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I open urls with:

site = urllib2.urlopen('http://google.com')

And what I want to do is connect the same way with a proxy I got somewhere telling me:

site = urllib2.urlopen('http://google.com', proxies={'http':'127.0.0.1'})

but that didn't work either.

I know urllib2 has something like a proxy handler, but I can't recall that function.

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5 Answers 5

up vote 73 down vote accepted
proxy = urllib2.ProxyHandler({'http': '127.0.0.1'})
opener = urllib2.build_opener(proxy)
urllib2.install_opener(opener)
urllib2.urlopen('http://www.google.com')
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1  
Hi, @ZelluX, I only want the proxies setting enabled on some function, does that mean I have to install and uninstall the opener for every invocation of the function? –  satoru Nov 11 '11 at 8:42
    
@Satoru.Logic Maybe you can write a decorator to simplify the install/uninstall process? –  ZelluX Nov 11 '11 at 13:25
1  
Seems there's no uninstall method in urllib2, but we can make one-time proxy settings; instead of installing the opener, we create a request object, and use a opener to open it. –  satoru Nov 11 '11 at 13:39
2  
@Satoru.Logic: I think the traditional approach is to configure an environment variable like HTTP_PROXY and then check in your code if it is defined using os.environ["HTTP_PROXY"]. –  ccpizza Sep 10 '12 at 10:43
    
don't forget the port number eg 3128 proxy = urllib2.ProxyHandler({'http': '127.0.0.1:3128'}) –  16num Oct 20 at 22:22

You have to install a ProxyHandler

urllib2.install_opener(
    urllib2.build_opener(
        urllib2.ProxyHandler({'http': '127.0.0.1'})
    )
)
urllib2.urlopen('http://www.google.com')
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I get File "D:/Desktop/Desktop/mygoogl", line 64, site = url.urlopen('google.com) File "C:\Python26\lib\urllib2.py", line 124, in urlopen return _opener.open(url, data, timeout) AttributeError: ProxyHandler instance has no attribute 'open' –  Chris Stryker Sep 20 '09 at 2:43
    
I missed a call to urllib2.build_opener() –  dcrosta Sep 20 '09 at 2:51

To use the default system proxies (e.g. from the http_support environment variable), the following works for the current request (without installing it into urllib2 globally):

url = 'http://www.example.com/'
proxy = urllib2.ProxyHandler()
opener = urllib2.build_opener(proxy)
in_ = opener.open(url)
in_.read()
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You can set proxies using environment variables.

import os
os.environ['http_proxy'] = '127.0.0.1'
os.environ['https_proxy'] = '127.0.0.1'

urllib2 will add proxy handlers automatically this way. You need to set proxies for different protocols separately otherwise they will fail (in terms of not going through proxy), see below.

For example:

proxy = urllib2.ProxyHandler({'http': '127.0.0.1'})
opener = urllib2.build_opener(proxy)
urllib2.install_opener(opener)
urllib2.urlopen('http://www.google.com')
# next line will fail (will not go through the proxy) (https)
urllib2.urlopen('https://www.google.com')

Instead

proxy = urllib2.ProxyHandler({
    'http': '127.0.0.1',
    'https': '127.0.0.1'
})
opener = urllib2.build_opener(proxy)
urllib2.install_opener(opener)
# this way both http and https requests go through the proxy
urllib2.urlopen('http://www.google.com')
urllib2.urlopen('https://www.google.com')
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In Addition to the accepted answer: My scipt gave me an error

File "c:\Python23\lib\urllib2.py", line 580, in proxy_open
    if '@' in host:
TypeError: iterable argument required

Solution was to add http:// in front of the proxy string:

proxy = urllib2.ProxyHandler({'http': 'http://proxy.xy.z:8080'})
opener = urllib2.build_opener(proxy)
urllib2.install_opener(opener)
urllib2.urlopen('http://www.google.com')
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