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I am working on an app which needs to parse URLs (mostly HTTP URLs) in HTML pages - I have no control over the input and some of it is, as expected, a bit messy.

One problem I'm encountering frequently is that urlparse is very strict (and possibly even buggy?) when it comes to parsing and joining URLs that have double-slashes in the path part, for example:

testUrl = 'http://www.example.com//path?foo=bar'
urlparse.urljoin(testUrl, 
                 urlparse.urlparse(testUrl).path)

Instead of the expected result http://www.example.com//path (or even better, with a normalized single slash), I end up with http://path.

BTW the reason I'm running such code is because it's the only way I found so far to strip the query / fragment part off of URLs. Maybe there is a better way to do it, but I couldn't find one.

Can anyone recommend a way to avoid this, or should I just normalize the path myself using a (relatively simple, I know) regex?

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What do you mean by "it's the only way to strip the query / fragment part"? What does the slash have to do with the query? –  jknupp Jan 19 '12 at 12:25
    
It has nothing to do with the query - the reason I'm parsing a URL and then joining it's own path back into it is because I want to strip out the query and fragment. If there was a better way to do it, I wouldn't need to solve this problem –  shevron Jan 19 '12 at 12:25
2  
I think urlparse is just implementing the RFC of URLs correctly - that specifies that after the <hostname>:<port> part seems to be only one slash (tools.ietf.org/html/rfc1738) - so in your case I would try to strip the extra slash before passing it to urlparse. –  BergmannF Jan 19 '12 at 12:28

4 Answers 4

up vote 4 down vote accepted

If you only want to get the url without the query part, I would skip the urlparse module and just do:

testUrl.rsplit('?')

The url will be at index 0 of the list returned and the query at index 1.

It is not possible to have two '?' in an url so it should work for all urls.

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This does not answer any urlparse issues, but it definitely solves my use case in a very simple way. Thanks! –  shevron Jan 21 '12 at 10:16

The path (//path) alone is not valid, which confuses the function and gets interpreted as a hostname

http://tools.ietf.org/html/rfc3986.html#section-3.3

If a URI does not contain an authority component, then the path cannot begin with two slash characters ("//").

I don't particularly like either of these solutions, but they work:

import re
import urlparse

testurl = 'http://www.example.com//path?foo=bar'

parsed = list(urlparse.urlparse(testurl))
parsed[2] = re.sub("/{2,}", "/", parsed[2]) # replace two or more / with one
cleaned = urlparse.urlunparse(parsed)

print cleaned
# http://www.example.com/path?foo=bar

print urlparse.urljoin(
    testurl, 
    urlparse.urlparse(cleaned).path)

# http://www.example.com//path

Depending on what you are doing, you could do the joining manually:

import re
import urlparse

testurl = 'http://www.example.com//path?foo=bar'
parsed = list(urlparse.urlparse(testurl))

newurl = ["" for i in range(6)] # could urlparse another address instead

# Copy first 3 values from
# ['http', 'www.example.com', '//path', '', 'foo=bar', '']
for i in range(3):
    newurl[i] = parsed[i]

# Rest are blank
for i in range(4, 6):
    newurl[i] = ''

print urlparse.urlunparse(newurl)
# http://www.example.com//path
share|improve this answer
    
The URL is in fact valid, because it does contain an authority section - so the URL may begin with '//'. In any case even if it is not being able to parse invalid but "real world" URLs could be helpful. –  shevron Jan 21 '12 at 10:15
    
@ShaharEvron good point - edited answer –  dbr Jan 22 '12 at 21:21

Can not that be a solution?

urlparse.urlparse(testUrl).path.replace('//', '/')
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It is mentioned in official urlparse docs that:

If url is an absolute URL (that is, starting with // or scheme://), the url‘s host name and/or scheme will be present in the result. For example

urljoin('http://www.cwi.nl/%7Eguido/Python.html',
...         '//www.python.org/%7Eguido')
'http://www.python.org/%7Eguido'

If you do not want that behavior, preprocess the url with urlsplit() and urlunsplit(), removing possible scheme and netloc parts.

So you can do :

urlparse.urljoin(testUrl,
             urlparse.urlparse(testUrl).path.replace('//','/'))

Output = 'http://www.example.com/path'

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