I want to get the path of the current directory under which a .py file is executed.

For example a simple file D:\test.py with code:

import os

print os.getcwd()
print os.path.basename(__file__)
print os.path.abspath(__file__)
print os.path.dirname(__file__)

It is weird that the output is:

D:\
test.py
D:\test.py
EMPTY

I am expecting the same results from the getcwd() and path.dirname().

Given os.path.abspath = os.path.dirname + os.path.basename, why

os.path.dirname(__file__)

returns empty?

up vote 213 down vote accepted

Because os.path.abspath = os.path.dirname + os.path.basename does not hold. we rather have

os.path.dirname(filename) + os.path.basename(filename) == filename

Both dirname() and basename() only split the passed filename into components without taking into account the current directory. If you want to also consider the current directory, you have to do so explicitly.

To get the dirname of the absolute path, use

os.path.dirname(os.path.abspath(__file__))
  • 3
    Hi Sven, you are right, it should be os.path.dirname(os.path.abspath(file)). Thanks! Just FYI, you get a small typo in the last line. – Flake Oct 16 '11 at 9:10
  • 8
    note the above comment has a bold where there should be underline on both sides because of markdown formatting. the original answer was changed correctly – watsonic Mar 29 '16 at 1:38
  • 1
    Note that we never have os.path.dirname(filename) + os.path.basename(filename) == filename because the directory separator is missing. We rather have: os.path.join(os.path.dirname(filename), os.path.basename(filename)) == filename – Jean Paul Oct 31 '17 at 15:08
  • I am confused, should you leave basedir = os.path.abspath(os.path.dirname(file)) in your program ? or what do you replace or where to you replace your path like C:\Users\Test\app.db? – pes04 22 hours ago
  • @pes04 __file__ expands to the name of the current file, so you can use a verbatim copy of the code from this answer. – Sven Marnach 15 hours ago

can be used also like that:

dirname(dirname(abspath(__file__)))
  • @Sven Marnach's answer works, but this feels much cleaner. – lordB8r Mar 4 '15 at 14:38
print(os.path.join(os.path.dirname(__file__))) 

You can also use this way

os.path.split(os.path.realpath(__file__))[0]

os.path.realpath(__file__)return the abspath of the current script; os.path.split(abspath)[0] return the current dir

import os.path

dirname = os.path.dirname(__file__) or '.'

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