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I'm in Python, and I have the path of a certain folder. I want to open it using the default folder explorer for that system. For example, if it's a Windows computer, I want to use Explorer, if it's Linux, I want to use Nautilus or whatever is the default there, if it's Mac, I want to use whatever Mac OS's explorer is called.

How can I do that?

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2  
+1 for Mac-thingie. –  TorelTwiddler Jul 8 '11 at 22:42
    
Seems to be 2/3 of a duplicate of stackoverflow.com/questions/3520493/python-show-in-finder –  Ned Deily Jul 9 '11 at 9:51

4 Answers 4

You can use subprocess.

import subprocess
import sys

if sys.platform == 'darwin':
    def openFolder(path):
        subprocess.check_call(['open', '--', path])
elif sys.platform == 'linux2':
    def openFolder(path):
        subprocess.check_call(['gnome-open', '--', path])
elif sys.platform == 'win32':
    def openFolder(path):
        subprocess.check_call(['explorer', path])
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The OS X (darwin) code will attempt to open the file in its default application, not in a Finder window which seems to be what the OP wants. As noted in another answer, you would need to do something different; see stackoverflow.com/questions/3520493/python-show-in-finder . –  Ned Deily Jul 9 '11 at 9:46
    
@Ned: The question states, "I have the path of a certain folder". I assumed, then, that file paths would not be passed to this function. The same limitation applies to the Linux/Gnome code, which will also open files in their default applications. –  Dietrich Epp Jul 9 '11 at 15:41
1  
I would also add 'win32' to the last check –  Alex Sep 19 '12 at 9:59
    
yea, I had to add win32 to the last check. –  shawn Jan 16 at 0:55
    
note it only works to a directory, not a filepath –  shawn Jan 16 at 1:25

I am surprised no one has mentioned using xdg-open for *nix which will work for both files and folders:

import os
import platform
import subprocess

def open_file(path):
    if platform.system() == "Windows":
        os.startfile(path)
    elif platform.system() == "Darwin":
        subprocess.Popen(["open", path])
    else:
        subprocess.Popen(["xdg-open", path])
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How to select(highlight) a file while opening the folder in windows? –  mahe madhi Jan 23 at 11:58
    
@mahemadhi: This should work: subprocess.Popen(["explorer /select,", path]) –  Cas Jan 23 at 17:08

I think you may have to detect the operating system, and then launch the relevant file explorer accordingly.

This could come in userful for OSX's Finder: Python "show in finder"

(The below only works for windows unfortunately)

import webbrowser as wb
wb.open('C:/path/to/folder')

This works on Windows. I assume it would work across other platforms. Can anyone confirm? Confirmed windows only :(

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This doesn't work on Mac. (yes, I changed the path :P) –  LaC Jul 8 '11 at 22:47
    
Does this work on Windows regardless of whether IE is the default browser? –  Ram Rachum Jul 8 '11 at 22:50
    
Argh, you may have to detect the OS then :( –  Acorn Jul 8 '11 at 22:51
    
It gives me OSError: [Errno 9] Bad file descriptor on Linux. –  utdemir Jul 8 '11 at 22:52
    
@cool-RR works fine on Windows 7 x64 with FF5 as default browser. –  Voo Jul 9 '11 at 2:03

The following works on Macintosh.

import webbrowser
webbrowser.open('file:///Users/test/test_folder')

On GNU/Linux, use the absolute path of the folder. (Make sure the folder exists)

import webbrowser
webbrowser.open('/home/test/test_folder')

As pointed out in the other answer, it works on Windows, too.

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