165

this code is get the templates/blog1/page.html in b.py:

path = os.path.join(os.path.dirname(__file__), os.path.join('templates', 'blog1/page.html'))

but i want to get the parent dir location:

aParent
   |--a
   |  |---b.py
   |      |---templates
   |              |--------blog1
   |                         |-------page.html
   |--templates
          |--------blog1
                     |-------page.html

and how to get the aParent location

thanks

updated:

this is right:

dirname=os.path.dirname
path = os.path.join(dirname(dirname(__file__)), os.path.join('templates', 'blog1/page.html'))

or

path = os.path.abspath(os.path.join(os.path.dirname(__file__),".."))
6
  • 2
    So you want to get blog1 or a ? And where is your current file located? May 12, 2010 at 9:03
  • do you understand what your code is doing? May 12, 2010 at 9:07
  • 2
    yes , it get the templates/blog1/page.html
    – zjm1126
    May 12, 2010 at 9:09
  • os.path.join('templates', 'blog1/page.html') looks strange to me. You are mixing things up. Either os.path.join('templates', 'blog1', 'page.html') or 'templates/blog1/page.html'. And much easier would be os.path.abspath(os.path.join('templates', 'blog1', 'page.html')) then May 12, 2010 at 9:15
  • 1
    @zjm: no, you don't get that page. It's not some blackbox that you could just use to get the template file. It performs a series of trivial small steps, and if you could understand them, you wouldn't have this question. May 12, 2010 at 9:20

12 Answers 12

216

You can apply dirname repeatedly to climb higher: dirname(dirname(file)). This can only go as far as the root package, however. If this is a problem, use os.path.abspath: dirname(dirname(abspath(file))).

4
  • 43
    I know the OP knows about dirname. It isn't obvious to everyone that applying dirname to a directory yields the parent directory. May 12, 2010 at 9:09
  • 6
    dirname does NOT always return the parent directory; twitter.com/#!/ActiveState/status/671049326788608 Nov 5, 2010 at 22:12
  • 2
    @Sridhar: That depends on your perspective; I consider a path ending in / as not representing the leaf directory entry itself, but its contents, which is why, e.g., mv xxx yyy/ fails if yyy isn't a preexisting directory. In any case, even if we take your point as a given, it is irrelevant in the context of my answer. Neither file nor the result of dirname will ever end in a /. Nov 6, 2010 at 0:56
  • 1
    Minor correction: dirname may return '/', which clearly ends in a /. That is the only exception, AFAIK. Feb 6, 2013 at 23:19
70

Use relative path with the pathlib module in Python 3.4+:

from pathlib import Path

Path(__file__).parent

You can use multiple calls to parent to go further in the path:

Path(__file__).parent.parent

As an alternative to specifying parent twice, you can use:

Path(__file__).parents[1]
3
  • 2
    If you need the path as a string because you want to modify it, you can just use str(Path(__file__).parent).
    – Philipp
    May 10, 2020 at 11:16
  • 3
    It seems that in python 3.8.5 you need Path(__file__).resolve().parent Dec 22, 2020 at 8:41
  • 2
    Thanks, I knew about .parent but not about .parents. IMO, that's much nicer than chaining .parent or os.path.dirnames.
    – hkennyv
    Mar 15, 2021 at 17:44
68

os.path.abspath doesn't validate anything, so if we're already appending strings to __file__ there's no need to bother with dirname or joining or any of that. Just treat __file__ as a directory and start climbing:

# climb to __file__'s parent's parent:
os.path.abspath(__file__ + "/../../")

That's far less convoluted than os.path.abspath(os.path.join(os.path.dirname(__file__),"..")) and about as manageable as dirname(dirname(__file__)). Climbing more than two levels starts to get ridiculous.

But, since we know how many levels to climb, we could clean this up with a simple little function:

uppath = lambda _path, n: os.sep.join(_path.split(os.sep)[:-n])

# __file__ = "/aParent/templates/blog1/page.html"
>>> uppath(__file__, 1)
'/aParent/templates/blog1'
>>> uppath(__file__, 2)
'/aParent/templates'
>>> uppath(__file__, 3)
'/aParent'
2
  • 3
    This is nice, but it would also be cool if the standard library added a convenience function that accomplished this...don't want to come to SO every time I need this func
    – gradi3nt
    Jan 27, 2016 at 17:26
  • 6
    Would os.path.abspath(os.path.join(__file__, "..", "..") be more portable?
    – slowD
    Aug 31, 2018 at 0:28
13
os.path.dirname(os.path.abspath(__file__))

Should give you the path to a.

But if b.py is the file that is currently executed, then you can achieve the same by just doing

os.path.abspath(os.path.join('templates', 'blog1', 'page.html'))
2
  • 1
    o ,i know ,you are right ,and i want to get the a's parent folder. how to get it
    – zjm1126
    May 12, 2010 at 9:43
  • @zjm1126: See Marcelo Cantos' answer. Apply dirname() twice. Everything you need now should be on this site. May 12, 2010 at 9:51
9

os.pardir is a better way for ../ and more readable.

import os
print os.path.abspath(os.path.join(given_path, os.pardir))  

This will return the parent path of the given_path

6

A simple way can be:

import os
current_dir =  os.path.abspath(os.path.dirname(__file__))
parent_dir = os.path.abspath(current_dir + "/../")
print parent_dir
0
3

May be join two .. folder, to get parent of the parent folder?

path = os.path.abspath(os.path.join(os.path.dirname(os.path.abspath(__file__)),"..",".."))
0
3

Use the following to jump to previous folder:

os.chdir(os.pardir)

If you need multiple jumps a good and easy solution will be to use a simple decorator in this case.

2

Here is another relatively simple solution that:

  • does not use dirname() (which does not work as expected on one level arguments like "file.txt" or relative parents like "..")
  • does not use abspath() (avoiding any assumptions about the current working directory) but instead preserves the relative character of paths

it just uses normpath and join:

def parent(p):
    return os.path.normpath(os.path.join(p, os.path.pardir))

# Example:
for p in ['foo', 'foo/bar/baz', 'with/trailing/slash/', 
        'dir/file.txt', '../up/', '/abs/path']:
    print parent(p)

Result:

.
foo/bar
with/trailing
dir
..
/abs
1
from os.path import basename, dirname
basename(dirname('foo/bar/foo_bar'))
1
  • 1
    Your answer could be improved with additional supporting information. Please edit to add further details, such as citations or documentation, so that others can confirm that your answer is correct. You can find more information on how to write good answers in the help center.
    – Community Bot
    Apr 3, 2022 at 21:54
0

I think use this is better:

os.path.realpath(__file__).rsplit('/', X)[0]


In [1]: __file__ = "/aParent/templates/blog1/page.html"

In [2]: os.path.realpath(__file__).rsplit('/', 3)[0]
Out[3]: '/aParent'

In [4]: __file__ = "/aParent/templates/blog1/page.html"

In [5]: os.path.realpath(__file__).rsplit('/', 1)[0]
Out[6]: '/aParent/templates/blog1'

In [7]: os.path.realpath(__file__).rsplit('/', 2)[0]
Out[8]: '/aParent/templates'

In [9]: os.path.realpath(__file__).rsplit('/', 3)[0]
Out[10]: '/aParent'
1
  • Not quite, it's OS dependent (will not work on Windows). Also it does not allow to use relative paths.
    – kgadek
    Oct 22, 2014 at 17:49
0

I tried:

import os
os.path.abspath(os.path.join(os.path.dirname(os.path.abspath(inspect.getfile(inspect.currentframe()))), os.pardir))

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