77

For example, I want to join a prefix path to resource paths like /js/foo.js.

I want the resulting path to be relative to the root of the server. In the above example if the prefix was "media" I would want the result to be /media/js/foo.js.

os.path.join does this really well, but how it joins paths is OS dependent. In this case I know I am targeting the web, not the local file system.

Is there a best alternative when you are working with paths you know will be used in URLs? Will os.path.join work well enough? Should I just roll my own?

  • 1
    os.path.join will not work. But simply joining by the / character should work in all cases -- / is the standard path separator in HTTP per the specification. – intgr Nov 24 '09 at 22:15
41

Since, from the comments the OP posted, it seems he doesn't want to preserve "absolute URLs" in the join (which is one of the key jobs of urlparse.urljoin;-), I'd recommend avoiding that. os.path.join would also be bad, for exactly the same reason.

So, I'd use something like '/'.join(s.strip('/') for s in pieces) (if the leading / must also be ignored -- if the leading piece must be special-cased, that's also feasible of course;-).

  • 1
    Thanks. I didn't mind so much requiring that the leading '/' on the second part couldn't be there, but requiring the trailing '/' on the first part make me feel as if in this use case urljoin wasn't doing anything for me. I would like at least join("/media", "js/foo.js") and join("/media/", "js/foo.js") to work. Thanks for what appears to be the right answer: roll your own. – amjoconn Nov 25 '09 at 14:42
  • I hoped something would do the '/' stripping and joining for me. – statueofmike Jun 25 '18 at 18:43
118

Python2

>>> import urlparse
>>> urlparse.urljoin('/media/path/', 'js/foo.js')
'/media/path/js/foo.js'

But beware,

>>> import urlparse
>>> urlparse.urljoin('/media/path', 'js/foo.js')
'/media/js/foo.js'

as well as

>>> import urlparse
>>> urlparse.urljoin('/media/path', '/js/foo.js')
'/js/foo.js'

Python3

>>> import urllib.parse
>>> urllib.parse.urljoin('/media/path/', 'js/foo.js')
'/media/path/js/foo.js'

The reason you get different results from /js/foo.js and js/foo.js is because the former begins with a slash which signifies that it already begins at the website root.

  • So I have the strip off the leading "/" on /js/foo.js, but it seems that would be the case with os.path.join too. Requiring the slash after media means I have to most of the work myself anyway. – amjoconn Nov 24 '09 at 22:16
  • 15
    In Python 3, that's import urllib.parse and urllib.parse.urljoin. – nyuszika7h Nov 6 '13 at 14:10
  • 3
    @MedhatGayed It isn't clear to me that urljoin ever removes '/'. If I call it with urlparse.urljoin('/media/', '/js/foo.js') the returned value is '/js/foo.js'. It removed all of media, not the duplicate '/'. In fact urlparse.urljoin('/media//', 'js/foo.js') actually returns '/media//js/foo.js', so no duplicated removed. – amjoconn Jul 31 '14 at 11:26
  • 6
    urljoin has weird behavior if you are joining a components that don't end in / it strips the first component to it's base and then joins the other args on. Not what I would expect. – Pete Apr 26 '15 at 4:51
  • 3
    Unfortunately urljoin is not for joining URLs. It it for resolving relative URLs as found in HTML documents, etc. – OrangeDog Aug 15 '16 at 10:27
36

Like you say, os.path.join joins paths based on the current os. posixpath is the underlying module that is used on posix systems under the namespace os.path:

>>> os.path.join is posixpath.join
True
>>> posixpath.join('/media/', 'js/foo.js')
'/media/js/foo.js'

So you can just import and use posixpath.join instead for urls, which is available and will work on any platform.

Edit: @Pete's suggestion is a good one, you can alias the import for increased readability

from posixpath import join as urljoin

Edit: I think this is made clearer, or at least helped me understand, if you look into the source of os.py (the code here is from Python 2.7.11, plus I've trimmed some bits). There's conditional imports in os.py that picks which path module to use in the namespace os.path. All the underlying modules (posixpath, ntpath, os2emxpath, riscospath) that may be imported in os.py, aliased as path, are there and exist to be used on all systems. os.py is just picking one of the modules to use in the namespace os.path at run time based on the current OS.

# os.py
import sys, errno

_names = sys.builtin_module_names

if 'posix' in _names:
    # ...
    from posix import *
    # ...
    import posixpath as path
    # ...

elif 'nt' in _names:
    # ...
    from nt import *
    # ...
    import ntpath as path
    # ...

elif 'os2' in _names:
    # ...
    from os2 import *
    # ...
    if sys.version.find('EMX GCC') == -1:
        import ntpath as path
    else:
        import os2emxpath as path
        from _emx_link import link
    # ...

elif 'ce' in _names:
    # ...
    from ce import *
    # ...
    # We can use the standard Windows path.
    import ntpath as path

elif 'riscos' in _names:
    # ...
    from riscos import *
    # ...
    import riscospath as path
    # ...

else:
    raise ImportError, 'no os specific module found'
  • 3
    It's not obvious this will work on Windows, but it does. – Gringo Suave Sep 15 '13 at 10:15
  • 4
    from posixpath import join as urljoin nicely aliases it to something easy to read. – Pete Apr 26 '15 at 4:49
20

This does the job nicely:

def urljoin(*args):
    """
    Joins given arguments into an url. Trailing but not leading slashes are
    stripped for each argument.
    """

    return "/".join(map(lambda x: str(x).rstrip('/'), args))
  • Nice approach, thanks – sleepycal Sep 30 '15 at 14:02
8

The basejoin function in the urllib package might be what you're looking for.

basejoin = urljoin(base, url, allow_fragments=True)
    Join a base URL and a possibly relative URL to form an absolute
    interpretation of the latter.

Edit: I didn't notice before, but urllib.basejoin seems to map directly to urlparse.urljoin, making the latter preferred.

6

Using furl, pip install furl it will be:

 furl.furl('/media/path/').add(path='js/foo.js')
  • 1
    If you want the result to be a string you can add .url at the end: furl.furl('/media/path/').add(path='js/foo.js').url – Eyal Levin Oct 31 '17 at 12:15
  • furl works better in joining URL compared to urlparse.urljoin in python 2 atleast (y) – Ciasto piekarz Jan 4 '18 at 4:00
  • It's better to do furl('/media/path/').add(path=furl('/js/foo.js').path).url because furl('/media/path/').add(path='/js/foo.js').url is /media/path//js/foo.js – bartolo-otrit Jan 24 at 9:37
4

I know this is a bit more than the OP asked for, However I had the pieces to the following url, and was looking for a simple way to join them:

>>> url = 'https://api.foo.com/orders/bartag?spamStatus=awaiting_spam&page=1&pageSize=250'

Doing some looking around:

>>> split = urlparse.urlsplit(url)
>>> split
SplitResult(scheme='https', netloc='api.foo.com', path='/orders/bartag', query='spamStatus=awaiting_spam&page=1&pageSize=250', fragment='')
>>> type(split)
<class 'urlparse.SplitResult'>
>>> dir(split)
['__add__', '__class__', '__contains__', '__delattr__', '__dict__', '__doc__', '__eq__', '__format__', '__ge__', '__getattribute__', '__getitem__', '__getnewargs__', '__getslice__', '__getstate__', '__gt__', '__hash__', '__init__', '__iter__', '__le__', '__len__', '__lt__', '__module__', '__mul__', '__ne__', '__new__', '__reduce__', '__reduce_ex__', '__repr__', '__rmul__', '__setattr__', '__sizeof__', '__slots__', '__str__', '__subclasshook__', '__weakref__', '_asdict', '_fields', '_make', '_replace', 'count', 'fragment', 'geturl', 'hostname', 'index', 'netloc', 'password', 'path', 'port', 'query', 'scheme', 'username']
>>> split[0]
'https'
>>> split = (split[:])
>>> type(split)
<type 'tuple'>

So in addition to the path joining which has already been answered in the other answers, To get what I was looking for I did the following:

>>> split
('https', 'api.foo.com', '/orders/bartag', 'spamStatus=awaiting_spam&page=1&pageSize=250', '')
>>> unsplit = urlparse.urlunsplit(split)
>>> unsplit
'https://api.foo.com/orders/bartag?spamStatus=awaiting_spam&page=1&pageSize=250'

According to the documentation it takes EXACTLY a 5 part tuple.

With the following tuple format:

scheme 0 URL scheme specifier empty string

netloc 1 Network location part empty string

path 2 Hierarchical path empty string

query 3 Query component empty string

fragment 4 Fragment identifier empty string

2

To improve slightly over Alex Martelli's response, the following will not only cleanup extra slashes but also preserve trailing (ending) slashes, which can sometimes be useful :

>>> items = ["http://www.website.com", "/api", "v2/"]
>>> url = "/".join([(u.strip("/") if index + 1 < len(items) else u.lstrip("/")) for index, u in enumerate(items)])
>>> print(url)
http://www.website.com/api/v2/

It's not as easy to read though, and won't cleanup multiple extra trailing slashes.

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