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I've searched and this seems to be a simple question without a simple answer.

I have the file a/b/c.py which would be called with python -m a.b.c. I would like to obtain the value a.b.c in the module level.


USAGE = u'''\
Usage:
    python -m %s -h
''' % (what_do_i_put_here,)

So when I receive the -h option, I display the USAGE without the need to actually write down the actual value in each and every script.

Do I really need to go through inspect to get the desired value?

Thanks.

EDIT: As said, there are answers (I've searched), but not simple answers. Either use inspect, use of traceback, or manipulate __file__ and __package__ and do some substring to get the answer. But nothing as simple as if I had a class in the module, I could just use myClass.__module__ and I would get the answer I want. The use of __name__ is (unfortunately) useless as it's always __main__.

Also, this is in python 2.6 and I cannot use any other versions.

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Does this thread help you? stackoverflow.com/questions/247770/… –  birryree Mar 3 '11 at 16:38
    
There are multiple candidates for duplicates: stackoverflow.com/questions/4288905/…, stackoverflow.com/questions/1450478/… –  André Caron Mar 3 '11 at 17:08
    
I think this is not a duplicate: The, in the previous comments, referenced issues aim to get the path of the executing file on the file system whereas the PO wants to get the current python package + module –  gecco Jan 6 '12 at 8:47

6 Answers 6

up vote 14 down vote accepted
+50

This works for me:

__loader__.fullname

Also if I do python -m b.c from a\ I get 'b.c' as expected.

Not entirely sure what the __loader__ attribute is so let me know if this is no good.

edit: It comes from PEP 302: http://www.python.org/dev/peps/pep-0302/

Interesting snippets from the link:

The load_module() method has a few responsibilities that it must fulfill before it runs any code:

...

  • It should add an __loader__ attribute to the module, set to the loader object. This is mostly for introspection, but can be used for importer-specific extras, for example getting data associated with an importer.

So it looks like it should work fine in all cases.

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This is exactly what I was looking for. It works exactly as I expected. Good job. –  Danosaure Jan 10 '12 at 7:15

I think you're actually looking for the __name__ special variable. From the Python documentation:

Within a module, the module’s name (as a string) is available as the value of the global variable __name__.

If you run a file directly, this name will __main__. However, if you're in a module (as in the case where you're using the -m flag, or any other import), it will be the complete name of the module.

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__name__ will be "main" if it is called with the "-m" flag. –  Danosaure Mar 3 '11 at 18:57

When run with -m, sys.path[0] contains the full path to the module. You could use that to build the name.

source: http://docs.python.org/using/cmdline.html#command-line

Another option may be the __package__ built in variable which is available within modules.

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Thanks I edited my question to specify that I know how to manipulate to get the answer, I was hoping for an easier way without having to validate it myself. –  Danosaure Mar 3 '11 at 19:24

The only way is to do path manipulation with os.getcwd(), os.path, file and whatnot, as you mentioned.

Actually, it could be a good patch to implement for optparse / argparse (which currently replace "%prog" in the usage string with os.path.basename(sys.argv[0]) -- you are using optparse, right? -- ), i.e. another special string like %module.

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I'm still actually using a company package that still use getopt. Module was created back in 2006-2007? –  Danosaure Jan 10 '12 at 7:25

Can't see why there is such a restriction as "python -m a.b.c". Of course, the actual module could be inside some zip or whatever, but I'd rather simplified the whole approach with a wrapper script, which makes sure execution happens in the right context, with right python instance.

The wrapper can contain as little as:

import sys
__import__(sys.argv[1])

Then you can use your favorite method to get the module name for usage.

back to the original requirement. If I understood correctly, the idea is that someone runs a python file in some sub-sub-directory to find out from usage message that it is really a module of some.mega.package.

I think, there is no reliable, generic way to determine if one wants to run c, b.c or a.b.c module, without some file system analysis with certain heuristics (say, finding all __init__.py in the outer directories till the points there are no more __init__.py), and even with the analysis its not 100%.

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I changed my company policy to stop putting scripts in /usr/local/bin that was complicate to clean up or was hard to find who's from what project. So we now keep the utility scripts within their own package. –  Danosaure Jan 10 '12 at 7:22

you should hardcode a.b.c in your help, if you distribute the package as such then that's the way to call it regardless of where a is located in the filesystem, as long as it's on the PYTHONPATH it'll be imported.

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This defies the purpose of my need. The problem of hardcoding is always if I change the name of my file, I need to remember to change the help text. –  Danosaure Jan 10 '12 at 7:18
    
if you change the name of the file all the imports will break so the help text is the lesser of your problems. –  Samus_ Jan 10 '12 at 17:41
    
The script being the entry point, it is not imported by other modules so this problem doesn't apply. –  Danosaure Jan 19 '12 at 3:05
    
that contradicts your original question, in fact if that's the case __name__ == "__main__" works as usual. –  Samus_ Jan 19 '12 at 7:40
    
Sorry to disagree. I don't see how changing the name of my current file will break imports in it. I've been developing for 5 years and changing the name of an entry point (scripts) never broke any of the imports in it. If you have a concrete example, please enlighten me. If you are referring to "relative" imports, I NEVER use them. –  Danosaure Jan 24 '12 at 7:16

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