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When reading a python-based software, I feel confused about a line of python code: path = sys.modules[self.__class__.__module__].__file__.

I can guess it was trying to return the file name in class file, but I'm not very clear about the exact usage of this. I saved the related code segment into a file named test.py and I'm trying to test it by python test.py, but it does not print anything. How can I test this kind of file?

import os
import sys

class testloadfile:
  def __init__(self, test_path=None):
     if test_path is None:
        path = sys.modules[self.__class__.__module__].__file__
        # print path
        path = os.path.abspath(os.path.join(path, os.pardir))
        # print path
        path = os.path.join(path, "test.r")
        print(path)
        test_path = path

    print("r file loaded")  
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  • Offhand, I do not see here "any sort of main routine" that a command-line(!) execution of python would be expected to pick-up on. Here, you define "a class," and you define a constructor for that class, and it seems that you've also tossed-in a print statement, but I don't see anything here that tells python what is supposed to be done when this .py file is executed from the command line. Therefore, I'm not surprised that it does nothing. :-) "Go thee now, and take a look," at some existing Python (library) code. Notice what they do, and do thee likewise. Jul 6, 2016 at 23:50
  • That is really bizarre... It seems like sys.modules[self.__class__.__module__].__file__ should just give you __file__...
    – mgilson
    Jul 6, 2016 at 23:54
  • What is the proper indentation level of the final print? Is it part of the class definition or part of the __init__() method—because as posted it's an indentation error.
    – martineau
    Jul 7, 2016 at 0:50
  • @Mike: If the final print() is part of the class definition (and not part of the __init__() method), running the script will execute it when the class definition executes. Regardless, it looks like @mgilson is correct, it's just an convoluted way to get __file__.
    – martineau
    Jul 7, 2016 at 1:25
  • Yup ... think I agree with ye ... Jul 7, 2016 at 1:27

1 Answer 1

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Classes in python have a __module__ attribute which contains the name of the module in which the class was defined. Additionally, each module contains a __file__ attribute which has the full path to the .py file.

He is trying to get the file path for the file in which the class was defined but he's not going the best way with doing it, ideally you could just index sys.modules by using __name__:

path = sys.modules[__name__].__file__ 

instead of going through the class (i.e self.__class__.__module__ == __name__). Do note here that if __name__ == "__main__" this will fail because the __main__ module does not have a __file__ attribute defined. You'll need to safeguard against it:

path = sys.modules[__name__].__file__ if __name__ == "__main__" else __file__

where if __name__ == "__main__" then __file__ will contain the path of the file being executed.

Next, add the usual clause in your script in order for it to initialize the object if the script is running as __main__:

if __name__ == "__main__":
    testloadfile()  # initialize

Now, if you call it as the __main__ script with:

python -m test.py 

or if you import it, it will pickup the __file__ attribute, print it and then print the file name.

P.s: Fix the indentation in your final print.

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