2

I have below directory structure:

E:\<somepath>\PythonProject
                        -> logs
                        -> configs
                        -> source
                                -> script.py

PythonProject is my main directory and inside the source dir I have some python script. From the script.py I want to access the config file present in configs. Here I don't want to mention the full path like E:\<somepath>\PythonProject\configs\config.json a I will be deploying this to a system for which I am not aware of the path. So I decided to go with

config_file_path = os.path.join(os.path.dirname(file))

But this gives me path to the source dir which is E:\<somepath>\PythonProject\source and I just want E:\<somepath>\PythonProject so that I can later add configs\config.json to access the path to config file.

How can I do this. Thanks

1

one way:

import os 

config_file_path = os.path.join(os.path.dirname(os.path.dirname(__file__)), 'configs\config.json')

print(config_file_path)

or (you will need to pip install pathlib):

from pathlib import Path

dir = Path(__file__).parents[1]
config_file_path = os.path.join(dir, 'configs/config.json')

print(config_file_path)

third way:

from os.path import dirname as up

dir = up(up(__file__))

config_file_path = os.path.join(dir, 'configs\config.json')
1

Use pathlib:

from pathlib import Path

p = Path(path_here)

# so much information about the file
print(p.name, p.parent, p.parts[-2])
print(p.resolve())
print(p.stem)

1

You can do it with just os module:

import os
direct = os.getcwd().replace("source", "config")
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mind-protector is a new contributor to this site. Take care in asking for clarification, commenting, and answering. Check out our Code of Conduct.
1

You can use the pathlib module:

(If you dont have it, use pip install pathlib in Terminal.)

from pathlib import Path
path = Path("/<somepath>/PythonProject/configs/config.json")
print(path.parents[1])

path = Path("/here/your/path/file.txt")
print(path.parent)
print(path.parent.parent)
print(path.parent.parent.parent)
print(path.parent.parent.parent.parent)
print(path.parent.parent.parent.parent.parent)

which gives:

/<somepath>/PythonProject
/here/your/path
/here/your
/here
/
/

(from How do I get the parent directory in Python? by https://stackoverflow.com/users/4172/kender)

New contributor
Ornataweaver is a new contributor to this site. Take care in asking for clarification, commenting, and answering. Check out our Code of Conduct.
  • Why not use a loop? Why not use parents that gives all of them? Why reference another question instead of marking this one as a duplicate? – Ofer Sadan Nov 9 at 11:30
  • Thanks @ofer-sadan. I did. I also needed the reputation to reach 15, so my votes count. – Ornataweaver Nov 9 at 11:36

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