309

I've got a python project with a configuration file in the project root. The configuration file needs to be accessed in a few different files throughout the project.

So it looks something like: <ROOT>/configuration.conf <ROOT>/A/a.py, <ROOT>/A/B/b.py (when b,a.py access the configuration file).

What's the best / easiest way to get the path to the project root and the configuration file without depending on which file inside the project I'm in? i.e without using ../../? It's okay to assume that we know the project root's name.

7
  • 1
    does <ROOT>/__init__.py exist?
    – mgilson
    Aug 19, 2014 at 17:08
  • Either your configuration file is a python module, and you can easily access it just with an import statement, either it's not a python module and you should put it in a well known location. For example $HOME/.my_project/my_project.conf. Aug 19, 2014 at 17:09
  • @JohnSmithOptional - It's a JSON file. I need to be able to access it using the path. Yes. All of the folders include it.
    – matanc1
    Aug 19, 2014 at 17:09
  • 1
    _ It's okay to assume that we know the project root's name._ Does that mean you know the path to the project? Isn't it just os.path.join(known_root_name, "configuration.conf") then?
    – tdelaney
    Aug 19, 2014 at 17:19
  • If it's a user configuration I'd generally use something like os.path.expanduser('~/.myproject/myproject.conf'). It works on Unix and Windows. Aug 19, 2014 at 17:22

28 Answers 28

317

You can do this how Django does it: define a variable to the Project Root from a file that is in the top-level of the project. For example, if this is what your project structure looks like:

project/
    configuration.conf
    definitions.py
    main.py
    utils.py

In definitions.py you can define (this requires import os):

ROOT_DIR = os.path.dirname(os.path.abspath(__file__)) # This is your Project Root

Thus, with the Project Root known, you can create a variable that points to the location of the configuration (this can be defined anywhere, but a logical place would be to put it in a location where constants are defined - e.g. definitions.py):

CONFIG_PATH = os.path.join(ROOT_DIR, 'configuration.conf')  # requires `import os`

Then, you can easily access the constant (in any of the other files) with the import statement (e.g. in utils.py): from definitions import CONFIG_PATH.

19
  • 1
    To include the definitions.py file like that, will it be required to add a __init__.py file to the root project directory as well ? Should that be correct ? I've just started with python and not sure on the best practices. Thanks.
    – akskap
    Aug 30, 2016 at 8:20
  • 3
    @akskap: No, an __init__.py will not be required, as that file is only required when defining packages: The __init__.py files are required to make Python treat the directories as containing packages; 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. In the simplest case, __init__.py can just be an empty file, but it can also execute initialization code for the package or set the __all__ variable, described later. See: docs.python.org/3/tutorial/modules.html#packages
    – jrd1
    Aug 31, 2016 at 6:02
  • 3
    @JavNoor: no - in the example you cited, os.path.abspath is calling a string, '__file__'. Recall that __file__ is actually an import attribute that's defined for Python modules. In this case, __file__ will return the pathname from which the module is loaded. Read more here (see the modules section): docs.python.org/3/reference/datamodel.html
    – jrd1
    Feb 17, 2019 at 8:18
  • 1
    @AstroFloyd: It will only fail if subdir is not a sub-package (i.e. it's missing __init__.py in the subdir). Without package structuring, Python won't know where ROOT_DIR should be referenced from
    – jrd1
    May 18, 2021 at 15:26
  • 2
    I understood that to allow relative imports, you need to "turn your code into a package", but it took me a while to figure out that that means all of 1) putting an __init__.py in the top dir of your code and 2) adding the parent directory of the top dir to your PYTHONPATH and 3) setting the __package__ variable in your Python program to the name of the directory that contains __init__.py. All is working now. Thanks!
    – AstroFloyd
    May 20, 2021 at 11:44
199

Other answers advice to use a file in the top-level of the project. This is not necessary if you use pathlib.Path and parent (Python 3.4 and up). Consider the following directory structure where all files except README.md and utils.py have been omitted.

project
│   README.md
|
└───src
│   │   utils.py
|   |   ...
|   ...

In utils.py we define the following function.

from pathlib import Path

def get_project_root() -> Path:
    return Path(__file__).parent.parent

In any module in the project we can now get the project root as follows.

from src.utils import get_project_root

root = get_project_root()

Benefits: Any module which calls get_project_root can be moved without changing program behavior. Only when the module utils.py is moved we have to update get_project_root and the imports (refactoring tools can be used to automate this).

7
  • 10
    Any module that's in the root. Calling src.utils from outside of the root shouldn't work. Am I wrong?
    – aerijman
    Oct 30, 2019 at 16:15
  • name 'file' is not defined , why?
    – Luk Aron
    Mar 25, 2020 at 7:38
  • 1
    @LukAron: Be sure to use __file__ (note underscores) which is a module attribute containing absolute path of module, otherwise it will not work.
    – Nerxis
    Feb 8, 2021 at 9:48
  • 3
    In my case (due to Linux OS?), Path() returns the relative path. Hence, I need Path(__file__).absolute().parent.parent for this example.
    – AstroFloyd
    May 18, 2021 at 14:07
  • 1
    Awesome, this actually works in my case where I was using python datasets library and on load_dataset, my custom dataset class was being called inside huggingface path (a symlink was being generated of my dataclass file inside the huggingface cache dir). So, I was not able to load other files from cache because files were not in cache but inside project root directory. This helps me there. Sep 29, 2022 at 9:11
62

All the previous solutions seem to be overly complicated for what I think you need, and often didn't work for me. The following one-line command does what you want:

import os
ROOT_DIR = os.path.abspath(os.curdir)
3
  • 5
    Put that in config.py, at the root of the directory, .. bamn! Yout got yourself a singleton.
    – swdev
    Mar 12, 2019 at 15:35
  • 17
    This method presumes you run the application from within the path that it exists. Many "users" have an icon they click from a desktop or can run the app from another directory entirely.
    – DevPlayer
    Oct 22, 2019 at 20:12
  • Still the cleanest way if running from a Non-GUI setup! Thanks @martim
    – Roopesh90
    Mar 6 at 6:06
54

Below Code Returns the path until your project root

import sys
print(sys.path[1])
6
  • Nice tip! I wonder why nobody upvoted your answer but me :P
    – daveoncode
    Jun 16, 2020 at 7:25
  • Thanks Daveon Really appreciate that !! Jun 16, 2020 at 22:42
  • 2
    Unfortunately is not that, simple :P ...take a look at my full solution: stackoverflow.com/a/62510836/267719
    – daveoncode
    Jun 22, 2020 at 9:01
  • 1
    For me sys.path[0] worked.
    – hbstha123
    Apr 16, 2022 at 14:47
  • 4
    this is unreliable. the root path is always in the list, but the list order changes.
    – Chris
    Apr 10, 2023 at 22:52
30

To get the path of the "root" module, you can use:

import os
import sys
os.path.dirname(sys.modules['__main__'].__file__)

But more interestingly if you have an config "object" in your top-most module you could -read- from it like so:

app = sys.modules['__main__']
stuff = app.config.somefunc()
3
  • 1
    Here os is not by default available. Need to import os. So adding the line import os would make the answer more complete. May 3, 2018 at 11:50
  • 8
    This gives the directory that contains the script that was executed. For example, when running python3 -m topmodule.submodule.script it will give /path/to/topmodule/submodule instead of /path/to/topmodule.
    – danijar
    Mar 31, 2019 at 18:18
  • In context of tests invoked by pytest I have got /home/user/.local/lib/python3.9/site-packages/pytest/__main__.py. RikH's answer is most robust for me (Path(__file__).parent.parent in fix-placed module).
    – x'ES
    Apr 11, 2022 at 0:42
22

A standard way to achieve this would be to use the pkg_resources module which is part of the setuptools package. setuptools is used to create an install-able python package.

You can use pkg_resources to return the contents of your desired file as a string and you can use pkg_resources to get the actual path of the desired file on your system.

Let's say that you have a package called stackoverflow.

stackoverflow/
|-- app
|   `-- __init__.py
`-- resources
    |-- bands
    |   |-- Dream\ Theater
    |   |-- __init__.py
    |   |-- King's\ X
    |   |-- Megadeth
    |   `-- Rush
    `-- __init__.py

3 directories, 7 files

Now let's say that you want to access the file Rush from a module app.run. Use pkg_resources.resouces_filename to get the path to Rush and pkg_resources.resource_string to get the contents of Rush; thusly:

import pkg_resources

if __name__ == "__main__":
    print pkg_resources.resource_filename('resources.bands', 'Rush')
    print pkg_resources.resource_string('resources.bands', 'Rush')

The output:

/home/sri/workspace/stackoverflow/resources/bands/Rush
Base: Geddy Lee
Vocals: Geddy Lee
Guitar: Alex Lifeson
Drums: Neil Peart

This works for all packages in your python path. So if you want to know where lxml.etree exists on your system:

import pkg_resources

if __name__ == "__main__":
    print pkg_resources.resource_filename('lxml', 'etree')

output:

/usr/lib64/python2.7/site-packages/lxml/etree

The point is that you can use this standard method to access files that are installed on your system (e.g pip install xxx or yum -y install python-xxx) and files that are within the module that you're currently working on.

1
  • 5
    I like your band choice !
    – dylan_fan
    Jun 20, 2018 at 12:06
18

Try:

ROOT_DIR = os.path.dirname(os.path.dirname(os.path.abspath(__file__)))
2
  • 1
    This is exactly what i needed. Simple solution, works for me because my structure was root->config->conf.py I wanted to define the project root in conf.py and root was exactly two levels up from that file. Aug 27, 2019 at 13:04
  • This is the best solution so far! Thanks Oct 8, 2022 at 20:35
16

Simple and Dynamic!

this solution works on any OS and in any level of directory:

Assuming your project folder name is my_project

from pathlib import Path

current_dir = Path(__file__)
project_dir = [p for p in current_dir.parents if p.parts[-1]=='my_project'][0]

1
  • 6
    An alternative to the list comprehension is a generator, and using Path.name: project_dir = next(p for p in current_dir.parents if p.name == "my_project").
    – Alex Povel
    Dec 22, 2021 at 12:13
10

Here is a package that solves that problem: from-root

pip install from-root

from from_root import from_root, from_here

# path to config file at the root of your project
# (no matter from what file of the project the function is called!)
config_path = from_root('config.json')

# path to the data.csv file at the same directory where the callee script is located
# (has nothing to do with the current working directory)
data_path = from_here('data.csv')

Check out the link above and read the readme to see more use cases

1
  • 3
    what a wonderful little package!
    – jonathan
    May 21, 2022 at 4:01
9

I've recently been trying to do something similar and I have found these answers inadequate for my use cases (a distributed library that needs to detect project root). Mainly I've been battling different environments and platforms, and still haven't found something perfectly universal.

Code local to project

I've seen this example mentioned and used in a few places, Django, etc.

import os
print(os.path.dirname(os.path.abspath(__file__)))

Simple as this is, it only works when the file that the snippet is in is actually part of the project. We do not retrieve the project directory, but instead the snippet's directory

Similarly, the sys.modules approach breaks down when called from outside the entrypoint of the application, specifically I've observed a child thread cannot determine this without relation back to the 'main' module. I've explicitly put the import inside a function to demonstrate an import from a child thread, moving it to top level of app.py would fix it.

app/
|-- config
|   `-- __init__.py
|   `-- settings.py
`-- app.py

app.py

#!/usr/bin/env python
import threading


def background_setup():
    # Explicitly importing this from the context of the child thread
    from config import settings
    print(settings.ROOT_DIR)


# Spawn a thread to background preparation tasks
t = threading.Thread(target=background_setup)
t.start()

# Do other things during initialization

t.join()

# Ready to take traffic

settings.py

import os
import sys


ROOT_DIR = None


def setup():
    global ROOT_DIR
    ROOT_DIR = os.path.dirname(sys.modules['__main__'].__file__)
    # Do something slow

Running this program produces an attribute error:

>>> import main
>>> Exception in thread Thread-1:
Traceback (most recent call last):
  File "C:\Python2714\lib\threading.py", line 801, in __bootstrap_inner
    self.run()
  File "C:\Python2714\lib\threading.py", line 754, in run
    self.__target(*self.__args, **self.__kwargs)
  File "main.py", line 6, in background_setup
    from config import settings
  File "config\settings.py", line 34, in <module>
    ROOT_DIR = get_root()
  File "config\settings.py", line 31, in get_root
    return os.path.dirname(sys.modules['__main__'].__file__)
AttributeError: 'module' object has no attribute '__file__'

...hence a threading-based solution

Location independent

Using the same application structure as before but modifying settings.py

import os
import sys
import inspect
import platform
import threading


ROOT_DIR = None


def setup():
    main_id = None
    for t in threading.enumerate():
        if t.name == 'MainThread':
            main_id = t.ident
            break

    if not main_id:
        raise RuntimeError("Main thread exited before execution")

    current_main_frame = sys._current_frames()[main_id]
    base_frame = inspect.getouterframes(current_main_frame)[-1]

    if platform.system() == 'Windows':
        filename = base_frame.filename
    else:
        filename = base_frame[0].f_code.co_filename

    global ROOT_DIR
    ROOT_DIR = os.path.dirname(os.path.abspath(filename))

Breaking this down: First we want to accurately find the thread ID of the main thread. In Python3.4+ the threading library has threading.main_thread() however, everybody doesn't use 3.4+ so we search through all threads looking for the main thread save it's ID. If the main thread has already exited, it won't be listed in the threading.enumerate(). We raise a RuntimeError() in this case until I find a better solution.

main_id = None
for t in threading.enumerate():
    if t.name == 'MainThread':
        main_id = t.ident
        break

if not main_id:
    raise RuntimeError("Main thread exited before execution")

Next we find the very first stack frame of the main thread. Using the cPython specific function sys._current_frames() we get a dictionary of every thread's current stack frame. Then utilizing inspect.getouterframes() we can retrieve the entire stack for the main thread and the very first frame. current_main_frame = sys._current_frames()[main_id] base_frame = inspect.getouterframes(current_main_frame)[-1] Finally, the differences between Windows and Linux implementations of inspect.getouterframes() need to be handled. Using the cleaned up filename, os.path.abspath() and os.path.dirname() clean things up.

if platform.system() == 'Windows':
    filename = base_frame.filename
else:
    filename = base_frame[0].f_code.co_filename

global ROOT_DIR
ROOT_DIR = os.path.dirname(os.path.abspath(filename))

So far I've tested this on Python2.7 and 3.6 on Windows as well as Python3.4 on WSL

1
  • I've tried your "Location independent" code snippet, and I see that it returns a folder where a Python file is executed, not the project root.
    – user9608133
    Sep 28, 2022 at 9:37
7

I decided for myself as follows.
Need to get the path to 'MyProject/drivers' from the main file.

MyProject/
├─── RootPackge/
│    ├── __init__.py
│    ├── main.py
│    └── definitions.py
│
├─── drivers/
│    └── geckodriver.exe
│
├── requirements.txt
└── setup.py

definitions.py
Put not in the root of the project, but in the root of the main package

from pathlib import Path

ROOT_DIR = Path(__file__).parent.parent

Use ROOT_DIR:
main.py

# imports must be relative,
# not from the root of the project,
# but from the root of the main package.
# Not this way:
# from RootPackge.definitions import ROOT_DIR
# But like this:
from definitions import ROOT_DIR

# Here we use ROOT_DIR
# get path to MyProject/drivers
drivers_dir = ROOT_DIR / 'drivers'
# Thus, you can get the path to any directory
# or file from the project root

driver = webdriver.Firefox(drivers_dir)
driver.get('http://www.google.com')

Then PYTHON_PATH will not be used to access the 'definitions.py' file.

Works in PyCharm:
run file 'main.py' (ctrl + shift + F10 in Windows)

Works in CLI from project root:

$ py RootPackge/main.py

Works in CLI from RootPackge:

$ cd RootPackge
$ py main.py

Works from directories above project:

$ cd ../../../../
$ py MyWork/PythoProjects/MyProject/RootPackge/main.py

Works from anywhere if you give an absolute path to the main file.
Doesn't depend on venv.

4

This worked for me using a standard PyCharm project with my virtual environment (venv) under the project root directory.

Code below isnt the prettiest, but consistently gets the project root. It returns the full directory path to venv from the VIRTUAL_ENV environment variable e.g. /Users/NAME/documents/PROJECT/venv

It then splits the path at the last /, giving an array with two elements. The first element will be the project path e.g. /Users/NAME/documents/PROJECT

import os

print(os.path.split(os.environ['VIRTUAL_ENV'])[0])
2
  • 3
    This won't work with setups like anaconda or pipenv, since the virtual environment isn't contained within the project in those cases.
    – Gripp
    Jul 6, 2018 at 11:17
  • Clearly the best solution when working with venv. Thank you, it was worth scrolling down.
    – jMike
    Dec 14, 2022 at 16:03
3

I struggled with this problem too until I came to this solution. This is the cleanest solution in my opinion.

In your setup.py add "packages"

setup(
name='package_name'
version='0.0.1'
.
.
.
packages=['package_name']
.
.
.
)

In your python_script.py

import pkg_resources
import os

resource_package = pkg_resources.get_distribution(
    'package_name').location
config_path = os.path.join(resource_package,'configuration.conf')
1
  • Using a virtual environment and installing the package with python3 setup.py install it was not pointing to the source code folder anymore, but to the egg inside ~./virtualenv/..../app.egg. So I had to include the configuration file into the package install.
    – loxosceles
    May 13, 2019 at 23:11
2

Just an example: I want to run runio.py from within helper1.py

Project tree example:

myproject_root
- modules_dir/helpers_dir/helper1.py
- tools_dir/runio.py

Get project root:

import os
rootdir = os.path.dirname(os.path.realpath(__file__)).rsplit(os.sep, 2)[0]

Build path to script:

runme = os.path.join(rootdir, "tools_dir", "runio.py")
execfile(runme)
2

I had to implement a custom solution because it's not as simple as you might think. My solution is based on stack trace inspection (inspect.stack()) + sys.path and is working fine no matter the location of the python module in which the function is invoked nor the interpreter (I tried by running it in PyCharm, in a poetry shell and other...). This is the full implementation with comments:

def get_project_root_dir() -> str:
    """
    Returns the name of the project root directory.

    :return: Project root directory name
    """

    # stack trace history related to the call of this function
    frame_stack: [FrameInfo] = inspect.stack()

    # get info about the module that has invoked this function
    # (index=0 is always this very module, index=1 is fine as long this function is not called by some other
    # function in this module)
    frame_info: FrameInfo = frame_stack[1]

    # if there are multiple calls in the stacktrace of this very module, we have to skip those and take the first
    # one which comes from another module
    if frame_info.filename == __file__:
        for frame in frame_stack:
            if frame.filename != __file__:
                frame_info = frame
                break

    # path of the module that has invoked this function
    caller_path: str = frame_info.filename

    # absolute path of the of the module that has invoked this function
    caller_absolute_path: str = os.path.abspath(caller_path)

    # get the top most directory path which contains the invoker module
    paths: [str] = [p for p in sys.path if p in caller_absolute_path]
    paths.sort(key=lambda p: len(p))
    caller_root_path: str = paths[0]

    if not os.path.isabs(caller_path):
        # file name of the invoker module (eg: "mymodule.py")
        caller_module_name: str = Path(caller_path).name

        # this piece represents a subpath in the project directory
        # (eg. if the root folder is "myproject" and this function has ben called from myproject/foo/bar/mymodule.py
        # this will be "foo/bar")
        project_related_folders: str = caller_path.replace(os.sep + caller_module_name, '')

        # fix root path by removing the undesired subpath
        caller_root_path = caller_root_path.replace(project_related_folders, '')

    dir_name: str = Path(caller_root_path).name

    return dir_name
3
  • @dev, whats inspect in inspect.stack()
    – binrebin
    Sep 10, 2020 at 13:43
  • @binrebin inspect - module in Python standard library. Dec 14, 2020 at 19:52
  • @daveoncode, i found another thing somewhere. thans for reply
    – binrebin
    Jan 23, 2021 at 18:20
2

I would take a different approach where i would keep looping while moving up until it locate the .git folder or any other file in the root

import os

def find_project_root(start_dir):
    """Find the root directory of a project containing a .git directory.
    Usage: find_project_root(os.path.dirname(os.path.abspath(__file__)))
    Args:
        start_dir (str): The directory to start the search from."""
    current_dir = start_dir
    while True:
        if os.path.exists(os.path.join(current_dir, '.git')):
            return current_dir
        # Move up one directory
        current_dir = os.path.pardir(current_dir)
        # If reached the root directory
        if current_dir == os.path.dirname(current_dir):
            return None

project_root = find_project_root(os.path.dirname(os.path.abspath(__file__)))
print(project_root)

or

simply use this:

import subprocess

project_root = subprocess.run(["git", "rev-parse", "--show-toplevel"], capture_output=True, text=True).stdout.replace("\n", "")

print(project_root)
1
  • I like the idea, here is a recursive function: 'def find_project_root(current_dir): if os.path.exists(os.path.join(current_dir, '.git')): return current_dir else: # Move up one directory current_dir = current_dir.parent if len(current_dir.parents)<2: return None return find_project_root(current_dir)'
    – Zeus
    Mar 13 at 2:59
1

I used the ../ method to fetch the current project path.

Example: Project1 -- D:\projects

src

ConfigurationFiles

Configuration.cfg

Path="../src/ConfigurationFiles/Configuration.cfg"

1

Here's my take on this issue.

I have a simple use-case that bugged me for a while. Tried a few solutions, but I didn't like either of them flexible enough.

So here's what I figured out.

  • create a blank python file in the root dir -> I call this beacon.py
    (assuming that the project root is in the PYTHONPATH so it can be imported)
  • add a few lines to my module/class which I call here not_in_root.py.
    This will import the beacon.py module and get the path to that module

Here's an example project structure

this_project
├── beacon.py
├── lv1
│   ├── __init__.py
│   └── lv2
│       ├── __init__.py
│       └── not_in_root.py
...

The content of the not_in_root.py

import os
from pathlib import Path


class Config:
    try:
        import beacon
        print(f"'import beacon' -> {os.path.dirname(os.path.abspath(beacon.__file__))}")  # only for demo purposes
        print(f"'import beacon' -> {Path(beacon.__file__).parent.resolve()}")  # only for demo purposes
    except ModuleNotFoundError as e:
        print(f"ModuleNotFoundError: import beacon failed with {e}. "
              f"Please. create a file called beacon.py and place it to the project root directory.")

    project_root = Path(beacon.__file__).parent.resolve()
    input_dir = project_root / 'input'
    output_dir = project_root / 'output'


if __name__ == '__main__':
    c = Config()
    print(f"Config.project_root: {c.project_root}")
    print(f"Config.input_dir: {c.input_dir}")
    print(f"Config.output_dir: {c.output_dir}")

The output would be

/home/xyz/projects/this_project/venv/bin/python /home/xyz/projects/this_project/lv1/lv2/not_in_root.py
'import beacon' -> /home/xyz/projects/this_project
'import beacon' -> /home/xyz/projects/this_project
Config.project_root: /home/xyz/projects/this_project
Config.input_dir: /home/xyz/projects/this_project/input
Config.output_dir: /home/xyz/projects/this_project/output

Of course, it doesn't need to be called beacon.py nor need to be empty, essentially any python file (importable) file would do as long as it's in the root directory.

Using an empty .py file sort of guarantees that it will not be moved elsewhere due to some future refactoring.

Cheers

1

The project root directory does not have __init__.py. I solved this problem by looking for an ancestor directory that does not have __init__.py.

from functools import lru_cache
from pathlib import Path

@lru_cache()
def get_root_dir() -> str:
    path = Path().cwd()
    while Path(path, "__init__.py").exists():
        path = path.parent
    return str(path)
1

To do this, you can add the root directory of your code repository to the Python path. You can do this by adding the following lines of code at the beginning of your script:

import os
import sys
sys.path.insert(0, os.path.abspath(os.path.join(os.path.dirname(__file__), '..')))

This code adds the parent directory of the current file (which is assumed to be in a subfolder of the root directory) to the Python path.

0

If you are working with anaconda-project, you can query the PROJECT_ROOT from the environment variable --> os.getenv('PROJECT_ROOT'). This works only if the script is executed via anaconda-project run .

If you do not want your script run by anaconda-project, you can query the absolute path of the executable binary of the Python interpreter you are using and extract the path string up to the envs directory exclusiv. For example: The python interpreter of my conda env is located at:

/home/user/project_root/envs/default/bin/python

# You can first retrieve the env variable PROJECT_DIR.
# If not set, get the python interpreter location and strip off the string till envs inclusiv...

if os.getenv('PROJECT_DIR'):
    PROJECT_DIR = os.getenv('PROJECT_DIR')
else:
    PYTHON_PATH = sys.executable
    path_rem = os.path.join('envs', 'default', 'bin', 'python')
    PROJECT_DIR = py_path.split(path_rem)[0]

This works only with conda-project with fixed project structure of a anaconda-project

0

I ended up needing to do this in various different situations where different answers worked correctly, others didn't, or either with various modifications, so I made this package to work for most situations

pip install get-project-root
    from get_project_root import root_path
    
    project_root = root_path(ignore_cwd=False)
    # >> "C:/Users/person/source/some_project/"

https://pypi.org/project/get-project-root/

0

This is not exactly the answer to this question; But it might help someone. In fact, if you know the names of the folders, you can do this.

import os
import sys

TMP_DEL = '×'
PTH_DEL = '\\'


def cleanPath(pth):
    pth = pth.replace('/', TMP_DEL)
    pth = pth.replace('\\', TMP_DEL)
    return pth


def listPath():
    return sys.path


def getPath(__file__):
    return os.path.abspath(os.path.dirname(__file__))


def getRootByName(__file__, dirName):
    return getSpecificParentDir(__file__, dirName)


def getSpecificParentDir(__file__, dirName):
    pth = cleanPath(getPath(__file__))
    dirName = cleanPath(dirName)
    candidate = f'{TMP_DEL}{dirName}{TMP_DEL}'
    if candidate in pth:
        pth = (pth.split(candidate)[0]+TMP_DEL +
               dirName).replace(TMP_DEL*2, TMP_DEL)
        return pth.replace(TMP_DEL, PTH_DEL)
    return None


def getSpecificChildDir(__file__, dirName):
    for x in [x[0] for x in os.walk(getPath(__file__))]:
        dirName = cleanPath(dirName)
        x = cleanPath(x)
        if TMP_DEL in x:
            if x.split(TMP_DEL)[-1] == dirName:
                return x.replace(TMP_DEL, PTH_DEL)
    return None

List available folders:

print(listPath())

Usage:

#Directories
#ProjectRootFolder/.../CurrentFolder/.../SubFolder


print(getPath(__file__))
# c:\ProjectRootFolder\...\CurrentFolder

print(getRootByName(__file__, 'ProjectRootFolder'))
# c:\ProjectRootFolder

print(getSpecificParentDir(__file__, 'ProjectRootFolder'))
# c:\ProjectRootFolder

print(getSpecificParentDir(__file__, 'CurrentFolder'))
# None

print(getSpecificChildDir(__file__, 'SubFolder'))
# c:\ProjectRootFolder\...\CurrentFolder\...\SubFolder
0

One-line solution

Hi all! I have been having this issue for ever as well and none of the solutions worked for me, so I used a similar approach that here::here() uses in R.

  1. Install the groo package: pip install groo-ozika

  2. Place a hidden file in your root directory, e.g. .my_hidden_root_file.

  3. Then from anywhere lower in the directory hierarchy (i.e. within the root) run the following:


from groo.groo import get_root
root_folder = get_root(".my_hidden_root_file")

  1. That's it!

It just executes the following function:

def get_root(rootfile):
    import os 
    from pathlib import Path
    d = Path(os.getcwd())
    found = 0
    while found == 0:
        if os.path.isfile(os.path.join(d, rootfile)):
            found = 1
        else:
            d=d.parent
    return d
2
  • This is over-complicated for most of time, but would work for pyproject.toml instead of .my_hidden_root_file . Jul 20, 2022 at 12:46
  • @KazuyaGosho I disagree on this point - there might be multiple pyproject.toml files in the hierarchy, same for .git or similar. This is very simple to reproduce and it works from all levels and on all platforms :) Aug 12, 2022 at 9:22
0

I know this question has a LOT of answers, but I'd like to share a pretty straightforward method IMO.

Using python-git-info

You can define and use this function from anywhere inside your project. Simple.

def getRoot()->Path:
  """Function to get the root directory path

   Returns:
     Path: Root of project
  """
  import gitinfo
  o:dict = gitinfo.get_git_info()
  repoString = o['gitdir'].split('/')[-2]
  dirList = dir.split("/")
  for i in dirList:
    if dirList[-1]!=repoString:
      dirList.pop()
    else:
      ABPATH = "/".join(dirList)
  return Path(ABPATH)    
0

The simple solution for me is exploring sys.path and my own __file__ value, because the current running module is available in sys.path for sure, no matter how it has been imported, so:

def get_project_root(cls):
    for path in sys.path:
        r = __file__.split(path)
        if len(r) > 1:
            return path

will locate the absolute path of my project root folder, no matter if:

  • the current directory where the program is launched isn't related with folder code (i.e. sys.path[1] may fail)
  • I'm using a launcher such uvicorn so sys.modules['__main__'].__file__ will yield something like .venv/bin/uvicorn)
  • any other circumstance that may fails above solutions.

I hope it will helps.

-1

There are many answers here but I couldn't find something simple that covers all cases so allow me to suggest my solution too:

import pathlib
import os

def get_project_root():
    """
    There is no way in python to get project root. This function uses a trick.
    We know that the function that is currently running is in the project.
    We know that the root project path is in the list of PYTHONPATH
    look for any path in PYTHONPATH list that is contained in this function's path
    Lastly we filter and take the shortest path because we are looking for the root.
    :return: path to project root
    """
    apth = str(pathlib.Path().absolute())
    ppth = os.environ['PYTHONPATH'].split(':')
    matches = [x for x in ppth if x in apth]
    project_root = min(matches, key=len)
    return project_root

1
  • I do not think we know our projects are in the PYTHONPATH path. I can create a shortcut icon for my desktop (Microsoft Windows) that has a "starting directory" that is outside my PYTHONPATH, and I can just open a console, cd to the directory with the Python module and just type it in: python.exe my_root_module.py which would not be in my PYTHONPATH environment variable.
    – DevPlayer
    Jun 23, 2021 at 20:46
-1

Important: This solution requires you to run the file as a module with python -m pkg.file and not as a script like python file.py.

import sys
import os.path as op
root_pkg_dirname = op.dirname(sys.modules[__name__.partition('.')[0]].__file__)

Other answers have requirements like depending on an environment variable or the position of another module in the package structure.

As long as you run the script as python -m pkg.file (with the -m), this approach is self-contained and will work in any module of the package, including in the top-level __init__.py file.

import sys
import os.path as op

root_pkg_name, _, _ = __name__.partition('.')
root_pkg_module = sys.modules[root_pkg_name]
root_pkg_dirname = op.dirname(root_pkg_module.__file__)

config_path = os.path.join(root_pkg_dirname, 'configuration.conf')

It works by taking the first component in the dotted string contained in __name__ and using it as a key in sys.modules which returns the module object of the top-level package. Its __file__ attribute contains the path we want after trimming off /__init__.py using os.path.dirname().

3
  • 1
    Could you add a short description about your solution and how they can use it as their solution?
    – LuRsT
    Apr 10, 2020 at 9:56
  • root_pkg_dirname is the directory where a file is called. It is not always a project root.
    – user9608133
    Sep 27, 2022 at 11:13
  • @Nairum The script has to be run as python -m for this method to work. I’ve added a note now explaining this.
    – Pyprohly
    Sep 28, 2022 at 3:13

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