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I'm trying to download image using this code.

It worked. Image downloaded. I can open in any image viewer software.

from urllib import urlretrieve
urlretrieve('http://gdimitriou.eu/wp-content/uploads/2008/04/google-image-search.jpg', 'google-image-search.jpg')

This code is not working. What the problem? Image is downloaded its only 2KB. And its not opening in image viewer.

from urllib import urlretrieve
urlretrieve('http://upload.wikimedia.org/wikipedia/en/4/44/Zindagi1976.jpg', 'Zindagi1976.jpg')

Please help. Thank you

UPDATE2 : Here is result in HTML format.

    ERROR

The requested URL could not be retrieved

While trying to retrieve the URL: http://upload.wikimedia.org/wikipedia/en/4/44/Zindagi1976.jpg

The following error was encountered:

Access Denied.
Access control configuration prevents your request from being allowed at this time. Please contact your service provider if you feel this is incorrect.

Your cache administrator is nobody. 
Generated Mon, 05 Dec 2011 17:19:53 GMT by sq56.wikimedia.org (squid/2.7.STABLE9)
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2  
2KB is usually plain text or html. Try changing 'Zindagi1976.jpg' to 'Zindagi1976.html' and open it in your browser. The information might help debugging. (I suspect a header issue.) Please post it here. –  FakeRainBrigand Dec 5 '11 at 17:18
    
@FakeRainBrigand see update –  Kulbir Dec 5 '11 at 17:21
1  
It looks like Wikimedia is checking your request. When you navigate to the image in the browser, it sends Wikimedia.org information about your set-up (e.g., your user-agent). Based on what-ever Python sends, it's denying access. I don't know how to fix this using urlretrieve. curl can probably do what you want, though it's not the nicest solution. –  FakeRainBrigand Dec 5 '11 at 17:28
1  
Looks like your request was denied. I would not be surprised if the server is denying access to unknown web agents. –  EmFi Dec 5 '11 at 17:29
    
There's no reason to use pastebin. Please post the relevant information directly in your question. –  Wilduck Dec 5 '11 at 17:29
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1 Answer 1

up vote 7 down vote accepted

If you used the following, you can download the image:

wget http://upload.wikimedia.org/wikipedia/en/4/44/Zindagi1976.jpg

But if you did the following:

from urllib import urlretrieve
urlretrieve('http://upload.wikimedia.org/wikipedia/en/4/44/Zindagi1976.jpg', 
            'Zindagi1976.jpg')

You may not be able to download image. This may be the case because wikipedia may have rules (robot.txt) to deny robots or bots (unknown clients). Try emulating a browser.

To do that you have to add the following as a part of header:

('User-agent', 
 'Mozilla/5.0 (X11; U; Linux i686; en-US; rv:1.9.0.1) 
 Gecko/2008071615 Fedora/3.0.1-1.fc9 Firefox/3.0.1')

You can do something like this:

>>> from urllib import FancyURLopener
>>> class MyOpener(FancyURLopener):
...     version = 'Mozilla/5.0 (Windows; U; Windows NT 5.1; it; rv:1.8.1.11) Gecko/20071127 Firefox/2.0.0.11'
... 
>>> myopener = MyOpener()
>>> myopener.retrieve('http://upload.wikimedia.org/wikipedia/en/4/44/Zindagi1976.jpg', 'Zindagi1976.jpg')
('Zindagi1976.jpg', <httplib.HTTPMessage instance at 0x1007bfe18>)

This retrieves the file

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I tired. NameError: name 'FancyURLopener' is not defined –  Kulbir Dec 5 '11 at 17:45
    
It worked. Thank you so much :-) –  Kulbir Dec 5 '11 at 17:49
    
@no_access : Thanks!. I just changed the question so that it is easy for the search. –  pyfunc Dec 5 '11 at 17:51
    
I'm looking for a quick way to get an http response code from a url. If code is 200' then download the images. Can i get response code with MyOpener`? thanks –  Kulbir May 26 '12 at 9:13
    
@Organic: Use "Head" request. This is already answered in another SO question at stackoverflow.com/questions/107405/… –  pyfunc May 29 '12 at 3:19
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