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I am working in Mac OS X and have been writing simple file/folder copy scripts in Python. Is there a way to drag and drop a folder on top of a Python script icon and pass the file or folder's path as an argument in the script?

Currently, I have an AppleScript droplet (which supports drag and drop) that passes the paths of dropped folders and files to Python. However, I would like to have just one Python script instead of an AppleScript and a Python script.

Any help would be greatly appreciated.

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3 Answers 3

Just use the "Build Applet" utility:

/Developer/Applications/Utilities/MacPython\ 2.5/Build\ Applet.app

and the dropped file paths will be available thru sys.argv.

Note that you may have to use Python2.5 (or a patched version) -- See this note: https://bitbucket.org/ronaldoussoren/py2app/issue/16/argv-emulation-code-needs-rewrite

Quick example -- edit this file and put it on your desktop:

#!/usr/bin/python2.5
import sys
print sys.argv

Control-click on it, and select open with "Build Applet (2.5.4)"

App icon will appear on desktop.

Open Console Utility & clear display.

Drop some files onto App icon -- you'll see the print in the console window.

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Thanks a lot Steven, this is exactly what I need. –  John1538 Nov 22 '11 at 16:25

What you might really like is Mac OS Services. They are Automator workflows which can nicely integrate into the operating system in a context-specifc manner: e.g. you can make your script appear in Finder's context menu when you select a folder.

You can make a service from python script in following way:

  1. Open Automator.app and create a new Service;
  2. On top of workflow block you select what kind of input your application expects (folders is your choice if I understand correctly);
  3. Drag "Run Shell Script" block from left pane into workflow;
  4. Now you can either use default bash shell (/bin/bash) to call your script:

    /full/path/to/your/python /full/path/to/your/script.py $@
    

  5. Or use /usr/bin/python (default python) and paste your code directly into text block;

  6. Don't forget to set Pass input: as arguments in top right corner of the block.

It's a little bit tricky to debug such workflows (as you won't see stdout & stderr). Possible workaround for debugging is to setup custom excepthook and output all exceptions into some plain text file:

import sys, traceback

def excepthook(type, exc, tb):
    with open("error.log", "a") as f:
        traceback.print_exc(file=f)

sys.excepthook = excepthook
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Thanks a lot for your help, Den. –  John1538 Nov 22 '11 at 16:25

The excepthook is a nice python way of solving the stdout/stderr of course, but when you run it with the bash shell, simply redirecting the output to a file is quite a bit simpler. Is there a reason not to do that?

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Are you asking a rhetorical question here? –  Garrett Hyde Oct 27 '12 at 20:03

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