281

Could someone tell me how to get the parent directory of a path in Python in a cross platform way. E.g.

C:\Program Files ---> C:\

and

C:\ ---> C:\

If the directory doesn't have a parent directory, it returns the directory itself. The question might seem simple but I couldn't dig it up through Google.

18 Answers 18

373

Try this:

import os.path
print os.path.abspath(os.path.join(yourpath, os.pardir))

where yourpath is the path you want the parent for.

  • 120
    Your answer is correct but convoluted; os.path.dirname is the function for this, like a+=5-4 is more convoluted than a+=1. The question requested only the parent directory, not whether is exists or the true parent directory assuming symbolic links get in the way. – tzot May 24 '10 at 12:03
  • 15
    It's os.pardir, not os.path.pardir. – bouteillebleu Jul 19 '12 at 9:33
  • 8
    @bouteillebleu: Both os.pardir and os.path.pardir are actually correct (they are identical). – Eric O Lebigot Mar 5 '13 at 11:49
  • 38
    @tzot: unfortunately os.path.dirname gives different results depending on whether a trailing slash is included in the path. If you want reliable results you need to use the os.path.join method in answer above. – Artfunkel Jun 28 '13 at 10:32
  • 16
    Since this is apparently complicated enough to warrant a StackOverflow question, I feel that this should be added to the os.path library as a built-in function. – antred Mar 4 '16 at 12:44
295

Using os.path.dirname:

>>> os.path.dirname(r'C:\Program Files')
'C:\\'
>>> os.path.dirname('C:\\')
'C:\\'
>>>

Caveat: os.path.dirname() gives different results depending on whether a trailing slash is included in the path. This may or may not be the semantics you want. Cf. @kender's answer using os.path.join(yourpath, os.pardir).

  • 4
    os.path.dirname(r'C:\Program Files') what? Python's just giving you the directory where the file 'Program Files' would be. What's more, it doesn't even have to exist, behold: os.path.dirname(r'c:\i\like\to\eat\pie') outputs 'c:\\i\\like\\to\\eat' – Nick T May 18 '10 at 19:28
  • 40
    The original poster does not state that the directory have to exist. There are a lot of pathname methods that does nothing but string manipulation. To verify if the pathname actually exist requires a disk access. Depends on the application this may or may not be desirable. – Wai Yip Tung May 18 '10 at 19:45
  • 9
    this solution is sensitive to trailing os.sep. Say os.sep=='/'. dirname(foo/bar) -> foo, but dirname(foo/bar/) -> foo/bar – marcin Sep 10 '12 at 13:28
  • 6
    That's by design. It comes down to the interpretation of a path with a trailing /. Do you consider "path1" equals to "path1/"? The library use the most general interpretation that they are distinct. In some context people may want to treat them as equivalent. In this case you can do a rstrip('/') first. Had the library pick the other interpretation you will lost fidelity. – Wai Yip Tung Sep 11 '12 at 16:57
  • 3
    @Ryan, I don't know about that. There is an entire RFC 1808 written to address the issue of relative path in URI and all the subtlety of the presence and absence of a trailing /. If you know of any documentation that says they should be treated equivalent in general please point it out. – Wai Yip Tung Jul 24 '14 at 15:12
101

In Python 3.4+

from pathlib import Path
Path('C:\Program Files').parent

pathlib documentation


Additional Info

The new pathlib library brings together and simplifies using paths and common file operations. Here are some examples from the docs.

Navigating inside a directory tree:

>>>
>>> p = Path('/etc')
>>> q = p / 'init.d' / 'reboot'
>>> q
PosixPath('/etc/init.d/reboot')
>>> q.resolve()
PosixPath('/etc/rc.d/init.d/halt')

Querying path properties:

>>>
>>> q.exists()
True
>>> q.is_dir()
False
  • 4
    This is the only sane answer. If you're forced to use Python 2, just pip install pathlib2 and use the backport. – Navin Nov 2 '17 at 5:51
  • 1
    This solution is NOT sensitive to trailing os.sep! – Dylan F Jun 18 '18 at 15:08
24
import os
p = os.path.abspath('..')

C:\Program Files ---> C:\\\

C:\ ---> C:\\\

  • 5
    This only gets the parent of the CWD, not the parent of an arbitrary path as the OP asked. – Sergio Jun 4 '13 at 14:05
  • Add the double dots at the end of your URL and it will work E.g os.path.abspath(r'E:\O3M_Tests_Embedded\branches\sw_test_level_gp\test_scripts\..\..') Result: E:\\O3M_Tests_Embedded\\branches – Arindam Roychowdhury Dec 2 '15 at 11:31
19

An alternate solution of @kender

import os
os.path.dirname(os.path.normpath(yourpath))

where yourpath is the path you want the parent for.

But this solution is not perfect, since it will not handle the case where yourpath is an empty string, or a dot.

This other solution will handle more nicely this corner case:

import os
os.path.normpath(os.path.join(yourpath, os.pardir))

Here the outputs for every case that can find (Input path is relative):

os.path.dirname(os.path.normpath('a/b/'))          => 'a'
os.path.normpath(os.path.join('a/b/', os.pardir))  => 'a'

os.path.dirname(os.path.normpath('a/b'))           => 'a'
os.path.normpath(os.path.join('a/b', os.pardir))   => 'a'

os.path.dirname(os.path.normpath('a/'))            => ''
os.path.normpath(os.path.join('a/', os.pardir))    => '.'

os.path.dirname(os.path.normpath('a'))             => ''
os.path.normpath(os.path.join('a', os.pardir))     => '.'

os.path.dirname(os.path.normpath('.'))             => ''
os.path.normpath(os.path.join('.', os.pardir))     => '..'

os.path.dirname(os.path.normpath(''))              => ''
os.path.normpath(os.path.join('', os.pardir))      => '..'

os.path.dirname(os.path.normpath('..'))            => ''
os.path.normpath(os.path.join('..', os.pardir))    => '../..'

Input path is absolute (Linux path):

os.path.dirname(os.path.normpath('/a/b'))          => '/a'
os.path.normpath(os.path.join('/a/b', os.pardir))  => '/a'

os.path.dirname(os.path.normpath('/a'))            => '/'
os.path.normpath(os.path.join('/a', os.pardir))    => '/'

os.path.dirname(os.path.normpath('/'))             => '/'
os.path.normpath(os.path.join('/', os.pardir))     => '/'
  • Normalizing the path is always a good practice, especially when doing cross-platform work. – DevPlayer Jan 28 '16 at 13:50
  • This is the correct answer! It keeps relative paths relative. Thanks! – Maxim Oct 24 '17 at 19:06
  • @Maxim This solution was not perfect, I did improved it since the orginal solution does not handle one case – benjarobin Oct 27 '17 at 9:10
  • @benjarobin Yes, I hadn't thought of the corner case. Thanks. – Maxim Oct 27 '17 at 11:16
17
os.path.split(os.path.abspath(mydir))[0]
  • This won't work for paths which are to a directory, it'll just return the directory again. – Anthony Briggs Feb 20 '13 at 2:37
  • 2
    @AnthonyBriggs, I just tried this using Python 2.7.3 on Ubuntu 12.04 and it seems to work fine. os.path.split(os.path.abspath("this/is/a/dir/"))[0] returns '/home/daniel/this/is/a' as expected. I don't at the moment have a running Windows box to check there. On what setup have you observed the behavior that you report? – Dan Menes Feb 22 '13 at 0:59
  • You could do parentdir = os.path.split(os.path.apspath(dir[:-1]))[0]. This - I am certain - works because if there is a slash on the end, then it is removed; if there is no slash, this will still work (even if the last part of the path is only one char long) because of the preceding slash. This of course assumes that the path is proper and not say something like /a//b/c///d//// (in unix this is valid still), which in most cases they are (proper) especially when you do something like os.path.abspath or any other os.path function. – dylnmc Oct 4 '14 at 16:51
  • Also, to counteract a lot of slashes on the end, you could just write a small for loop that removes those. I'm sure there could even be a clever one-liner to do it, or maybe do that and os.path.split in one line. – dylnmc Oct 4 '14 at 16:57
  • @Den Menes I just saw you comment. It doesn't work if you have something like os.path.split("a/b//c/d///") and, for example, cd //////dev////// is equivalent to cd /dev/` or cd /dev; all of these are valid in linux. I just came up with this and it may be useful, though: os.path.split(path[:tuple(ind for ind, char in enumerate(path) if char != "/" and char != "\\")[-1]])[0]. (This essentially searches for the last non-slash, and gets the substring of the path up to that char.) I used path = "/a//b///c///d////" and then ran the aforementioned statement and got '/a//b///c'. – dylnmc Oct 4 '14 at 17:13
13
os.path.abspath(os.path.join(somepath, '..'))

Observe:

import posixpath
import ntpath

print ntpath.abspath(ntpath.join('C:\\', '..'))
print ntpath.abspath(ntpath.join('C:\\foo', '..'))
print posixpath.abspath(posixpath.join('/', '..'))
print posixpath.abspath(posixpath.join('/home', '..'))
7
import os
print"------------------------------------------------------------"
SITE_ROOT = os.path.dirname(os.path.realpath(__file__))
print("example 1: "+SITE_ROOT)
PARENT_ROOT=os.path.abspath(os.path.join(SITE_ROOT, os.pardir))
print("example 2: "+PARENT_ROOT)
GRANDPAPA_ROOT=os.path.abspath(os.path.join(PARENT_ROOT, os.pardir))
print("example 3: "+GRANDPAPA_ROOT)
print "------------------------------------------------------------"
4

If you want only the name of the folder that is the immediate parent of the file provided as an argument and not the absolute path to that file:

os.path.split(os.path.dirname(currentDir))[1]

i.e. with a currentDir value of /home/user/path/to/myfile/file.ext

The above command will return:

myfile

  • 1
    os.path.basename(os.path.dirname(current_dir)) also works here. – DevPlayer Jan 28 '16 at 13:58
3
>>> import os
>>> os.path.basename(os.path.dirname(<your_path>))

For example in Ubuntu:

>>> my_path = '/home/user/documents'
>>> os.path.basename(os.path.dirname(my_path))
# Output: 'user'

For example in Windows:

>>> my_path = 'C:\WINDOWS\system32'
>>> os.path.basename(os.path.dirname(my_path))
# Output: 'WINDOWS'

Both examples tried in Python 2.7

2
print os.path.abspath(os.path.join(os.getcwd(), os.path.pardir))

You can use this to get the parent directory of the current location of your py file.

  • 1
    That suggestion often leads to bugs. os.getcwd() is often NOT where "your py file" is. Think packages. If I "import some_package_with_subpackages" many modules will not be in that package's top-most directory. os.getcwd() returns where you execute top-most script. And that also presumes you are doing it from a command line. – DevPlayer Jan 28 '16 at 13:56
2
import os.path

os.path.abspath(os.pardir)
  • This presumes you want the parent directory of "the current working directory" and not the parent directory any path in general. – DevPlayer Jan 28 '16 at 14:00
2

Just adding something to the Tung's answer (you need to use rstrip('/') to be more of the safer side if you're on a unix box).

>>> input = "../data/replies/"
>>> os.path.dirname(input.rstrip('/'))
'../data'
>>> input = "../data/replies"
>>> os.path.dirname(input.rstrip('/'))
'../data'

But, if you don't use rstrip('/'), given your input is

>>> input = "../data/replies/"

would output,

>>> os.path.dirname(input)
'../data/replies'

which is probably not what you're looking at as you want both "../data/replies/" and "../data/replies" to behave the same way.

  • 1
    I would recommend to not use "input" as a variable/reference. It is a built-in function. – DevPlayer Jan 28 '16 at 14:01
  • >>> input = "../data/replies/" works.. – AnkitRox May 18 '16 at 10:19
1
import os

dir_path = os.path.dirname(os.path.realpath(__file__))
parent_path = os.path.abspath(os.path.join(dir_path, os.pardir))
0

GET Parent Directory Path and make New directory (name new_dir)

Get Parent Directory Path

os.path.abspath('..')
os.pardir

Example 1

import os
print os.makedirs(os.path.join(os.path.dirname(__file__), os.pardir, 'new_dir'))

Example 2

import os
print os.makedirs(os.path.join(os.path.dirname(__file__), os.path.abspath('..'), 'new_dir'))
0
os.path.abspath('D:\Dir1\Dir2\..')

>>> 'D:\Dir1'

So a .. helps

0
import os

def parent_filedir(n):
    return parent_filedir_iter(n, os.path.dirname(__file__))

def parent_filedir_iter(n, path):
    n = int(n)
    if n <= 1:
        return path
    return parent_filedir_iter(n - 1, os.path.dirname(path))

test_dir = os.path.abspath(parent_filedir(2))
0

The answers given above are all perfectly fine for going up one or two directory levels, but they may get a bit cumbersome if one needs to traverse the directory tree by many levels (say, 5 or 10). This can be done concisely by joining a list of N os.pardirs in os.path.join. Example:

import os
# Create list of ".." times 5
upup = [os.pardir]*5
# Extract list as arguments of join()
go_upup = os.path.join(*upup)
# Get abspath for current file
up_dir = os.path.abspath(os.path.join(__file__, go_upup))

protected by eyllanesc Apr 8 '18 at 19:15

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