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In python, is there a portable and simple way to test if an executable program exists?

By simple I mean something like the 'which' command which would be just perfect. I don't want to search PATH manually or something involving trying to execute it with Popen & al and see if it fails (that's what I'm doing now, but imagine it's launchmissiles)

EDIT: The answer is 'No', from the different posts, I just have to search path manually ans use Jay's answer (sorry for the bad formulation about 'which' which I understand, but I thought maybe there's something in os.path that does that though named strangely).

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4  
What's wrong with searching the PATH environment variable? What do you think the UNIX 'which' command does? –  Jay Dec 18 '08 at 6:49
10  
Nothing's wrong Jay, but you know, often a function sits there hidden in the libs in front of your eyes, and you just don't know it's there! –  Piotr Lesnicki Dec 18 '08 at 12:39
1  
Is which.py script from stdlib a simple way? –  J.F. Sebastian Dec 19 '08 at 8:11
    
@J.F. - the which.py script incl. with Python depends on 'ls' and some of the other comments indicate that Piotr was looking for a cross-platform answer. –  Jay Dec 22 '08 at 7:50
    
@Jay: Thanks for the comment. I has coreutils installed on Windows so I didn't notice that which.py is unix-specific. –  J.F. Sebastian Dec 22 '08 at 8:12

19 Answers 19

up vote 151 down vote accepted

Easiest way I can think of:

def which(program):
    import os
    def is_exe(fpath):
        return os.path.isfile(fpath) and os.access(fpath, os.X_OK)

    fpath, fname = os.path.split(program)
    if fpath:
        if is_exe(program):
            return program
    else:
        for path in os.environ["PATH"].split(os.pathsep):
            path = path.strip('"')
            exe_file = os.path.join(path, program)
            if is_exe(exe_file):
                return exe_file

    return None

Edit: Updated code sample to include logic for handling case where provided argument is already a full path to the executable, i.e. "which /bin/ls". This mimics the behavior of the UNIX 'which' command.

Edit: Updated to use os.path.isfile() instead of os.path.exists() per comments.

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Thanks Jay, I accept your answer, though for me it answers my question by the negative. No such function exists in the libs, I just have to write it (I admit my formulation was not clear enough in the fact that I know what which does). –  Piotr Lesnicki Dec 18 '08 at 12:48
1  
Jay, if you complete your answer according to mine (to have complete 'w') so I can remove mine. –  Piotr Lesnicki Dec 18 '08 at 13:21
2  
I think you should use os.path.isfile(fpath) instead of: os.path.exists(fpath) –  Giampaolo Rodolà Jul 9 '10 at 11:50
4  
I'd suggest changing "os.path.exists" to "os.path.isfile". Otherwise in Unix this might falsely match a directory with the +x bit set. I also find it useful to add this to the top of the function: import sys; if sys.platform == "win32" and not program.endswith(".exe"): program += ".exe". This way under Windows you can refer to either "calc" or "calc.exe", just like you could in a cmd window. –  Kevin Ivarsen Jul 22 '11 at 15:27
1  
@KevinIvarsen A better option would be looping through the values of the PATHEXT env var because command is as valid as command.com as is script vs script.bat –  Lekensteyn Dec 2 '11 at 8:47

I know this is an ancient question, but you can use distutils.spawn.find_executable. This has been documented since python 2.4 and has existed since python 1.6. Also, Python 3.3 now offers shutil.which().

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4  
On win32, the distutils.spawn.find_executable implementation only looks for .exe rather than using the list of extensions to search for set in %PATHEXT%. That's not great, but it might work for the all the cases someone needs. –  rakslice Oct 3 '13 at 0:42
2  
example usage: from distutils import spawn php_path = spawn.find_executable("php") –  codefreak Dec 3 '13 at 17:17

Python 3.3 now offers shutil.which().

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See os.path module for some useful functions on pathnames. To check if an existing file is executable, use os.access(path, mode), with the os.X_OK mode.

os.X_OK

Value to include in the mode parameter of access() to determine if path can be executed.

EDIT: The suggested which() implementations are missing one clue - using os.path.join() to build full file names.

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Thanks, gimel, so basically I have my answer: no such function exists, I must do It manually. –  Piotr Lesnicki Dec 18 '08 at 12:42
    
You are in the right direction. Look at os.path.join() –  gimel Dec 18 '08 at 13:33
    
right, I ise it usually, never copy-paste blindly.. –  Piotr Lesnicki Dec 18 '08 at 17:37

Just remember to specify the file extension on windows. Otherwise, you have to write a much complicated is_exe for windows using PATHEXT environment variable. You may just want to use FindPath.

OTOH, why are you even bothering to search for the executable? The operating system will do it for you as part of popen call & will raise an exception if the executable is not found. All you need to do is catch the correct exception for given OS. Note that on Windows, subprocess.Popen(exe, shell=True) will fail silently if exe is not found.


Incorporating PATHEXT into the above implementation of which (in Jay's answer):

def which(program):
    def is_exe(fpath):
        return os.path.exists(fpath) and os.access(fpath, os.X_OK)

    def ext_candidates(fpath):
        yield fpath
        for ext in os.environ.get("PATHEXT", "").split(os.pathsep):
            yield fpath + ext

    fpath, fname = os.path.split(program)
    if fpath:
        if is_exe(program):
            return program
    else:
        for path in os.environ["PATH"].split(os.pathsep):
            exe_file = os.path.join(path, program)
            for candidate in ext_candidates(exe_file):
                if is_exe(candidate):
                    return candidate

    return None
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On the basis that it is easier to ask forgiveness than permission I would just try to use it and catch the error (OSError in this case - I checked for file does not exist and file is not executable and they both give OSError).

It helps if the executable has something like a --version flag that is a quick no-op.

import subprocess
myexec = "python2.8"
try:
    subprocess.call([myexec, '--version']
except OSError:
    print "%s not found on path" % myexec

This is not a general solution, but will be the easiest way for a lot of use cases - those where the code needs to look for a single well known executable.

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2  
It's too dangerous even to call --version on a program named launchmissiles! –  xApple Jan 7 '13 at 20:57
1  
+1, I like this approach. EAFP is a golden Python rule. Except perhaps for setting up UI, why would you want to know if launchmissies exists unless you want to launch missiles? Better to execute it and act upon exit status / exceptions –  MestreLion May 23 '13 at 4:37
    
The problem with this method is that output is printed to the console. If you use pipes and shell=True, then the OSError never gets raised –  Humdinger Oct 24 at 17:53

For *nix platforms (Linux and OS X)

This seems to be working for me:

Edited to work on Linux, thanks to Mestreion

def cmd_exists(cmd):
    return subprocess.call("type " + cmd, shell=True, 
        stdout=subprocess.PIPE, stderr=subprocess.PIPE) == 0

What we're doing here is using the builtin command type and checking the exit code. If there's no such command, type will exit with 1 (or a non-zero status code anyway).

The bit about stdout and stderr is just to silence the output of the type command, since we're only interested in the exit status code.

Example usage:

>>> cmd_exists("jsmin")
True
>>> cmd_exists("cssmin")
False
>>> cmd_exists("ls")
True
>>> cmd_exists("dir")
False
>>> cmd_exists("node")
True
>>> cmd_exists("steam")
False
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2  
Are you sure this works? It's a very nice approach, but type is a shell builtin, not an executable file, so subprocess.call() fails here. –  MestreLion May 23 '13 at 4:50
    
Have you tried it or are you just theorizing? It works on my mac anyway. –  hasenj May 23 '13 at 5:54
    
I've tried it in Ubuntu 12.04, it throws OSError: [Errno 2] No such file or directory. Maybe in Mac type is an actual command –  MestreLion May 23 '13 at 6:01
    
After a LOT of testing, I've found how to fix: add shell=True and replace ["type", cmd] for "type " + cmd –  MestreLion May 23 '13 at 6:06
    
using shell=True is mandatory in Linux since type is a shell builtin there (I wonder why it isn't in Mac). But using it with user-supplied arbitrary strings (such as cmd) is a major security risk, as pointed by the docs –  MestreLion May 23 '13 at 6:10

I found something in StackOverflow that solved the problem for me. This works provided the executable has an option (like --help or --version) that outputs something and returns an exit status of zero. See Suppress output in Python calls to executables - the "result" at the end of the code snippet in this answer will be zero if the executable is in path, else it is most likely to be 1.

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If you have bash and a function sh (subprocess.Popen( ... ).communicate() ),
use the bash builtin type:

type -p ls  =>  /bin/ls
type -p nonesuch  =>  ""
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An important question is "Why do you need to test if executable exist?" Maybe you don't? ;-)

Recently I needed this functionality to launch viewer for PNG file. I wanted to iterate over some predefined viewers and run the first that exists. Fortunately, I came across os.startfile. It's much better! Simple, portable and uses the default viewer on the system:

>>> os.startfile('yourfile.png')

Update: I was wrong about os.startfile being portable... It's Windows only. On Mac you have to run open command. And xdg_open on Unix. There's a Python issue on adding Mac and Unix support for os.startfile.

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I know that I'm being a bit of a necromancer here, but I stumbled across this question and the accepted solution didn't work for me for all cases Thought it might be useful to submit anyway. In particular, the "executable" mode detection, and the requirement of supplying the file extension. Furthermore, both python3.3's shutil.which (uses PATHEXT) and python2.4+'s distutils.spawn.find_executable (just tries adding '.exe') only work in a subset of cases.

So I wrote a "super" version (based on the accepted answer, and the PATHEXT suggestion from Suraj). This version of which does the task a bit more thoroughly, and tries a series of "broadphase" breadth-first techniques first, and eventually tries more fine-grained searches over the PATH space:

import os
import sys
import stat
import tempfile


def is_case_sensitive_filesystem():
    tmphandle, tmppath = tempfile.mkstemp()
    is_insensitive = os.path.exists(tmppath.upper())
    os.close(tmphandle)
    os.remove(tmppath)
    return not is_insensitive

_IS_CASE_SENSITIVE_FILESYSTEM = is_case_sensitive_filesystem()


def which(program, case_sensitive=_IS_CASE_SENSITIVE_FILESYSTEM):
    """ Simulates unix `which` command. Returns absolute path if program found """
    def is_exe(fpath):
        """ Return true if fpath is a file we have access to that is executable """
        accessmode = os.F_OK | os.X_OK
        if os.path.exists(fpath) and os.access(fpath, accessmode) and not os.path.isdir(fpath):
            filemode = os.stat(fpath).st_mode
            ret = bool(filemode & stat.S_IXUSR or filemode & stat.S_IXGRP or filemode & stat.S_IXOTH)
            return ret

    def list_file_exts(directory, search_filename=None, ignore_case=True):
        """ Return list of (filename, extension) tuples which match the search_filename"""
        if ignore_case:
            search_filename = search_filename.lower()
        for root, dirs, files in os.walk(path):
            for f in files:
                filename, extension = os.path.splitext(f)
                if ignore_case:
                    filename = filename.lower()
                if not search_filename or filename == search_filename:
                    yield (filename, extension)
            break

    fpath, fname = os.path.split(program)

    # is a path: try direct program path
    if fpath:
        if is_exe(program):
            return program
    elif "win" in sys.platform:
        # isnt a path: try fname in current directory on windows
        if is_exe(fname):
            return program

    paths = [path.strip('"') for path in os.environ.get("PATH", "").split(os.pathsep)]
    exe_exts = [ext for ext in os.environ.get("PATHEXT", "").split(os.pathsep)]
    if not case_sensitive:
        exe_exts = map(str.lower, exe_exts)

    # try append program path per directory
    for path in paths:
        exe_file = os.path.join(path, program)
        if is_exe(exe_file):
            return exe_file

    # try with known executable extensions per program path per directory
    for path in paths:
        filepath = os.path.join(path, program)
        for extension in exe_exts:
            exe_file = filepath+extension
            if is_exe(exe_file):
                return exe_file

    # try search program name with "soft" extension search
    if len(os.path.splitext(fname)[1]) == 0:
        for path in paths:
            file_exts = list_file_exts(path, fname, not case_sensitive)
            for file_ext in file_exts:
                filename = "".join(file_ext)
                exe_file = os.path.join(path, filename)
                if is_exe(exe_file):
                    return exe_file

    return None

Usage looks like this:

>>> which.which("meld")
'C:\\Program Files (x86)\\Meld\\meld\\meld.exe'

The accepted solution did not work for me in this case, since there were files like meld.1, meld.ico, meld.doap, etc also in the directory, one of which were returned instead (presumably since lexicographically first) because the executable test in the accepted answer was incomplete and giving false positives.

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This seems simple enough and works both in python 2 and 3

try: subprocess.check_output('which executable',shell=True)
except: sys.exit('ERROR: executable not found')
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you can tell if a file exists with the os module. an executable in particular seems quite unportable considering lots of things are executable on nix that aren't on windows and vice versa.

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It would seem the obvious choice is "which", parsing the results via popen, but you could simulate it otherwise using the os class. In pseudopython, it would look like this:

for each element r in path:
    for each file f in directory p:
        if f is executable:
           return True
share|improve this answer
    
I would be careful about running a "which" command using os.exec or something like that. Not only is it often slow (if performance is any kind of concern), but if you're using a variable as part of your exec string, security becomes a concern. Somebody could sneak in a "rm -rf /". –  Parappa Dec 18 '08 at 6:25
1  
Which, since we'd be using the os.popen function to run a which command created by the program, doesn't actually apply, no? –  Charlie Martin Dec 18 '08 at 6:28
1  
Thanks, but I'm not sure if 'which' exists on windows and the likes. I wanted essentially to know if something fancy exists in the standart lib –  Piotr Lesnicki Dec 18 '08 at 12:32
    
In standard Windows installations, there is still no which command; there is a UnxUtils version, but you must know/specify the extension, otherwise the program won't be found. –  Tobias Jun 26 '13 at 16:08

So basically you want to find a file in mounted filesystem (not necessarily in PATH directories only) and check if it is executable. This translates to following plan:

  • enumerate all files in locally mounted filesystems
  • match results with name pattern
  • for each file found check if it is executable

I'd say, doing this in a portable way will require lots of computing power and time. Is it really what you need?

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There is a which.py script in a standard Python distribution (e.g. on Windows '\PythonXX\Tools\Scripts\which.py').

EDIT: which.py depends on ls therefore it is not cross-platform.

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None of previous examples do work on all platforms. Usually they fail to work on Windows because you can execute without the file extension and that you can register new extension. For example on Windows if python is well installed it's enough to execute 'file.py' and it will work.

The only valid and portable solution I had was to execute the command and see error code. Any decent executable should have a set of calling parameters that will do nothing.

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You can try the external lib called "sh" (http://amoffat.github.io/sh/).

import sh
print sh.which('ls')  # prints '/bin/ls' depending on your setup
print sh.which('xxx') # prints None
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The best example should be the python bulit-in module shutil.which() in Python 3. The link is https://hg.python.org/cpython/file/default/Lib/shutil.py

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