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class Crawl(webapp2.RequestHandler):    
    def get(self):      
            from google.appengine.api import urlfetch
            url = "http://www.example.com/path/to a/page" #URL with a space
            result = urlfetch.fetch(url)
            self.response.write('url: %s' % (result.status_code)) ## Outputs 400
            self.response.write(content) # Gives me 400 error page

We can't deny the fact that there are thousands of URLs that contain spaces. There is no way we can correct them one by one.

Why does urlfetch get 400 bad request error for this kind of URL which is perfectly accessible through the browser? How to overcome this?

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I accept that there's no way but to escape the request path in the url. Thank you all for helping me. –  Tabrez Ahmed Jun 16 '13 at 23:50

1 Answer 1

up vote 3 down vote accepted

This is caused because the URL needs to be properly encode (as discussed below). Make sure any url's with spaces are properly encoded with a %20 in place of any space.

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I just tried that url as well, in addition to one I just created on my own site, and I still seem to be getting a response code of 200. What GAE SDK version are you using? (Not sure if that would effect it at all, just wondering if we're testing on the same platform.) –  Nate Jun 16 '13 at 22:45
    
Yeah, I tried it with the one you linked, as well as natecollings.com/blah%20123.html (which I just made). –  Nate Jun 16 '13 at 22:46
    
I downloaded SDK last week. must be the latest version. –  Tabrez Ahmed Jun 16 '13 at 22:50
    
1.8.1 was released on the 12th, but regardless, I don't think that would affect it. (Otherwise there would have previously been more questions with the same issue, I would think.) Have you tried it with the exact code I have above, to see what you get? –  Nate Jun 16 '13 at 22:52
    
I checked it this way: self.response.write(result.content) and it gives me Google's 400 error page. –  Tabrez Ahmed Jun 16 '13 at 22:54

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