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Right now I've got a project that has the following layout:

foo/
  __init__.py
  __main__.py
  foo.py

In this case, foo.py is actually the main api file, so developers are meant to do "from foo import foo", but I also wanted to make it so that end users could just run ~$ foo and get an interface.

which, when I do a distutils install, creates /usr/bin/__main__.py because (a) I don't know how to use distutils, [less important] and (b) I am not sure about what is generally considered to be the Right Thing.

As far as I can tell I have three options:

  1. Make distutils smarter, so that setup.py install creates the symlink /usr/bin/foo -> $PYTHONLIB/foo/__main__.py. This is my immediate intuition, and I could probably figure out how to do it, although the things that I'm thinking of doing all feel like hacks and I haven't found anybody talking about this.

  2. Rename __main__.py to just foo before distribution, and modify the call to distutils' setup to be setup(scripts=['foo'], ...). This is pretty similar to (1), except for when it happens, I think.

  3. Just don't include an interface with a library package. I feel like this depends mostly on the size of the library/interface as to whether it makes sense.

I haven't seen very many packages that include a __main__.py, if any, so I'm not sure if people just don't use them or I haven't been using the right packages. The fact that I couldn't find any blog posts or articles dealing with __main__.py and distutils suggests to me that it's not a particularly popular combination, though.

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2 Answers 2

Calling a module __main__.py is a bad idea, since that name has a special meaning. Instead use a main sentinel in __init__.py and create a script that does exec python -m foo.

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my understanding of this is that if my foo/__init__.py has if __name__ == "__main__":\n print 'success.', and I do python -m foo, I should see "success." Instead I get: "foo is a package and cannot be directly executed". Same thing happens if I stick the command in a script. –  quodlibetor Oct 18 '10 at 23:04
    
Well that's silly. Try foo.__init__ instead. –  Ignacio Vazquez-Abrams Oct 18 '10 at 23:06
1  
Also, I thought I was relying on the special characteristics of __main__.py? Unless there are other ones, I thought all it did was to make a directory executable as a script. –  quodlibetor Oct 18 '10 at 23:08
1  
Oh, you're actually wrong about __main__.py. If you have foo/__main__.py and you do python foo it will run the code in __main__. Or at least it does for me. –  quodlibetor Oct 18 '10 at 23:11
1  
According to docs.python.org/release/2.6.2/using/cmdline.html (down below the <script> section) it was changed in 2.5. So, you know, a new thing for you to use? –  quodlibetor Oct 18 '10 at 23:22
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up vote 1 down vote accepted

Combining Ignacio Vazquez-Abrams' answer with some googling that resulted in me finding this article about using _main_.py, I think I'm probably going to go with a layout along the lines of:

foo/
    foo/
        __main__.py
        ...
    scripts/
        foo

where scripts/foo is just

#!/bin/sh
exec python foo "$@"

This seems like it will install cleanly, and let people use my module without installing, just by doing python path/to/foo.

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