Use the code attribute instead.

share|improve this answer
    
It does for me, using Python 2.6. –  RichieHindle Nov 27 '12 at 9:54

Here's an httplib solution that behaves like urllib2. You can just give it a URL and it just works. No need to mess about splitting up your URLs into hostname and path. This function already does that.

import httplib
import socket
def get_link_status(url):
  """
    Gets the HTTP status of the url or returns an error associated with it.  Always returns a string.
  """
  https=False
  url=re.sub(r'(.*)#.*$',r'\1',url)
  url=url.split('/',3)
  if len(url) > 3:
    path='/'+url[3]
  else:
    path='/'
  if url[0] == 'http:':
    port=80
  elif url[0] == 'https:':
    port=443
    https=True
  if ':' in url[2]:
    host=url[2].split(':')[0]
    port=url[2].split(':')[1]
  else:
    host=url[2]
  try:
    headers={'User-Agent':'Mozilla/5.0 (X11; Ubuntu; Linux x86_64; rv:26.0) Gecko/20100101 Firefox/26.0',
             'Host':host
             }
    if https:
      conn=httplib.HTTPSConnection(host=host,port=port,timeout=10)
    else:
      conn=httplib.HTTPConnection(host=host,port=port,timeout=10)
    conn.request(method="HEAD",url=path,headers=headers)
    response=str(conn.getresponse().status)
    conn.close()
  except socket.gaierror,e:
    response="Socket Error (%d): %s" % (e[0],e[1])
  except StandardError,e:
    if hasattr(e,'getcode') and len(e.getcode()) > 0:
      response=str(e.getcode())
    if hasattr(e, 'message') and len(e.message) > 0:
      response=str(e.message)
    elif hasattr(e, 'msg') and len(e.msg) > 0:
      response=str(e.msg)
    elif type('') == type(e):
      response=e
    else:
      response="Exception occurred without a good error message.  Manually check the URL to see the status.  If it is believed this URL is 100% good then file a issue for a potential bug."
  return response
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.