9

I am making a python to read temperature from a simple server in a lan network each 2 seconds, the problem is that sometimes the script is stuck without doing anything, I'm using requests with python 3.6 on windows

import requests
import time

while True:
    s=time.time()

    r = requests.get("http://192.168.1.2/readtemp.php?id=1&action=read")
    temp = r.text
    print (temp + ' - ' + str(time.time()-s) + ' Seconds')
    time.sleep(2)

the response I get is this:

29°C - 0.272745847702026 Seconds

29°C - 0.64812617301941 Seconds

29°C - 0.294319868087769 Seconds

but sometimes when I come back to my computer I find it stuck doing nothing, any ideas why it gets stuck, isn't it supposed to keep making the request till it gets a response like browsers do?

5
  • Does the server still respond to browser requests? What are you using to run the server process? It should more like the server is getting stuck than the client.
    – holdenweb
    Apr 8, 2018 at 19:13
  • 5
    use the timeout kwarg. then you can catch the Timeout exception - docs.python-requests.org/en/master/user/quickstart/#timeouts Apr 8, 2018 at 19:17
  • @holdenweb yes it still respond to the browser request
    – M. Serseg
    Apr 8, 2018 at 19:37
  • @RobertSeaman I will give it a try, but it bothers me why would it timeout when it should work normally I'm using wamp server, I didn't encounter this issue with .net, is there somehow a way to know where did the function got stuck on python?
    – M. Serseg
    Apr 8, 2018 at 19:41
  • requests doesnt retry nor have a timeout by default, as using a timeout would inform you about a potential (and the most likely, my oppinion) issue. Either catch the exception and retry later or you can go the more advanced route of a retry adapter. coglib.com/~icordasc/blog/2014/12/retries-in-requests.html
    – Tobias
    Apr 8, 2018 at 20:17

1 Answer 1

9

As Tobias wrote, requests doesn't retry nor have a timeout by default, as using a timeout would inform you about a potential (and the most likely, my opinion) issue. Either catch the exception and retry later or you can go the more advanced route of a retry adapter.

Try this request with timeout & error handling:

import requests
import time

while True:
    s=time.time()

    try: 
        r = requests.get("http://192.168.1.2/readtemp.php?id=1&action=read", timeout=10)
    except requests.exceptions.Timeout as err: 
        print(err)
        # sleep some sec/min and retry here!

    temp = r.text
    print (temp + ' - ' + str(time.time()-s) + ' Seconds')

    time.sleep(2)
3
  • 1
    Explain why it will solve the issue at hand and also where the author went wrong
    – Coder
    Jul 8, 2019 at 19:32
  • It is already explained in comments for the question, I copied it to the answer.
    – DaWe
    Jul 9, 2019 at 13:03
  • 1
    Many people who come here for help doesn't go through comments much. So it will be really helpful if you can add that up in your answer.
    – Coder
    Jul 15, 2019 at 20:20

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