How do I get the filename without the extension from a path in Python?

python string path

"/path/to/some/file.txt"  →  "file"

I had to scroll pretty far before coming across the clear right answer for modern Python: from pathlib import Path; print(Path("/path/to/some/file.txt").stem) >>> file

you can do the same with os.path as follow os.path.basename("/path/to/some/file.txt").split('.')[0] simple

@walid only if you assume that filenames contain no dots os.path.basename("/path/to/some/file.foo.bar.txt").split('.')[0] will return incorrect results wile pathlib will handle it correctly

@JosVerlinde yeah you are right but that could be fixed with this '.'.join(os.path.basename("/path/to/some/file.foo.bar.txt").split('.')[:-1]) it's better looking and easy to using pathlib but sometimes not worth it to load a whole package for a simple task

preferences and perceptions differ. I prefer simple code with less errors and updates needed.

Ord

Getting the name of the file without the extension:

import os
print(os.path.splitext("/path/to/some/file.txt")[0])

Prints:

/path/to/some/file

Documentation for os.path.splitext.

Important Note: If the filename has multiple dots, only the extension after the last one is removed. For example:

import os
print(os.path.splitext("/path/to/some/file.txt.zip.asc")[0])

Prints:

/path/to/some/file.txt.zip

See other answers below if you need to handle that case.

If this is a common enough operation, perhaps it should merit it's own official command? Something like os.path.filename(path_to_file) instead of os.path.splitext(os.path.basename(path_to_file))[0]

What if the filename contains multiple dots?

For anyone wondering the same as matteok, if there are multiple dots, splitext splits at the last one (so splitext('kitty.jpg.zip') gives ('kitty.jpg', '.zip')).

Note that this code returns the complete file path (without the extension), not just the file name.

yeah, so you'd have to do splitext(basename('/some/path/to/file.txt'))[0] (which i always seem to be doing)

Boris Verkhovskiy

Use .stem from pathlib in Python 3.4+

from pathlib import Path

Path('/root/dir/sub/file.ext').stem

will return

'file'

Note that if your file has multiple extensions .stem will only remove the last extension. For example, Path('file.tar.gz').stem will return 'file.tar'.

This is the recommended way since python 3.

Note that, like os.path solutions, this will only strip one extension (or suffix, as pathlib calls it). Path('a.b.c').stem == 'a.b'

@hoan I think repeatedly calling .with_suffix('') is the way to go. You'd probably want to loop until p.suffix == ''.

It will not work for files with complex extensions: pathlib.Path('backup.tar.gz').stem -> 'backup.tar but expected backup

@pymen it depends on what you define as "extension". How about Fantastic Mr.Fox.mp4?

Alan W. Smith

You can make your own with:

>>> import os
>>> base=os.path.basename('/root/dir/sub/file.ext')
>>> base
'file.ext'
>>> os.path.splitext(base)
('file', '.ext')
>>> os.path.splitext(base)[0]
'file'

Important note: If there is more than one . in the filename, only the last one is removed. For example:

/root/dir/sub/file.ext.zip -> file.ext

/root/dir/sub/file.ext.tar.gz -> file.ext.tar

See below for other answers that address that.

naqushab

>>> print(os.path.splitext(os.path.basename("/path/to/file/hemanth.txt"))[0])
hemanth

+1 for this. 3 exact same answers, but this is the most direct one. You just could have used ` for showing the code, and "/somepath/hermanth.txt" as a path instance.

@hemanth.hm Note that in this statement you provided, os.path.basename is not necessary. os.path.basename should be only used to get the file name from the file path.

Boris Verkhovskiy

In Python 3.4+ you can use the pathlib solution

from pathlib import Path

print(Path(your_path).resolve().stem)

Why do you resolve() the path? Is it really possible to get a path to a file and not have the filename be a part of the path without that? This means that if you're give a path to symlink, you'll return the filename (without the extension) of the file the symlink points to.

One possible reason to use resolve() is to help deal with the multiple dots problem. The answer below about using the index will not work if the path is './foo.tar.gz'

jjisnow

https://docs.python.org/3/library/os.path.html

In python 3 pathlib "The pathlib module offers high-level path objects." so,

>>> from pathlib import Path

>>> p = Path("/a/b/c.txt")
>>> p.with_suffix('')
WindowsPath('/a/b/c')
>>> p.stem
'c'

This is the best python 3 solution for the generic case of removing the extension from a full path. Using stem also removes the parent path. In case you are expecting a double extension (such as bla.tar.gz) then you can even use it twice: p.with_suffix('').with_suffix('').

Dheeraj Chakravarthi

os.path.splitext() won't work if there are multiple dots in the extension.

For example, images.tar.gz

>>> import os
>>> file_path = '/home/dc/images.tar.gz'
>>> file_name = os.path.basename(file_path)
>>> print os.path.splitext(file_name)[0]
images.tar

You can just find the index of the first dot in the basename and then slice the basename to get just the filename without extension.

>>> import os
>>> file_path = '/home/dc/images.tar.gz'
>>> file_name = os.path.basename(file_path)
>>> index_of_dot = file_name.index('.')
>>> file_name_without_extension = file_name[:index_of_dot]
>>> print file_name_without_extension
images

index_of_dot = file_name.index('.') This will be done after getting the basename of the file so that it wont split at .env

Important point, as a series of extensions like this is common. .tar.gz .tar.bz .tar.7z

Note that 'haystack'.index('needle') throws a ValueError exception if the needle (in above case the dot, .) is not found in haystack. Files without any extension exist too.

to solve that problem, use a try-catch, or use str.find() and check for -1. if there's no dot, then just return file_name

佚

佚名

If you want to keep the path to the file and just remove the extension

>>> file = '/root/dir/sub.exten/file.data.1.2.dat'
>>> print ('.').join(file.split('.')[:-1])
/root/dir/sub.exten/file.data.1.2

If you want to split on the last period, use rsplit: '/root/dir/sub.exten/file.data.1.2.dat'.rsplit('.', 1)

mirekphd

As noted by @IceAdor in a comment to @user2902201's solution, rsplit is the simplest solution robust to multiple periods (by limiting the number of splits to maxsplit of just 1 (from the end of the string)).

Here it is spelt out:

file = 'my.report.txt'
print file.rsplit('.', maxsplit=1)[0]

my.report

ScottMcC

Thought I would throw in a variation to the use of the os.path.splitext without the need to use array indexing.

The function always returns a (root, ext) pair so it is safe to use:

root, ext = os.path.splitext(path)

Example:

>>> import os
>>> path = 'my_text_file.txt'
>>> root, ext = os.path.splitext(path)
>>> root
'my_text_file'
>>> ext
'.txt'

os.path.splittext() is Version 3.6+

Devin Jeanpierre

But even when I import os, I am not able to call it path.basename. Is it possible to call it as directly as basename?

import os, and then use os.path.basename

importing os doesn't mean you can use os.foo without referring to os.

though if you wanted to call foo directly you could use from os import foo.

you have a very non-standard version of the os module if it has a member called foo.

It's a placeholder name. (e.g. consider path, or walk).

MEdwin

import os
filename, file_extension =os.path.splitext(os.path.basename('/d1/d2/example.cs'))

filename is 'example'

file_extension is '.cs'

this actually answers the OP's question

Alan W. Smith

The other methods don't remove multiple extensions. Some also have problems with filenames that don't have extensions. This snippet deals with both instances and works in both Python 2 and 3. It grabs the basename from the path, splits the value on dots, and returns the first one which is the initial part of the filename.

import os

def get_filename_without_extension(file_path):
    file_basename = os.path.basename(file_path)
    filename_without_extension = file_basename.split('.')[0]
    return filename_without_extension

Here's a set of examples to run:

example_paths = [
    "FileName", 
    "./FileName",
    "../../FileName",
    "FileName.txt", 
    "./FileName.txt.zip.asc",
    "/path/to/some/FileName",
    "/path/to/some/FileName.txt",
    "/path/to/some/FileName.txt.zip.asc"
]

for example_path in example_paths:
    print(get_filename_without_extension(example_path))

In every case, the value printed is:

FileName

Except for the added value of handling multiple dots, this method is way more fast than Path('/path/to/file.txt').stem. (1,23μs vs 8.39μs)

This doesn't work for filename nvdcve-1.1-2002.json.zip

I split it on fileBasename.split('.json')[0] and it worked

SpinUp

Answers using Pathlib for Several Scenarios

Using Pathlib, it is trivial to get the filename when there is just one extension (or none), but it can be awkward to handle the general case of multiple extensions.

Zero or One extension

from pathlib import Path

pth = Path('./thefile.tar')

fn = pth.stem

print(fn)      # thefile


# Explanation:
# the `stem` attribute returns only the base filename, stripping
# any leading path if present, and strips the extension after
# the last `.`, if present.


# Further tests

eg_paths = ['thefile',
            'thefile.tar',
            './thefile',
            './thefile.tar',
            '../../thefile.tar',
            '.././thefile.tar',
            'rel/pa.th/to/thefile',
            '/abs/path/to/thefile.tar']

for p in eg_paths:
    print(Path(p).stem)  # prints thefile every time

Two or fewer extensions

from pathlib import Path

pth = Path('./thefile.tar.gz')

fn = pth.with_suffix('').stem

print(fn)      # thefile


# Explanation:
# Using the `.with_suffix('')` trick returns a Path object after
# stripping one extension, and then we can simply use `.stem`.


# Further tests

eg_paths += ['./thefile.tar.gz',
             '/abs/pa.th/to/thefile.tar.gz']

for p in eg_paths:
    print(Path(p).with_suffix('').stem)  # prints thefile every time

Any number of extensions (0, 1, or more)

from pathlib import Path

pth = Path('./thefile.tar.gz.bz.7zip')

fn = pth.name
if len(pth.suffixes) > 0:
    s = pth.suffixes[0]
    fn = fn.rsplit(s)[0]

# or, equivalently

fn = pth.name
for s in pth.suffixes:
    fn = fn.rsplit(s)[0]
    break

# or simply run the full loop

fn = pth.name
for _ in pth.suffixes:
    fn = fn.rsplit('.')[0]

# In any case:

print(fn)     # thefile


# Explanation
#
# pth.name     -> 'thefile.tar.gz.bz.7zip'
# pth.suffixes -> ['.tar', '.gz', '.bz', '.7zip']
#
# If there may be more than two extensions, we can test for
# that case with an if statement, or simply attempt the loop
# and break after rsplitting on the first extension instance.
# Alternatively, we may even run the full loop and strip one 
# extension with every pass.


# Further tests

eg_paths += ['./thefile.tar.gz.bz.7zip',
             '/abs/pa.th/to/thefile.tar.gz.bz.7zip']

for p in eg_paths:
    pth = Path(p)
    fn = pth.name
    for s in pth.suffixes:
        fn = fn.rsplit(s)[0]
        break

    print(fn)  # prints thefile every time

Special case in which the first extension is known

For instance, if the extension could be .tar, .tar.gz, .tar.gz.bz, etc; you can simply rsplit the known extension and take the first element:


pth = Path('foo/bar/baz.baz/thefile.tar.gz')

fn = pth.name.rsplit('.tar')[0]

print(fn)      # thefile

佚

佚名

A multiple extension aware procedure. Works for str and unicode paths. Works in Python 2 and 3.

import os

def file_base_name(file_name):
    if '.' in file_name:
        separator_index = file_name.index('.')
        base_name = file_name[:separator_index]
        return base_name
    else:
        return file_name

def path_base_name(path):
    file_name = os.path.basename(path)
    return file_base_name(file_name)

Behavior:

>>> path_base_name('file')
'file'
>>> path_base_name(u'file')
u'file'
>>> path_base_name('file.txt')
'file'
>>> path_base_name(u'file.txt')
u'file'
>>> path_base_name('file.tar.gz')
'file'
>>> path_base_name('file.a.b.c.d.e.f.g')
'file'
>>> path_base_name('relative/path/file.ext')
'file'
>>> path_base_name('/absolute/path/file.ext')
'file'
>>> path_base_name('Relative\\Windows\\Path\\file.txt')
'file'
>>> path_base_name('C:\\Absolute\\Windows\\Path\\file.txt')
'file'
>>> path_base_name('/path with spaces/file.ext')
'file'
>>> path_base_name('C:\\Windows Path With Spaces\\file.txt')
'file'
>>> path_base_name('some/path/file name with spaces.tar.gz.zip.rar.7z')
'file name with spaces'

oak

import os

filename = C:\\Users\\Public\\Videos\\Sample Videos\\wildlife.wmv

This returns the filename without the extension(C:\Users\Public\Videos\Sample Videos\wildlife)

temp = os.path.splitext(filename)[0]

Now you can get just the filename from the temp with

os.path.basename(temp)   #this returns just the filename (wildlife)

Bilal

Very very very simpely no other modules !!!

import os
p = r"C:\Users\bilal\Documents\face Recognition python\imgs\northon.jpg"

# Get the filename only from the initial file path.
filename = os.path.basename(p)

# Use splitext() to get filename and extension separately.
(file, ext) = os.path.splitext(filename)

# Print outcome.
print("Filename without extension =", file)
print("Extension =", ext)

Morten Jensen

import os
path = "a/b/c/abc.txt"
print os.path.splitext(os.path.basename(path))[0]

Zéiksz

On Windows system I used drivername prefix as well, like:

>>> s = 'c:\\temp\\akarmi.txt'
>>> print(os.path.splitext(s)[0])
c:\temp\akarmi

So because I do not need drive letter or directory name, I use:

>>> print(os.path.splitext(os.path.basename(s))[0])
akarmi

M Ganesh

Improving upon @spinup answer:

fn = pth.name
for s in pth.suffixes:
    fn = fn.rsplit(s)[0]
    break
    
print(fn)      # thefile

This works for filenames without extension also

esteban21

I've read the answers, and I notice that there are many good solutions. So, for those who are looking to get either (name or extension), here goes another solution, using the os module, both methods support files with multiple extensions.

import os

def get_file_name(path):
    if not os.path.isdir(path):
        return os.path.splitext(os.path.basename(path))[0].split(".")[0]


def get_file_extension(path):
    extensions = []
    copy_path = path
    while True:
        copy_path, result = os.path.splitext(copy_path)
        if result != '':
            extensions.append(result)
        else:
            break
    extensions.reverse()
    return "".join(extensions)

Note: this solution on windows does not support file names with the "\" character

Community

We could do some simple split / pop magic as seen here (https://stackoverflow.com/a/424006/1250044), to extract the filename (respecting the windows and POSIX differences).

def getFileNameWithoutExtension(path):
  return path.split('\\').pop().split('/').pop().rsplit('.', 1)[0]

getFileNameWithoutExtension('/path/to/file-0.0.1.ext')
# => file-0.0.1

getFileNameWithoutExtension('\\path\\to\\file-0.0.1.ext')
# => file-0.0.1

os.path.splitext()[0] does the same thing.

@CharlesPlager os.path.splitext() won't work if there are multiple dots in the extension. stackoverflow.com/a/37760212/1250044

It works for me: In [72]: os.path.splitext('one.two.three.ext') Out[72]: ('one.two.three', '.ext')

handle

For convenience, a simple function wrapping the two methods from os.path :

def filename(path):
  """Return file name without extension from path.

  See https://docs.python.org/3/library/os.path.html
  """
  import os.path
  b = os.path.split(path)[1]  # path, *filename*
  f = os.path.splitext(b)[0]  # *file*, ext
  #print(path, b, f)
  return f

Tested with Python 3.5.

alessandrio

import os
list = []
def getFileName( path ):
for file in os.listdir(path):
    #print file
    try:
        base=os.path.basename(file)
        splitbase=os.path.splitext(base)
        ext = os.path.splitext(base)[1]
        if(ext):
            list.append(base)
        else:
            newpath = path+"/"+file
            #print path
            getFileName(newpath)
    except:
        pass
return list

getFileName("/home/weexcel-java3/Desktop/backup")
print list

Nkoro Joseph Ahamefula

the easiest way to resolve this is to

import ntpath 
print('Base name is ',ntpath.basename('/path/to/the/file/'))

this saves you time and computation cost.

John Carrell

I didn't look very hard but I didn't see anyone who used regex for this problem.

I interpreted the question as "given a path, return the basename without the extension."

e.g.

"path/to/file.json" => "file"

"path/to/my.file.json" => "my.file"

In Python 2.7, where we still live without pathlib...

def get_file_name_prefix(file_path):
    basename = os.path.basename(file_path)

    file_name_prefix_match = re.compile(r"^(?P<file_name_pre fix>.*)\..*$").match(basename)

    if file_name_prefix_match is None:
        return file_name
    else:
        return file_name_prefix_match.group("file_name_prefix")

get_file_name_prefix("path/to/file.json")
>> file

get_file_name_prefix("path/to/my.file.json")
>> my.file

get_file_name_prefix("path/to/no_extension")
>> no_extension

Ξένη Γήινος

Using pathlib.Path.stem is the right way to go, but here is an ugly solution that is way more efficient than the pathlib based approach.

You have a filepath whose fields are separated by a forward slash /, slashes cannot be present in filenames, so you split the filepath by /, the last field is the filename.

The extension is always the last element of the list created by splitting the filename by dot ., so if you reverse the filename and split by dot once, the reverse of the second element is the file name without extension.

name = path.split('/')[-1][::-1].split('.', 1)[1][::-1]

Performance:

Python 3.9.10 (tags/v3.9.10:f2f3f53, Jan 17 2022, 15:14:21) [MSC v.1929 64 bit (AMD64)]
Type 'copyright', 'credits' or 'license' for more information
IPython 7.28.0 -- An enhanced Interactive Python. Type '?' for help.

In [1]: from pathlib import Path

In [2]: file = 'D:/ffmpeg/ffmpeg.exe'

In [3]: Path(file).stem
Out[3]: 'ffmpeg'

In [4]: file.split('/')[-1][::-1].split('.', 1)[1][::-1]
Out[4]: 'ffmpeg'

In [5]: %timeit Path(file).stem
6.15 µs ± 433 ns per loop (mean ± std. dev. of 7 runs, 100000 loops each)

In [6]: %timeit file.split('/')[-1][::-1].split('.', 1)[1][::-1]
671 ns ± 37.8 ns per loop (mean ± std. dev. of 7 runs, 1000000 loops each)

In [7]:

wolfrevo

What about the following?

import pathlib
filename = '/path/to/dir/stem.ext.tar.gz'
pathlib.Path(filename).name[:-len(''.join(pathlib.Path(filename).suffixes))]
# -> 'stem'

or this equivalent?

pathlib.Path(filename).name[:-sum(map(len, pathlib.Path(filename).suffixes))]

John---

# use pathlib. the below works with compound filetypes and normal ones
source_file = 'spaces.tar.gz.zip.rar.7z'
source_path = pathlib.Path(source_file)
source_path.name.replace(''.join(source_path.suffixes), '')
>>> 'spaces'

despite the many working implementations described above I added this ^ as it uses pathlib only and works for compound filetypes and normal ones

Your answer could be improved with additional supporting information. Please edit to add further details, such as citations or documentation, so that others can confirm that your answer is correct. You can find more information on how to write good answers in the help center.

I need from "/path/to/some/file.txt" to get the /path/to/some/ in a string. How can I achieve that?

How do I get the filename without the extension from a path in Python?

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