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I have a module which accepts arguments from the command line, let's call that module A.

I would like to execute A from another module - B, so that B will set A's arguments-

without executing A as a separate process.

Any way to do that?

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No pretty way if A doesn't cooperate (e.g. by having a main(argv) function). I presume you can't change it to do that? –  delnan Dec 23 '12 at 17:54

3 Answers 3

up vote 3 down vote accepted

That depends on how module A takes it's arguments. If it only looks at sys.argv and has no __main__ test, then you could alter sys.argv:

sys.argv[1:] = ['arg1', 'arg2']

then import module A.

However, if you are writing A yourself, use a function, called from a __main__ test instead:

def main(*args):
    # main code for module

if __name__ == '__main__`:
    import sys
    main(*sys.argv[1:])

then you can import A and call main() directly:

import A
A.main('arg1', 'arg2')

Note that if module A is not your own, and it does have a __main__ test, but does all the work in that if __name__ == '__main__': suite, then you are sunk and have to reproduce that code.

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hah I beat you on this one :P –  Joran Beasley Dec 23 '12 at 17:56
    
@JoranBeasley: well, let's see if being the fastest counts for that much. :-P –  Martijn Pieters Dec 23 '12 at 17:59

Just define a main method in your script so that it can be run from both the command line and as a module:

def main(arg1, arg2):
    # All your code goes here

if __name__ == '__main__':
    main(*sys.argv[1:])

Then you can do either:

$ a.py x y

Or

>>> import a
>>> a.main('x', 'y')
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import sys
sys.argv[1:] = ["My Arguments","other Args"] #dont replace [0] ...since it can let you know which script was actually executed ...

import A
A.run() #or whatever

I think will work ... not really recommended but ....

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