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I've been working on trying to create a filepath directory based on the calling method and the script name of the script that calls the one before it without passing in any information. The idea is that the user should write a very simplistic .py file with very little knowledge of the internal methods of the script being called, and as such nothing unnescesarry should be passed in by the user.

I've managed to get the name of the calling scripts method that is using the testcase with the inspect module, but oddly I've been having some problems getting the name of the actual .py file that called the second .py file from the second py's point of view.

To clarify, this is what I'm trying to do:

---Script1.py---
import Script2

userMethod(self):
    callScript = Script2.Script2Class()
    callScript.execute()


---Script2.py---
class Script2Class(object):

    def execute(self):
        # Other code above this
        self.getPathInfo()

    def getPathInfo(self):
        # Code needed to obtain original scripts filename (the part I've been stumped with)

I haven't been having a lot of luck with the stack, which is how I've been getting the calling methods name: am I just not looking in the right place on the stack, or am I missing something obvious here?

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Another duplicate: Determine where a function was executed? –  Martijn Pieters May 6 '13 at 17:45
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1 Answer

import inspect
# ... your code here
def getPathInfo(self):
    for item in inspect.stack():
        if item and __file__ not in item:
            return item[1]

    return __file__
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2  
I suggest you add some explanation to your code... code-only is (sometimes) good, but code and explanation is (most of times) very good –  Barranka Jul 3 at 16:09
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