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Is there a Pythonic way to have only one instance of a program running?

The only reasonable solution I've come up with is trying to run it as a server on some port, then second program trying to bind to same port - fails. But it's not really a great idea, maybe there's something more lightweight than this?

(Take into consideration that program is expected to fail sometimes, i.e. segfault - so things like "lock file" won't work)

Update: the solutions offered are much more complex and less reliant than just having a port occupied with a non-existent server, so I'd have to go with that one.

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Perhaps your life would be easier if you tracked down and fixed the segfault. Not that it's an easy thing to do. – David Locke Dec 19 '08 at 15:53
It's not in my library, it's in python's libxml bindings and extremely shy - fires only once a couple days. – Slava V Dec 20 '08 at 17:51
Python's standard library supports flock(), which is The Right Thing for modern UNIX programs. Opening a port uses a spot in a much more constrained namespace, whereas pidfiles are more complex as you need to check running processes to invalidate them safely; flock has neither problem. – Charles Duffy Dec 20 '08 at 19:02
s/UNIX/linux/ there you go, FTFY. – kaleissin Aug 4 '14 at 17:11

15 Answers 15

up vote 47 down vote accepted

The following code should do the job, it is cross-platform and runs on Python 2.4-3.2. I tested it on Windows, OS X and Linux.

from tendo import singleton
me = singleton.SingleInstance() # will sys.exit(-1) if other instance is running

The latest code version is available Please file bugs here.

You can install tend using one of the following methods:

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Seems to work just fine under Mac OS X, too. – Clinton Blackmore Aug 26 '09 at 2:42
I updated the answer and included a link to the latest version. If you find a bug please submit it to github and I will solve it as soon as possible. – sorin May 10 '11 at 14:42
This syntax didn't work for me on windows under Python 2.6. What worked for me was: 1:from tendo import singleton 2:me = singleton.SingleInstance() – brian Aug 17 '11 at 18:15
Another dependancy for something as trivial as this? Doesn't sound very attractive. – Hugo Aug 10 '12 at 1:55
I'd much rather if this silently exited... it threw an error message of "Another instance is already running, quitting." which was quite noticeable to the user. – ArtOfWarfare Sep 3 '13 at 20:28

Simple, cross-platform solution, found in another question by zgoda:

import fcntl, sys
pid_file = ''
fp = open(pid_file, 'w')
    fcntl.lockf(fp, fcntl.LOCK_EX | fcntl.LOCK_NB)
except IOError:
    # another instance is running

Alot like S.Lott's suggestion, but with the code.

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Out of curiosity: is this really cross-platform? Does it work on Windows? – Joachim Sauer Dec 21 '08 at 14:08
There is no fcntl module on Windows (though the functionality could be emulated). – J.F. Sebastian Dec 21 '08 at 14:25
This is not "cross platform" (and I did not pretend it is). For Windows you have to use mutexes to achieve similar result - but I don't do Windows anymore and I have no code to share. – zgoda Dec 22 '08 at 9:28
The problem here is that if you want to write any data to the pid_file (like the PID), you will lose it. See:… – benno Jul 8 '09 at 2:38
TIP: if you want to wrap this in a function 'fp' must be global or the file will be closed after the function exits. – Casey May 14 '14 at 21:40

I don't know if it's pythonic enough, but in the Java world listening on a defined port is a pretty widely used solution, as it works on all major platforms and doesn't have any problems with crashing programs.

Another advantage of listening to a port is that you could send a command to the running instance. For example when the users starts the program a second time, you could send the running instance a command to tell it to open another window (that's what Firefox does, for example. I don't know if they use TCP ports or named pipes or something like that, 'though).

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I'm sorry, but which way is "that"? – Slava V Dec 19 '08 at 12:49
Sorry, I was refering to listing to a port, I've clarified my answer. – Joachim Sauer Dec 19 '08 at 12:50
+1 to this, specially since it allows me to notify the running instance, so it creates another window, pops up, etc. – Hugo Jun 17 '11 at 3:16
Any example code? – 101 Mar 6 at 6:18

This code is Linux specific ( it uses 'abstract' UNIX domain sockets ) but it is simple and won't leave stale lock files around. I prefer it to the solution above because it doesn't require a specially reserved TCP port.

    import socket
    s = socket.socket(socket.AF_UNIX, socket.SOCK_STREAM)
    ## Create an abstract socket, by prefixing it with null. 
    s.bind( '\0postconnect_gateway_notify_lock') 
except socket.error, e:
    error_code = e.args[0]
    error_string = e.args[1]
    print "Process already running (%d:%s ). Exiting" % ( error_code, error_string) 
    sys.exit (0) 

The unique string postconnect_gateway_notify_lock can be changed to allow multiple programs that need a single instance enforced.

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Roberto, are you sure that after kernel panic or hard reset , file \0postconnect_gateway_notify_lock will not be present at boot up ? In my case AF_UNIX socket file still present after this and this destroys whole idea. Solution above with acquiring lock on specific filename is much reliable in this case. – Daniel Gurianov Nov 12 '13 at 13:02
As noted above, this solution works on Linux but not on Mac OS X. – Bilal and Olga Jul 8 '14 at 21:48

Use a pid file. You have some known location, "/path/to/pidfile" and at startup you do something like this (partially pseudocode because I'm pre-coffee and don't want to work all that hard):

import os, os.path
pidfilePath = """/path/to/pidfile"""
if os.path.exists(pidfilePath):
   pidfile = open(pidfilePath,"r")
   pidString =
   if <pidString is equal to os.getpid()>:
      # something is real weird
      <use ps or pidof to see if the process with pid pidString is still running>
      if  <process with pid == 'pidString' is still running>:
          # the previous server must have crashed
          <log server had crashed>
          <reopen pidfilePath for writing>
    <open pidfilePath for writing>

So, in other words, you're checking if a pidfile exists; if not, write your pid to that file. If the pidfile does exist, then check to see if the pid is the pid of a running process; if so, then you've got another live process running, so just shut down. If not, then the previous process crashed, so log it, and then write your own pid to the file in place of the old one. Then continue.

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This has a race condition. The test-then-write sequence may raise an exception of two programs start almost simultaneously, find no file and try to open for write concurrently. It should raise an exception on one, allowing the other to proceed. – S.Lott Dec 19 '08 at 14:42
Well, I said I'd had no coffee yet. – Charlie Martin Dec 19 '08 at 16:06

This may work.

  1. Attempt create a PID file to a known location. If you fail, someone has the file locked, you're done.

  2. When you finish normally, close and remove the PID file, so someone else can overwrite it.

You can wrap your program in a shell script that removes the PID file even if your program crashes.

You can, also, use the PID file to kill the program if it hangs.

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You already found reply to similar question in another thread, so for completeness sake see how to achieve the same on Windows uning named mutex.

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Never written python before, but this is what I've just implemented in mycheckpoint, to prevent it being started twice or more by crond:

import os
import sys
import fcntl
def run_once():
    global fh


Found Slava-N's suggestion after posting this in another issue ( This one is called as a function, locks the executing scripts file (not a pid file) and maintains the lock until the script ends (normal or error).

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Using a lock-file is a quite common approach on unix. If it crashes, you have to clean up manually. You could stor the PID in the file, and on startup check if there is a process with this PID, overriding the lock-file if not. (However, you also need a lock around the read-file-check-pid-rewrite-file). You will find what you need for getting and checking pid in the os-package. The common way of checking if there exists a process with a given pid, is to send it a non-fatal signal.

Other alternatives could be combining this with flock or posix semaphores.

Opening a network socket, as saua proposed, would probably be the easiest and most portable.

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I'm posting this as an answer because I'm a new user and Stack Overflow won't let me vote yet.

Sorin Sbarnea's solution works for me under OS X, Linux and Windows, and I am grateful for it.

However, tempfile.gettempdir() behaves one way under OS X and Windows and another under other some/many/all(?) *nixes (ignoring the fact that OS X is also Unix!). The difference is important to this code.

OS X and Windows have user-specific temp directories, so a tempfile created by one user isn't visible to another user. By contrast, under many versions of *nix (I tested Ubuntu 9, RHEL 5, OpenSolaris 2008 and FreeBSD 8), the temp dir is /tmp for all users.

That means that when the lockfile is created on a multi-user machine, it's created in /tmp and only the user who creates the lockfile the first time will be able to run the application.

A possible solution is to embed the current username in the name of the lock file.

It's worth noting that the OP's solution of grabbing a port will also misbehave on a multi-user machine.

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For some readers (e.g. me) the desired behaviour is that only one copy can run period, regardless of how many users are involved. So the per-user tmp directories are broken, while the shared /tmp or port lock exhibit desired behaviour. – Jonathan Hartley Jul 24 '13 at 15:47

I use single_process on my gentoo;

pip install single_process


from single_process import single_process

def main():
    print 1

if __name__ == "__main__":


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Fails in Py3. The package seems misconstructed. – Ekevoo Sep 7 at 22:11
@Ekevoo ooh,sigh – gkiwi Sep 21 at 3:36

I keep suspecting there ought to be a good POSIXy solution using process groups, without having to hit the file system, but I can't quite nail it down. Something like:

On startup, your process sends a 'kill -0' to all processes in a particular group. If any such processes exist, it exits. Then it joins the group. No other processes use that group.

However, this has a race condition - multiple processes could all do this at precisely the same time and all end up joining the group and running simultaneously. By the time you've added some sort of mutex to make it watertight, you no longer need the process groups.

This might be acceptable if your process only gets started by cron, once every minute or every hour, but it makes me a bit nervous that it would go wrong precisely on the day when you don't want it to.

I guess this isn't a very good solution after all, unless someone can improve on it?

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I ran into this exact problem last week, and although I did find some good solutions, I decided to make a very simple and clean python package and uploaded it to PyPI. It differs from tendo in that it can lock any string resource name. Although you could certainly lock __file__ to achieve the same effect.

Install with: pip install quicklock

Using it is extremely simple:

[nate@Nates-MacBook-Pro-3 ~/live] python
Python 2.7.6 (default, Sep  9 2014, 15:04:36)
[GCC 4.2.1 Compatible Apple LLVM 6.0 (clang-600.0.39)] on darwin
Type "help", "copyright", "credits" or "license" for more information.
>>> from quicklock import singleton
>>> # Let's create a lock so that only one instance of a script will run
>>> singleton('hello world')
>>> # Let's try to do that again, this should fail
>>> singleton('hello world')
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
  File "/Users/nate/live/gallery/env/lib/python2.7/site-packages/quicklock/", line 47, in singleton
    raise RuntimeError('Resource <{}> is currently locked by <Process {}: "{}">'.format(resource,,
RuntimeError: Resource <hello world> is currently locked by <Process 24801: "python">
>>> # But if we quit this process, we release the lock automatically
>>> ^D
[nate@Nates-MacBook-Pro-3 ~/live] python
Python 2.7.6 (default, Sep  9 2014, 15:04:36)
[GCC 4.2.1 Compatible Apple LLVM 6.0 (clang-600.0.39)] on darwin
Type "help", "copyright", "credits" or "license" for more information.
>>> from quicklock import singleton
>>> singleton('hello world')
>>> # No exception was thrown, we own 'hello world'!

Take a look:

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linux example

This method is based on the creation of a temporary file automatically deleted after you close the application. the program launch we verify the existence of the file; if the file exists ( there is a pending execution) , the program is closed ; otherwise it creates the file and continues the execution of the program.

from tempfile import *
import time
import os
import sys

f = NamedTemporaryFile( prefix='lock01_', delete=True) if not [f  for f in     os.listdir('/tmp') if f.find('lock01_')!=-1] else sys.exit()

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Welcome to Stack Overflow! While this answer may be correct, please add some explanation. Imparting the underlying logic is more important than just giving the code, because it helps the OP and other readers fix this and similar issues themselves. – JasonMc92 Oct 14 at 16:58

I would just do something like:

if commands.getstatusoutput("mkdir /tmp/test")[0]:
    print "Exiting"

And somewhere at the end of my code, I'll remove the directory. mkdir is a atomic and works pretty well here.

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You will never be able to start you program again if it crashed just once. – Stefan Dec 16 '14 at 14:17

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