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How do I import a python module given its relative path?

For example, if dirFoo contains Foo.py and dirBar, and dirBar contains Bar.py, how do I import Bar.py into Foo.py?

Here's a visual representation:

dirFoo\
    Foo.py
    dirBar\
        Bar.py

Foo wishes to include Bar, but restructuring the folder heirarchy is not an option.

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1  
Looks like stackoverflow.com/questions/72852/…, maybe? –  Joril Nov 10 '08 at 23:44
2  
Check my answer, it is the most complete so far, others are not working in special case, for example when you call the script from another directory or from another python script. See stackoverflow.com/questions/279237/… –  sorin May 26 '11 at 6:17
    
I had a similar problem and I found this and it works!! apt-get install python-profiler –  ldcl289 Sep 22 '11 at 20:18
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16 Answers

up vote 154 down vote accepted

Assuming that both your directories are real python packages (do have the __init__.py file inside them), here is a safe solution for inclusion of modules relatively to the location of the script.

I assume that you want to do this because you need to include a set of modules with your script. I use this in production in several products and works in many special scenarios like: scripts called from another directory or executed with python execute instead of opening a new interpreter.

 import os, sys, inspect
 # realpath() with make your script run, even if you symlink it :)
 cmd_folder = os.path.realpath(os.path.abspath(os.path.split(inspect.getfile( inspect.currentframe() ))[0]))
 if cmd_folder not in sys.path:
     sys.path.insert(0, cmd_folder)

 # use this if you want to include modules from a subforder
 cmd_subfolder = os.path.realpath(os.path.abspath(os.path.join(os.path.split(inspect.getfile( inspect.currentframe() ))[0],"subfolder")))
 if cmd_subfolder not in sys.path:
     sys.path.insert(0, cmd_subfolder)

 # Info:
 # cmd_folder = os.path.dirname(os.path.abspath(__file__)) # DO NOT USE __file__ !!!
 # __file__ fails if script is called in different ways on Windows
 # __file__ fails if someone does os.chdir() before
 # sys.argv[0] also fails because it doesn't not always contains the path

As a bonus, this approach does let you force Python to use your module instead of the ones installed on the system.

Warning! I don't really know what is happening when current module is inside an egg file. Probably it fails too. Add a comment if you really need a better solution, I may invest few more hours in improving it.

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3  
can I get an explanation as to how this works? I've got a similar problem and I'd LOVE to force a python module DIR instead of running a search –  delinquentme Jan 15 '12 at 12:53
    
Running Win 7 Pro 64x and Python 2.7 I get a few errors. 1) I had to add inspect to the import list. 2) The 1st value, [0], in the tuple is an empty string. The 2nd, [1], shows the file name. I am guessing that the first should be the path... Any ideas? –  Adam Lewis Jan 17 '12 at 5:38
2  
If you are going for a subfolder, use it like this:os.path.realpath(os.path.abspath(os.path.split(inspect.getfile( inspect.currentframe() ))[0]) + "/subfolder") Do NOT add the subfolder before abspath as this causes serious bugs. –  scr4ve Jul 12 '12 at 22:39
4  
@scr4ve you should use os.path.join() instead, and you are welcome to add the case (cmd_subfolder) directly to my answer. thanks! –  sorin Jul 13 '12 at 12:32
6  
for me realpath already generates absolute paths, thus I don't need abspath. Also os.path.dirname can be used instead of split, makeing the indexing [0] obsolete. The line would then be: os.path.realpath(os.path.dirname(inspect.getfile(inspect.currentframe()))) –  ted Aug 14 '12 at 7:37
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Be sure that dirBar has the __init__.py file -- this makes a directory into a Python package.

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112  
Note that this file can be completely empty. –  Harley Holcombe Nov 10 '08 at 22:00
15  
If dirBar's parent directory is not in sys.path then the presence of __init__.py in the dirBar directory doesn't help much. –  J.F. Sebastian Nov 10 '08 at 22:40
1  
The above comment assumes that dirBar is a sub-package. –  J.F. Sebastian Nov 10 '08 at 23:11
1  
-1, adding __init.py__ will work only when directory is already in sys.path and in my case it wasn't. Solution by "sorin" (accepted one) always works. –  Czarek Tomczak Nov 22 '11 at 23:27
8  
"when directory is already in sys.path". While totally true, how could we guess that the directory was not in sys.path from the question? Perhaps there was something omitted that we didn't see or know about? –  S.Lott Nov 23 '11 at 0:47
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You could also add the sub directory to your python path so that it imports as a normal script.

import sys
sys.path.append( <path to dirFoo> )
import Bar
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4  
It looks that your answer does not work with relative paths, see stackoverflow.com/questions/279237/… –  bogdan May 23 '11 at 14:03
11  
This does work with relative paths -- you just need to understand that a relative path will depend on what directory you run from, which makes this a poor solution for anything other than a quick hack. –  nobar Dec 20 '12 at 1:11
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Why don't do ?

import os, sys
lib_path = os.path.abspath('../../../lib')
sys.path.append(lib_path)

import mymodule
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I like this because you have the flexibility to go up a directory. –  Charles L. Aug 10 '11 at 21:55
7  
You should use os.path.join() instead of joining by '/', which will break in the (lame) windows. –  0xc0de Aug 2 '12 at 6:58
    
Nice. I used this to import a config file from above the script's location. –  Tapefreak Oct 18 '12 at 22:54
7  
Forward slashes work fine on my windows machine. –  bt2 Feb 12 '13 at 15:23
    
This isn't reliable. It depends on whatever the current working directory is, not on the directory that the script lives. –  jamesdlin Jan 31 at 10:00
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(This is from memory so someone edit if I make a typo, please.)

If you structure your project this way:

src\
  __init__.py
  main.py
  dirFoo\
    __init__.py
    Foo.py
  dirBar\
    __init__.py
    Bar.py

Then from Foo.py you should be able to do:

import dirFoo.Foo

Or:

from dirFoo.Foo import FooObject

EDIT 1:

Per Tom's comment, this does require that the src folder is accessible either via site_packages or your search path. Also, as he mentions, __init__.py is implicitly imported when you first import a module in that package/directory. Typically __init__.py is simply an empty file.

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Also mention that init.py is imported when the first module inside that package is imported. Also, your example will only work if src is in the site_packages (or in the search path) –  Tom Leys Nov 10 '08 at 22:00
1  
This is the most simplest solution I was looking for. If the file to import is sure to be in one of the subdirectories, this solution is a gem. –  Deepak G M Dec 31 '12 at 8:59
    
I have tried the same thing and fail. I do not know why. ImportError: No module named customMath –  Zhang Meng Mar 5 at 12:09
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The easiest method is to use sys.path.append().

However, you may be also interested in the imp module. It provides access to internal import functions.

# mod_name is the filename without the .py/.pyc extention
py_mod = imp.load_source(mod_name,filename_path) # Loads .py file
py_mod = imp.load_compiled(mod_name,filename_path) # Loads .pyc file

This can be used to load modules dynamically when you don't know a module's name.

I've used this in the past to create a plugin type interface to an application, where the user would write a script with application specific functions, and just drop thier script in a specific directory.

Also, these functions may be useful:

imp.find_module(name[, path])
imp.load_module(name, file, pathname, description)
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Note that in the documentation imp.load_source and imp.load_compiled are listed as obsolete. imp.find_module and imp.load_module are recommended instead. –  amicitas Oct 18 '11 at 6:39
    
@amicitas, Can you please provide any reference for that(I need it, and I am using python 2.6. I am aware what 2.7 docs say about these, but couldn't find any reference regarding 2.6) –  0xc0de Aug 6 '12 at 6:46
    
@0xc0de You can find that statement in the docs for the imp module for both python 2.7.3 and python 2.6.7. It looks like those functions are not even in the docs for python 3.2. –  amicitas Aug 7 '12 at 21:02
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Just do Simple Things to import py file from different folder-

Let's you have a directory like-

lib/abc.py

Then just keep a empty file in lib folder as named

__init__.py

and then use

from lib.abc import <Your Module name>

Keep __init__.py file in every folder of hierarchy of import module

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Also my favorite answer! I was searching for a solution not involving using paths (i.e: sys.path). –  sw. Jul 28 '12 at 20:33
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This is the relevant PEP:

http://www.python.org/dev/peps/pep-0328/

In particular, presuming dirFoo is a directory up from dirBar...

In dirFoo\Foo.py:

from ..dirBar import Bar
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22  
Relative import doesn't work in non-package. –  J.F. Sebastian Nov 10 '08 at 22:46
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In my opinion the best choice is to put __ init __.py in the folder and call the file with

from dirBar.Bar import *

It is not recommended to use sys.path.append() because something might gone wrong if you use the same file name as the existing python package. I haven't test that but that will be ambiguous.

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weird that from dirBar.Bar import * works, but not from dirBar.Bar import Bar. do you know why * works? what if I had multiple files in dirBar/ and wanted to grab only a few of them (using a method like the one you've posted here)? –  tester Jun 24 '11 at 7:33
    
@tester: Use from dirBar import Bar. –  nobar Dec 20 '12 at 3:38
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The easiest way without any modification to your script is to set PYTHONPATH environment variable. Cause sys.path is initialized from these locations:

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

Just run:

export PYTHONPATH=/absolute/path/to/your/module

You sys.path will contains above path, as show below:

print sys.path

['', '/absolute/path/to/your/module', '/usr/lib/python2.7', '/usr/lib/python2.7/plat-linux2', '/usr/lib/python2.7/lib-tk', '/usr/lib/python2.7/lib-old', '/usr/lib/python2.7/lib-dynload', '/usr/local/lib/python2.7/dist-packages', '/usr/lib/python2.7/dist-packages', '/usr/lib/python2.7/dist-packages/PIL', '/usr/lib/python2.7/dist-packages/gst-0.10', '/usr/lib/python2.7/dist-packages/gtk-2.0', '/usr/lib/pymodules/python2.7', '/usr/lib/python2.7/dist-packages/ubuntu-sso-client', '/usr/lib/python2.7/dist-packages/ubuntuone-client', '/usr/lib/python2.7/dist-packages/ubuntuone-control-panel', '/usr/lib/python2.7/dist-packages/ubuntuone-couch', '/usr/lib/python2.7/dist-packages/ubuntuone-installer', '/usr/lib/python2.7/dist-packages/ubuntuone-storage-protocol']
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The quick-and-dirty way for Linux users

If you are just tinkering around and don't care about deployment issues, you can use a symbolic link (assuming your filesystem supports it) to make the module or package directly visible in the folder of the requesting module.

ln -s (path)/module_name.py

or

ln -s (path)/package_name

Note: A "module" is any file with a .py extension and a "package" is any folder that contains the file __init__.py (which can be an empty file). From a usage standpoint, modules and packages are identical -- both expose their contained "definitions and statements" as requested via the import command.

See: http://docs.python.org/2/tutorial/modules.html

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Add an _init_.py file:

dirFoo\
    Foo.py
    dirBar\
        __init__.py
        Bar.py

Then add this code to the start of Foo.py:

import sys
sys.path.append('dirBar')
import Bar
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4  
If dirBar is already a Python package (by the existence of dirBar/__init__.py), there is no need to append dirBar to sys.path, no? The statement import Bar from Foo.py should suffice. –  Santa Apr 18 '10 at 23:06
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from .dirBar import Bar

instead of:

from dirBar import Bar

just in case there could be another dirBar installed and confuse a foo.py reader.

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I was not able to do this on windows. Is this on Linux? –  Gabriel Jun 15 '13 at 23:56
    
It will work from a script importing Foo. i.e: main.py imports dirFoo.Foo. If you are trying to run Foo.py as an script, it will Fail. See stackoverflow.com/questions/72852/… –  jgomo3 Jun 17 '13 at 19:23
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Look at the pkgutil module from the standard library. It may help you do what you want.

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Here's a way to import a file from one level above, using the relative path.

Basically, just move the working directory up a level (or any relative location), add that to your path, then move the working directory back where it started.

#to import from one level above:
cwd = os.getcwd()
os.chdir("..")
below_path =  os.getcwd()
sys.path.append(below_path)
os.chdir(cwd)
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1  
i do not understand you logic here. it's to over complicated –  tntu Oct 26 '12 at 21:13
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Call me overly cautious but I like to make mine more portable because it's unsafe to assume that files will always be in the same place on every computer. Personally I have the code look up the file path first. I use linux so mine would look like this:

import os, sys
from subprocess import Popen, PIPE
try:
    path = Popen("find / -name 'file' -type f", shell=True, stdout=PIPE).stdout.read().splitlines()[0]
    if not sys.path.__contains__(path):
        sys.path.append(path)
except IndexError:
    raise RuntimeError("You must have FILE to run this program!")

That is of course unless you plan to package these together. But if that's the case you don't really need two separate files anyway.

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2  
Super inefficient! –  0xc0de Aug 2 '12 at 6:53
    
Files will always be in the same place on every computer, given a relative path. –  Sagar Hatekar Dec 18 '12 at 16:46
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