19

I am using a webservice to retrieve some data but sometimes the url is not working and my site is not loading. Do you know how I can handle the following exception so there is no problem with the site in case the webservice is not working?

Django Version: 1.3.1 
Exception Type: ConnectionError
Exception Value: 
HTTPConnectionPool(host='test.com', port=8580): Max retries exceeded with url:

I used

try:
   r = requests.get("http://test.com", timeout=0.001)
except requests.exceptions.RequestException as e:    # This is the correct syntax
   print e
   sys.exit(1)

but nothing happens

  • I'm not sure but shouldn't it be except requests.exceptions.RequestException, e:? also you are saying you have ConnectionError as an exception but i don't see that you catch this specific exception... – Kobi K Jan 28 '14 at 13:51
  • well because I am new to python I found the answer from here : stackoverflow.com/questions/16511337/… – user1431148 Jan 28 '14 at 13:56
44

You should not exit your worker instance sys.exit(1) Furthermore you 're catching the wrong Error.

What you could do for for example is:

from requests.exceptions import ConnectionError
try:
   r = requests.get("http://example.com", timeout=0.001)
except ConnectionError as e:    # This is the correct syntax
   print e
   r = "No response"

In this case your program will continue, setting the value of r which usually saves the response to any default value

  • 2
    I just tried it but I have the same result. – user1431148 Jan 28 '14 at 14:02
  • Sorry did not see that you are catching the wrong error: You re getting a ConnectionError, so you need to catch this one (see edited answer) – ProfHase85 Jan 28 '14 at 17:43
  • 1
    It works! thank you very much! But I used except requests.exceptions.ConnectionError as e: – user1431148 Jan 29 '14 at 9:19

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