1041

How can I find all the files in a directory having the extension .txt in python?

0

26 Answers 26

2853

You can use glob:

import glob, os
os.chdir("/mydir")
for file in glob.glob("*.txt"):
    print(file)

or simply os.listdir:

import os
for file in os.listdir("/mydir"):
    if file.endswith(".txt"):
        print(os.path.join("/mydir", file))

or if you want to traverse directory, use os.walk:

import os
for root, dirs, files in os.walk("/mydir"):
    for file in files:
        if file.endswith(".txt"):
             print(os.path.join(root, file))
27
  • 14
    Using solution #2, How would you create a file or list with that info?
    – Merlin
    Oct 19 '10 at 3:48
  • 78
    @ghostdog74: In my opinion it would more appropriate to write for file in f than for for files in f since what is in the variable is a single filename. Even better would be to change the f to files and then the for loops could become for file in files.
    – martineau
    Oct 26 '10 at 14:18
  • 50
    @computermacgyver: No, file is not a reserved word, just the name of a predefined function, so it's quite possible to use it as a variable name in your own code. Although it's true that generally one should avoid collisions like that, file is a special case because there's hardly ever any need to to use it, so it is often consider an exception to the guideline. If you don't want to do that, PEP8 recommends appending a single underscore to such names, i.e. file_, which you'd have to agree is still quite readable.
    – martineau
    Oct 14 '12 at 19:04
  • 11
    Thanks, martineau, you're absolutely right. I jumped too quickly to conclusions. Oct 15 '12 at 19:53
  • 50
    A more Pythonic way for #2 can be for file in [f for f in os.listdir('/mydir') if f.endswith('.txt')]:
    – ozgur
    Jan 18 '16 at 11:46
310

Use glob.

>>> import glob
>>> glob.glob('./*.txt')
['./outline.txt', './pip-log.txt', './test.txt', './testingvim.txt']
4
  • Not only is this easy, it is also case insensitive. (At least, it is on Windows, as it should be. I'm not sure about other OSes.)
    – Jon Coombs
    Jan 30 '14 at 4:17
  • 38
    Beware that glob can't find files recursively if your python is under 3.5. more inform
    – qun
    Apr 27 '16 at 11:26
  • the best part is you can use regular expression test*.txt Dec 5 '17 at 5:28
  • @JonCoombs nope. At least not on Linux.
    – Karuhanga
    Dec 15 '18 at 17:53
198

Something like that should do the job

for root, dirs, files in os.walk(directory):
    for file in files:
        if file.endswith('.txt'):
            print(file)
4
  • 84
    +1 for naming your variables root, dirs, files instead of r, d, f. Much more readable.
    – Clément
    Jan 4 '13 at 18:31
  • 39
    Note that this is case sensitive (won't match .TXT or .Txt), so you'll probably want to do if file.lower().endswith('.txt'):
    – Jon Coombs
    Jan 30 '14 at 3:17
  • 3
    your answer deals with the subdirectory.
    – Sam Liao
    Mar 6 '15 at 3:34
  • As List Comprehension: text_file_list = [file for root, dirs, files in os.walk(folder) for file in files if file.endswith('.txt')]
    – Nir
    Oct 7 '21 at 9:59
142

Something like this will work:

>>> import os
>>> path = '/usr/share/cups/charmaps'
>>> text_files = [f for f in os.listdir(path) if f.endswith('.txt')]
>>> text_files
['euc-cn.txt', 'euc-jp.txt', 'euc-kr.txt', 'euc-tw.txt', ... 'windows-950.txt']
2
  • 1
    How would i save the path to the text_files? ['path/euc-cn.txt', ... 'path/windows-950.txt']
    – IceQueeny
    Nov 7 '17 at 15:12
  • 7
    You could use os.path.join on each element of text_files. It could be something like text_files = [os.path.join(path, f) for f in os.listdir(path) if f.endswith('.txt')].
    – Seth
    Nov 7 '17 at 21:38
109

You can simply use pathlibs glob 1:

import pathlib

list(pathlib.Path('your_directory').glob('*.txt'))

or in a loop:

for txt_file in pathlib.Path('your_directory').glob('*.txt'):
    # do something with "txt_file"

If you want it recursive you can use .glob('**/*.txt')


1The pathlib module was included in the standard library in python 3.4. But you can install back-ports of that module even on older Python versions (i.e. using conda or pip): pathlib and pathlib2.

4
  • **/*.txt is not supported by older python versions.So I solved this with: foundfiles= subprocess.check_output("ls **/*.txt", shell=True) for foundfile in foundfiles.splitlines(): print foundfile
    – Roman
    Jun 22 '17 at 14:05
  • 1
    @Roman Yes, it was just a showcase what pathlib can do and I already included the Python version requirements. :) But if your approach hasn't been posted already why not just add it as another answer?
    – MSeifert
    Jun 22 '17 at 16:02
  • 1
    yes, posting an answer would have given me better formatting possibilities, definitly. I postet it there because I think this is a more appropiate place for it.
    – Roman
    Jun 23 '17 at 10:24
  • 9
    Note that you can also use rglob if you want to look for items recursively. E.g. .rglob('*.txt') Jun 12 '19 at 13:39
48
import os

path = 'mypath/path' 
files = os.listdir(path)

files_txt = [i for i in files if i.endswith('.txt')]
35

I like os.walk():

import os

for root, dirs, files in os.walk(dir):
    for f in files:
        if os.path.splitext(f)[1] == '.txt':
            fullpath = os.path.join(root, f)
            print(fullpath)

Or with generators:

import os

fileiter = (os.path.join(root, f)
    for root, _, files in os.walk(dir)
    for f in files)
txtfileiter = (f for f in fileiter if os.path.splitext(f)[1] == '.txt')
for txt in txtfileiter:
    print(txt)
1
  • 1
    this is the only answer that gives the full path together with recursive functionality. Oct 4 '20 at 18:10
33

Here's more versions of the same that produce slightly different results:

glob.iglob()

import glob
for f in glob.iglob("/mydir/*/*.txt"): # generator, search immediate subdirectories 
    print f

glob.glob1()

print glob.glob1("/mydir", "*.tx?")  # literal_directory, basename_pattern

fnmatch.filter()

import fnmatch, os
print fnmatch.filter(os.listdir("/mydir"), "*.tx?") # include dot-files
3
  • 3
    For the curious, glob1() is a helper function in the glob module which isn't listed in the Python documentation. There's some inline comments describing what it does in the source file, see .../Lib/glob.py.
    – martineau
    Oct 26 '10 at 14:03
  • 1
    @martineau: glob.glob1() is not public but it is available on Python 2.4-2.7;3.0-3.2; pypy; jython github.com/zed/test_glob1
    – jfs
    Oct 26 '10 at 23:15
  • 1
    Thanks, that's good additional information to have when deciding whether to use a undocumented private function in a module. ;-) Here's a little more. The Python 2.7 version is only 12 lines long and looks like it could easily be extracted from the glob module.
    – martineau
    Oct 27 '10 at 0:30
23

Python v3.5+

Fast method using os.scandir in a recursive function. Searches for all files with a specified extension in folder and sub-folders. It is fast, even for finding 10,000s of files.

I have also included a function to convert the output to a Pandas Dataframe.

import os
import re
import pandas as pd
import numpy as np


def findFilesInFolderYield(path,  extension, containsTxt='', subFolders = True, excludeText = ''):
    """  Recursive function to find all files of an extension type in a folder (and optionally in all subfolders too)

    path:               Base directory to find files
    extension:          File extension to find.  e.g. 'txt'.  Regular expression. Or  'ls\d' to match ls1, ls2, ls3 etc
    containsTxt:        List of Strings, only finds file if it contains this text.  Ignore if '' (or blank)
    subFolders:         Bool.  If True, find files in all subfolders under path. If False, only searches files in the specified folder
    excludeText:        Text string.  Ignore if ''. Will exclude if text string is in path.
    """
    if type(containsTxt) == str: # if a string and not in a list
        containsTxt = [containsTxt]
    
    myregexobj = re.compile('\.' + extension + '$')    # Makes sure the file extension is at the end and is preceded by a .
    
    try:   # Trapping a OSError or FileNotFoundError:  File permissions problem I believe
        for entry in os.scandir(path):
            if entry.is_file() and myregexobj.search(entry.path): # 
    
                bools = [True for txt in containsTxt if txt in entry.path and (excludeText == '' or excludeText not in entry.path)]
    
                if len(bools)== len(containsTxt):
                    yield entry.stat().st_size, entry.stat().st_atime_ns, entry.stat().st_mtime_ns, entry.stat().st_ctime_ns, entry.path
    
            elif entry.is_dir() and subFolders:   # if its a directory, then repeat process as a nested function
                yield from findFilesInFolderYield(entry.path,  extension, containsTxt, subFolders)
    except OSError as ose:
        print('Cannot access ' + path +'. Probably a permissions error ', ose)
    except FileNotFoundError as fnf:
        print(path +' not found ', fnf)

def findFilesInFolderYieldandGetDf(path,  extension, containsTxt, subFolders = True, excludeText = ''):
    """  Converts returned data from findFilesInFolderYield and creates and Pandas Dataframe.
    Recursive function to find all files of an extension type in a folder (and optionally in all subfolders too)

    path:               Base directory to find files
    extension:          File extension to find.  e.g. 'txt'.  Regular expression. Or  'ls\d' to match ls1, ls2, ls3 etc
    containsTxt:        List of Strings, only finds file if it contains this text.  Ignore if '' (or blank)
    subFolders:         Bool.  If True, find files in all subfolders under path. If False, only searches files in the specified folder
    excludeText:        Text string.  Ignore if ''. Will exclude if text string is in path.
    """
    
    fileSizes, accessTimes, modificationTimes, creationTimes , paths  = zip(*findFilesInFolderYield(path,  extension, containsTxt, subFolders))
    df = pd.DataFrame({
            'FLS_File_Size':fileSizes,
            'FLS_File_Access_Date':accessTimes,
            'FLS_File_Modification_Date':np.array(modificationTimes).astype('timedelta64[ns]'),
            'FLS_File_Creation_Date':creationTimes,
            'FLS_File_PathName':paths,
                  })
    
    df['FLS_File_Modification_Date'] = pd.to_datetime(df['FLS_File_Modification_Date'],infer_datetime_format=True)
    df['FLS_File_Creation_Date'] = pd.to_datetime(df['FLS_File_Creation_Date'],infer_datetime_format=True)
    df['FLS_File_Access_Date'] = pd.to_datetime(df['FLS_File_Access_Date'],infer_datetime_format=True)

    return df

ext =   'txt'  # regular expression 
containsTxt=[]
path = 'C:\myFolder'
df = findFilesInFolderYieldandGetDf(path,  ext, containsTxt, subFolders = True)
22

path.py is another alternative: https://github.com/jaraco/path.py

from path import path
p = path('/path/to/the/directory')
for f in p.files(pattern='*.txt'):
    print f
2
  • 1
    Cool, it accept also regular expression in pattern. I'm using for f in p.walk(pattern='*.txt') go through every subfolders
    – Kostanos
    Sep 11 '13 at 18:10
  • 3
    Ya there's also pathlib. You can do something like: list(p.glob('**/*.py')) Jul 12 '17 at 19:28
22

Try this this will find all your files recursively:

import glob, os
os.chdir("H:\\wallpaper")# use whatever directory you want

#double\\ no single \

for file in glob.glob("**/*.txt", recursive = True):
    print(file)
5
  • 1
    not with recursive version (double star: **). Only available in python 3. What I don't like is the chdir part. No need for that. May 17 '19 at 17:41
  • 2
    well, you could use the os library to join the path, e.g., filepath = os.path.join('wallpaper') and then use it as glob.glob(filepath+"**/*.psd", recursive = True), which would yield the same result. Aug 19 '19 at 5:12
  • note that should rename file assignment to something like _file to not conflict with saved type names
    – ganski
    Jul 29 '20 at 21:14
  • I noticed that it is case insensitive (on windows at least). How to make the pattern matching case sensitive?
    – qqqqq
    Apr 1 '21 at 17:14
  • glob acts differently in ipython than in running code and is generally surprising. I have told myself to excise it in the past and keep being stubborn, coming back to it, and paying for it. Jun 16 '21 at 18:14
19

Python has all tools to do this:

import os

the_dir = 'the_dir_that_want_to_search_in'
all_txt_files = filter(lambda x: x.endswith('.txt'), os.listdir(the_dir))
1
  • 1
    If you want all_txt_files to be a list: all_txt_files = list(filter(lambda x: x.endswith('.txt'), os.listdir(the_dir)))
    – Ena
    Jun 11 '18 at 15:39
19

To get all '.txt' file names inside 'dataPath' folder as a list in a Pythonic way:

from os import listdir
from os.path import isfile, join
path = "/dataPath/"
onlyTxtFiles = [f for f in listdir(path) if isfile(join(path, f)) and  f.endswith(".txt")]
print onlyTxtFiles
10

I did a test (Python 3.6.4, W7x64) to see which solution is the fastest for one folder, no subdirectories, to get a list of complete file paths for files with a specific extension.

To make it short, for this task os.listdir() is the fastest and is 1.7x as fast as the next best: os.walk() (with a break!), 2.7x as fast as pathlib, 3.2x faster than os.scandir() and 3.3x faster than glob.
Please keep in mind, that those results will change when you need recursive results. If you copy/paste one method below, please add a .lower() otherwise .EXT would not be found when searching for .ext.

import os
import pathlib
import timeit
import glob

def a():
    path = pathlib.Path().cwd()
    list_sqlite_files = [str(f) for f in path.glob("*.sqlite")]

def b(): 
    path = os.getcwd()
    list_sqlite_files = [f.path for f in os.scandir(path) if os.path.splitext(f)[1] == ".sqlite"]

def c():
    path = os.getcwd()
    list_sqlite_files = [os.path.join(path, f) for f in os.listdir(path) if f.endswith(".sqlite")]

def d():
    path = os.getcwd()
    os.chdir(path)
    list_sqlite_files = [os.path.join(path, f) for f in glob.glob("*.sqlite")]

def e():
    path = os.getcwd()
    list_sqlite_files = [os.path.join(path, f) for f in glob.glob1(str(path), "*.sqlite")]

def f():
    path = os.getcwd()
    list_sqlite_files = []
    for root, dirs, files in os.walk(path):
        for file in files:
            if file.endswith(".sqlite"):
                list_sqlite_files.append( os.path.join(root, file) )
        break



print(timeit.timeit(a, number=1000))
print(timeit.timeit(b, number=1000))
print(timeit.timeit(c, number=1000))
print(timeit.timeit(d, number=1000))
print(timeit.timeit(e, number=1000))
print(timeit.timeit(f, number=1000))

Results:

# Python 3.6.4
0.431
0.515
0.161
0.548
0.537
0.274
2
  • The Python 3.6.5 documentation states : The os.scandir() function returns directory entries along with file attribute information, giving better performance [ than os.listdir() ] for many common use cases. Apr 16 '18 at 8:23
  • I am missing the scaling extent of this test how many files did you use in this test? how do they compare if you scale the number up/down?
    – N4ppeL
    Nov 11 '19 at 12:47
9
import os
import sys 

if len(sys.argv)==2:
    print('no params')
    sys.exit(1)

dir = sys.argv[1]
mask= sys.argv[2]

files = os.listdir(dir); 

res = filter(lambda x: x.endswith(mask), files); 

print res
7

To get an array of ".txt" file names from a folder called "data" in the same directory I usually use this simple line of code:

import os
fileNames = [fileName for fileName in os.listdir("data") if fileName.endswith(".txt")]
6

This code makes my life simpler.

import os
fnames = ([file for root, dirs, files in os.walk(dir)
    for file in files
    if file.endswith('.txt') #or file.endswith('.png') or file.endswith('.pdf')
    ])
for fname in fnames: print(fname)
5

Use fnmatch: https://docs.python.org/2/library/fnmatch.html

import fnmatch
import os

for file in os.listdir('.'):
    if fnmatch.fnmatch(file, '*.txt'):
        print file
4

I suggest you to use fnmatch and the upper method. In this way you can find any of the following:

  1. Name.txt;
  2. Name.TXT;
  3. Name.Txt

.

import fnmatch
import os

    for file in os.listdir("/Users/Johnny/Desktop/MyTXTfolder"):
        if fnmatch.fnmatch(file.upper(), '*.TXT'):
            print(file)
4

Here's one with extend()

types = ('*.jpg', '*.png')
images_list = []
for files in types:
    images_list.extend(glob.glob(os.path.join(path, files)))
1
  • Not for use with .txt :)
    – Efreeto
    Oct 19 '17 at 22:45
4

A copy-pastable solution similar to the one of ghostdog:

def get_all_filepaths(root_path, ext):
    """
    Search all files which have a given extension within root_path.

    This ignores the case of the extension and searches subdirectories, too.

    Parameters
    ----------
    root_path : str
    ext : str

    Returns
    -------
    list of str

    Examples
    --------
    >>> get_all_filepaths('/run', '.lock')
    ['/run/unattended-upgrades.lock',
     '/run/mlocate.daily.lock',
     '/run/xtables.lock',
     '/run/mysqld/mysqld.sock.lock',
     '/run/postgresql/.s.PGSQL.5432.lock',
     '/run/network/.ifstate.lock',
     '/run/lock/asound.state.lock']
    """
    import os
    all_files = []
    for root, dirs, files in os.walk(root_path):
        for filename in files:
            if filename.lower().endswith(ext):
                all_files.append(os.path.join(root, filename))
    return all_files

You can also use yield to create a generator and thus avoid assembling the complete list:

def get_all_filepaths(root_path, ext):
    import os
    for root, dirs, files in os.walk(root_path):
        for filename in files:
            if filename.lower().endswith(ext):
                yield os.path.join(root, filename)
3
  • The main flaw in the @ghostdog answer is case sensitivity. The use of lower() here is critical in many situations. Thanks! But I"m guessing the doctest won't work, right A solution using yield might also be better in many situations.
    – nealmcb
    Jul 15 '21 at 19:09
  • 1
    @nealmcb I don't know how to write a brief doctest for a function that makes use of the local file system 😄 For me, the primary purpose of the docstring is communication to a human. If the docstring helps to understand what the function is doing, it's a good docstring. Jul 15 '21 at 20:58
  • 1
    About yield: Yes, that's a good idea for sure! Adjusting it to use yield is trivial. I would like to keep the answer beginner-friendly which means to avoid yield... maybe I add it later 🤔 Jul 15 '21 at 21:00
3

Functional solution with sub-directories:

from fnmatch import filter
from functools import partial
from itertools import chain
from os import path, walk

print(*chain(*(map(partial(path.join, root), filter(filenames, "*.txt")) for root, _, filenames in walk("mydir"))))
1
  • 15
    Is this code you'd want to maintain in the long run? Oct 25 '14 at 23:30
2

In case the folder contains a lot of files or memory is an constraint, consider using generators:

def yield_files_with_extensions(folder_path, file_extension):
   for _, _, files in os.walk(folder_path):
       for file in files:
           if file.endswith(file_extension):
               yield file

Option A: Iterate

for f in yield_files_with_extensions('.', '.txt'): 
    print(f)

Option B: Get all

files = [f for f in yield_files_with_extensions('.', '.txt')]
1

use Python OS module to find files with specific extension.

the simple example is here :

import os

# This is the path where you want to search
path = r'd:'  

# this is extension you want to detect
extension = '.txt'   # this can be : .jpg  .png  .xls  .log .....

for root, dirs_list, files_list in os.walk(path):
    for file_name in files_list:
        if os.path.splitext(file_name)[-1] == extension:
            file_name_path = os.path.join(root, file_name)
            print file_name
            print file_name_path   # This is the full path of the filter file
0

Many users have replied with os.walk answers, which includes all files but also all directories and subdirectories and their files.

import os


def files_in_dir(path, extension=''):
    """
       Generator: yields all of the files in <path> ending with
       <extension>

       \param   path       Absolute or relative path to inspect,
       \param   extension  [optional] Only yield files matching this,

       \yield              [filenames]
    """


    for _, dirs, files in os.walk(path):
        dirs[:] = []  # do not recurse directories.
        yield from [f for f in files if f.endswith(extension)]

# Example: print all the .py files in './python'
for filename in files_in_dir('./python', '*.py'):
    print("-", filename)

Or for a one off where you don't need a generator:

path, ext = "./python", ext = ".py"
for _, _, dirfiles in os.walk(path):
    matches = (f for f in dirfiles if f.endswith(ext))
    break

for filename in matches:
    print("-", filename)

If you are going to use matches for something else, you may want to make it a list rather than a generator expression:

    matches = [f for f in dirfiles if f.endswith(ext)]
-2

A simple method by using for loop :

import os

dir = ["e","x","e"]

p = os.listdir('E:')  #path

for n in range(len(p)):
   name = p[n]
   myfile = [name[-3],name[-2],name[-1]]  #for .txt
   if myfile == dir :
      print(name)
   else:
      print("nops")

Though this can be made more generalised .

3
  • 4
    very unpythonic way of checking an extension. Unsafe too. What if the name is too short? and why using a list of characters and not strings? May 17 '19 at 17:45
  • what are you trying to do? Sep 10 '21 at 17:23
  • 1
    You are also destroying the built-in function dir assigning a list instead of it.
    – FLAK-ZOSO
    Jan 8 at 8:40

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