848

Which Python library can I use to extract filenames from paths, no matter what the operating system or path format could be?

For example, I'd like all of these paths to return me c:

a/b/c/
a/b/c
\a\b\c
\a\b\c\
a\b\c
a/b/../../a/b/c/
a/b/../../a/b/c
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17 Answers 17

841

Using os.path.split or os.path.basename as others suggest won't work in all cases: if you're running the script on Linux and attempt to process a classic windows-style path, it will fail.

Windows paths can use either backslash or forward slash as path separator. Therefore, the ntpath module (which is equivalent to os.path when running on windows) will work for all(1) paths on all platforms.

import ntpath
ntpath.basename("a/b/c")

Of course, if the file ends with a slash, the basename will be empty, so make your own function to deal with it:

def path_leaf(path):
    head, tail = ntpath.split(path)
    return tail or ntpath.basename(head)

Verification:

>>> paths = ['a/b/c/', 'a/b/c', '\\a\\b\\c', '\\a\\b\\c\\', 'a\\b\\c', 
...     'a/b/../../a/b/c/', 'a/b/../../a/b/c']
>>> [path_leaf(path) for path in paths]
['c', 'c', 'c', 'c', 'c', 'c', 'c']


(1) There's one caveat: Linux filenames may contain backslashes. So on linux, r'a/b\c' always refers to the file b\c in the a folder, while on Windows, it always refers to the c file in the b subfolder of the a folder. So when both forward and backward slashes are used in a path, you need to know the associated platform to be able to interpret it correctly. In practice it's usually safe to assume it's a windows path since backslashes are seldom used in Linux filenames, but keep this in mind when you code so you don't create accidental security holes.

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  • 30
    on Windows, os.path just loads the ntpath module internally. Using this module, it is possible to handle the '\\' path separators even on Linux machines. For Linux the posixpath module (resp. os.path) will simplify the path operations to allow only posix style '/' separators. – moooeeeep Dec 5 '11 at 12:27
  • @moooeeeep So we could use Stranac's answer, and it is reliable? ("Using os.path.split or os.path.basename as others suggest won't work in all cases: if you're running the script on Linux and attempt to process a classic windows-style path, it will fail" -- the quote is from Lauritz's post -- and I don't understand, does this warning concerns Stranac's answer, or not). – john c. j. Apr 1 '17 at 20:40
  • 3
    @johnc.j. Only when you need to parse Windows style paths (e.g., r'C:\path\to\file.txt') on a Linux machine, you need to use the ntpath module. Otherwise, you can use the functions from os.path. This is because Linux systems normally allow the use of the backslash characters in filenames (as explained in the answer). – moooeeeep Apr 3 '17 at 7:07
  • 2
    Isn't your solution equivalent to os.path.basename(os.path.normpath(path)) ? – Mr_and_Mrs_D Jun 25 '17 at 13:14
  • 2
    For what it's worth to future visitors to this question, I ran into the situation Lauritz was warning about and his solution was the only one that worked. No finangling with os could output just the filename. So imho, ntpath is the way to go. – Harabeck Jan 19 '18 at 17:40
1317

Actually, there's a function that returns exactly what you want

import os
print(os.path.basename(your_path))

WARNING: When os.path.basename() is used on a POSIX system to get the base name from a Windows styled path (e.g. "C:\\my\\file.txt"), the entire path will be returned.

Example below from interactive python shell running on a Linux host:

Python 3.8.2 (default, Mar 13 2020, 10:14:16)
[GCC 9.3.0] on linux
Type "help", "copyright", "credits" or "license" for more information.
>>> import os
>>> filepath = "C:\\my\\path\\to\\file.txt" # A Windows style file path.
>>> os.path.basename(filepath)
'C:\\my\\path\\to\\file.txt'
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  • 26
    If you want to process paths in OS independent way, then for os.path.basename(u"C:\\temp\\bla.txt") you are expecting to get 'bla.txt' . The question is not about obtaining a valid filename, but extracting the name for a path. – Adi Roiban Jan 25 '14 at 11:07
  • 3
    On my Google search for finding the filename of a path, this answer was the most helpful. My use case is only on Windows anyway. – Bobort Nov 15 '16 at 15:12
  • 2
    os.path.basename(your_path) This worked! I wanted script path: os.path.dirname(os.path.realpath(__file__)) and script name: os.path.basename(os.path.realpath(__file__)). Thanks! – TheWalkingData Feb 21 '17 at 18:23
  • @AdiRoiban Could you please elaborate your comment? I tested it on Windows 7 and I actually get "bla.txt'. Simply saying, I don't see any problem (for myself). – john c. j. Apr 1 '17 at 20:50
  • 11
    @johnc.j. The point is, when you attempted this on Linux, you'd get 'C:\\temp\\bla.txt' instead. – moooeeeep Apr 3 '17 at 6:58
236

os.path.split is the function you are looking for

head, tail = os.path.split("/tmp/d/a.dat")

>>> print(tail)
a.dat
>>> print(head)
/tmp/d
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  • 45
    Just for other users to be careful, this returns "" if the paths ends in "/" or "\" – BuZz Dec 5 '11 at 11:50
  • When I try "C:\Users\Dell\Desktop\ProjectShadow\button\button.py" it returns thi "ProjectShadowuttontton" for everything other than this it return correct result – amitnair92 Jan 19 '17 at 12:38
  • 4
    @amitnair92 - Either do this: r"C:\Users\Dell\Desktop\ProjectShadow\button\button.py" or this: "C:\\Users\\Dell\\Desktop\\ProjectShadow\\button\\button.py" - "\b" is a special character (system 'bell' I think), similar to how \r or \n signify newline/carriage return. Prefixing the string with r"C:\..." means use the given raw input – Bruce Lamond Jan 31 '17 at 0:53
103

In python 3

>>> from pathlib import Path    
>>> Path("/tmp/d/a.dat").name
'a.dat'
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  • 3.4 to 3.6 or later, depending exactly which pathlib items you use. – LightCC Sep 25 '19 at 20:34
  • 12
    can also use Path("some/path/to/file.dat").stem to get the filename without the file extension – s2t2 Nov 14 '19 at 22:51
56
import os
head, tail = os.path.split('path/to/file.exe')

tail is what you want, the filename.

See python os module docs for detail

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  • 13
    Just for other users to be careful, this returns "" if the paths ends in "/" or "\" – BuZz Dec 5 '11 at 11:50
23
import os
file_location = '/srv/volume1/data/eds/eds_report.csv'
file_name = os.path.basename(file_location )  #eds_report.csv
location = os.path.dirname(file_location )    #/srv/volume1/data/eds
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13

In your example you will also need to strip slash from right the right side to return c:

>>> import os
>>> path = 'a/b/c/'
>>> path = path.rstrip(os.sep) # strip the slash from the right side
>>> os.path.basename(path)
'c'

Second level:

>>> os.path.filename(os.path.dirname(path))
'b'

update: I think lazyr has provided the right answer. My code will not work with windows-like paths on unix systems and vice versus with unix-like paths on windows system.

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  • Your answer won't work for r"a\b\c" on linux, nor for "a/b/c" on windows. – Lauritz V. Thaulow Dec 5 '11 at 12:00
  • of course, os.path.basename(path) will only work if os.path.isfile(path) is True. Therefore path = 'a/b/c/' is not a valid filename at all... – moooeeeep Dec 5 '11 at 12:04
  • 1
    @fmaas os.path.basename is purely a string-processing function. It does not care if the file exists or whether it's a file or dir. os.path.basename("a/b/c/") returns "" because of the trailing slash. – Lauritz V. Thaulow Dec 5 '11 at 12:09
  • lazyr you are right! I didn't thought about that. Would it be safe to just do path = path.replace('\\', '/') ? – Ski Dec 5 '11 at 12:12
  • @Skirmantas I suppose, but it doesn't feel right. I think path processing should be done with the built-in tools that were made for the job. There's a lot more to paths than meets the eye. – Lauritz V. Thaulow Dec 5 '11 at 12:22
13
fname = str("C:\Windows\paint.exe").split('\\')[-1:][0]

this will return : paint.exe

change the sep value of the split function regarding your path or OS.

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  • 2
    This is the answer I liked, but why not just do the following? fname = str(path).split('/')[-1] – asultan904 Feb 25 at 18:48
13

If you want to get the filename automatically you can do

import glob

for f in glob.glob('/your/path/*'):
    print(os.path.split(f)[-1])
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9

If your file path not ended with "/" and directories separated by "/" then use the following code. As we know generally path doesn't end with "/".

import os
path_str = "/var/www/index.html"
print(os.path.basename(path_str))

But in some cases like URLs end with "/" then use the following code

import os
path_str = "/home/some_str/last_str/"
split_path = path_str.rsplit("/",1)
print(os.path.basename(split_path[0]))

but when your path sperated by "\" which you generally find in windows paths then you can use the following codes

import os
path_str = "c:\\var\www\index.html"
print(os.path.basename(path_str))

import os
path_str = "c:\\home\some_str\last_str\\"
split_path = path_str.rsplit("\\",1)
print(os.path.basename(split_path[0]))

You can combine both into one function by check OS type and return the result.

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8

This is working for linux and windows as well with standard library

paths = ['a/b/c/', 'a/b/c', '\\a\\b\\c', '\\a\\b\\c\\', 'a\\b\\c',
         'a/b/../../a/b/c/', 'a/b/../../a/b/c']

def path_leaf(path):
    return path.strip('/').strip('\\').split('/')[-1].split('\\')[-1]

[path_leaf(path) for path in paths]

Results:

['c', 'c', 'c', 'c', 'c', 'c', 'c']
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7

Here's a regex-only solution, which seems to work with any OS path on any OS.

No other module is needed, and no preprocessing is needed either :

import re

def extract_basename(path):
  """Extracts basename of a given path. Should Work with any OS Path on any OS"""
  basename = re.search(r'[^\\/]+(?=[\\/]?$)', path)
  if basename:
    return basename.group(0)


paths = ['a/b/c/', 'a/b/c', '\\a\\b\\c', '\\a\\b\\c\\', 'a\\b\\c',
         'a/b/../../a/b/c/', 'a/b/../../a/b/c']

print([extract_basename(path) for path in paths])
# ['c', 'c', 'c', 'c', 'c', 'c', 'c']


extra_paths = ['C:\\', 'alone', '/a/space in filename', 'C:\\multi\nline']

print([extract_basename(path) for path in extra_paths])
# ['C:', 'alone', 'space in filename', 'multi\nline']

Update:

If you only want a potential filename, if present (i.e., /a/b/ is a dir and so is c:\windows\), change the regex to: r'[^\\/]+(?![\\/])$' . For the "regex challenged," this changes the positive forward lookahead for some sort of slash to a negative forward lookahead, causing pathnames that end with said slash to return nothing instead of the last sub-directory in the pathname. Of course there is no guarantee that the potential filename actually refers to a file and for that os.path.is_dir() or os.path.is_file() would need to be employed.

This will match as follows:

/a/b/c/             # nothing, pathname ends with the dir 'c'
c:\windows\         # nothing, pathname ends with the dir 'windows'
c:hello.txt         # matches potential filename 'hello.txt'
~it_s_me/.bashrc    # matches potential filename '.bashrc'
c:\windows\system32 # matches potential filename 'system32', except
                    # that is obviously a dir. os.path.is_dir()
                    # should be used to tell us for sure

The regex can be tested here.

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  • you are using re, why not os module ? – Saurabh Chandra Patel Apr 15 at 5:17
  • @SaurabhChandraPatel it's been a long time. If I remember correctly, regex is used as a cross platform solution in this case. You can process windows file names on a Linux server, for example. – Eric Duminil Apr 15 at 7:21
5

Maybe just my all in one solution without important some new(regard the tempfile for creating temporary files :D )

import tempfile
abc = tempfile.NamedTemporaryFile(dir='/tmp/')
abc.name
abc.name.replace("/", " ").split()[-1] 

Getting the values of abc.name will be a string like this: '/tmp/tmpks5oksk7' So I can replace the / with a space .replace("/", " ") and then call split(). That will return a list and I get the last element of the list with [-1]

No need to get any module imported.

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  • 3
    What if the filename or a directory contains a space ? – kriss Oct 16 '15 at 8:46
  • 2
    What about a direct split("/")[-1] ? – Nan Oct 5 '19 at 7:38
4

I have never seen double-backslashed paths, are they existing? The built-in feature of python module os fails for those. All others work, also the caveat given by you with os.path.normpath():

paths = ['a/b/c/', 'a/b/c', '\\a\\b\\c', '\\a\\b\\c\\', 'a\\b\\c', 
...     'a/b/../../a/b/c/', 'a/b/../../a/b/c', 'a/./b/c', 'a\b/c']
for path in paths:
    os.path.basename(os.path.normpath(path))
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  • 1
    Those are not double backslahes. They are single backslashes, and they need to be escaped. – Eric Duminil Jun 23 '19 at 12:59
3

The Windows separator can be in a Unix filename or Windows Path. The Unix separator can only exist in the Unix path. The presence of a Unix separator indicates a non-Windows path.

The following will strip (cut trailing separator) by the OS specific separator, then split and return the rightmost value. It's ugly, but simple based on the assumption above. If the assumption is incorrect, please update and I will update this response to match the more accurate conditions.

a.rstrip("\\\\" if a.count("/") == 0 else '/').split("\\\\" if a.count("/") == 0 else '/')[-1]

sample code:

b = ['a/b/c/','a/b/c','\\a\\b\\c','\\a\\b\\c\\','a\\b\\c','a/b/../../a/b/c/','a/b/../../a/b/c']

for a in b:

    print (a, a.rstrip("\\" if a.count("/") == 0 else '/').split("\\" if a.count("/") == 0 else '/')[-1])
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  • 1
    Also, feel free to send me pointers on how to format in this venue. Took half a dozen tries to get the sample code in place. – dusc2don May 16 '16 at 14:37
1

For completeness sake, here is the pathlib solution for python 3.2+:

>>> from pathlib import PureWindowsPath

>>> paths = ['a/b/c/', 'a/b/c', '\\a\\b\\c', '\\a\\b\\c\\', 'a\\b\\c', 
...          'a/b/../../a/b/c/', 'a/b/../../a/b/c']

>>> [PureWindowsPath(path).name for path in paths]
['c', 'c', 'c', 'c', 'c', 'c', 'c']

This works on both Windows and Linux.

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1

In both Python 2 and 3, using the module pathlib2:

import posixpath  # to generate unix paths
from pathlib2 import PurePath, PureWindowsPath, PurePosixPath

def path2unix(path, nojoin=True, fromwinpath=False):
    """From a path given in any format, converts to posix path format
    fromwinpath=True forces the input path to be recognized as a Windows path (useful on Unix machines to unit test Windows paths)"""
    if not path:
        return path
    if fromwinpath:
        pathparts = list(PureWindowsPath(path).parts)
    else:
        pathparts = list(PurePath(path).parts)
    if nojoin:
        return pathparts
    else:
        return posixpath.join(*pathparts)

Usage:

In [9]: path2unix('lala/lolo/haha.dat')
Out[9]: ['lala', 'lolo', 'haha.dat']

In [10]: path2unix(r'C:\lala/lolo/haha.dat')
Out[10]: ['C:\\', 'lala', 'lolo', 'haha.dat']

In [11]: path2unix(r'C:\lala/lolo/haha.dat') # works even with malformatted cases mixing both Windows and Linux path separators
Out[11]: ['C:\\', 'lala', 'lolo', 'haha.dat']

With your testcase:

In [12]: testcase = paths = ['a/b/c/', 'a/b/c', '\\a\\b\\c', '\\a\\b\\c\\', 'a\\b\\c',
    ...: ...     'a/b/../../a/b/c/', 'a/b/../../a/b/c']

In [14]: for t in testcase:
    ...:     print(path2unix(t)[-1])
    ...:
    ...:
c
c
c
c
c
c
c

The idea here is to convert all paths into the unified internal representation of pathlib2, with different decoders depending on the platform. Fortunately, pathlib2 includes a generic decoder called PurePath that should work on any path. In case this does not work, you can force the recognition of windows path using fromwinpath=True. This will split the input string into parts, the last one is the leaf you are looking for, hence the path2unix(t)[-1].

If the argument nojoin=False, the path will be joined back, so that the output is simply the input string converted to a Unix format, which can be useful to compare subpaths across platforms.

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