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I'm using Django 1.1 on a project. And I ran into a problem.

I need to load/send GET to external URL. I want to create method that would act like this:

def Send_msg(object):
    converted_url = "http://example.com/some/link/?title=" 
                    + object.title + "&body=" + object.body
    LoadURL(converted_url)
    return True

And another problem that title and body should be translated to equivalent of rawurlencode() in PHP

I tried to search in Django Docs, but no success.

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possible duplicate of Add params to given URL in Python –  Ignacio Vazquez-Abrams Jun 8 '11 at 10:42

1 Answer 1

up vote 3 down vote accepted
def Send_msg(request, object):
    import urllib2, urllib
    base_url = "http://example.com/some/link"
    values = { 'title': object.title, 'body': object.body }
    data = urllib.urlencode(values)
    urllib2.urlopen(base_url+"?"+data).read()                
    return HttpResponse()

Something like this. The request bit is not necessary, depends on your requirements, though.

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yep, HttpResponse is not reachable in this case. –  JackLeo Jun 8 '11 at 10:53

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