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When urllib2.request reaches timeout, a urllib2.URLError exception is raised. What is the pythonic way to retry establishing a connection?

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This question should answer yours: stackoverflow.com/questions/2712524/… –  Karl Barker Feb 25 '12 at 17:55
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I didn't ask how to catch the expection. I wanted to know if there is a pythonic way to retry establish the connection. –  iTayb Feb 25 '12 at 18:04
    
Sorry, I assumed the problem was in detecting the timeout had been reached, not in re-establising the connection. Could you not call urlopen() in the exception block? –  Karl Barker Feb 25 '12 at 18:07
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That is possible, but doesn't seem very pythonic. If I'd like to retry three times, I'll have to nest the try-except blocks, and it looks ugly. –  iTayb Feb 25 '12 at 18:12
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This might be of some help then: stackoverflow.com/questions/567622/… –  Karl Barker Feb 25 '12 at 18:24

2 Answers 2

up vote 30 down vote accepted

I would use a retry decorator. There are other ones out there, but this one works pretty well. Here's how you can use it:

@retry(urllib2.URLError, tries=4, delay=3, backoff=2)
def urlopen_with_retry():
    return urllib2.urlopen("http://example.com")

This will retry the function if URLError is raised. Check the link above for documentation on the parameters, but basically it will retry a maximum of 4 times, with an exponential backoff delay doubling each time, e.g. 3 seconds, 6 seconds, 12 seconds.

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This is a really cool snippet. Do you know an alternative, but as a context manager ? –  e-satis Feb 25 '12 at 18:35
    
Hmm, I think you could probably rewrite it as a context manager pretty easily, but I don't have one offhand. –  jterrace Feb 25 '12 at 18:36
    
It's no easy to do, since there is not easy way to capture the block inside the with statement. You need some deep introspection. –  e-satis Feb 25 '12 at 20:13
    
No, I don't think that's true. Exceptions are re-raised inside a context manager after the yield. –  jterrace Feb 25 '12 at 21:03
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The problem is not the exception, but the code raising the exception. How do you retry a code if you can't run it ? There is no notion of anonymous bloc in Python. It's doable, but not intuitive. –  e-satis Feb 26 '12 at 9:11

To retry on timeout you could catch the exception as @Karl Barker suggested in the comment:

assert ntries >= 1
for _ in range(ntries):
    try:
        page = urlopen(request, timeout=timeout)
        break # success
    except URLError as err:
        if not isinstance(err.reason, socket.timeout):
           raise # propagate non-timeout errors
else: # all ntries failed 
    raise err # re-raise the last timeout error
# use page here
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