1138

In the os module in Python, is there a way to find if a directory exists, something like:

>>> os.direxists(os.path.join(os.getcwd()), 'new_folder')) # in pseudocode
True/False
  • 8
    A word of warning - the highest rated answer might be susceptible to race conditions. You might want to perform os.stat instead, to see if the directory both exists and is a directory at the same moment. – d33tah Feb 11 '14 at 17:09
  • 1
    @d33tah You may have a good point but I don't see a way to use os.stat to tell directory from a file. It raises OSError when the path is invalid, no matter whether it's file or directory. Also, any code after checking is also susceptible to race conditions. – Tomáš Zato - Reinstate Monica Sep 7 '15 at 14:58
  • 4
    @TomášZato: which leads to a conclusion that it's safed to just perform the operation and handle errors. – d33tah Sep 7 '15 at 15:33
  • 2
    @David542 I added a clarification case with tests for precision for "isdir" "exists". I think you would learn anything now. But it could illuminate new people. – GeoStoneMarten Dec 2 '15 at 9:50

13 Answers 13

1728

You're looking for os.path.isdir, or os.path.exists if you don't care whether it's a file or a directory.

Example:

import os
print(os.path.isdir("/home/el"))
print(os.path.exists("/home/el/myfile.txt"))
| improve this answer | |
  • 4
    @syedrakib While parentheses can be used to indicate that an object is callable, that's not useful in Python, since even classes are callable. Also, functions are first-class values in Python, and you can use them without the parentheses notation, like in existing = filter(os.path.isdir(['/lib', '/usr/lib', '/usr/local/lib']) – phihag Mar 30 '13 at 7:38
  • 10
    You can pass functions to other functions, like map, but in the general case, you call functions with arguments and parentheses. Also, there is some typo in your example. presumably you mean filter(os.path.isdir, ['/lib', '/usr/lib', '/usr/local/lib']). – hughdbrown Mar 31 '13 at 23:02
  • 4
    Also, there is os.path.isfile(path) if you only care about whether it is a file. – Nicholas Feb 16 '18 at 18:00
  • 2
    Be aware that on some platforms these will return false if the file/directory exists, but a read permission error also occurs. – cowlinator Dec 5 '18 at 0:39
74

So close! os.path.isdir returns True if you pass in the name of a directory that currently exists. If it doesn't exist or it's not a directory, then it returns False.

| improve this answer | |
70

Python 3.4 introduced the pathlib module into the standard library, which provides an object oriented approach to handle filesystem paths. The is_dir() and exists() methods of a Path object can be used to answer the question:

In [1]: from pathlib import Path

In [2]: p = Path('/usr')

In [3]: p.exists()
Out[3]: True

In [4]: p.is_dir()
Out[4]: True

Paths (and strings) can be joined together with the / operator:

In [5]: q = p / 'bin' / 'vim'

In [6]: q
Out[6]: PosixPath('/usr/bin/vim') 

In [7]: q.exists()
Out[7]: True

In [8]: q.is_dir()
Out[8]: False

Pathlib is also available on Python 2.7 via the pathlib2 module on PyPi.

| improve this answer | |
  • Some explanation would be helpful. Why are you doing "p / 'bin' / 'vim' ? – Nathan Jan 25 at 7:58
  • 1
    @frank I elaborated a bit on the second part of the answer. – joelostblom Jan 25 at 17:50
34

Yes, use os.path.exists().

| improve this answer | |
  • 23
    That doesn't check that the path is a directory. – Kirk Strauser Jan 19 '12 at 21:08
  • 7
    Good call. Others have pointed out that os.path.isdir will accomplish that. – aganders3 Jan 19 '12 at 21:13
  • 3
    If you understand that this doesn't answer the question, why don't you remove the answer? – user1544337 Jul 13 '16 at 20:42
  • 3
    @CamilStaps This question was viewed 354000 times (by now). Answers here are not only for OP, they are for anyone who could come here for whatever reason. aganders3's answer is pertinent even if it does not directly resolve OP's problem. – Gabriel Oct 14 '16 at 17:54
  • 4
    @Gabriel then it should be made clear in the answer what this actually does. – user1544337 Oct 14 '16 at 20:24
21

We can check with 2 built in functions

os.path.isdir("directory")

It will give boolean true the specified directory is available.

os.path.exists("directoryorfile")

It will give boolead true if specified directory or file is available.

To check whether the path is directory;

os.path.isdir("directorypath")

will give boolean true if the path is directory

| improve this answer | |
  • 2
    This is entirely redundant with the older, top answer. – Davis Herring Oct 14 '19 at 1:46
16

Yes use os.path.isdir(path)

| improve this answer | |
10

As in:

In [3]: os.path.exists('/d/temp')
Out[3]: True

Probably toss in a os.path.isdir(...) to be sure.

| improve this answer | |
10

Just to provide the os.stat version (python 2):

import os, stat, errno
def CheckIsDir(directory):
  try:
    return stat.S_ISDIR(os.stat(directory).st_mode)
  except OSError, e:
    if e.errno == errno.ENOENT:
      return False
    raise
| improve this answer | |
7

os provides you with a lot of these capabilities:

import os
os.path.isdir(dir_in) #True/False: check if this is a directory
os.listdir(dir_in)    #gets you a list of all files and directories under dir_in

the listdir will throw an exception if the input path is invalid.

| improve this answer | |
5
#You can also check it get help for you

if not os.path.isdir('mydir'):
    print('new directry has been created')
    os.system('mkdir mydir')
| improve this answer | |
  • 6
    python has builtin functions to create directories, so better use os.makedirs('mydir') instead of os.system(...) – gizzmole Jan 11 '18 at 13:05
  • 9
    You are printing that 'new directory has been created' but you do not know that. What if you do not have permissions to create a directory? You would print 'new directory has been created' but it would not be true. Would it. – Wojciech Jakubas Feb 27 '18 at 15:22
4

There is a convenient Unipath module.

>>> from unipath import Path 
>>>  
>>> Path('/var/log').exists()
True
>>> Path('/var/log').isdir()
True

Other related things you might need:

>>> Path('/var/log/system.log').parent
Path('/var/log')
>>> Path('/var/log/system.log').ancestor(2)
Path('/var')
>>> Path('/var/log/system.log').listdir()
[Path('/var/foo'), Path('/var/bar')]
>>> (Path('/var/log') + '/system.log').isfile()
True

You can install it using pip:

$ pip3 install unipath

It's similar to the built-in pathlib. The difference is that it treats every path as a string (Path is a subclass of the str), so if some function expects a string, you can easily pass it a Path object without a need to convert it to a string.

For example, this works great with Django and settings.py:

# settings.py
BASE_DIR = Path(__file__).ancestor(2)
STATIC_ROOT = BASE_DIR + '/tmp/static'
| improve this answer | |
4

You may also want to create the directory if it's not there.

Source, if it's still there on SO.

=====================================================================

On Python ≥ 3.5, use pathlib.Path.mkdir:

from pathlib import Path
Path("/my/directory").mkdir(parents=True, exist_ok=True)

For older versions of Python, I see two answers with good qualities, each with a small flaw, so I will give my take on it:

Try os.path.exists, and consider os.makedirs for the creation.

import os
if not os.path.exists(directory):
    os.makedirs(directory)

As noted in comments and elsewhere, there's a race condition – if the directory is created between the os.path.exists and the os.makedirs calls, the os.makedirs will fail with an OSError. Unfortunately, blanket-catching OSError and continuing is not foolproof, as it will ignore a failure to create the directory due to other factors, such as insufficient permissions, full disk, etc.

One option would be to trap the OSError and examine the embedded error code (see Is there a cross-platform way of getting information from Python’s OSError):

import os, errno

try:
    os.makedirs(directory)
except OSError as e:
    if e.errno != errno.EEXIST:
        raise

Alternatively, there could be a second os.path.exists, but suppose another created the directory after the first check, then removed it before the second one – we could still be fooled.

Depending on the application, the danger of concurrent operations may be more or less than the danger posed by other factors such as file permissions. The developer would have to know more about the particular application being developed and its expected environment before choosing an implementation.

Modern versions of Python improve this code quite a bit, both by exposing FileExistsError (in 3.3+)...

try:
    os.makedirs("path/to/directory")
except FileExistsError:
    # directory already exists
    pass

...and by allowing a keyword argument to os.makedirs called exist_ok (in 3.2+).

os.makedirs("path/to/directory", exist_ok=True)  # succeeds even if directory exists.
| improve this answer | |
0

Two things

  1. check if the directory exist?
  2. if not, create a directory (optional).
import os
dirpath = "<dirpath>" # Replace the "<dirpath>" with actual directory path.

if os.path.exists(dirpath):
   print("Directory exist")
else: #this is optional if you want to create a directory if doesn't exist.
   os.mkdir(dirpath):
   print("Directory created")
| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.