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Editorial Team
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Asked: 2026-05-17T15:05:00+00:00

I have following code in a python script try: # send the query request

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I have following code in a python script

  try:
    # send the query request
    sf = urllib2.urlopen(search_query)
    search_soup = BeautifulSoup.BeautifulStoneSoup(sf.read())
    sf.close()
  except Exception, err:
    print("Couldn't get programme information.")
    print(str(err))
    return

I’m concerned because if I encounter an error on sf.read(), then sf.clsoe() is not called.
I tried putting sf.close() in a finally block, but if there’s an exception on urlopen() then there’s no file to close and I encounter an exception in the finally block!

So then I tried 

  try:
    with urllib2.urlopen(search_query) as sf:
      search_soup = BeautifulSoup.BeautifulStoneSoup(sf.read())
  except Exception, err:
    print("Couldn't get programme information.")
    print(str(err))
    return

but this raised a invalid syntax error on the with... line.
How can I best handle this, I feel stupid!

As commenters have pointed out, I am using Pys60 which is python 2.5.4

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1 Answer

  1. Editorial Team

    Why not just try closing sf, and passing if it doesn’t exist?

    import urllib2
try:
    search_query = 'http://blah'
    sf = urllib2.urlopen(search_query)
    search_soup = BeautifulSoup.BeautifulStoneSoup(sf.read())
except urllib2.URLError, err:
    print(err.reason)
finally:
    try:
        sf.close()
    except NameError: 
        pass
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