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I want my program to try to open the page and get the data in time interval [0,t], if that time expires connection should be close.
I'm using urllib2 to try to accomplish the task.

t=1
url="http://example.com"
response=urllib2.urlopen(url,timeout=t)
html=response.read()

This seems to work if url exists. However, if you put some nonexistent url it takes too long for error to stop the program. And if I put this program to be used by some web site the user would need to wait for error message for too long.
Is there a way to stop execution of urlopen command if it takes longer than set time?

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2 Answers 2

If you're just checking if the link is correct, use a HEAD request.

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No, I want it to stop in less than 1 second if the link is wrong. Try putting the wrong link into code that you've linked to, you'll have to wait for 20 seconds before you get an error msg. –  enedene Nov 11 '11 at 17:52

I'm not sure why you're experiencing such long delays.

When I try and make a request to a non-existant domain, I get urllib2.URLError: <urlopen error [Errno 11004] getaddrinfo failed> raised in about 0.2 seconds.

What's the exact code you're running and domain you're fetching?

Try using requests and the timeout parameter.

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Tried it. Unfortunately the same thing, you wait and you wait... –  enedene Nov 11 '11 at 18:01
    
"What's the exact code you're running and domain you're fetching?" –  Acorn Nov 11 '11 at 18:13
    
line1: url="jdoiajoisdzzzzzej.com"; line2: response=urllib2.urlopen(url,timeout=1) , under Linux python 2.7.2+ –  enedene Nov 11 '11 at 18:14
    
You need to include the http:// at the beginning of the URL. –  Acorn Nov 11 '11 at 18:53
    
I did that too, the same result. I have to wait for error for a long time. –  enedene Nov 11 '11 at 19:44

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