161

In Python, suppose I have a path like this:

/folderA/folderB/folderC/folderD/

How can I get just the folderD part?

266

Use os.path.normpath, then os.path.basename:

>>> os.path.basename(os.path.normpath('/folderA/folderB/folderC/folderD/'))
'folderD'

The first strips off any trailing slashes, the second gives you the last part of the path. Using only basename gives everything after the last slash, which in this case is ''.

  • 1
    I initially thought rstrip('/') would be simpler but then quickly realised I'd have to use rstrip(os.path.sep), so obviously the use of normpath is justified. – Erik Allik Jun 29 '14 at 13:44
16

You could do

>>> import os
>>> os.path.basename('/folderA/folderB/folderC/folderD')

UPDATE1: This approach works in case you give it /folderA/folderB/folderC/folderD/xx.py. This gives xx.py as the basename. Which is not what you want I guess. So you could do this -

>>> import os
>>> path = "/folderA/folderB/folderC/folderD"
>>> if os.path.isdir(path):
        dirname = os.path.basename(path)

UPDATE2: As lars pointed out, making changes so as to accomodate trailing '/'.

>>> from os.path import normpath, basename
>>> basename(normpath('/folderA/folderB/folderC/folderD/'))
'folderD'
  • In Python-think, os.path.basename(".../") correctly yields ''. Yes, I, too, find that sub-optimal. The ...basename(...normpath... solution below is canonical, though. – Cameron Laird Oct 13 '10 at 15:11
  • @lars yeah! just saw that in that case normalize the path first before feeding it to basename. os.path.basename(os.path.normpath('/folderA/folderB/folderC/folderD/')) – Srikar Appalaraju Oct 13 '10 at 15:12
  • UPDATE2 is the best approach I have found so far. – akki May 28 '15 at 9:22
10

Here is my approach:

>>> import os
>>> print os.path.basename(
        os.path.dirname('/folderA/folderB/folderC/folderD/test.py'))
folderD
>>> print os.path.basename(
        os.path.dirname('/folderA/folderB/folderC/folderD/'))
folderD
>>> print os.path.basename(
        os.path.dirname('/folderA/folderB/folderC/folderD'))
folderC
  • What does your approach solve different/better than the aforementioned? – user1767754 Jan 16 '18 at 0:17
  • 1
    Looks better to me, easier to read. – Mike Mitterer Jan 19 '18 at 20:42
6

I was searching for a solution to get the last foldername where the file is located, i just used split two times, to get the right part. It's not the question but google transfered me here.

pathname = "/folderA/folderB/folderC/folderD/filename.py"
head, tail = os.path.split(os.path.split(pathname)[0])
print(head + "   "  + tail)
1

A naive solution(Python 2.5.2+):

s="/path/to/any/folder/orfile"
desired_dir_or_file = s[s.rindex('/',0,-1)+1:-1] if s.endswith('/') else s[s.rindex('/')+1:]
  • why would anyone use this? – Chris_Rands Oct 5 '18 at 9:45
0
path = "/folderA/folderB/folderC/folderD/"
last = path.split('/').pop()
  • 9
    Seriously, use the os.path module. – Anony-Mousse Jan 3 '12 at 11:48
0
str = "/folderA/folderB/folderC/folderD/"
print str.split("/")[-2]
  • he wants folderD. not folderC – Srikar Appalaraju Oct 13 '10 at 15:26
  • 1
    It gives "folderD" because the trailing slash makes the final item in the list be "" – neil Oct 13 '10 at 15:51
  • 19
    Seriously, use the os.path module. – Anony-Mousse Jan 3 '12 at 11:47

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