Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

What is the most elegant way to check if the directory a file is going to be written to exists, and if not, create the directory using Python? Here is what I tried:

filename = "/my/directory/filename.txt"
dir = os.path.dirname(filename)

try:
    os.stat(dir)
except:
    os.mkdir(dir)       

f = file(filename)

Somehow, I missed os.path.exists (thanks kanja, Blair, and Douglas). This is what I have now:

def ensure_dir(f):
    d = os.path.dirname(f)
    if not os.path.exists(d):
        os.makedirs(d)

Is there a flag for "open", that makes this happen automatically?

share|improve this question
6  
In general you might need to account for the case where there's no directory in the filename. On my machine dirname('foo.txt') gives '', which doesn't exist and causes makedirs() to fail. – Brian Hawkins May 26 '10 at 23:30
7  
There is no os.path.mkdir(), only os.mkdir()... – Henry Hu Dec 29 '12 at 21:20
6  
In python 2.7 os.path.mkdir doesn't exist. It's os.mkdir. – drevicko Jul 6 '13 at 6:15
1  
if the path exists one has not only to check if it is a directory and not a regular file or another object (many answers check this) it is also necessary to check if it is writable (I did not find an answer that checked this) – miracle173 Feb 19 '14 at 19:52

16 Answers 16

up vote 1880 down vote accepted

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.

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, if one knew what's what (on my OS, 13 seems to indicate that permission is denied, and 17 that the file exists - it's not clear that that's even remotely portable, but is explored in Is there a cross-platform way of getting information from Python’s OSError). 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.

share|improve this answer
37  
agreed the try/except solution is better – Corey Goldberg Nov 7 '08 at 20:07
9  
Remember that os.path.exists() isn't free. If the normal case is that the directory will be there, then the case where it isn't should be handled as an exception. In other words, try to open and write to your file, catch the OSError exception and, based on errno, do your makedir() and re-try or re-raise. This creates duplication of code unless you wrap the writing in a local method. – Andrew Nov 28 '11 at 19:10
5  
os.path.exists also returns True for a file. I have posted an answer to address this. – A-B-B Feb 14 '13 at 17:32
4  
os.mkdirs() can create unintended folders if a path separator is accidentally left out, the current folder is not as expected, a path element contains the path separator. If you use os.mkdir() these bugs will raise an exception, alerting you to their existence. – drevicko Jul 6 '13 at 6:41
7  
so the actual answer should be stackoverflow.com/questions/273192/… – user3885927 Nov 27 '14 at 0:01

Using try except and the right error code from errno module gets rid of the race condition and is cross-platform:

import os
import errno

def make_sure_path_exists(path):
    try:
        os.makedirs(path)
    except OSError as exception:
        if exception.errno != errno.EEXIST:
            raise

In other words, we try to create the directories, but if they already exist we ignore the error. On the other hand, any other error gets reported. For example, if you create dir 'a' beforehand and remove all permissions from it, you will get an OSError raised with errno.EACCES (Permission denied, error 13).

share|improve this answer
15  
The accepted answer is actually dangerous because it has a race-condition. It is simpler, though, so if you are unaware of the race-condition, or think it won't apply to you, that would be your obvious first pick. – Heikki Toivonen May 7 '12 at 18:23
9  
Raising the exception only when exception.errno != errno.EEXIST will unintentionally ignore the case when path exists but is a non-directory object such as a file. The exception should ideally be raised if the path is a non-directory object. – A-B-B Jan 16 '13 at 17:13
91  
Note that the above code is equivalent to os.makedirs(path,exist_ok=True) – Navin Feb 9 '13 at 15:36
31  
@Navin The exist_ok parameter was introduced in Python 3.2. It is not present in Python 2.x. I will incorporate it into my answer. – A-B-B Feb 14 '13 at 17:46
13  
@HeikkiToivonen Technically speaking, if another program is modifying the directories and files at the same time your program is, your entire program is one giant race condition. What's to stop another program from just deleting this directory after the code creates it and before you actually put files in it? – jpmc26 Apr 29 '14 at 22:41

Python 2.7:

While a naive solution may first use os.path.isdir followed by os.makedirs, the solution below reverses the order of the two operations. In doing so, it handles the possible race condition and also disambiguates files from directories:

try: 
    os.makedirs(path)
except OSError:
    if not os.path.isdir(path):
        raise

Capturing the exception and using errno is not so useful because OSError: [Errno 17] File exists is raised for both files and directories.

Python 3.4+:

os.makedirs(path, exist_ok=True)

If using Python 3.4.1+, an optional exist_ok parameter is available, with a default value of False. It does not exist in Python 2.x up to 2.7. One can therefore simply specify exist_ok=True in Python 3.4.1+ to avoid raising an exception if the directory already exists. There is therefore no need for manual exception handling as with Python 2.7.

share|improve this answer
6  
This answer covers pretty much every special case as far as I can tell. I plan on wrapping this in a "if not os.path.isdir()" though since I expect the directory to exist almost every time and I can avoid the exception that way. – Charles L. Apr 26 '13 at 5:52
2  
@CharlesL. An exception is probably cheaper than the disk IO of the check, if your reason is performance. – jpmc26 Apr 29 '14 at 22:39
1  
@jpmc26 but makedirs does additional stat, umask, lstat when only checking to throw OSError. – kwarunek Sep 19 '14 at 10:31
2  
This is the wrong answer, as it introduces a potential FS race cond. See answer from Aaron Hall. – sleepycal Jan 8 at 15:20
1  
as @sleepycal has said, this suffers from a similar race condition as the accepted answer. If between raising the error and checking os.path.isdir someone else deletes the folder, you will raise the wrong, outdated, and confusing error that folder exists. – farmir Apr 27 at 7:20

I would personally recommend that you use os.path.isdir() to test instead of os.path.exists().

>>> os.path.exists('/tmp/dirname')
True
>>> os.path.exists('/tmp/dirname/filename.etc')
True
>>> os.path.isdir('/tmp/dirname/filename.etc')
False
>>> os.path.isdir('/tmp/fakedirname')
False

If you have:

>>> dir = raw_input(":: ")

And a foolish user input:

:: /tmp/dirname/filename.etc

... You're going to end up with a directory named filename.etc when you pass that argument to os.makedirs() if you test with os.path.exists().

share|improve this answer
7  
If you use 'isdir' only, won't you still have a problem when you attempt to create the directory and a file with the same name already exists? – MrWonderful Feb 18 '14 at 20:07
3  
@MrWonderful The resulting exception when creating a directory over an existing file would correctly reflect the problem back to the caller. – Damian Yerrick Jul 25 '15 at 15:35
    
This is bad advice. See stackoverflow.com/a/5032238/763269. – Chris Johnson Oct 14 '15 at 21:32

Check out os.makedirs: (It makes sure the complete path exists.) To handle the fact the directory might exist, catch OSError.

import os
try:
    os.makedirs('./path/to/somewhere')
except OSError:
    pass
share|improve this answer
13  
with the try/except, you will mask errors in directory creation, in the case when the directory didn't exist but for some reason you can't make it – Blair Conrad Nov 7 '08 at 19:09
1  
This is the only safe way. – Ali Afshar Nov 7 '08 at 20:02
1  
OSError will be raised here if the path is an existing file or directory. I have posted an answer to address this. – A-B-B Jan 16 '13 at 17:33
1  
This is halfway there. You do need to check the sub-error condition of OSError before deciding to ignore it. See stackoverflow.com/a/5032238/763269. – Chris Johnson Oct 14 '15 at 21:31

I have put the following down. It's not totally foolproof though.

import os

dirname = 'create/me'

try:
    os.makedirs(dirname)
except OSError:
    if os.path.exists(dirname):
        # We are nearly safe
        pass
    else:
        # There was an error on creation, so make sure we know about it
        raise

Now as I say, this is not really foolproof, because we have the possiblity of failing to create the directory, and another process creating it during that period.

share|improve this answer
    
4  
I would make one change to make this code nearly ideal: Change "if os.path.exists(dirname)" to "if os.path.isdir(dirname)" That way you catch the case where the dir create failed because it already exists as a file. – Schof Oct 30 '09 at 23:47
1  
I would make one more change. Use "if not os.path.isdir(dirname)". I have posted an answer to address this. – A-B-B Jan 16 '13 at 17:37
1  
Not quite there. See stackoverflow.com/a/5032238/763269. – Chris Johnson Oct 14 '15 at 21:32

Insights on the specifics of this situation

You give a particular file at a certain path and you pull the directory from the file path. Then after making sure you have the directory, you attempt to open a file for reading. To comment on this code:

filename = "/my/directory/filename.txt"
dir = os.path.dirname(filename)

We want to avoid overwriting the builtin function, dir. Also, filepath or perhaps fullfilepath is probably a better semantic name than filename so this would be better written:

import os
filepath = '/my/directory/filename.txt'
directory = os.path.dirname(filepath)

Your end goal is to open this file, you initially state, for writing, but you're essentially approaching this goal (based on your code) like this, which opens the file for reading:

if not os.path.exists(directory):
    os.makedirs(directory)
f = file(filename)

Assuming opening for reading

Why would you make a directory for a file that you expect to be there and be able to read?

Just attempt to open the file.

with open(filepath) as my_file:
    do_stuff(my_file)

If the directory or file isn't there, you'll get an IOError with an associated error number: errno.ENOENT will point to the correct error number regardless of your platform. You can catch it if you want, for example:

import errno
try:
    with open(filepath) as my_file:
        do_stuff(my_file)
except IOError as error:
    if error.errno == errno.ENOENT:
        print 'ignoring error because directory or file is not there'
    else:
        raise

Assuming we're opening for writing

This is probably what you're wanting.

In this case, we probably aren't facing any race conditions. So just do as you were, but note that for writing, you need to open with the w mode (or a to append). It's also a Python best practice to use the context manager for opening files.

import os
if not os.path.exists(directory):
    os.makedirs(directory)
with open(filepath, 'w') as my_file:
    do_stuff(my_file)

However, say we have several Python processes that attempt to put all their data into the same directory. Then we may have contention over creation of the directory. In that case it's best to wrap the makedirs call in a try-except block.

import os
import errno
if not os.path.exists(directory):
    try:
        os.makedirs(directory)
    except OSError as error:
        if error.errno != errno.EEXIST:
            raise
with open(filepath, 'w') as my_file:
    do_stuff(my_file)
share|improve this answer

Try the os.path.exists function

if not os.path.exists(dir):
    os.mkdir(dir)
share|improve this answer
2  
I was going to comment on the question, but do we mean os.mkdir? My python (2.5.2) has no os.path.mkdir.... – Blair Conrad Nov 7 '08 at 19:01
    
There is no os.path.mkdir() method. os.path module implements some useful functions on pathnames. – Serge S. May 21 '12 at 15:14
    
This is terrible advice. See stackoverflow.com/a/5032238/763269. – Chris Johnson Oct 14 '15 at 21:30

In Python 3.4 you can also use the brand new pathlib module:

from pathlib import Path
path = Path("/my/directory/filename.txt")
try:
    if not path.parent.exists():
        path.parent.mkdir(parents=True)
except OSError:
    # handle error; you can also catch specific errors like
    # FileExistsError and so on.
share|improve this answer
1  
It's supported in 2.7 too: pypi.python.org/pypi/pathlib – Janusz Skonieczny Apr 10 '15 at 15:27
    
@JanuszSkonieczny it is not supported in Python 2.7; only it has been backported there. In Python 3.4 it is a built-in module. – Antti Haapala May 13 at 6:20
2  
And what's the difference between supported and backported? It works doesn't it? And yeah, we all get it, it's not a core py 2.7 library, that's why I posted, a link to PYPI listing ;P – Janusz Skonieczny May 13 at 10:14

The relevant python documentation suggests the use of the EAFP coding style (Easier to Ask for Forgiveness than Permission). This means that the code

try:
    os.makedirs(path)
except OSError as exception:
    if exception.errno != errno.EEXIST:
        raise
    else:
        print "\nBE CAREFUL! Directory %s already exists." % path

is better than the alternative

if not os.path.exists(path):
    os.makedirs(path)
else:
    print "\nBE CAREFUL! Directory %s already exists." % path

The documentation suggests this exactly because of the race condition discussed in this thread. In addition, as others mention here, there is a performance advantage in querying once instead of twice the OS. Finally, the argument placed forward, potentially, in favour of the second code in some cases --when the developer knows the environment the application is running-- can only be advocated in the special case that the program has set up a private environment for itself (and other instances of the same program).

Even in that case, this is a bad practice and can lead to long useless debugging. For example, the fact we set the permissions for a directory should not leave us with the impression permissions are set appropriately for our purposes. A parent directory could be mounted with other permissions. In general, a program should always work correctly and the programmer should not expect one specific environment.

share|improve this answer

I saw Heikki Toivonen and A-B-B's answers and thought of this variation. What do you think?

import os
import errno

def make_sure_path_exists(path):
    try:
        os.makedirs(path)
    except OSError as exception:
        if exception.errno != errno.EEXIST or not os.path.isdir(path):
            raise
share|improve this answer

Check if a directory exists and create it if necessary?

The direct answer to this is, assuming a simple situation where you don't expect other users or processes to be messing with your directory:

if not os.path.exists(d):
    os.makedirs(d)

or if making the directory is subject to race conditions (i.e. if after checking the path exists, something else may have already made it) do this:

import errno
try:
    os.makedirs(d)
except OSError as exception:
    if exception.errno != errno.EEXIST:
        raise

But perhaps an even better approach is to sidestep the resource contention issue, by using temporary directories via tempfile:

import tempfile

d = tempfile.mkdtemp()

Here's the essentials from the online doc:

mkdtemp(suffix='', prefix='tmp', dir=None)
    User-callable function to create and return a unique temporary
    directory.  The return value is the pathname of the directory.

    The directory is readable, writable, and searchable only by the
    creating user.

    Caller is responsible for deleting the directory when done with it.
share|improve this answer

For a one-liner solution, you can use IPython.utils.path.ensure_dir_exists():

from IPython.utils.path import ensure_dir_exists
ensure_dir_exists(dir)

From the documentation: Ensure that a directory exists. If it doesn’t exist, try to create it and protect against a race condition if another process is doing the same.

share|improve this answer
import os

if not os.path.isfile("test") and not os.path.isdir("test"):
    os.mkdir("test")
share|improve this answer
1  
This is terrible advice. See stackoverflow.com/a/5032238/763269. – Chris Johnson Oct 14 '15 at 21:33

First check if directory exists or not, if not then it will create it.

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

You can check this os.path.exists and os.makedirs

share|improve this answer
1  
This is bad advice. See stackoverflow.com/a/5032238/763269. – Chris Johnson Oct 14 '15 at 21:33

You can use os.listdir for this:

import os
if 'dirName' in os.listdir('parentFolderPath')
    print('Directory Exists')
share|improve this answer

protected by Ashwini Chaudhary Feb 11 '14 at 14:11

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

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