I need to uniquely identify and store some URLs. The problem is that sometimes they come containing ".." like http://somedomain.com/foo/bar/../../some/url which basically is http://somedomain.com/some/url if I'm not wrong.

Is there a Python function or a tricky way to resolve this URLs ?

  • URL or file path? – user395760 Nov 30 '10 at 18:44
  • URL. I've put them like this because afterwords I compose them to the domain name, scheme and so on ... – Nicu Surdu Nov 30 '10 at 18:48
  • 2
    See stackoverflow.com/questions/2131290/… – Josh Lee Nov 30 '10 at 18:58
  • @jleedev: that doesn't work for me. The numers of ".." can vary and are at different positions in the URL. And that is not even working as stated: urlparse.urljoin("domain.com/a/b/c/d", "/../..") yells "domain.com/...." on my machine ... :| – Nicu Surdu Nov 30 '10 at 19:07
  • @Nicolae Changing it to ../.. works; I’ll correct it. – Josh Lee Nov 30 '10 at 19:09
up vote 10 down vote accepted

There’s a simple solution using urlparse.urljoin:

>>> import urlparse
>>> urlparse.urljoin('http://www.example.com/foo/bar/../../baz/bux/', '.')
'http://www.example.com/baz/bux/'

However, if there is no trailing slash (the last component is a file, not a directory), the last component will be removed.

This fix uses the urlparse function to extract the path, then use (the posixpath version of) os.path to normalize the components. Compensate for a mysterious issue with trailing slashes, then join the URL back together. The following is doctestable:

import urlparse
import posixpath

def resolveComponents(url):
    """
    >>> resolveComponents('http://www.example.com/foo/bar/../../baz/bux/')
    'http://www.example.com/baz/bux/'
    >>> resolveComponents('http://www.example.com/some/path/../file.ext')
    'http://www.example.com/some/file.ext'
    """

    parsed = urlparse.urlparse(url)
    new_path = posixpath.normpath(parsed.path)
    if parsed.path.endswith('/'):
        # Compensate for issue1707768
        new_path += '/'
    cleaned = parsed._replace(path=new_path)
    return cleaned.geturl()
  • Super fancy! Works great. Thank a million! – Nicu Surdu Nov 30 '10 at 19:09
  • It was too nice to be true :(. If the path is a file, after the join I will remain with the "folder" of the file: domain.com/some/path/file.ext will result in domain.com/some/path/ . I will find a workaround for this, because your solution is pretty awesome – Nicu Surdu Dec 1 '10 at 22:00
  • @Nicolae I fix! urljoin appears to be clever but not ideal for the situation. – Josh Lee Dec 1 '10 at 23:12
  • 1
    You should of left the old example too, and add this as an edit, because it was pure awesomeness and maybe it will help some other poor soul – Nicu Surdu Dec 2 '10 at 17:39
  • PS: thank you very much once again :) – Nicu Surdu Dec 2 '10 at 17:50

Those are file paths. Look at os.path.normpath:

>>> import os
>>> os.path.normpath('/foo/bar/../../some/url')
'/some/url'

EDIT:

If this is on Windows, your input path will use backslashes instead of slashes. In this case, you still need os.path.normpath to get rid of the .. patterns (and // and /./ and whatever else is redundant), then convert the backslashes to forward slashes:

def fix_path_for_URL(path):
    result = os.path.normpath(path)
    if os.sep == '\\':
        result = result.replace('\\', '/')
    return result

EDIT 2:

If you want to normalize URLs, do it (before you strip off the method and such) with urlparse module, as shown in the answer to this question.

EDIT 3:

It seems that urljoin doesn't normalize the base path it's given:

>>> import urlparse
>>> urlparse.urljoin('http://somedomain.com/foo/bar/../../some/url', '')
'http://somedomain.com/foo/bar/../../some/url'

normpath by itself doesn't quite cut it either:

>>> import os
>>> os.path.normpath('http://somedomain.com/foo/bar/../../some/url')
'http:/somedomain.com/some/url'

Note the initial double slash got eaten.

So we have to make them join forces:

def fix_URL(urlstring):
    parts = list(urlparse.urlparse(urlstring))
    parts[2] = os.path.normpath(parts[2].replace('/', os.sep)).replace(os.sep, '/')
    return urlparse.urlunparse(parts)

Usage:

>>> fix_URL('http://somedomain.com/foo/bar/../../some/url')
'http://somedomain.com/some/url'
  • 3
    Be warned that “On Windows, it converts forward slashes to backward slashes.” – Josh Lee Nov 30 '10 at 18:50
  • This is almost perfect, but maybe I was not specific enough in my question (I've edited to reflect this more properly): those ARE URLs, I've just omitted the domain name and schema. – Nicu Surdu Nov 30 '10 at 18:56

I wanted to comment on the resolveComponents function in the top response.

Notice that if your path is /, the code will add another one which can be problematic. I therefore changed the IF condition to:

if parsed.path.endswith( '/' ) and parsed.path != '/':

urljoin won't work, as it only resolves dot segments if the second argument isn't absolute(!?) or empty. Not only that, it doesn't handle excessive ..s properly according to RFC 3986 (they should be removed; urljoin doesn't do so). posixpath.normpath can't be used either (much less os.path.normpath), since it resolves multiple slashes in a row to only one (e.g. ///// becomes /), which is incorrect behavior for URLs.


The following short function resolves any URL path string correctly. It shouldn't be used with relative paths, however, since additional decisions about its behavior would then need to be made (Raise an error on excessive ..s? Remove . in the beginning? Leave them both?) - instead, join URLs before resolving if you know you might handle relative paths. Without further ado:

def resolve_url_path(path):
    segments = path.split('/')
    segments = [segment + '/' for segment in segments[:-1]] + [segments[-1]]
    resolved = []
    for segment in segments:
        if segment in ('../', '..'):
            if resolved[1:]:
                resolved.pop()
        elif segment not in ('./', '.'):
            resolved.append(segment)
    return ''.join(resolved)

This handles trailing dot segments (that is, without a trailing slash) and consecutive slashes correctly. To resolve an entire URL, you can then use the following wrapper (or just inline the path resolution function into it).

try:
    # Python 3
    from urllib.parse import urlsplit, urlunsplit
except ImportError:
    # Python 2
    from urlparse import urlsplit, urlunsplit

def resolve_url(url):
    parts = list(urlsplit(url))
    parts[2] = resolve_url_path(parts[2])
    return urlunsplit(parts)

You can then call it like this:

>>> resolve_url('http://example.com/../thing///wrong/../multiple-slashes-yeah/.')
'http://example.com/thing///multiple-slashes-yeah/'

Correct URL resolution has more than a few pitfalls, it turns out!

  • “it doesn't handle excessive ..s properly” — it does for me on Python 3.5 (but not 2.7) – Vasiliy Faronov Mar 30 '17 at 18:19
  • ...nor on 3.4 :( – Vasiliy Faronov Apr 3 '17 at 8:52
  • Can you elaborate why ///// becoming / is incorrect behavior for URLs? I skimmed through the entire RFC 3986 to find keyword //, but could not find anything they suggest adjacent slashes in path such as // would be meaningful. – RayLuo Jun 8 at 18:22
  • 1
    @RayLuo Take a look at Section 3.3: Path. In the ABNF description of path-absolute, it specifies it can simply contain a segment, which is later defined as *pchar. That asterisk means it can contain any number of pchars, including 0. Therefore, according to the standard, the path /// is 3 separate, non-collapsible 0-length segments. – obskyr Jun 9 at 11:28

According to RFC 3986 this should happen as part of "relative resolution" process. So answer could be urlparse.urljoin(url, ''). But due to bug urlparse.urljoin does not remove dot segments when second argument is empty url. You can use yurl — alternative url manipulation library. It do this right:

>>> import yurl
>>> print yurl.URL('http://somedomain.com/foo/bar/../../some/url') + yurl.URL()
http://somedomain.com/some/url
import urlparse
import posixpath

parsed = list(urlparse.urlparse(url))
parsed[2] = posixpath.normpath(posixpath.join(parsed[2], rel_path))
proper_url = urlparse.urlunparse(parsed)

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.