2513

What is __init__.py for in a Python source directory?

12 Answers 12

1542

It used to be a required part of a package (old, pre-3.3 "regular package", not newer 3.3+ "namespace package").

Here's the documentation.

Python defines two types of packages, regular packages and namespace packages. Regular packages are traditional packages as they existed in Python 3.2 and earlier. A regular package is typically implemented as a directory containing an __init__.py file. When a regular package is imported, this __init__.py file is implicitly executed, and the objects it defines are bound to names in the package’s namespace. The __init__.py file can contain the same Python code that any other module can contain, and Python will add some additional attributes to the module when it is imported.

But just click the link, it contains an example, more information, and an explanation of namespace packages, the kind of packages without __init__.py.

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  • 191
    What does this mean: "this is done to prevent directories with a common name, such as string, from unintentionally hiding valid modules that occur later on the module search path"? – Carl G Jan 25 '14 at 4:43
  • 98
    @CarlG Python searches a list of directories to resolve names in, e.g., import statements. Because these can be any directory, and arbitrary ones can be added by the end user, the developers have to worry about directories that happen to share a name with a valid Python module, such as 'string' in the docs example. To alleviate this, it ignores directories which do not contain a file named _ _ init _ _.py (no spaces), even if it is blank. – Two-Bit Alchemist Mar 7 '14 at 20:56
  • 200
    @CarlG Try this. Make a directory called 'datetime' and in it make two blank files, the init.py file (with underscores) and datetime.py. Now open an interpreter, import sys, and issue sys.path.insert(0, '/path/to/datetime'), replacing that path with the path to whatever directory you just made. Now try something like from datetime import datetime;datetime.now(). You should get an AttributeError (because it is importing your blank file now). If you were to repeat these steps without creating the blank init file, this would not happen. That's what it's intended to prevent. – Two-Bit Alchemist Mar 7 '14 at 21:03
  • 4
    @DarekNędza You've got something set up incorrectly if you can't just open a Python interpreter and issue from datetime import datetime without error. That's good all the way back to version 2.3! – Two-Bit Alchemist May 5 '14 at 20:10
  • 5
    @SWang: That’s incorrect: builtins lists built-in functions and classes, not built-in modules (cf. docs.python.org/3/tutorial/modules.html#the-dir-function). If you want to list built-in modules, do import sys; print(sys.builtin_module_names) (cf. docs.python.org/3/library/sys.html#sys.builtin_module_names). – Maggyero Jan 17 '18 at 23:25
882

Files named __init__.py are used to mark directories on disk as Python package directories. If you have the files

mydir/spam/__init__.py
mydir/spam/module.py

and mydir is on your path, you can import the code in module.py as

import spam.module

or

from spam import module

If you remove the __init__.py file, Python will no longer look for submodules inside that directory, so attempts to import the module will fail.

The __init__.py file is usually empty, but can be used to export selected portions of the package under more convenient name, hold convenience functions, etc. Given the example above, the contents of the init module can be accessed as

import spam

based on this

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  • 103
    Update: The file __init__.py was required under Python 2.X and is still required under Python 2.7.12 (I tested it) but it is no longer required from (allegedly) Python 3.3 onwards, and is not required under Python 3.4.3 (I tested it). See stackoverflow.com/questions/37139786 for more details. – Rob_before_edits Oct 30 '16 at 14:49
  • 5
    Don't use it. It is "namespace" package, not a regular package. namespace package is used for very rare use cases. You may not need to know when use it. Just use __init__.py. – methane Apr 6 '19 at 1:54
  • 3
    however if you have setup.py and you use find_packages() it is necessary to have __init__.py in every directory. See stackoverflow.com/a/56277323/7127824 – techkuz May 23 '19 at 14:40
506

In addition to labeling a directory as a Python package and defining __all__, __init__.py allows you to define any variable at the package level. Doing so is often convenient if a package defines something that will be imported frequently, in an API-like fashion. This pattern promotes adherence to the Pythonic "flat is better than nested" philosophy.

An example

Here is an example from one of my projects, in which I frequently import a sessionmaker called Session to interact with my database. I wrote a "database" package with a few modules:

database/
    __init__.py
    schema.py
    insertions.py
    queries.py

My __init__.py contains the following code:

import os

from sqlalchemy.orm import sessionmaker
from sqlalchemy import create_engine

engine = create_engine(os.environ['DATABASE_URL'])
Session = sessionmaker(bind=engine)

Since I define Session here, I can start a new session using the syntax below. This code would be the same executed from inside or outside of the "database" package directory.

from database import Session
session = Session()

Of course, this is a small convenience -- the alternative would be to define Session in a new file like "create_session.py" in my database package, and start new sessions using:

from database.create_session import Session
session = Session()

Further reading

There is a pretty interesting reddit thread covering appropriate uses of __init__.py here:

http://www.reddit.com/r/Python/comments/1bbbwk/whats_your_opinion_on_what_to_include_in_init_py/

The majority opinion seems to be that __init__.py files should be very thin to avoid violating the "explicit is better than implicit" philosophy.

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  • 4
    engine, sessionmaker, create_engine, and os can all also be imported from database now... seems like you've made a mess of that namespace. – ArtOfWarfare Sep 23 '15 at 19:28
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    @ArtOfWarfare, you can use __all__ = [...] to limit what gets imported with import *. But aside from that, yes, you're left with a messy top-level namespace. – Nathan Gould Sep 23 '15 at 23:28
  • May I know what is the 'DATABASE URL'? I tried to replicate this by enclosing the create_engine with 'mysql+mysqldb://root:python@localhost:3306/test' but it does not work. Thanks. – SunnyBoiz Jun 25 '19 at 13:34
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    How would you access 'Session' class defined in init from inside inside package e.g. quieries.py? – vldbnc Sep 18 '19 at 9:04
295

There are 2 main reasons for __init__.py

  1. For convenience: the other users will not need to know your functions' exact location in your package hierarchy.

    your_package/
      __init__.py
      file1.py
      file2.py
        ...
      fileN.py
    
    # in __init__.py
    from file1 import *
    from file2 import *
    ...
    from fileN import *
    
    # in file1.py
    def add():
        pass
    

    then others can call add() by

    from your_package import add
    

    without knowing file1, like

    from your_package.file1 import add
    
  2. If you want something to be initialized; for example, logging (which should be put in the top level):

    import logging.config
    logging.config.dictConfig(Your_logging_config)
    
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  • 9
    oh, before reading your answer, I thought calling a function explicitly from its location is a good practice. – Aerin Feb 26 '18 at 1:30
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    @Aerin it would be better do not consider short statements (or, in this case, subjective conclusions) to be always true. Importing from __init__.py may be useful sometimes, but not all times. – Tobias Sette Dec 11 '19 at 21:33
116

The __init__.py file makes Python treat directories containing it as modules.

Furthermore, this is the first file to be loaded in a module, so you can use it to execute code that you want to run each time a module is loaded, or specify the submodules to be exported.

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  • 2
    I think the init.py makes Python treat directories as packages and not modules. See docs.python.org/3/tutorial/modules.html – Moses Jul 22 at 7:56
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    "all packages are modules, but not all modules are packages" -- weird, but true. – JacKeown Oct 13 at 2:11
96

Since Python 3.3, __init__.py is no longer required to define directories as importable Python packages.

Check PEP 420: Implicit Namespace Packages:

Native support for package directories that don’t require __init__.py marker files and can automatically span multiple path segments (inspired by various third party approaches to namespace packages, as described in PEP 420)

Here's the test:

$ mkdir -p /tmp/test_init
$ touch /tmp/test_init/module.py /tmp/test_init/__init__.py
$ tree -at /tmp/test_init
/tmp/test_init
├── module.py
└── __init__.py
$ python3

>>> import sys
>>> sys.path.insert(0, '/tmp')
>>> from test_init import module
>>> import test_init.module

$ rm -f /tmp/test_init/__init__.py
$ tree -at /tmp/test_init
/tmp/test_init
└── module.py
$ python3

>>> import sys
>>> sys.path.insert(0, '/tmp')
>>> from test_init import module
>>> import test_init.module

references:
https://docs.python.org/3/whatsnew/3.3.html#pep-420-implicit-namespace-packages
https://www.python.org/dev/peps/pep-0420/
Is __init__.py not required for packages in Python 3?

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  • 4
    It is "namespace" package. Don't use it for regular package. – methane Apr 6 '19 at 1:55
  • @methan, could you elaborate on your comment? – Robert Lugg Oct 4 '19 at 20:41
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    @RobertLugg See dev.to/methane/don-t-omit-init-py-3hga – methane Oct 7 '19 at 7:12
  • For what it's worth, this comment solved a problem that ate 4 hours of my work day. For whatever reason, Spyder decided this morning that it didn't want to import my module anymore. Once I read this comment, I got rid of my init.py file, and the import started working. Thank you @zeekvfu! – autonopy Jun 29 at 16:00
64

Although Python works without an __init__.py file you should still include one.

It specifies a package should be treated as a module, so therefore include it (even if it is empty).

There is also a case where you may actually use an __init__.py file:

Imagine you had the following file structure:

main_methods 
    |- methods.py

And methods.py contained this:

def foo():
    return 'foo'

To use foo() you would need one of the following:

from main_methods.methods import foo # Call with foo()
from main_methods import methods # Call with methods.foo()
import main_methods.methods # Call with main_methods.methods.foo()

Maybe there you need (or want) to keep methods.py inside main_methods (runtimes/dependencies for example) but you only want to import main_methods.


If you changed the name of methods.py to __init__.py then you could use foo() by just importing main_methods:

import main_methods
print(main_methods.foo()) # Prints 'foo'

This works because __init__.py is treated as part of the package.


Some Python packages actually do this. An example is with JSON, where running import json is actually importing __init__.py from the json package (see the package file structure here):

Source code: Lib/json/__init__.py

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57

In Python the definition of package is very simple. Like Java the hierarchical structure and the directory structure are the same. But you have to have __init__.py in a package. I will explain the __init__.py file with the example below:

package_x/
|--  __init__.py
|--    subPackage_a/
|------  __init__.py
|------  module_m1.py
|--    subPackage_b/
|------  __init__.py
|------  module_n1.py
|------  module_n2.py
|------  module_n3.py

__init__.py can be empty, as long as it exists. It indicates that the directory should be regarded as a package. Of course, __init__.py can also set the appropriate content.

If we add a function in module_n1:

def function_X():
    print "function_X in module_n1"
    return

After running:

>>>from package_x.subPackage_b.module_n1 import function_X
>>>function_X()

function_X in module_n1 

Then we followed the hierarchy package and called module_n1 the function. We can use __init__.py in subPackage_b like this:

__all__ = ['module_n2', 'module_n3']

After running:

>>>from package_x.subPackage_b import * 
>>>module_n1.function_X()

Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
ImportError: No module named module_n1

Hence using * importing, module package is subject to __init__.py content.

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  • How will my setup.py look to do the same import through the packaged library? from package_x.subPackage_b.module_n1 import function_X – technazi Sep 4 '19 at 20:51
  • so the key take away here is "using * importing, module package is subject to init.py content" – soMuchToLearn Mar 6 at 9:44
40

__init__.py will treat the directory it is in as a loadable module.

For people who prefer reading code, I put Two-Bit Alchemist's comment here.

$ find /tmp/mydir/
/tmp/mydir/
/tmp/mydir//spam
/tmp/mydir//spam/__init__.py
/tmp/mydir//spam/module.py
$ cd ~
$ python
>>> import sys
>>> sys.path.insert(0, '/tmp/mydir')
>>> from spam import module
>>> module.myfun(3)
9
>>> exit()
$ 
$ rm /tmp/mydir/spam/__init__.py*
$ 
$ python
>>> import sys
>>> sys.path.insert(0, '/tmp/mydir')
>>> from spam import module
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
ImportError: No module named spam
>>> 
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31

It facilitates importing other python files. When you placed this file in a directory (say stuff)containing other py files, then you can do something like import stuff.other.

root\
    stuff\
         other.py

    morestuff\
         another.py

Without this __init__.py inside the directory stuff, you couldn't import other.py, because Python doesn't know where the source code for stuff is and unable to recognize it as a package.

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  • 2
    I have the same structure in my project(python 3.4) but i'm not able to make another.py see other.py. How should i make the import? from root.stuff import other? It works in VSCode debug mode but not in command line. Any ideas? – rodrigorf Oct 23 '18 at 16:55
8

An __init__.py file makes imports easy. When an __init__.py is present within a package, function a() can be imported from file b.py like so:

from b import a

Without it, however, you can't import directly. You have to amend the system path:

import sys
sys.path.insert(0, 'path/to/b.py')

from b import a
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0

One thing __init__.py allows is converting a module to a package without breaking the API or creating extraneous nested namespaces or private modules*. This helps when I want to extend a namespace.

If I have a file util.py containing

def foo():
   ...

then users will access foo with

from util import foo

If I then want to add utility functions for database interaction, and I want them to have their own namespace under util, I'll need a new directory**, and to keep API compatibility (so that from util import foo still works), I'll call it util/. I could move util.py into util/ like so,

util/
  __init__.py
  util.py
  db.py

and in util/__init__.py do

from util import *

but this is redundant. Instead of having a util/util.py file, we can just put the util.py contents in __init__.py and the user can now

from util import foo
from util.db import check_schema

I think this nicely highlights how a util package's __init__.py acts in a similar way to a util module

* this is hinted at in the other answers, but I want to highlight it here
** short of employing import gymnastics. Note it won't work to create a new package with the same name as the file, see this

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  • Don't you mean from util import check_schema since you already did in __init __.py from util import * – Mark Oct 15 at 21:31
  • @Mark no, from util import * would be in util/__init__.py, and so wouldn't import db it would import the contents of util/util.py. I'll clarify the answer – joel Oct 15 at 21:38

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