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I am creating python files through the course of running a python program. I then want to import these files and run functions that were defined within them. The files I am creating are not stored within my path variables and I'd prefer to keep it that way.

Originally I was calling the execFile(<script_path>) function and then calling the function defined by executing the file. This has a side effect of always entering the if __name__ == "__main__" condition, which with my current setup I can't have happen.

I can't change the generated files, because I've already created 100's of them and don't want to have to revise them all. I can only change the file that calls the generated files.

Basically what I have now...

def func(word):
   print word

if __name__ == "__main__":
   print "must only be called from command line"
   #results in an error when called from
   input = sys.argv[1]

#results in Main Condition being called
func("hello world")
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Unrelated tip: never use backslashes for filenames in code. Write "c:/"; it works in Windows, and is much more consistent for everything that parses paths. –  Glenn Maynard Jul 20 '09 at 22:58

2 Answers 2


m = __import__("File")

This is essentially the same as doing

import File
m = File
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It's indeed the same, and so doesn't solve Halfcent's problem if I read correctly his "files I am creating are not stored within my path variables and I'd prefer to keep it that way" remark. –  Alex Martelli Jul 20 '09 at 23:43
Or just disregard the unhelpful constraint. The files can be put in a subpackage, out of the way of the other modules in your project's root package. –  habnabit Jul 21 '09 at 4:31

If I understand correctly your remarks to man that the file isn't in sys.path and you'd rather keep it that way, this would still work:

import imp

fileobj, pathname, description = imp.find_module('thefile', 'c:/')
moduleobj = imp.load_module('thefile', fileobj, pathname, description)

(Of course, given 'c:/', you can extract the parts 'c:/' and '' with os.path.spliy, and from '' get 'thefile' with os.path.splitext.)

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