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So in a file foo I am importing modules:

import lib.helper_functions
import lib.config

And in, I have:

import config

When I run the main function of foo I get an ImportError

EDIT: Here is the structure of the files I have

The error results from importing config in helper_functions

Traceback (most recent call last):
  File "C:\Python33\", line 1, in <module>
    import lib.helper_functions
  File "C:\Python33\lib\", line 1, in <module>
    import config
ImportError: No module named 'config'

So: when I run the interpreter is complaining about the import statements of helper_functions. Yet when I run the main of helper_functions, no such error appears.

share|improve this question
You need to import modules in every other file that uses them; each module gets its own namespace and doesn't inherit the names in the files it imports (unless you use the from foo import * syntax which you should avoid as it leads to horrible, hard-to-diagnose bugs) – Wooble Apr 14 '13 at 20:39
If you're saying I need to import config in foo, I am already doing that (of course in foo I have to refer to it as lib.config) It's not helping with the NameError. – Anas Elghafari Apr 14 '13 at 20:57
I don't see a NameError in your traceback. I see an ImportError, that is a very different error. – Martijn Pieters Apr 15 '13 at 10:58
Thanks for note, I actually re-produced the original setup minimally before I added the recent edit. So there was a NameError in my code, but that was coming from somewhere else. I guess I should edit it since it's not part of this particular problem. – Anas Elghafari Apr 15 '13 at 11:09

2 Answers 2

up vote 1 down vote accepted

You need to import config using an absolute import. Either use:

from lib import config

or use:

from . import config

Python 3 only supports absolute imports; the statement import config only imports a top level module config.

share|improve this answer
But what is throwing the error is not importing lib.config into foo. Rather, it is importing config into helper_functions. However, curiously, this error is only when running foo.main not when running helper_functions.main. I edited the question to show the text of the error. – Anas Elghafari Apr 15 '13 at 10:45
@AnasElghafari: ah, I apologize, I did not read your question properly. Had you added the traceback to start with that would have been clearer. – Martijn Pieters Apr 15 '13 at 10:57
@AnasElghafari: Addressed your actual problem in an updated answer. – Martijn Pieters Apr 15 '13 at 11:00
@Marijn: Yep thanks. I changed the import statement in helper_functions so that it reads: from lib import config. And that fixed it. – Anas Elghafari Apr 15 '13 at 11:06
NOTE: While this solves the problem with foo (i.e. runs without an error), I can no longer run the main of helper_functions (I use that for testing), since the interpreter will complain about from lib import config saying there is no module named "lib". At least that was the case for me. I think PYTHONPATH variable may play a role. – Anas Elghafari Apr 16 '13 at 16:29

In python each module has its own namespace. When you import another module you are actually only importing its name.

The name "config" exists in the module helper_functions because you imported it there. Importing helper_functions in foo brings only the name "helper_function" into foo's namespace, nothing else.

You could actually refer to the "config" name in with your current imports by doing something like:


But in python is always better to be explicit rather than implicit. So importing config in in would be the best way to proceed.

import lib.helper_functions
import config
share|improve this answer
well, config is in lib. I am importing it in anyway (import lib.config). But when running foo.main, the interpreter complains about the import statements in even though when I run the helper_functions.main, no such error occurs. Anyway, I edited the question to add the error message – Anas Elghafari Apr 15 '13 at 10:50
Ah, I see your edit now. I couldn't reproduce it because I use Python2.7. This causes an error only in Python3. The reason has been explained by @Martijn Pieters in his answer. – jujaro Apr 20 '13 at 0:03

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