I am running Python 2.5.

This is my folder tree:

ptdraft/
  nib.py
  simulations/
    life/
      life.py

(I also have __init__.py in each folder, omitted here for readability)

How do I import the nib module from inside the life module? I am hoping it is possible to do without tinkering with sys.path.

Note: The main module being run is in the ptdraft folder.

  • 1
    What's your PYTHONPATH setting? – S.Lott Apr 3 '09 at 14:18
  • 2
    Ross: I looked there. What should I do about it? I already have a __init__.py. S.Lott: I don't know how to check... – Ram Rachum Apr 3 '09 at 14:42
  • 4
    echo $PYTHONPATH from the shell; import sys; print sys.path from within Python. docs.python.org/tutorial/… – S.Lott Apr 3 '09 at 16:27
  • 7
    This question is pretty high on the google results. I hope the 'accepted answer' changes to the relative imports answer soon. – FlipMcF Aug 1 '13 at 3:32
  • @FlipMcF Google is a bubbled search engine, so the fact that this result is pretty high up for you doesn't matter. Far more important is the fact that the non-bubbled search engine, DuckDuckGo, also ranks this very highly. – ArtOfWarfare May 17 '15 at 15:42

20 Answers 20

up vote 82 down vote accepted

It seems that the problem is not related to the module being in a parent directory or anything like that.

You need to add the directory that contains ptdraft to PYTHONPATH

You said that import nib worked with you, that probably means that you added ptdraft itself (not its parent) to PYTHONPATH.

You could use relative imports (python >= 2.5):

from ... import nib

(What’s New in Python 2.5) PEP 328: Absolute and Relative Imports

EDIT: added another dot '.' to go up two packages

  • 94
    ValueError: Attempted relative import in non-package – endolith Oct 17 '13 at 1:46
  • 12
    @endolith: You have to be in a package, i.e., you must have an init.py file. – kirbyfan64sos Oct 17 '13 at 21:59
  • 9
    Attempted relative import beyond toplevel package – User Jun 20 '14 at 15:09
  • 257
    To be even more precise, you need a __init__.py file. – kara deniz Sep 23 '14 at 21:07
  • 14
    See also the following answer, since adding __init__.py is not the only thing you have to do: stackoverflow.com/questions/11536764/… – Ben Farmer Oct 28 '15 at 7:45

Relative imports (as in from .. import mymodule) only work in a package. To import 'mymodule' that is in the parent directory of your current module:

import os,sys,inspect
currentdir = os.path.dirname(os.path.abspath(inspect.getfile(inspect.currentframe())))
parentdir = os.path.dirname(currentdir)
sys.path.insert(0,parentdir) 

import mymodule

edit: the __file__ attribute is not always given. Instead of using os.path.abspath(__file__) I now suggested using the inspect module to retrieve the filename (and path) of the current file

  • 57
    something a little shorter: sys.path.insert(1, os.path.join(sys.path[0], '..')) – JHolta Apr 22 '13 at 0:55
  • 5
    Any reason to avoid sys.path.append() instead of the insert? – Tyler May 19 '13 at 15:34
  • 2
    @Tyler - It can matter if somewhere else then the parentdir, but in one of the paths allready specified in sys.path, there is another module with the name 'mymodule'. Inserting the parentdir as the first element of the sys.path list assures that the module from parentdir will be imported instead. – Remi May 20 '13 at 18:48
  • 3
    @JHolta If you're not dealing with packages, yours is the best solution. – Jonathon Reinhart Oct 9 '13 at 0:47
  • @JHolta great idea. sys.path.insert(1, os.path.realpath(os.path.pardir)) works too. – SpeedCoder5 Aug 7 at 18:28

If adding your module folder to the PYTHONPATH didn't work, You can modify the sys.path list in your program where the Python interpreter searches for the modules to import, the python documentation says:

When a module named spam is imported, the interpreter first searches for a built-in module with that name. If not found, it then searches for a file named spam.py in a list of directories given by the variable sys.path. sys.path is initialized from these locations:

  • the directory containing the input script (or the current directory).
  • PYTHONPATH (a list of directory names, with the same syntax as the shell variable PATH).
  • the installation-dependent default.

After initialization, Python programs can modify sys.path. The directory containing the script being run is placed at the beginning of the search path, ahead of the standard library path. This means that scripts in that directory will be loaded instead of modules of the same name in the library directory. This is an error unless the replacement is intended.

Knowing this, you can do the following in your program:

import sys
# Add the ptdraft folder path to the sys.path list
sys.path.append('/path/to/ptdraft/')

# Now you can import your module
from ptdraft import nib
# Or just
import ptdraft
  • 4
    Your answer is good, but may not always work and is not very portable. If the program was moved to a new location, /path/to/ptdraft would have to be edited. There are solutions that work out the current directory of the file and import it from the parent folder that way as well. – Edward Nov 14 '15 at 10:59

You can use OS depending path in "module search path" which is listed in sys.path . So you can easily add parent directory like following

import sys
sys.path.insert(0,'..')

If you want to add parent-parent directory,

sys.path.insert(0,'../..')

Here is more generic solution that includes the parent directory into sys.path (works for me):

import os.path, sys
sys.path.append(os.path.join(os.path.dirname(os.path.realpath(__file__)), os.pardir))
  • import os, sys\n sys.path.insert(0,os.path.pardir) same thing, but sorther :) (no line feeds in comments) – Anti Veeranna Sep 23 '14 at 9:47
  • @antiveeranna, if you use os.path.pardir you won't be getting the realpath of the parent, just relative path from where you're calling the sys.path.insert() – alvas Nov 27 '14 at 0:06
  • This answer uses the __file__ variable which can be unreliable (isn't always the full file path, doesn't work on every operating system etc.) as StackOverflow users have often mentioned. Changing the answer to not include it will cause less problems and be more cross-compatible. For more information, see stackoverflow.com/a/33532002/3787376. – Edward Aug 29 '17 at 13:02

Don't know much about python 2.
In python 3, the parent folder can be added as follows:

import sys 
sys.path.append('..')

...and then one is able to import modules from it

  • 5
    This only works if your current working directory is such that '..' leads to the directory with the module in question. – user5359531 Aug 23 '17 at 21:53

Here is an answer that's simple so you can see how it works, small and cross-platform.
It only uses built-in modules (os, sys and inspect) so should work
on any operating system (OS) because Python is designed for that.

Shorter code for answer - fewer lines and variables

from inspect import getsourcefile
import os.path as path, sys
current_dir = path.dirname(path.abspath(getsourcefile(lambda:0)))
sys.path.insert(0, current_dir[:current_dir.rfind(path.sep)])
import my_module    # Replace "my_module" here with your module's name.
sys.path.pop(0)

For less lines than this, replace the second line with import os.path as path, sys, inspect,
add inspect. at the beginning of getsourcefile (line 3) and remove the first line.
- however this imports all of the module so could need more time, memory and resources.

The code for my answer (longer version)

from inspect import getsourcefile
import os.path
import sys

current_path = os.path.abspath(getsourcefile(lambda:0))
current_dir = os.path.dirname(current_path)
parent_dir = current_dir[:current_dir.rfind(os.path.sep)]

sys.path.insert(0, parent_dir)

import my_module  # Change name here.

It uses an example from a Stack Overflow answer How do I get the path of the current
executed file in Python?
to find the source (filename) of running code with a built-in tool.

from inspect import getsourcefile  
from os.path import abspath  

Next, wherever you want to find the source file from you just use:

abspath(getsourcefile(lambda:0))

My code adds a file path to sys.path, the python path list
because this allows Python to import modules from that folder.

After importing a module in the code, it's a good idea to run sys.path.pop(0) on a new line
when that added folder has a module with the same name as another module that is imported
later in the program. You need to remove the list item added before the import, not other paths.
If your program doesn't import other modules, it's safe to not delete the file path because
after a program ends (or restarting the Python shell), any edits made to sys.path disappear.

Notes about a filename variable

My answer doesn't use the __file__ variable to get the file path/filename of running
code because users here have often described it as unreliable. You shouldn't use it
for "Importing modules from parent folder" in programs used by other people.

Some examples where it doesn't work (quote from this Stack Overflow question):

• it can't be found on some platforms • it sometimes isn't the full file path

  • py2exe doesn't have a __file__ attribute, but there is a workaround
  • When you run from IDLE with execute() there is no __file__ attribute
  • OS X 10.6 where I get NameError: global name '__file__' is not defined
  • 1
    I did this and removed the new path entry with sys.path.pop(0) immediately after importing the desired module. However, subsequent imports still went to that location. For example, I have app/config, app/tools and app/submodule/config. From submodule, I insert app/ to import tools, then remove app/ and try to import config, but I get app/config instead of app/submodule/config. – user5359531 Aug 23 '17 at 21:59
  • I figured out that one of tools's imports was also importing config from the parent dir. So when I later tried to do sys.path.pop(0); import config inside submodule, expecting to get app/submodule/config, I was actually getting app/config. Evidently Python returns a cached version of a module with the same name instead of actually checking the sys.path for a module matching that name. sys.path in this case was being altered correctly, Python was just not checking it due to the same-named module already having been loaded. – user5359531 Aug 24 '17 at 23:05
  • I think this is the exact reference to the issue I had: docs.python.org/3/reference/import.html#the-module-cache – user5359531 Aug 24 '17 at 23:11
  • Some useful information from 5.3.1. The module cache on the documentation page: During import, the module name is looked up in sys.modules ... sys.modules is writable. Deleting a key will invalidate the cache entry for the named module, causing Python to search anew upon its next import. ... Beware though, as if you keep a reference to the module object, invalidate its cache then re-import, the two objects will be different. By contrast, importlib.reload() will reuse and reinitialise the module contents ... – Edward Aug 25 '17 at 3:30
  • Even shorter: os.path.realpath(getsourcefile(lambda:0) + "/../.."). Will get current source file appended with two parent directory symbols. I didn't use os.path.sep as getsourcefile was returns a string using / even on Windows. realpath will take care of popping off two directory entries from the full path (in this case, the filename, and then the current directory) which gives the parent directory. – Coburn Sep 23 '17 at 18:06

When not being in a package environment with __init__.py files the pathlib library (included with >= Python 3.4) makes it very concise and intuitive to append the path of the parent directory to the PYTHONPATH:

import sys
from pathlib import Path
sys.path.append(str(Path('.').absolute().parent))
  • is it possible to use init.py to circumvent this problem? – Shaowu Jun 5 at 0:13

import sys sys.path.append('../')

  • 3
    this will not work when executed from a different directory. – Shatlyk Ashyralyyev Oct 20 '16 at 10:40

For me the shortest and my favorite oneliner for accessing to the parent directory is:

sys.path.append(os.path.dirname(os.getcwd()))

or:

sys.path.insert(1, os.path.dirname(os.getcwd()))

os.getcwd() returns the name of the current working directory, os.path.dirname(directory_name) returns the directory name for the passed one.

Actually, in my opinion Python project architecture should be done the way where no one module from child directory will use any module from the parent directory. If something like this happens it is worth to rethink about the project tree.

Another way is to add parent directory to PYTHONPATH system environment variable.

  • 1
    +1 for mentioning the possibility of having to restructure the project (as opposed to throwing a hack at the problem) – ralston Apr 19 at 17:00

I posted a similar answer also to the question regarding imports from sibling packages. You can see it here. The following is tested with Python 3.6.5, (Anaconda, conda 4.5.1), Windows 10 machine.

Solution without sys.path -hacks or relative imports

Setup

I assume the same folder structure as in the question

.
└── ptdraft
    ├── __init__.py
    ├── nib.py
    └── simulations
        ├── __init__.py
        └── life
            ├── __init__.py
            └── life.py

I call the . the root folder, and in my case it is located in C:\tmp\test_imports.

Steps

1) Add a setup.py to the root folder

The contents of the setup.py can be simply

from setuptools import setup, find_packages

setup(name='myproject', version='1.0', packages=find_packages())

Basically "any" setup.py would work. This is just a minimal working example.

2) Use a virtual environment

If you are familiar with virtual environments, activate one, and skip to the next step. Usage of virtual environments are not absolutely required, but they will really help you out in the long run (when you have more than 1 project ongoing..). The most basic steps are (run in the root folder)

  • Create virtual env
    • python -m venv venv
  • Activate virtual env
    • ./venv/bin/activate (Linux) or ./venv/Scripts/activate (Win)

To learn more about this, just Google out "python virtual env tutorial" or similar. You probably never need any other commands than creating, activating and deactivating.

Once you have made and activated a virtual environment, your console should give the name of the virtual environment in parenthesis

PS C:\tmp\test_imports> python -m venv venv
PS C:\tmp\test_imports> .\venv\Scripts\activate
(venv) PS C:\tmp\test_imports>

3) pip install your project in editable state

Install your top level package myproject using pip. The trick is to use the -e flag when doing the install. This way it is installed in an editable state, and all the edits made to the .py files will be automatically included in the installed package.

In the root directory, run

pip install -e . (note the dot, it stands for "current directory")

You can also see that it is installed by using pip freeze

(venv) PS C:\tmp\test_imports> pip install -e .
Obtaining file:///C:/tmp/test_imports
Installing collected packages: myproject
  Running setup.py develop for myproject
Successfully installed myproject
(venv) PS C:\tmp\test_imports> pip freeze
myproject==1.0

4) Import by appending mainfolder to every import

In this example, the mainfolder would be ptdraft. This has the advantage that you will not run into name collisions with other module names (from python standard library or 3rd party modules).


Example Usage

nib.py

def function_from_nib():
    print('I am the return value from function_from_nib!')

life.py

from ptdraft.nib import function_from_nib

if __name__ == '__main__':
    function_from_nib()

Running life.py

(venv) PS C:\tmp\test_imports> python .\ptdraft\simulations\life\life.py
I am the return value from function_from_nib!

same sort of style as the past answer - but in fewer lines :P

import os,sys
parentdir = os.path.dirname(__file__)
sys.path.insert(0,parentdir)

file returns the location you are working in

  • For me file is the filename without the path included. I run it using "ipy filename.py". – Curtis Yallop Mar 4 '14 at 21:26
  • Hi @CurtisYallop in the example above we are adding the dir that contains the file [that we are currently in] that the python file is in. The os.path.dirname call with the file name should return the path of the file and we are adding THAT to to the path and not the file explicitly - HTH's :-) – YFP Mar 11 '14 at 16:46
  • You are assuming that __file__ always contains the path plus the file. Sometimes it contains only the filename without the path. – Curtis Yallop Mar 12 '14 at 22:45
  • @CurtisYallop - not at all sir, I am assuming file is the file name and I am using os.path.dirname() to get the path for the file. Have you got an example of this not working? I would love the steps to reproduce – YFP Mar 14 '14 at 15:27
  • 1
    @CurtisYallop - No I am not! I am saying that: print /_/file/_/ will give you the filename in your example above "file.py" - I am then saying that you can use os.path.dirname() to pull the full path from that. If you are calling from some weird location and you would like that relational then you can easily find your working dir through the os module -- Jeez! – YFP Mar 18 '14 at 17:36

Work with libraries. Make a library called nib, install it using setup.py, let it reside in site-packages and your problems are solved. You don't have to stuff everything you make in a single package. Break it up to pieces.

  • 1
    Your idea is good but some people may want to bundle their module in with their code - perhaps to make it portable and not require putting their modules in site-packages every time they run it on a different computer. – Edward Nov 4 '15 at 21:11

Another way, with minimum lines of effort, is this:

import sys ; sys.path.insert(0,"path/to/module")

And then add this:

import Module

In a Linux system, you can create a soft link from the "life" folder to the nib.py file. Then, you can simply import it like:

import nib

this hack works on every script, and you only need to know the inside folder name length

import sys
import os

parent_dir = os.path.dirname(__file__)
parent_dir_mod = parent_dir[:-11] # subtract the source file name
sys.path.append(parent_dir_mod)

then import the desired components.

Above mentioned solutions are also fine. Another solution to this problem is

If you want to import anything from top level directory. Then,

from ...module_name import *

Also, if you want to import any module from the parent directory. Then,

from ..module_name import *

Also, if you want to import any module from the parent directory. Then,

from ...module_name.another_module import *

This way you can import any particular method if you want to.

You can also make symlink of the module path which you want to import and then use that symlink to import. Create a symlink in the python dist-packages.

To create a symlink:

ln -s "/path/to/ptdraft" "/path/to/python/dist/packages/module_symlink_name"

To import module in the script:

from module_symlink_name import nib

No need to export python path or tinkering with sys path.

  • env dependent, will break on other systems. do not do this. – masi Jul 5 at 14:31

you can append your directory path to sys

import sys
import os
sys.path.append(os.path.__file__)
  • This adds the location of os.path module to the path which is quite pointless and does not answer the question. – J.J. Hakala Jul 22 '16 at 8:54

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