42

In my code below, I use requests.post. What are the possibilities to simply continue if the site is down?

I have the following code:

def post_test():

    import requests

    url = 'http://example.com:8000/submit'
    payload = {'data1': 1, 'data2': 2}
    try:
        r = requests.post(url, data=payload)
    except:
        return   # if the requests.post fails (eg. the site is down) I want simly to return from the post_test(). Currenly it hangs up in the requests.post without raising an error.
    if (r.text == 'stop'):
        sys.exit()  # I want to terminate the whole program if r.text = 'stop' - this works fine.

How could I make the requests.post timeout, or return from post_test() if example.com, or its /submit app is down?

0

2 Answers 2

72

Use the timeout parameter:

r = requests.post(url, data=payload, timeout=1.5)

Note: timeout is not a time limit on the entire response download; rather, an exception is raised if the server has not issued a response for timeout seconds (more precisely, if no bytes have been received on the underlying socket for timeout seconds). If no timeout is specified explicitly, requests do not time out.

4
  • are you still sure if no timeout is specified exlicitly, requests don't timeout. The thing is I tried it out and it seems they do timeout automatically !
    – Haris
    Jul 27, 2021 at 13:30
  • 1
    They don't time out because of Python, but because of the server timing out, which is outside of the control of your code.
    – JacobIRR
    Jul 27, 2021 at 15:00
  • so you meant, the timeout will be counted from when the server received the request at the server side? OR is it counted from when client's requesting? I guess it was counted from when the server received the request. Thanks
    – turong
    Apr 12, 2022 at 6:39
  • Its interesting: pylint gives you hint about timeout, and I wonder if socket-functions at all could have no timeout. Would mean a request will always timeout. Oct 17, 2022 at 16:16
26

All requests take a timeout keyword argument. 1

The requests.post is simply forwarding its arguments to requests.request 2

When the app is down, a ConnectionError is more likely than a Timeout. 3

try:
    requests.post(url, data=payload, timeout=5)
except requests.Timeout:
    # back off and retry
    pass
except requests.ConnectionError:
    pass

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