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I have problems with my code.

#!/usr/bin/env python3.1

import urllib.request;

# Disguise as a Mozila browser on a Windows OS
userAgent = 'Mozilla/4.0 (compatible; MSIE 5.5; Windows NT)';

URL = "www.example.com/img";
req = urllib.request.Request(URL, headers={'User-Agent' : userAgent});

# Counter for the filename.
i = 0;

while True:
    fname =  str(i).zfill(3) + '.png';
    req.full_url = URL + fname;

    f = open(fname, 'wb');

    try:
        response = urllib.request.urlopen(req);
    except:
        break;
    else:
        f.write(response.read());
        i+=1;
        response.close();
    finally:
        f.close();

The problem seems to come when I create the urllib.request.Request object (called req). I create it with a non-existing url but later I change the url to what it should be. I'm doing this so that I can use the same urllib.request.Request object and not have to create new ones on each iteration. There is probably a mechanism for doing exactly that in python but I'm not sure what it is.

EDIT Error message is:

>>> response = urllib.request.urlopen(req);
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
  File "/usr/lib/python3.1/urllib/request.py", line 121, in urlopen
    return _opener.open(url, data, timeout)
  File "/usr/lib/python3.1/urllib/request.py", line 356, in open
    response = meth(req, response)
  File "/usr/lib/python3.1/urllib/request.py", line 468, in http_response
    'http', request, response, code, msg, hdrs)
  File "/usr/lib/python3.1/urllib/request.py", line 394, in error
    return self._call_chain(*args)
  File "/usr/lib/python3.1/urllib/request.py", line 328, in _call_chain
    result = func(*args)
  File "/usr/lib/python3.1/urllib/request.py", line 476, in http_error_default
    raise HTTPError(req.full_url, code, msg, hdrs, fp)
urllib.error.HTTPError: HTTP Error 403: Forbidden

EDIT 2: My solution is the following. Probably should have done this at the start as I knew it would work:

import urllib.request;

# Disguise as a Mozila browser on a Windows OS
userAgent = 'Mozilla/4.0 (compatible; MSIE 5.5; Windows NT)';

# Counter for the filename.
i = 0;

while True:
    fname =  str(i).zfill(3) + '.png';
    URL = "www.example.com/img" + fname;

    f = open(fname, 'wb');

    try:
        req = urllib.request.Request(URL, headers={'User-Agent' : userAgent});
        response = urllib.request.urlopen(req);
    except:
        break;
    else:
        f.write(response.read());
        i+=1;
        response.close();
    finally:
        f.close();
share|improve this question
1  
And what is the error message ? Also, python don't need the semi-colon to end a line. –  Dikei Mar 28 '12 at 2:37
    
I've added the error message. I know that I don't need semicolons but I prefer to add them. The url and file exist. The only problem is that I'm creating the req object with an invalid url and then before I use req I correct the url. That seems to be causing the error. –  s5s Mar 28 '12 at 2:41
    
It is. The url is valid. It's how it's set that's causing the problem. I can also access the url, wget it and download it with Python if I don't have a loop and so I set the url in req object correctly when I create it. –  s5s Mar 28 '12 at 2:44
    
why would anyone prefer to add spurious semicolons everywhere? –  wim Mar 28 '12 at 2:49

3 Answers 3

up vote 2 down vote accepted

urllib2 is fine for small scripts that only need to do one or two network interactions, but if you are doing a lot more work, you will likely find that either urllib3, or requests (which not coincidentally is built on the former), may suit your needs better. Your particular example might look like:

from itertools import count
import requests

HEADERS = {'user-agent': 'Mozilla/4.0 (compatible; MSIE 5.5; Windows NT)'}
URL = "http://www.example.com/img%03d.png"

# with a session, we get keep alive
session = requests.session()

for n in count():
    full_url = URL % n
    ignored, filename = URL.rsplit('/', 1)

    with file(filename, 'wb') as outfile:
        response = session.get(full_url, headers=HEADERS)
        if not response.ok:
            break
        outfile.write(response.content)

Edit: If you can use regular HTTP authentication (for which the 403 Forbidden response strongly suggests), then you can add that to a requests.get with the auth parameter, as in:

response = session.get(full_url, headers=HEADERS, auth=('username','password))
share|improve this answer
    
I like this answer, instead of just fixing a bug for OP you actually demonstrate a much better way of doing it, thus solving his and maybe other people problems. –  Mig Mar 28 '12 at 3:07

If you want to use the custom user agent with every request, you can subclass FancyURLopener.

Here's an example: http://wolfprojects.altervista.org/changeua.php

share|improve this answer

Don't break when you receive an exception. Change

except:
    break

to

except:
    #Probably should log some debug information here.
    pass

This will skip all problematic request, so that one doesn't bring down the whole process.

share|improve this answer
    
That will change the logic considerably. He most likely does not wish to loop forever. –  IfLoop Mar 28 '12 at 2:49
    
I'm using the exception as a way to terminate the loop. A pass will result in an infinite loop. I don't know how many files there are so I'm downloading till I run into an exception. –  s5s Mar 28 '12 at 2:50
    
Won't prevent the server from throttling though. –  Ignacio Vazquez-Abrams Mar 28 '12 at 2:50
    
I don't think that would be a problem. I'm trying to resolve this problem first. –  s5s Mar 28 '12 at 2:51

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