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I would like to execute a script work.py in Python, after executing some initialization script init.py.

If I were looking for an interactive session, executing python -i init.py or setting PYTHONSTARTUP=/path/to/init.py would do the trick, but I am looking to execute another script.

Since this is a generic case which occurs often (init.py sets environment and so is the same all of the time), I would highly prefer not referencing init.py from work.py. How could this be done? Would anything change if I needed this from a script instead of from the prompt?

Thank you very much.

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How does work depend on init? Could you just do python -c 'import init; import work' ? -- or maybe less elegantly, python -c 'execfile("init.py"); execfile("work.py")' –  mgilson Jul 9 '12 at 22:46
    
work needs init to be executed before it. What you are suggesting may work (will try it now) but it's hardly ideal -- I need something like this every time I run a python script. I could alias or create a shell command to reference it the usual way, e.g. py work.py where py() would be a defined shell command, but that will cause other issues. I'd much prefer a clean way of always executing same init script if there is one... –  gt6989b Jul 9 '12 at 22:50
    
So, (just to be clear), you want to globally define a script (init.py) to be called prior to anything else when starting up python as if your were doing something like cat init.py main.py | python completely independent of what file main.py actually is? –  mgilson Jul 9 '12 at 22:59
1  

2 Answers 2

up vote 3 down vote accepted

Python has a special script that is run on startup. On my platform it is located at /usr/lib/python2.5/site-packages/sitecustomize.py IIRC. So, you could either put init.py in that directory alongside a sitecustomize.py script that imports it, or just paste the content of init.py in the sitecustomize.py.

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couldn't make it work - put init.py into /path/to/python/site-packages/site-customize.py (directory existed, file did not) and see no changes to the previous state. –  gt6989b Jul 9 '12 at 22:47
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Oops, its sitecustomize.py (without hyphen). Editing answer. –  C0deH4cker Jul 9 '12 at 22:52
    
thank you, that worked like magic. I wish you could do this without hacking though. For now, unless anything qualitatively better appears, I will gladly accept your answer. Thanks for helping me. –  gt6989b Jul 9 '12 at 22:59
    
It looks like sitecustomize.py and usercustomize.py modules are executed not in the same namespace in which interpreter runs subsequent scripts so it's not possible to modify global environment the same way it's possible in the interactive startup file. I'd be glad to be corrected if it's possible. –  Piotr Dobrogost May 1 '13 at 23:11

More generally than in the accepted answer of C0deH4cker, this is discussed in the Python manual in Section 2.2.5 - Cusomization Modules. The basic idea is, to get the location of the special start-up script, one needs to execute the following Python code, e.g. from the interactive session of the interpreter:

>>> import site
>>> site.getusersitepackages()
'/home/user/.local/lib/python3.2/site-packages'

The output should be exactly such a location, in the file sitecustomize.py.

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