32

I want to run a program on several platforms (including Mac OS), so I try to keep it as platform independent as possible. I use Windows myself, and I have a line os.startfile(file). That works for me, but not on other platforms (I read in the documentation, I haven't tested for myself).

Is there an equivalent that works for all platforms?

By the way, the file is a .wav file, but I want users to be able to use their standard media player, so they can pause/rewind the file. That's why I use os.startfile(). I might be able to work with libraries that also allow playing/pausing/rewinding media files.

2
68

It appears that a cross-platform file opening module does not yet exist, but you can rely on existing infrastructure of the popular systems. This snippet covers Windows, MacOS and Unix-like systems (Linux, FreeBSD, Solaris...):

import os, sys, subprocess

def open_file(filename):
    if sys.platform == "win32":
        os.startfile(filename)
    else:
        opener = "open" if sys.platform == "darwin" else "xdg-open"
        subprocess.call([opener, filename])
13
  • Thanks, I hope this works. I will accept your answer as soon as I can test the program on other platforms.
    – Lewistrick
    Jun 26 '13 at 15:34
  • For Windows, the quotations around the filename should be omitted. Does this matter for other platforms?
    – Lewistrick
    Jun 26 '13 at 15:37
  • @Lewistrick Without the quotes files with spaces in file or directory name won't work, which is always a bug waiting to happen. I've now edited the answer to simply use os.startfile on Win32, and open/xdg-open elsewhere. Now that Windows is handled separately, the code can use subprocess.call to handle file names with spaces or special characters. (On Windows start is part of cmd, so subprocess.call without shell=True wouldn't work.) Jun 26 '13 at 16:18
  • Thanks! Can I do a similar thing for deleting files? For both Windows and Unix I can use os.remove(), and if I'm right, MacOS uses rm for removing. Can I use subprocess.call(["rm", filename]) in MacOS?
    – Lewistrick
    Jun 27 '13 at 7:42
  • 2
    @Lewistrick os.remove will work on all three OS-es, so I suggest that you stick to that. MacOS is in most lower-level things close to a POSIX system. Jun 27 '13 at 8:52
2

Just use webbrowser.open(filename). it can call os.startfile(), open, xdg-open where appropriate.

Beware, there is a scary text in the docs:

Note that on some platforms, trying to open a filename using this function, may work and start the operating system’s associated program. However, this is neither supported nor portable.

It works fine for me. Test it in your environment.

Look at webbrower's source code to see how much work needs to be done to be portable.

There is also an open issue on Python bug tracker -- Add shutil.open. "portable os.startfile()" interface turned out to be more complex than expected. You could try the submitted patches e.g., shutil.launch().

4
  • This won't work on OS X. On both Python 2.7 and Python 3, this returns True but doesn't actually do anything. May 11 '16 at 22:10
  • @LukeTaylor I believe webbrowser uses open command on OS X. If it doesn't work for you then create a minimal code example and post it as a separate question.
    – jfs
    May 11 '16 at 22:15
  • It's not a big concern for me, I just wanted to let you know. May 11 '16 at 22:22
  • @LukeTaylor without a specific code example that reproduces the issue; it is not very useful. Is it hard to write: python -m webbrowser my.wav and describe what is happening, mention your OS, python versions. That is all.
    – jfs
    May 11 '16 at 22:25
0

It depend what you mean with platform independent. If your question is about how to open anything using the default action of the OS, for example, when you double click on some file to let the OS decide how to open it, then the simple answer is no.

However, to implement this functionality yourself, is very easy, but you need to use a few different methods to accommodate for different OS's. That said, the most forgiving method is to use os.system(WinPathWithArgs) as I have explained in this answer.

0

Try this:

import subprocess

subprocess.Popen(["open", 'directory'])
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1
  • It's working for mac os to open any directory(Folder) Oct 22 at 21:59

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