558

How do I get a list of all files (and directories) in a given directory in Python?

20 Answers 20

610

This is a way to traverse every file and directory in a directory tree:

import os

for dirname, dirnames, filenames in os.walk('.'):
    # print path to all subdirectories first.
    for subdirname in dirnames:
        print(os.path.join(dirname, subdirname))

    # print path to all filenames.
    for filename in filenames:
        print(os.path.join(dirname, filename))

    # Advanced usage:
    # editing the 'dirnames' list will stop os.walk() from recursing into there.
    if '.git' in dirnames:
        # don't go into any .git directories.
        dirnames.remove('.git')
  • 19
    And if you run this code (as is) from the Python Shell, recall that Ctrl+C will halt output to said shell. ;) – gary Dec 13 '11 at 17:56
  • 40
    This will recursively list files and directories – rds Jan 5 '12 at 9:27
  • You can even edit the dirnames list to prevent it from recursing down some paths. – bugloaf Oct 12 '12 at 20:11
  • 7
    @Clément "When topdown is True, the caller can modify the dirnames list in-place (perhaps using del or slice assignment), and walk() will only recurse into the subdirectories whose names remain in dirnames; this can be used to prune the search, impose a specific order of visiting, or even to inform walk() about directories the caller creates or renames before it resumes walk() again." from docs.python.org/2/library/os.html#os.walk – bugloaf Feb 13 '13 at 18:08
  • The simpler way to ignore some directories is to not add them to dirnames in the first place for subdirname in dirnames: if subdirname != '.git' – smci May 22 '18 at 14:05
529

You can use

os.listdir(path)

For reference and more os functions look here:

  • 1
    well the original question is just vague enough to not know whether they wanted a recursive solution. "all files in a directory" could be interpreted as recursive. – Tommy Dec 10 '15 at 2:01
  • 3
    @Tommy, a “directory” is a clearly defined data structure, and it refers to "ls" rather than "ls -R". Besides, almost all UNIX tools don't work recursively by default. I don't know what the questioner meant but what he wrote was clear. – Torsten Bronger Jul 6 '16 at 13:19
  • The python 3 docs tell you to use os.scandir instead however, since in many cases it allows you to prevent system calls, giving a free speedup (both IPC and IO are slow). – Jappie Kerk Apr 14 '17 at 9:54
  • 5
    listdir gives you the only the filename in the directory, is there a method available to get full path? – greperror Aug 3 '17 at 21:04
  • 1
    @greperror You can use os.path.abspath for getting the full path. Also, to check if a given path is a file, use the os.path.isfile or os.path.isdir. – Aleksandar Apr 1 '18 at 22:10
107

Here's a helper function I use quite often:

import os

def listdir_fullpath(d):
    return [os.path.join(d, f) for f in os.listdir(d)]
  • 2
    Useful to get the full path, thanks for the trick ;) – snakeman Mar 28 '14 at 11:23
  • 3
    A generator would be better. – Robert Siemer Sep 11 '15 at 9:27
  • 1
    @RobertSiemer that depends on the usage. In many cases, a list would be better, but I guess a generator is more versatile since it can be converted to a list. It depends on whether you're looking for, versatility or something a little bit more streamlined. – James Mchugh Aug 9 '18 at 20:02
  • 3
    It's been ten years, but I think I did it this way because os.listdir() returns a list and I was imitating that. – giltay Aug 14 '18 at 13:53
82
import os

for filename in os.listdir("C:\\temp"):
    print  filename
  • 14
    Pass it a Unicode string to get Unicode return value. – Craig McQueen Sep 5 '09 at 22:28
  • 15
    r'C:\temp' is clearer and preferred to "C:\\temp" Rawstrings are preferable to escpaing backslashes. – smci Aug 26 '12 at 2:07
  • 4
    'C:/temp' is even clearer :) – onewhaleid May 12 '17 at 1:51
13

If you need globbing abilities, there's a module for that as well. For example:

import glob
glob.glob('./[0-9].*')

will return something like:

['./1.gif', './2.txt']

See the documentation here.

10

Try this:

import os
for top, dirs, files in os.walk('./'):
    for nm in files:       
        print os.path.join(top, nm)
  • In one line: [top + os.sep + f for top, dirs, files in os.walk('./') for f in files] – J. Peterson Apr 23 '13 at 21:10
8

For files in current working directory without specifying a path

Python 2.7:

import os
os.listdir(os.getcwd())

Python 3.x:

import os
os.listdir()

Thanks to Stam Kaly for comment on python 3.x

  • 4
    os.listdir() lists elements in current directory by default! So no need for os.getcwd() :) – Stam Kaly Jan 20 '17 at 15:42
  • How would I do this? When I use >>>os.listdir() without an argument I get: TypeError: listdir() takes exactly 1 argument (0 given) – Dave Engineer Mar 7 '17 at 9:33
  • 1
    I assume you're running on 2.7. This was added on 3.x – Stam Kaly Mar 7 '17 at 11:44
5

A recursive implementation

import os

def scan_dir(dir):
    for name in os.listdir(dir):
        path = os.path.join(dir, name)
        if os.path.isfile(path):
            print path
        else:
            scan_dir(path)
2

I wrote a long version, with all the options I might need: http://sam.nipl.net/code/python/find.py

I guess it will fit here too:

#!/usr/bin/env python

import os
import sys

def ls(dir, hidden=False, relative=True):
    nodes = []
    for nm in os.listdir(dir):
        if not hidden and nm.startswith('.'):
            continue
        if not relative:
            nm = os.path.join(dir, nm)
        nodes.append(nm)
    nodes.sort()
    return nodes

def find(root, files=True, dirs=False, hidden=False, relative=True, topdown=True):
    root = os.path.join(root, '')  # add slash if not there
    for parent, ldirs, lfiles in os.walk(root, topdown=topdown):
        if relative:
            parent = parent[len(root):]
        if dirs and parent:
            yield os.path.join(parent, '')
        if not hidden:
            lfiles   = [nm for nm in lfiles if not nm.startswith('.')]
            ldirs[:] = [nm for nm in ldirs  if not nm.startswith('.')]  # in place
        if files:
            lfiles.sort()
            for nm in lfiles:
                nm = os.path.join(parent, nm)
                yield nm

def test(root):
    print "* directory listing, with hidden files:"
    print ls(root, hidden=True)
    print
    print "* recursive listing, with dirs, but no hidden files:"
    for f in find(root, dirs=True):
        print f
    print

if __name__ == "__main__":
    test(*sys.argv[1:])
2

Here is another option.

os.scandir(path='.')

It returns an iterator of os.DirEntry objects corresponding to the entries (along with file attribute information) in the directory given by path.

Example:

with os.scandir(path) as it:
    for entry in it:
        if not entry.name.startswith('.'):
            print(entry.name)

Using scandir() instead of listdir() can significantly increase the performance of code that also needs file type or file attribute information, because os.DirEntry objects expose this information if the operating system provides it when scanning a directory. All os.DirEntry methods may perform a system call, but is_dir() and is_file() usually only require a system call for symbolic links; os.DirEntry.stat() always requires a system call on Unix but only requires one for symbolic links on Windows.

Python Docs

2

While os.listdir() is fine for generating a list of file and dir names, frequently you want to do more once you have those names - and in Python3, pathlib makes those other chores simple. Let's take a look and see if you like it as much as I do.

To list dir contents, construct a Path object and grab the iterator:

In [16]: Path('/etc').iterdir()
Out[16]: <generator object Path.iterdir at 0x110853fc0>

If we want just a list of names of things:

In [17]: [x.name for x in Path('/etc').iterdir()]
Out[17]:
['emond.d',
 'ntp-restrict.conf',
 'periodic',

If you want just the dirs:

In [18]: [x.name for x in Path('/etc').iterdir() if x.is_dir()]
Out[18]:
['emond.d',
 'periodic',
 'mach_init.d',

If you want the names of all conf files in that tree:

In [20]: [x.name for x in Path('/etc').glob('**/*.conf')]
Out[20]:
['ntp-restrict.conf',
 'dnsextd.conf',
 'syslog.conf',

If you want a list of conf files in the tree >= 1K:

In [23]: [x.name for x in Path('/etc').glob('**/*.conf') if x.stat().st_size > 1024]
Out[23]:
['dnsextd.conf',
 'pf.conf',
 'autofs.conf',

Resolving relative paths become easy:

In [32]: Path('../Operational Metrics.md').resolve()
Out[32]: PosixPath('/Users/starver/code/xxxx/Operational Metrics.md')

Navigating with a Path is pretty clear (although unexpected):

In [10]: p = Path('.')

In [11]: core = p / 'web' / 'core'

In [13]: [x for x in core.iterdir() if x.is_file()]
Out[13]:
[PosixPath('web/core/metrics.py'),
 PosixPath('web/core/services.py'),
 PosixPath('web/core/querysets.py'),
1

A nice one liner to list only the files recursively. I used this in my setup.py package_data directive:

import os

[os.path.join(x[0],y) for x in os.walk('<some_directory>') for y in x[2]]

I know it's not the answer to the question, but may come in handy

1

For Python 2

#!/bin/python2

import os

def scan_dir(path):
    print map(os.path.abspath, os.listdir(pwd))

For Python 3

For filter and map, you need wrap them with list()

#!/bin/python3

import os

def scan_dir(path):
    print(list(map(os.path.abspath, os.listdir(pwd))))

The recommendation now is that you replace your usage of map and filter with generators expressions or list comprehensions:

#!/bin/python

import os

def scan_dir(path):
    print([os.path.abspath(f) for f in os.listdir(path)])
1

Here is a one line Pythonic version:

import os
dir = 'given_directory_name'
filenames = [os.path.join(os.path.dirname(os.path.abspath(__file__)),dir,i) for i in os.listdir(dir)]

This code lists the full path of all files and directories in the given directory name.

  • Thanks Saleh, but your code didn't worked fully, and the one worked was modified as follows: 'dir = 'given_directory_name' filenames = [os.path.abspath(os.path.join(dir,i)) for i in os.listdir(dir)]' – HassanSh__3571619 Mar 18 '18 at 16:24
0
#import modules
import os

_CURRENT_DIR = '.'


def rec_tree_traverse(curr_dir, indent):
    "recurcive function to traverse the directory"
    #print "[traverse_tree]"

    try :
        dfList = [os.path.join(curr_dir, f_or_d) for f_or_d in os.listdir(curr_dir)]
    except:
        print "wrong path name/directory name"
        return

    for file_or_dir in dfList:

        if os.path.isdir(file_or_dir):
            #print "dir  : ",
            print indent, file_or_dir,"\\"
            rec_tree_traverse(file_or_dir, indent*2)

        if os.path.isfile(file_or_dir):
            #print "file : ",
            print indent, file_or_dir

    #end if for loop
#end of traverse_tree()

def main():

    base_dir = _CURRENT_DIR

    rec_tree_traverse(base_dir," ")

    raw_input("enter any key to exit....")
#end of main()


if __name__ == '__main__':
    main()
  • 5
    This question already has a perfectly good answer, there is no need to answer again – Mike Pennington Nov 23 '12 at 11:57
0

FYI Add a filter of extension or ext file import os

path = '.'
for dirname, dirnames, filenames in os.walk(path):
    # print path to all filenames with extension py.
    for filename in filenames:
        fname_path = os.path.join(dirname, filename)
        fext = os.path.splitext(fname_path)[1]
        if fext == '.py':
            print fname_path
        else:
            continue
0

If figured I'd throw this in. Simple and dirty way to do wildcard searches.

import re
import os

[a for a in os.listdir(".") if re.search("^.*\.py$",a)]
0

Below code will list directories and the files within the dir

def print_directory_contents(sPath):
        import os                                       
        for sChild in os.listdir(sPath):                
            sChildPath = os.path.join(sPath,sChild)
            if os.path.isdir(sChildPath):
                print_directory_contents(sChildPath)
            else:
                print(sChildPath)
0

I know this is an old question. This is a neat way I came across if you are on a liunx machine.

import subprocess
print(subprocess.check_output(["ls", "/"]).decode("utf8"))
0

The one worked with me is kind of a modified version from Saleh answer above.

The code is as follows:

"dir = 'given_directory_name' filenames = [os.path.abspath(os.path.join(dir,i)) for i in os.listdir(dir)]"

protected by jamylak Apr 11 '13 at 8:25

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