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I have a directory named ./foo in my project which contains an __init__.py file, which contains a method named main().

I'd like to use buildout to create an executable which will execute the main() method (eg: ./bin/foo). I've achieved something similar at the "top-level" of my directory structure using the following buildout.cfg section:

[bar]
recipe = zc.recipe.egg
eggs = ${buildout:eggs}
entry-points = bar=bar:main

This works fine for my ./bar.py file, creating an executable ./bin/bar file. I just can't seem to get it to work for the ./foo/__init__.py file.

How could I achieve the above?

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1 Answer

up vote 1 down vote accepted

Normally, python finds modules and packages via the python path, via the sys.path variable. When buildout creates scripts in the bin/ directory, it'll add to the sys.path variable, listing all the eggs for the given part.

In order for python to find your ./bar.py module, or your ./foo package, the current directory needs to part of python path too. I find it very surprising that a bar.py module is found for bin/bar, while the ./foo package is not found; clearly the python paths for both parts are different. You can look at the top of the generated bin/bar and bin/foo scripts to see what paths have been added to sys.path.

In any case, you can manually add additional paths to sys.path with the extra-paths option in the zc.recipe.egg part. Any path listed there will end up in your generated script. Simply setting this to ${buildout:directory} is enough:

[foo]
recipe = zc.recipe.egg
eggs = ${buildout:eggs}
extra-paths = ${buildout:directory}
entry-points = foo=foo:main
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