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How can I load a Python module given its full path? Note that the file can be anywhere in the filesystem, as it is a configuration option.

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16 Answers 16

up vote 401 down vote accepted
import imp

foo = imp.load_source('', '/path/to/')

There are equivalent convenience functions for compiled Python files and DLLs.

For Python 3.3+ this is slightly more verbose:

from importlib.machinery import SourceFileLoader

foo = SourceFileLoader("", "/path/to/").load_module()

This method has been deprecated in Python 3.4, and there seems to be no equivalent. Cf.

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If I knew the namespace - '' - I would already use __import__. – Sridhar Ratnakumar Aug 10 '09 at 21:54
Thank a lot for pointing me toward this dark corner of Python's standard library. – thomas Aug 17 '09 at 22:22
@SridharRatnakumar the value of the first argument of imp.load_source only sets the .__name__ of the returned module. it doesn't effect loading. – Dan D. Dec 14 '11 at 4:51
@DanD. — the first argument of imp.load_source() determines the key of the new entry created in the sys.modules dictionary, so the first argument does indeed affect loading. – Brandon Rhodes Apr 21 '13 at 16:32
The imp module is deprecated since version 3.4: The imp package is pending deprecation in favor of importlib. – Chiel ten Brinke Dec 8 '13 at 11:20

The advantage of adding a path to sys.path (over using imp) is that it simplifies things when importing more than one module from a single package. For example:

import sys
# the mock-0.3.1 dir contains, &

from testcase import TestCase
from testutils import RunTests
from mock import Mock, sentinel, patch
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How do we use sys.path.append to point to a single python file instead of a directory? – Phani Jan 13 '14 at 17:46
:-) Perhaps your question would be better suited as a StackOverflow question, not a comment on an answer. – Daryl Spitzer Mar 6 at 0:12
To all people who were trying to include a file to their path... by definition "the shell path is a colon delimited list of directories". I'm relatively new to python, but the python path also follows the unix design principle from what I have seen. Please correct me if I am wrong. – Michael Baptist Apr 15 at 5:37
The python path can contain zip archives, "eggs" (a complex kind of zip archives), etc. Modules can be imported out of them. So the path elements are indeed containers of files, but they are not necessarily directories. – alexis Apr 30 at 21:21
Beware of the fact that Python caches import statements. In the rare case that you have two different folders sharing a single class name (classX), the approach of adding a path to sys.path, importing classX, removing the path and repeating for the reamaining paths won't work. Python will always load the class from the first path from its cache. In my case I aimed at creating a plugin system where all plugins implement a specific classX. I ended up using SourceFileLoader, note that its deprecation is controversial. – ComFreek Jul 3 at 17:18
def import_file(full_path_to_module):
        import os
        module_dir, module_file = os.path.split(full_path_to_module)
        module_name, module_ext = os.path.splitext(module_file)
        save_cwd = os.getcwd()
        module_obj = __import__(module_name)
        module_obj.__file__ = full_path_to_module
        globals()[module_name] = module_obj
        raise ImportError

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Why write 14 lines of buggy code when this is already addressed by the standard library? You haven't done error checking on format or content of full_path_to_module or the os.whatever operations; and using a catch-all except: clause is rarely a good idea. – Chris Johnson Jun 7 '13 at 19:17
You should use more "try-finally"s in here. E.g. save_cwd = os.getcwd() try: … finally: os.chdir(save_cwd) – Kay Sep 21 '14 at 1:33
@ChrisJohnson this is already addressed by the standard library yeah, but python has nasty habit of not being backward-compatible... as the checked answer says there're 2 different ways before and after 3.3. In that case I'd rather like to write my own universal function than check version on the fly. And yes, maybe this code isn't too well error-protected, but it shows an idea (which is os.chdir(), I haven't though about it), basing on which I can write a better code. Hence +1. – Sushi271 May 15 at 10:27

You can also do something like this and add the directory that the configuration file is sitting in to the Python load path, and then just do a normal import, assuming you know the name of the file in advance, in this case "config".

Messy, but it works.

configfile = '~/'

import os
import sys


import config
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You can use the

load_source(module_name, path_to_file) 

method from imp module.

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Best answer yet! – Python Guy Oct 17 at 16:47

Do you mean load or import?

You can manipulate the sys.path list specify the path to your module, then import your module. For example, given a module at:


You could do:

import sys
sys.path[0:0] = '/foo' # puts the /foo directory at the start of your path
import bar
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@Wheat Why sys.path[0:0] instead of sys.path[0]? – user618677 Jan 9 '12 at 6:56
B/c sys.path[0] = xy overwrites the first path item while path[0:0] =xy is equivalent to path.insert(0, xy) – dom0 Nov 15 '12 at 14:16
hm the path.insert worked for me but the [0:0] trick did not. – jsh Sep 30 '13 at 3:18
sys.path[0:0] = ['/foo'] – Kevin Edwards Apr 1 at 17:00

I believe you can use imp.find_module() and imp.load_module() to load the specified module. You'll need to split the module name off of the path, i.e. if you wanted to load /home/mypath/ you'd need to do:

imp.find_module('mymodule', '/home/mypath/')

...but that should get the job done.

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This should work

path = os.path.join('./path/to/folder/with/py/files', '*.py')
for infile in glob.glob(path):
    basename = os.path.basename(infile)
    basename_without_extension = basename[:-3]

    imp.load_source(basename_without_extension, infile)
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A more general way to cut the extension out is: name, ext = os.path.splitext(os.path.basename(infile)). Your method works because the previous restriction to .py extension. Also, you should probably import the module to some variable/dictionary entry. – ReneSac Dec 6 '12 at 13:16

Import package modules at runtime (Python recipe)

##                #
## #
##                #

import sys, types

def _get_mod(modulePath):
        aMod = sys.modules[modulePath]
        if not isinstance(aMod, types.ModuleType):
            raise KeyError
    except KeyError:
        # The last [''] is very important!
        aMod = __import__(modulePath, globals(), locals(), [''])
        sys.modules[modulePath] = aMod
    return aMod

def _get_func(fullFuncName):
    """Retrieve a function object from a full dotted-package name."""

    # Parse out the path, module, and function
    lastDot = fullFuncName.rfind(u".")
    funcName = fullFuncName[lastDot + 1:]
    modPath = fullFuncName[:lastDot]

    aMod = _get_mod(modPath)
    aFunc = getattr(aMod, funcName)

    # Assert that the function is a *callable* attribute.
    assert callable(aFunc), u"%s is not callable." % fullFuncName

    # Return a reference to the function itself,
    # not the results of the function.
    return aFunc

def _get_class(fullClassName, parentClass=None):
    """Load a module and retrieve a class (NOT an instance).

    If the parentClass is supplied, className must be of parentClass
    or a subclass of parentClass (or None is returned).
    aClass = _get_func(fullClassName)

    # Assert that the class is a subclass of parentClass.
    if parentClass is not None:
        if not issubclass(aClass, parentClass):
            raise TypeError(u"%s is not a subclass of %s" %
                            (fullClassName, parentClass))

    # Return a reference to the class itself, not an instantiated object.
    return aClass

##       Usage      ##

class StorageManager: pass
class StorageManagerMySQL(StorageManager): pass

def storage_object(aFullClassName, allOptions={}):
    aStoreClass = _get_class(aFullClassName, StorageManager)
    return aStoreClass(allOptions)
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I made a package that uses imp for you. I call it import_file and this is how it's used:

>>>from import_file import import_file
>>>mylib = import_file('c:\\')
>>>another = import_file('relative_subdir/')

You can get it at:

or at

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os.chdir ? (minimal characters to approve comment). – ychaouche Oct 14 '12 at 10:46

In Linux, adding a symbolic link in the directory your python script is located works.


ln -s /absolute/path/to/module/ /absolute/path/to/script/

python will create /absolute/path/to/script/module.pyc and will update it if you change the contents of /absolute/path/to/module/

then include the following in

from module import *

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This is the hack I used, and it has caused me some problems. One of the more painful ones was that IDEA has an issue where it doesn't pickup altered code from within the link, but yet attempts to save what it thinks is there. A race condition where the last to save is what sticks... I lost a decent amount of work because of this. – Gripp Jun 16 at 23:23

You can use the pkgutil module (specifically the walk_packages method) to get a list of the packages in the current directory. From there it's trivial to use the importlib machinery to import the modules you want:

import pkgutil
import importlib

packages = pkgutil.walk_packages(path='.')
for importer, name, is_package in packages:
    mod = importlib.import_module(name)
    # do whatever you want with module now, it's been imported!
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This area of Python 3.4 seems to be extremely tortuous to understand! However with a bit of hacking using the code from Chris Calloway as a start I managed to get something working. Here's the basic function.

def import_module_from_file(full_path_to_module):
    Import a module given the full path/filename of the .py file

    Python 3.4


    module = None


        # Get module name and path from full path
        module_dir, module_file = os.path.split(full_path_to_module)
        module_name, module_ext = os.path.splitext(module_file)

        # Get module "spec" from filename
        spec = importlib.util.spec_from_file_location(module_name,full_path_to_module)

        module = spec.loader.load_module()

    except Exception as ec:
        # Simple error printing
        # Insert "sophisticated" stuff here

        return module

This appears to use non-deprecated modules from Python 3.4. I don't pretend to understand why, but it seems to work from within a program. I found Chris' solution worked on the command line but not from inside a program.

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I'm not saying that it is better, but for the sake of completeness, I wanted to suggest the exec function, available in both python 2 and 3. exec allows you to execute arbitrary code in either the global scope, or in an internal scope, provided as a dictionary.

For example, if you have a module stored in "/path/to/module" with the function foo(), you could run it by doing the following:

module = dict()
with open("/path/to/module") as f:
    exec(, module)

This makes it a bit more explicit that you're loading code dynamically, and grants you some additional power, such as the ability to provide custom builtins.

And if having access through attributes, instead of keys is important to you, you can design a custom dict class for the globals, that provides such access, e.g.:

class MyModuleClass(dict):
    def __getattr__(self, name):
        return self.__getitem__(name)
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execfile(), also – crowder Jun 20 at 4:13

To import a module from a given filename, you can temporarily extend the path, and restore the system path in the finally block reference:

filename = "directory/"

directory, module_name = os.path.split(filename)
module_name = os.path.splitext(module_name)[0]

path = list(sys.path)
sys.path.insert(0, directory)
    module = __import__(module_name)
    sys.path[:] = path # restore
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The best way, I think, is from the official documentation (29.1. imp — Access the import internals):

import imp
import sys

def __import__(name, globals=None, locals=None, fromlist=None):
    # Fast path: see if the module has already been imported.
        return sys.modules[name]
    except KeyError:

    # If any of the following calls raises an exception,
    # there's a problem we can't handle -- let the caller handle it.

    fp, pathname, description = imp.find_module(name)

        return imp.load_module(name, fp, pathname, description)
        # Since we may exit via an exception, close fp explicitly.
        if fp:
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