60

I need to setup environment by running which abc command. Is there a Python equivalent function of the which command? This is my code.

cmd = ["which","abc"]
p = subprocess.Popen(cmd, stdout=subprocess.PIPE)
res = p.stdout.readlines()
if len(res) == 0: return False
return True
82

There is distutils.spawn.find_executable() on Python 2.4+

  • 5
    +1, this is cool and part of the standard library! Be aware that it's very limited on Windows - it doesn't parse PATHEXT, instead it assumes it should be searching for a '.exe' extension (missing batch files etc) – orip Mar 28 '14 at 7:58
  • Works perfectly, worth its place in Google results. – Antti Haapala Mar 9 '15 at 18:13
  • 2
    Beware it doesn't check whether file is executable. – temoto Mar 29 '16 at 0:46
  • Exactly, this is not equivalent to the which command. – o9000 Jan 1 '18 at 16:39
  • 1
    This didn't work for me on 2.7 or 3.6. It gave an error that the spawn module wasn't found. – GreenMatt Oct 9 '18 at 19:19
49

I know this is an older question, but if you happen to be using Python 3.3+ you can use shutil.which(cmd). You can find the documentation here. It has the advantage of being in the standard library.

An example would be like so:

>>> import shutil
>>> shutil.which("bash")
'/usr/bin/bash'
12

(Similar question)

See the Twisted implementation: twisted.python.procutils.which

  • This is much better!! – Gonzalo Larralde Mar 8 '11 at 0:40
  • That is pretty nice. – John Percival Hackworth Mar 8 '11 at 0:45
  • Thanks, I'll use it. – jonaprieto Jun 24 '15 at 2:48
  • The thing with that is it requires installing the Twisted module, which has the potential to be painful on Windows (even with Christoph Gohlke's wheels). – Agi Hammerthief Apr 15 '16 at 20:13
12

There's not a command to do that, but you can iterate over environ["PATH"] and look if the file exists, which is actually what which does.

import os

def which(file):
    for path in os.environ["PATH"].split(os.pathsep):
        if os.path.exists(os.path.join(path, file)):
                return os.path.join(path, file)

    return None

Good luck!

  • 1
    You want to be cautious making assumptions about the pathsep character. – John Percival Hackworth Mar 8 '11 at 0:41
  • and path separator, but this is just a quirk to make a point. Good luck! – Gonzalo Larralde Mar 8 '11 at 0:42
  • use os.path.sep instead of / and os.pathsep instead of : – djhaskin987 Dec 30 '14 at 18:43
  • 1
    Do not use '+', use os.path.join. See more up-voted answers for a stdlib implementation (distutils) and a more platform-independent from the Twisted project. – benjaoming Jul 24 '15 at 15:23
  • thanks for os.path.join. The twisted implementation is completely isolated, doesn't seem to have any inter-dependency with the rest of the project, so as an implementation it is much better (than mine at least) – Gonzalo Larralde Jul 28 '15 at 17:44
4

You could try something like the following:

import os
import os.path
def which(filename):
    """docstring for which"""
    locations = os.environ.get("PATH").split(os.pathsep)
    candidates = []
    for location in locations:
        candidate = os.path.join(location, filename)
        if os.path.isfile(candidate):
            candidates.append(candidate)
    return candidates
  • You need to take PATHEXT into account as well – orip Mar 8 '11 at 0:47
  • 2
    On a Windows machine I suspect that you would likely look for the exact name of the file, as opposed to assuming the extensions. With that being said it wouldn't be hard to add an inner loop that iterates over the members of PATHEXT. – John Percival Hackworth Mar 8 '11 at 1:21
3

If you use shell=True, then your command will be run through the system shell, which will automatically find the binary on the path:

p = subprocess.Popen("abc", stdout=subprocess.PIPE, shell=True)
  • Even without shell=True it is looked up in path, but it does not help if you want to find which of the possible commands exists. – Antti Haapala Mar 9 '15 at 18:20
3

This is the equivalent of the which command, which not only checks if the file exists, but also whether it is executable:

import os

def which(file_name):
    for path in os.environ["PATH"].split(os.pathsep):
        full_path = os.path.join(path, file_name)
        if os.path.exists(full_path) and os.access(full_path, os.X_OK):
            return full_path
    return None
0

Here's a one-line version of earlier answers:

import os
which = lambda y: next(filter(lambda x: os.path.isfile(x) and os.access(x,os.X_OK),[x+os.path.sep+y for x in os.getenv("PATH").split(os.pathsep)]),None)

used like so:

>>> which("ls")
'/bin/ls'
  • This doesn't seem to work in Python2, TypeError: list object is not an iterator. – Gibbsoft Aug 2 '18 at 7:43

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