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I'm writing a Python application that takes as a command as an argument, for example:

$ python myapp.py command1

I want the application to be extensible, that is, to be able to add new modules that implement new commands without having to change the main application source. The tree looks something like:

myapp/
    __init__.py
    commands/
        __init__.py
        command1.py
        command2.py
    foo.py
    bar.py

So I want the application to find the available command modules at runtime and execute the appropriate one.

Currently this is implemented something like:

command = sys.argv[1]
try:
    command_module = __import__("myapp.commands.%s" % command, fromlist=["myapp.commands"])
except ImportError:
    # Display error message

command_module.run()

This works just fine, I'm just wondering if there is possibly a more idiomatic way to accomplish what we are doing with this code.

Note that I specifically don't want to get in to using eggs or extension points. This is not an open-source project and I don't expect there to be "plugins". The point is to simplify the main application code and remove the need to modify it each time a new command module is added.

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What does the fromlist=["myapp.commands"] do? –  Pieter Müller Jun 6 '12 at 10:29
    
@PieterMüller : in a python shell type this: dir(__import__). The fromlist should be a list of names to emulate "from name import ...". –  mawimawi Aug 9 '12 at 7:13

9 Answers 9

up vote 136 down vote accepted

Nope, that's pretty much how to do it. You can use exec if you want to as well.

Note you can import a list of modules by doing this:

>>> moduleNames = ['sys', 'os', 're', 'unittest'] 
>>> moduleNames
['sys', 'os', 're', 'unittest']
>>> modules = map(__import__, moduleNames)

Ripped straight from Dive Into Python.

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3  
what is the differece to exec? –  user1767754 Sep 17 '14 at 7:10
    
How could you use __init__ of that module? –  Dorian Dore Mar 25 at 3:00
    
One problem with this solution for the OP is that trapping exceptions for one or two bad "command" modules makes his/her whole command-app fail on one exception. Personally I'd for loop over each import individually wrapped in a try: mods=__import__()\nexcept ImportError as error: report(error) to allow other commands to continue to work while the bad ones get fixed. –  DevPlayer Apr 8 at 13:38

As mentioned the imp module provides you loading functions.

imp.load_source(path)

imp.load_compiled(path)

I've used these before to perform something similar.
In my case I defined a specific class with defined methods that were required. So, once I loaded the module I would check if the class was in the module, and then create an instance of that class.

Something like this:

import imp
import os

def load_from_file(filepath):
    class_inst = None
    expected_class = 'MyClass'

    mod_name,file_ext = os.path.splitext(os.path.split(filepath)[-1])

    if file_ext.lower() == '.py':
        py_mod = imp.load_source(mod_name, filepath)

    elif file_ext.lower() == '.pyc':
        py_mod = imp.load_compiled(mod_name, filepath)

    if hasattr(py_mod, expected_class):
        class_inst = getattr(py_mod, expected_class)()

    return class_inst
share|improve this answer
    
elegant solution ... wonderful ! –  Anuvrat Parashar Dec 24 '12 at 7:06
    
Good and simple solution. I'we written a similar one: stamat.wordpress.com/dynamic-module-import-in-python But your's has some flaws: What about exceptions? IOError and ImportError? Why not check for the compiled version first and then for the source version. Expecting a class reduces reusability in your case. –  stamat Jun 30 '13 at 20:40
2  
In the line where you construct MyClass in the target module you are adding a redundant reference to the class name. It is already stored in expected_class so you could do class_inst = getattr(py_mod,expected_name)() instead. –  Amoss Oct 16 '13 at 7:11

The recommended way for Python 2.7 and later is to use importlib module:

my_module = importlib.import_module('os.path')
share|improve this answer
    
Recommended by which source or authority? –  michuelnik Apr 8 at 13:21
1  
Documentation advises against using __import__ function in favor of above mentioned module. –  Denis Malinovsky Apr 9 at 12:42

Use the imp module, or the more direct __import__() function.

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If you want it in your locals:

>>> mod = 'sys'
>>> locals()['my_module'] = __import__(mod)
>>> my_module.version
'2.6.6 (r266:84297, Aug 24 2010, 18:46:32) [MSC v.1500 32 bit (Intel)]'

same would work with globals()

share|improve this answer

You can use exec:

exec "import myapp.commands.%s" % command
share|improve this answer
    
How do I get a handle to the module through the exec, so that I can call (in this example) the .run() method? –  Kamil Kisiel Nov 19 '08 at 6:19
5  
You can then do getattr(myapp.commands, command) to access the module. –  Greg Hewgill Nov 19 '08 at 6:20
1  
... or add as command_module to the end of import statement and then do command_module.run() –  oxfn Oct 16 '13 at 10:43
    
In some version of Python 3+ exec was converted into a function with the added benefit that the resultant referenced created in source get stored into the locals() argument of exec(). To further isolate the exec'd referenced from the local code block locals you can provide your own dict, like an empty one and reference the references using that dict, or pass that dict to other functions exec(source, gobals(), command1_dict) .... print(command1_dict['somevarible']) –  DevPlayer Apr 8 at 13:43

Similar as @monkut 's solution but reusable and error tolerant described here http://stamat.wordpress.com/dynamic-module-import-in-python/:

import os
import imp

def importFromURI(uri, absl):
    mod = None
    if not absl:
        uri = os.path.normpath(os.path.join(os.path.dirname(__file__), uri))
    path, fname = os.path.split(uri)
    mname, ext = os.path.splitext(fname)

    if os.path.exists(os.path.join(path,mname)+'.pyc'):
        try:
            return imp.load_compiled(mname, uri)
        except:
            pass
    if os.path.exists(os.path.join(path,mname)+'.py'):
        try:
            return imp.load_source(mname, uri)
        except:
            pass

    return mod
share|improve this answer

It sounds like what you really want is a plugin architecture.

You should have a look at the entry points functionality provided by the setuptools package. It offers a great way to discover plugins that are loaded for your application.

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2  
I specifically mentioned I don't want to use entry points and a plugin type architecture. The reason for the design is more of code maintainability and modularity rather than allowing arbitrary plugins to be included. –  Kamil Kisiel Nov 20 '08 at 0:27

The following worked for me:

import sys, glob
sys.path.append('/home/marc/python/importtest/modus')
fl = glob.glob('modus/*.py')
modulist = []
adapters=[]
for i in range(len(fl)):
    fl[i] = fl[i].split('/')[1]
    fl[i] = fl[i][0:(len(fl[i])-3)]
    modulist.append(getattr(__import__(fl[i]),fl[i]))
    adapters.append(modulist[i]())

It loads modules from the folder 'modus'. The modules have a single class with the same name as the module name. E.g. the file modus/modu1.py contains:

class modu1():
    def __init__(self):
        self.x=1
        print self.x

The result is a list of dynamically loaded classes "adapters".

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1  
Please don't bury answers without providing a reason in the comments. It doesn't help anyone. –  Adam Griffiths Jun 11 '14 at 8:31

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