11

Below folder structure of my application:

rootfolder
          /subfolder1/
          /subfolder2
          /subfolder3/test.py

my code inside of the subfolder3. But I want to write output of the code to subfolder1.

script_dir = os.path.dirname(__file__)

full_path = os.path.join(script_dir,'/subfolder1/')

I would like to know how can I do this wihout importing full path to directory.

18
  • Use relative paths? Dec 12, 2017 at 22:46
  • Call dirname twice? Dec 12, 2017 at 22:47
  • What's actually tripping you up here? Dec 12, 2017 at 22:47
  • "wihout importing full path to directory". Barring the typo, where are you importing anything? Dec 12, 2017 at 22:47
  • 1
    What do you get when you do: print(os.path.abspath(__file__)) instead?
    – zwer
    Dec 12, 2017 at 23:01

2 Answers 2

12

It sounds like you want something along the lines of

project_root = os.path.dirname(os.path.dirname(__file__))
output_path = os.path.join(project_root, 'subfolder1')

The project_root is set to the folder above your script's parent folder, which matches your description. The output folder then goes to subfolder1 under that.

I would also rephrase my import as

from os.path import dirname, join

That shortens your code to

project_root = dirname(dirname(__file__))
output_path = join(project_root, 'subfolder1')

I find this version to be easier to read.

7
  • Print the intermediate results: __file__, project_root and output_path. Make sure they are correct. Dec 12, 2017 at 23:00
  • all of them under my hand. Really can't understand what is wrong with this. All of them seems true
    – Qaqa Leveo
    Dec 12, 2017 at 23:01
  • I mean show me the printouts. I want to be able to diagnose this. Dec 12, 2017 at 23:01
  • project_root = os.path.dirname(os.path.dirname(__file__)) only returns NameError: name '__file__' is not defined. Am I missing something here?
    – Jakob
    Mar 14, 2023 at 20:03
  • @Jakob. What version of python are you using, and where is the module stored? Mar 14, 2023 at 23:46
-2

The best way to get this done is to turn your project into a module. Python uses an __init__.py file to recognize this setup. So we can simply create an empty __init__.py file at the root directory. The structure would look like:

rootfolder
          /subfolder1/
          /subfolder2
          /subfolder3/test.py
          __init__.py

Once that is done, you can reference any subfolders like the following:

subfolder1/output.txt

Therefore, your script would look something like this:

f = open("subfolder1/output.txt", "w+")
f.write("works!")
f.close()
3
  • 1
    __init__ makes it a package, not a module. You will then need an __init__ in subfolder3 to mark it as a sub-package. None of this, however, will affect where you put your output data. Also, use with to open files. Dec 13, 2017 at 21:32
  • You're right, my fault! Marking subfolder3 as a sub-package isn't needed for this though.
    – ZooM SiX
    Dec 13, 2017 at 23:10
  • The reference won't magically resolve itself unless you run from a very specific directory. That is why OP is using __file__ and why having an __init__ or not having it is totally irrelevant. Dec 13, 2017 at 23:26

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