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Possible Duplicate:
Dynamic module import in Python

I am writing a small script that gets the name of a file from a directory and passes this to another module which then imports the file.

so the flow is like 1) get module name ( store it in a variable) 2) pass this variable name to a module 3) import the module whose name is stored in the variable name

my code is like

data_files = [x[2] for x in os.walk(os.path.dirname(sys.argv[0]))]
hello = data_files[0]
modulename = hello[0].split(".")[0]

import modulename

the problem is when it reaches the import statement, it reads modulename as a real module name and not the value stored in this variable. I am unsure about how this works in python, any help on solving this problem would be great

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66

You want the built in __import__ function

new_module = __import__(modulename)
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  • 4
    After the code you've written runs, what is stored in new_module? Is it how I now refer to modulename, the same way that np refers to numpy after running import numpy as np? Dec 31 '14 at 18:21
  • I have the same question. Suppose new_module is a package (in folder modulename) and it has file foo.py inside. I don't think you can call new_module.foo.somefunction(), it will say there is no module foo.
    – Marc
    Oct 14 '15 at 18:50
  • 5
    IIRC, I believe that foo = __import__('foo') should be equivalent to import foo. bar = __import__('foo')` is the same as import foo as bar, etc. If you're working with a package, the package's __init__.py will be imported as per usual. e.g. __import__('numpy').core gives you the numpy core subpackage since numpy's __init__.py imports numpy.core.
    – mgilson
    Oct 14 '15 at 18:53
  • When I imported a submodule, I still needed to access it with the full path - so it wasn't good enough for me. E.g. m = __import__("a.b.c"), and then I'd need to reference c as m.b.c.
    – jciloa
    Sep 5 '19 at 6:50
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importlib is probably the way to go. The documentation on it is here. It's generally preferred over __import__ for most uses.

In your case, you would use:

import importlib
module = importlib.import_module(module_name, package=None)
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  • 4
    Use imp.load_source(..) from the imp module if you don't know the path to the module .py file. Jun 8 '14 at 6:34
  • How do I do a from import with multiple selections with this. Like from configparser import ConfigParser, NoSectionError? And from foo import *?
    – 576i
    Feb 19 '17 at 19:34
  • @576i if you've imported configparser as module, you can provide the names with ConfigParser = configparser.ConfigParser and so on. import * is mischief and I won't encourage it.
    – munk
    Feb 20 '17 at 20:58

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