1389

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.

5
  • 89
    Nice and simple question - and useful answers but they make me wonder what happened with the python mantra "There is one obvious way" to do it.. It doesn't seem like anything like a single or a simple and obvious answer to it.. Seems ridiculously hacky and version-dependent for such a fundamental operation (and it looks and more bloated in newer versions..). – inger Dec 6 '19 at 12:08
  • 28
    @inger what happened with the python mantra "There is one obvious way" to do it [...] [not] a single or a simple and obvious answer to it [...] ridiculously hacky[...] more bloated in newer versions Welcome to the terrible world of python package management. Python's import, virtualenv, pip, setuptools whatnot should all be thrown out and replaced with working code. I just tried to grok virtualenv or was it pipenv and had to work thru the equivalent of a Jumbo Jet manual. How that contrivance is paraded as The Solution to dealing with deps totally escapes me. – John Frazer Jun 26 '20 at 20:59
  • 29
    relevant XKCD xkcd.com/1987 – John Frazer Jun 26 '20 at 21:08
  • @JohnFrazer it's been made worse by constant nagging of people who couldn't be bothered to read 2 paragraphs of documentation. Your XKCD isn't really relevant, as it shows what these kinds of people can achieve when trying things until something works. Also, just because there's a new way doesn't mean there's now "two obvious ways". The old way is obvious for some cases, the new way introduces ease of use to other. That's what happens when you actually care about DevX. – Błażej Michalik Dec 2 '20 at 0:13
  • 4
    And think that Java or even PHP (these days) have clear and simple way of splitting things in packages/namespaces and reuse it. It's a shock to see such pain in Python which adopted simplicity in every other aspect. – Alex Jan 27 at 7:46

33 Answers 33

1479

For Python 3.5+ use:

import importlib.util
spec = importlib.util.spec_from_file_location("module.name", "/path/to/file.py")
foo = importlib.util.module_from_spec(spec)
spec.loader.exec_module(foo)
foo.MyClass()

For Python 3.3 and 3.4 use:

from importlib.machinery import SourceFileLoader

foo = SourceFileLoader("module.name", "/path/to/file.py").load_module()
foo.MyClass()

(Although this has been deprecated in Python 3.4.)

For Python 2 use:

import imp

foo = imp.load_source('module.name', '/path/to/file.py')
foo.MyClass()

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

See also http://bugs.python.org/issue21436.

39
  • 67
    If I knew the namespace - 'module.name' - I would already use __import__. – Sridhar Ratnakumar Aug 10 '09 at 21:54
  • 66
    @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
  • 20
    @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
  • 14
    @AXO and more to the point one wonders why something as simple and basic as this has to be so complicated. It isn't in many many other languages. – rocky May 22 '16 at 17:04
  • 4
    @Mahesha999 Because importlib.import_module() does not allow you to import modules by filename, which is what the original question was about. – Sebastian Rittau Sep 28 '16 at 12:50
482

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 testcase.py, testutils.py & mock.py
sys.path.append('/foo/bar/mock-0.3.1')

from testcase import TestCase
from testutils import RunTests
from mock import Mock, sentinel, patch
12
  • 15
    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
  • 31
    :-) Perhaps your question would be better suited as a StackOverflow question, not a comment on an answer. – Daryl Spitzer Mar 6 '15 at 0:12
  • 4
    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 '15 at 21:21
  • 18
    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 '15 at 17:18
  • 4
    Note this approach allows the imported module to import other modules from the same dir, which modules often do, while the accepted answer's approach does not (at least on 3.7). importlib.import_module(mod_name) can be used instead of the explicit import here if the module name isn't known at runtime I would add a sys.path.pop() in the end, though, assuming the imported code doesn't try to import more modules as it is used. – Eli_B May 6 '19 at 21:45
75

If your top-level module is not a file but is packaged as a directory with __init__.py, then the accepted solution almost works, but not quite. In Python 3.5+ the following code is needed (note the added line that begins with 'sys.modules'):

MODULE_PATH = "/path/to/your/module/__init__.py"
MODULE_NAME = "mymodule"
import importlib
import sys
spec = importlib.util.spec_from_file_location(MODULE_NAME, MODULE_PATH)
module = importlib.util.module_from_spec(spec)
sys.modules[spec.name] = module 
spec.loader.exec_module(module)

Without this line, when exec_module is executed, it tries to bind relative imports in your top level __init__.py to the top level module name -- in this case "mymodule". But "mymodule" isn't loaded yet so you'll get the error "SystemError: Parent module 'mymodule' not loaded, cannot perform relative import". So you need to bind the name before you load it. The reason for this is the fundamental invariant of the relative import system: "The invariant holding is that if you have sys.modules['spam'] and sys.modules['spam.foo'] (as you would after the above import), the latter must appear as the foo attribute of the former" as discussed here.

7
  • 1
    Thanks a lot! This method enables relative imports between submodules. Great! – tebanep Oct 10 '19 at 14:09
  • 1
    This answer matches the documentation here: docs.python.org/3/library/…. – Tim Ludwinski Dec 9 '19 at 16:08
  • 1
    but what is mymodule? – Gulzar Jan 20 '20 at 10:02
  • @Gulzar, it is whatever name you'd like to give your module, such that you can later do: "from mymodule import myclass" – Idodo Feb 16 '20 at 22:44
  • 1
    Though unconventional, if your package entry point is something other than __init__.py, you can still import it as a package. Include spec.submodule_search_locations = [os.path.dirname(MODULE_PATH)] after creating the spec. You can also treat a __init__.py as a non-package (e.g. single module) by setting this value to None – Azmisov Nov 5 '20 at 20:32
73

To import your module, you need to add its directory to the environment variable, either temporarily or permanently.

Temporarily

import sys
sys.path.append("/path/to/my/modules/")
import my_module

Permanently

Adding the following line to your .bashrc (or alternative) file in Linux and excecute source ~/.bashrc (or alternative) in the terminal:

export PYTHONPATH="${PYTHONPATH}:/path/to/my/modules/"

Credit/Source: saarrrr, another stackexchange question

4
  • 8
    This "temp" solution is a great answer if you want to prod a project around in a jupyter notebook elsewhere. – fordy Nov 16 '18 at 17:20
  • But... it's dangerous tampering with the path – Shai Alon Nov 10 '19 at 15:56
  • @ShaiAlon You are adding paths, so no danger other than when you transfer codes from one computer to another, paths might get messed up. So, for package development, I only import local packages. Also, package names should be unique. If you are worried, use the temporary solution. – Miladiouss Nov 13 '19 at 0:11
  • 1
    Thanx. I like short, clean, concise answers. – DimiDak Aug 25 '20 at 12:54
37

It sounds like you don't want to specifically import the configuration file (which has a whole lot of side effects and additional complications involved), you just want to run it, and be able to access the resulting namespace. The standard library provides an API specifically for that in the form of runpy.run_path:

from runpy import run_path
settings = run_path("/path/to/file.py")

That interface is available in Python 2.7 and Python 3.2+

9
  • I like this method but when I get the result of run_path its a dictionary which I cannot seem to access? – Stephen Ellwood Sep 11 '18 at 9:00
  • What do you mean by "cannot access"? You can't import from it (that's why this is only a good option when import-style access isn't actually required), but the contents should be available via the regular dict API (result[name], result.get('name', default_value), etc) – ncoghlan Sep 13 '18 at 3:16
  • 1
    @Maggyero The command line never goes through runpy.run_path, but if a given path is a directory or zipfile, then it ends up delegating to runpy.run_module for the __main__ execution. The duplicated logic for "Is it a script, directory, or zipfile?" isn't complicated enough to be worth delegating to Python code. – ncoghlan Sep 22 '20 at 7:39
  • 1
    Also by looking at the implementation of the C function pymain_run_module, it seems that CPython delegates to the Python function runpy._run_module_as_main instead of runpy.run_module—though if I understood correctly the only difference is that the first function executes the code in the built-in __main__ environment (cf. here) while the second function executes it in a new environment? – Maggyero Sep 22 '20 at 9:33
  • 1
    @Maggyero Yep, that's the only difference. Originally it used the public function, but that turned out to interact badly with the interpreter's -i option (which drops you into an interactive shell in the original __main__ module, so -m running in a new module was inconvenient) – ncoghlan Oct 26 '20 at 7:10
21

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 = '~/config.py'

import os
import sys

sys.path.append(os.path.dirname(os.path.expanduser(configfile)))

import config
2
  • That is not dynamically. – Shai Alon Nov 10 '19 at 16:10
  • I tried: config_file = 'setup-for-chats', setup_file = get_setup_file(config_file + ".py"), sys.path.append(os.path.dirname(os.path.expanduser(setup_file))), import config_file >> "ImportError: No module named config_file" – Shai Alon Nov 10 '19 at 16:17
18

You can use the

load_source(module_name, path_to_file) 

method from imp module.

2
  • ... and imp.load_dynamic(module_name, path_to_file) for DLLs – HEKTO Dec 16 '15 at 19:03
  • 40
    heads up that imp is deprecated now. – t1m0 Apr 6 '16 at 18:11
17

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:

/foo/bar.py

You could do:

import sys
sys.path[0:0] = ['/foo'] # puts the /foo directory at the start of your path
import bar
6
  • 7
    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
  • 2
    hm the path.insert worked for me but the [0:0] trick did not. – jsh Sep 30 '13 at 3:18
  • 11
    sys.path[0:0] = ['/foo'] – Kevin Edwards Apr 1 '15 at 17:00
  • 13
    Explicit is better than implicit. So why not sys.path.insert(0, ...) instead of sys.path[0:0]? – winklerrr May 8 '19 at 11:54
  • 4
    @dom0 Just go with sys.path.append(...) then. It's clearer. – Guimoute Nov 15 '19 at 10:05
15

I have come up with a slightly modified version of @SebastianRittau's wonderful answer (for Python > 3.4 I think), which will allow you to load a file with any extension as a module using spec_from_loader instead of spec_from_file_location:

from importlib.util import spec_from_loader, module_from_spec
from importlib.machinery import SourceFileLoader 

spec = spec_from_loader("module.name", SourceFileLoader("module.name", "/path/to/file.py"))
mod = module_from_spec(spec)
spec.loader.exec_module(mod)

The advantage of encoding the path in an explicit SourceFileLoader is that the machinery will not try to figure out the type of the file from the extension. This means that you can load something like a .txt file using this method, but you could not do it with spec_from_file_location without specifying the loader because .txt is not in importlib.machinery.SOURCE_SUFFIXES.

0
14

Here is some code that works in all Python versions, from 2.7-3.5 and probably even others.

config_file = "/tmp/config.py"
with open(config_file) as f:
    code = compile(f.read(), config_file, 'exec')
    exec(code, globals(), locals())

I tested it. It may be ugly but so far is the only one that works in all versions.

1
  • 1
    This answer worked for me where load_source did not because it imports the script and provides the script access to the modules and globals at the time of importing. – Klik Nov 22 '17 at 19:13
14

you can do this using __ import __ and chdir

def import_file(full_path_to_module):
    try:
        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()
        os.chdir(module_dir)
        module_obj = __import__(module_name)
        module_obj.__file__ = full_path_to_module
        globals()[module_name] = module_obj
        os.chdir(save_cwd)
    except Exception as e:
        raise ImportError(e)
    return module_obj


import_file('/home/somebody/somemodule.py')
4
  • 41
    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
  • 13
    @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 '15 at 10:27
  • 1
    It would be cool if this actually returned the module. – Pithikos Jul 30 '20 at 14:41
12

If we have scripts in the same project but in different directory means, we can solve this problem by the following method.

In this situation utils.py is in src/main/util/

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

import src.main.util.utils
#or
from src.main.util.utils import json_converter # json_converter is example method
1
  • 1
    the simplest one IMO – Ardhi Jun 6 '20 at 16:07
9

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/mymodule.py you'd need to do:

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

...but that should get the job done.

8

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!
6

Create python module test.py

import sys
sys.path.append("<project-path>/lib/")
from tes1 import Client1
from tes2 import Client2
import tes3

Create python module test_check.py

from test import Client1
from test import Client2
from test import test3

We can import the imported module from module.

5

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

    try:

        # 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
        print(ec)

    finally:
        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.

5

There's a package that's dedicated to this specifically:

from thesmuggler import smuggle

# À la `import weapons`
weapons = smuggle('weapons.py')

# À la `from contraband import drugs, alcohol`
drugs, alcohol = smuggle('drugs', 'alcohol', source='contraband.py')

# À la `from contraband import drugs as dope, alcohol as booze`
dope, booze = smuggle('drugs', 'alcohol', source='contraband.py')

It's tested across Python versions (Jython and PyPy too), but it might be overkill depending on the size of your project.

4

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:\\mylib.py')
>>>another = import_file('relative_subdir/another.py')

You can get it at:

http://pypi.python.org/pypi/import_file

or at

http://code.google.com/p/import-file/

2
  • 1
    os.chdir ? (minimal characters to approve comment). – ychaouche Oct 14 '12 at 10:46
  • I've spent all day troubleshooting an import bug in a pyinstaller generated exe. In the end this is the only thing that worked for me. Thank you so much for making this! – frakman1 Nov 29 '18 at 22:12
4

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(f.read(), module)
module['foo']()

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)
0
4

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/module.py"

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

path = list(sys.path)
sys.path.insert(0, directory)
try:
    module = __import__(module_name)
finally:
    sys.path[:] = path # restore
3

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]

    # http://docs.python.org/library/imp.html?highlight=imp#module-imp
    imp.load_source(basename_without_extension, infile)
1
  • 5
    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
3

Import package modules at runtime (Python recipe)

http://code.activestate.com/recipes/223972/

###################
##                #
## classloader.py #
##                #
###################

import sys, types

def _get_mod(modulePath):
    try:
        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)
3

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

ie:

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

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

then include the following in mypythonscript.py

from module import *
2
  • 1
    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 '15 at 23:23
  • @Gripp not sure if I am understanding your issue, but I frequently (almost exclusively) edit my scripts on a remote server from my desktop via SFTP with a client like CyberDuck, and in that case as well it is a bad idea to try and edit the symlinked file, instead its much safer to edit the original file. You can catch some of these issues by using git and checking your git status to verify that your changes to the script are actually making it back to the source document and not getting lost in the ether. – user5359531 Aug 1 '17 at 19:39
3

A simple solution using importlib instead of the imp package (tested for Python 2.7, although it should work for Python 3 too):

import importlib

dirname, basename = os.path.split(pyfilepath) # pyfilepath: '/my/path/mymodule.py'
sys.path.append(dirname) # only directories should be added to PYTHONPATH
module_name = os.path.splitext(basename)[0] # '/my/path/mymodule.py' --> 'mymodule'
module = importlib.import_module(module_name) # name space of defined module (otherwise we would literally look for "module_name")

Now you can directly use the namespace of the imported module, like this:

a = module.myvar
b = module.myfunc(a)

The advantage of this solution is that we don't even need to know the actual name of the module we would like to import, in order to use it in our code. This is useful, e.g. in case the path of the module is a configurable argument.

2
  • This way you are modifying the sys.path, which does not fit every use case. – bgusach Jul 19 '18 at 14:26
  • @bgusach This may be true, but it is also desirable in some cases (adding a path to sys.path simplifies things when importing more than one module from a single package). At any rate, if this not desirable, one can immediately afterwards do sys.path.pop() – Ataxias Jul 20 '18 at 16:38
2

Adding this to the list of answers as I couldn't find anything that worked. This will allow imports of compiled (pyd) python modules in 3.4:

import sys
import importlib.machinery

def load_module(name, filename):
    # If the Loader finds the module name in this list it will use
    # module_name.__file__ instead so we need to delete it here
    if name in sys.modules:
        del sys.modules[name]
    loader = importlib.machinery.ExtensionFileLoader(name, filename)
    module = loader.load_module()
    locals()[name] = module
    globals()[name] = module

load_module('something', r'C:\Path\To\something.pyd')
something.do_something()
2

quite simple way: suppose you want import file with relative path ../../MyLibs/pyfunc.py


libPath = '../../MyLibs'
import sys
if not libPath in sys.path: sys.path.append(libPath)
import pyfunc as pf

But if you make it without a guard you can finally get a very long path

2

I have wrote my own global and portable import function, based on importlib module, for:

  • Be able to import both module as a submodule and to import content of a module to a parent module (or into a globals if has no parent module).
  • Be able to import modules with a period characters in a file name.
  • Be able to import modules with any extension.
  • Be able to use a standalone name for a submodule instead of a file name without extension which is by default.
  • Be able to define the import order based on previously imported module instead of dependent on sys.path or on a what ever search path storage.

The examples directory structure:

<root>
 |
 +- test.py
 |
 +- testlib.py
 |
 +- /std1
 |   |
 |   +- testlib.std1.py
 |
 +- /std2
 |   |
 |   +- testlib.std2.py
 |
 +- /std3
     |
     +- testlib.std3.py

Inclusion dependency and order:

test.py
  -> testlib.py
    -> testlib.std1.py
      -> testlib.std2.py
    -> testlib.std3.py 

Implementation:

Latest changes store: https://sourceforge.net/p/tacklelib/tacklelib/HEAD/tree/trunk/python/tacklelib/tacklelib.py

test.py:

import os, sys, inspect, copy

SOURCE_FILE = os.path.abspath(inspect.getsourcefile(lambda:0)).replace('\\','/')
SOURCE_DIR = os.path.dirname(SOURCE_FILE)

print("test::SOURCE_FILE: ", SOURCE_FILE)

# portable import to the global space
sys.path.append(TACKLELIB_ROOT) # TACKLELIB_ROOT - path to the library directory
import tacklelib as tkl

tkl.tkl_init(tkl)

# cleanup
del tkl # must be instead of `tkl = None`, otherwise the variable would be still persist
sys.path.pop()

tkl_import_module(SOURCE_DIR, 'testlib.py')

print(globals().keys())

testlib.base_test()
testlib.testlib_std1.std1_test()
testlib.testlib_std1.testlib_std2.std2_test()
#testlib.testlib.std3.std3_test()                             # does not reachable directly ...
getattr(globals()['testlib'], 'testlib.std3').std3_test()     # ... but reachable through the `globals` + `getattr`

tkl_import_module(SOURCE_DIR, 'testlib.py', '.')

print(globals().keys())

base_test()
testlib_std1.std1_test()
testlib_std1.testlib_std2.std2_test()
#testlib.std3.std3_test()                                     # does not reachable directly ...
globals()['testlib.std3'].std3_test()                         # ... but reachable through the `globals` + `getattr`

testlib.py:

# optional for 3.4.x and higher
#import os, inspect
#
#SOURCE_FILE = os.path.abspath(inspect.getsourcefile(lambda:0)).replace('\\','/')
#SOURCE_DIR = os.path.dirname(SOURCE_FILE)

print("1 testlib::SOURCE_FILE: ", SOURCE_FILE)

tkl_import_module(SOURCE_DIR + '/std1', 'testlib.std1.py', 'testlib_std1')

# SOURCE_DIR is restored here
print("2 testlib::SOURCE_FILE: ", SOURCE_FILE)

tkl_import_module(SOURCE_DIR + '/std3', 'testlib.std3.py')

print("3 testlib::SOURCE_FILE: ", SOURCE_FILE)

def base_test():
  print('base_test')

testlib.std1.py:

# optional for 3.4.x and higher
#import os, inspect
#
#SOURCE_FILE = os.path.abspath(inspect.getsourcefile(lambda:0)).replace('\\','/')
#SOURCE_DIR = os.path.dirname(SOURCE_FILE)

print("testlib.std1::SOURCE_FILE: ", SOURCE_FILE)

tkl_import_module(SOURCE_DIR + '/../std2', 'testlib.std2.py', 'testlib_std2')

def std1_test():
  print('std1_test')

testlib.std2.py:

# optional for 3.4.x and higher
#import os, inspect
#
#SOURCE_FILE = os.path.abspath(inspect.getsourcefile(lambda:0)).replace('\\','/')
#SOURCE_DIR = os.path.dirname(SOURCE_FILE)

print("testlib.std2::SOURCE_FILE: ", SOURCE_FILE)

def std2_test():
  print('std2_test')

testlib.std3.py:

# optional for 3.4.x and higher
#import os, inspect
#
#SOURCE_FILE = os.path.abspath(inspect.getsourcefile(lambda:0)).replace('\\','/')
#SOURCE_DIR = os.path.dirname(SOURCE_FILE)

print("testlib.std3::SOURCE_FILE: ", SOURCE_FILE)

def std3_test():
  print('std3_test')

Output (3.7.4):

test::SOURCE_FILE:  <root>/test01/test.py
import : <root>/test01/testlib.py as testlib -> []
1 testlib::SOURCE_FILE:  <root>/test01/testlib.py
import : <root>/test01/std1/testlib.std1.py as testlib_std1 -> ['testlib']
import : <root>/test01/std1/../std2/testlib.std2.py as testlib_std2 -> ['testlib', 'testlib_std1']
testlib.std2::SOURCE_FILE:  <root>/test01/std1/../std2/testlib.std2.py
2 testlib::SOURCE_FILE:  <root>/test01/testlib.py
import : <root>/test01/std3/testlib.std3.py as testlib.std3 -> ['testlib']
testlib.std3::SOURCE_FILE:  <root>/test01/std3/testlib.std3.py
3 testlib::SOURCE_FILE:  <root>/test01/testlib.py
dict_keys(['__name__', '__doc__', '__package__', '__loader__', '__spec__', '__annotations__', '__builtins__', '__file__', '__cached__', 'os', 'sys', 'inspect', 'copy', 'SOURCE_FILE', 'SOURCE_DIR', 'TackleGlobalImportModuleState', 'tkl_membercopy', 'tkl_merge_module', 'tkl_get_parent_imported_module_state', 'tkl_declare_global', 'tkl_import_module', 'TackleSourceModuleState', 'tkl_source_module', 'TackleLocalImportModuleState', 'testlib'])
base_test
std1_test
std2_test
std3_test
import : <root>/test01/testlib.py as . -> []
1 testlib::SOURCE_FILE:  <root>/test01/testlib.py
import : <root>/test01/std1/testlib.std1.py as testlib_std1 -> ['testlib']
import : <root>/test01/std1/../std2/testlib.std2.py as testlib_std2 -> ['testlib', 'testlib_std1']
testlib.std2::SOURCE_FILE:  <root>/test01/std1/../std2/testlib.std2.py
2 testlib::SOURCE_FILE:  <root>/test01/testlib.py
import : <root>/test01/std3/testlib.std3.py as testlib.std3 -> ['testlib']
testlib.std3::SOURCE_FILE:  <root>/test01/std3/testlib.std3.py
3 testlib::SOURCE_FILE:  <root>/test01/testlib.py
dict_keys(['__name__', '__doc__', '__package__', '__loader__', '__spec__', '__annotations__', '__builtins__', '__file__', '__cached__', 'os', 'sys', 'inspect', 'copy', 'SOURCE_FILE', 'SOURCE_DIR', 'TackleGlobalImportModuleState', 'tkl_membercopy', 'tkl_merge_module', 'tkl_get_parent_imported_module_state', 'tkl_declare_global', 'tkl_import_module', 'TackleSourceModuleState', 'tkl_source_module', 'TackleLocalImportModuleState', 'testlib', 'testlib_std1', 'testlib.std3', 'base_test'])
base_test
std1_test
std2_test
std3_test

Tested in Python 3.7.4, 3.2.5, 2.7.16

Pros:

  • Can import both module as a submodule and can import content of a module to a parent module (or into a globals if has no parent module).
  • Can import modules with periods in a file name.
  • Can import any extension module from any extension module.
  • Can use a standalone name for a submodule instead of a file name without extension which is by default (for example, testlib.std.py as testlib, testlib.blabla.py as testlib_blabla and so on).
  • Does not depend on a sys.path or on a what ever search path storage.
  • Does not require to save/restore global variables like SOURCE_FILE and SOURCE_DIR between calls to tkl_import_module.
  • [for 3.4.x and higher] Can mix the module namespaces in nested tkl_import_module calls (ex: named->local->named or local->named->local and so on).
  • [for 3.4.x and higher] Can auto export global variables/functions/classes from where being declared to all children modules imported through the tkl_import_module (through the tkl_declare_global function).

Cons:

  • [for 3.3.x and lower] Require to declare tkl_import_module in all modules which calls to tkl_import_module (code duplication)

Update 1,2 (for 3.4.x and higher only):

In Python 3.4 and higher you can bypass the requirement to declare tkl_import_module in each module by declare tkl_import_module in a top level module and the function would inject itself to all children modules in a single call (it's a kind of self deploy import).

Update 3:

Added function tkl_source_module as analog to bash source with support execution guard upon import (implemented through the module merge instead of import).

Update 4:

Added function tkl_declare_global to auto export a module global variable to all children modules where a module global variable is not visible because is not a part of a child module.

Update 5:

All functions has moved into the tacklelib library, see the link above.

1

This is my 2 utility functions using only pathlib. It infers the module name from the path By default, it recursively loads all python files from folders and replaces init.py by the parent folder name. But you can also give a Path and/or a glob to select some specific files.

from pathlib import Path
from importlib.util import spec_from_file_location, module_from_spec
from typing import Optional


def get_module_from_path(path: Path, relative_to: Optional[Path] = None):
    if not relative_to:
        relative_to = Path.cwd()

    abs_path = path.absolute()
    relative_path = abs_path.relative_to(relative_to.absolute())
    if relative_path.name == "__init__.py":
        relative_path = relative_path.parent
    module_name = ".".join(relative_path.with_suffix("").parts)
    mod = module_from_spec(spec_from_file_location(module_name, path))
    return mod


def get_modules_from_folder(folder: Optional[Path] = None, glob_str: str = "*/**/*.py"):
    if not folder:
        folder = Path(".")

    mod_list = []
    for file_path in sorted(folder.glob(glob_str)):
        mod_list.append(get_module_from_path(file_path))

    return mod_list
1

To add to Sebastian Rittau's answer : At least for CPython, there's pydoc, and, while not officially declared, importing files is what does :

from pydoc import importfile
module = importfile('/path/to/module.py')

PS. For the sake of completeness, there's a reference to the current implementation at the moment of writing: pydoc.py, and I'm pleased to say that in the vein of xkcd 1987 it uses neither of the implemenations mentioned in issue 21436 -- at least, not verbatim.

0

This answer is a supplement to Sebastian Rittau's answer responding to the comment: "but what if you don't have the module name?" This is a quick and dirty way of getting the likely python module name given a filename -- it just goes up the tree until it finds a directory without an __init__.py file and then turns it back into a filename. For Python 3.4+ (uses pathlib), which makes sense since Py2 people can use "imp" or other ways of doing relative imports:

import pathlib

def likely_python_module(filename):
    '''
    Given a filename or Path, return the "likely" python module name.  That is, iterate
    the parent directories until it doesn't contain an __init__.py file.

    :rtype: str
    '''
    p = pathlib.Path(filename).resolve()
    paths = []
    if p.name != '__init__.py':
        paths.append(p.stem)
    while True:
        p = p.parent
        if not p:
            break
        if not p.is_dir():
            break

        inits = [f for f in p.iterdir() if f.name == '__init__.py']
        if not inits:
            break

        paths.append(p.stem)

    return '.'.join(reversed(paths))

There are certainly possibilities for improvement, and the optional __init__.py files might necessitate other changes, but if you have __init__.py in general, this does the trick.

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