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I have the following setup of a library in python:

library
  | - __init__.py
  | - lib1.py
  | - ...
  | - tools
        | - __init__.py
        | - testlib1.py

so in other words, the directory library contain python modules and the directory tools, which is a subdirectory of library contains e.g. one file testlib1.pyto test the library lib1.py.

testlib1.py therefore need to import lib1.py from the directory above to do some tests etc., just by calling python testlib1.py from somewhere on the computer, assuming the file is in the search path. In addition, I only want ONE PYTHONPATH to be specified.

But we all know the following idea for testlib1.py does not work because the relative import does not work:

from .. import lib1
...
do something with lib1

I accept two kind of answers:

  1. An answer which describes how still to be possible to call testlib1.py directly as the executing python script.
  2. An answer that explains a better conceptual setup of of the modules etc, with the premise that everything has to be in the directory project and the tools has to be in a different directory than the actual libraries.

If something is not clear I suggest to ask and I will update the question.

share|improve this question
    
Does your one PYTHONPATH include the parent directory of library/? – tom Feb 5 '13 at 12:48
    
@tom: Yes, so for example, to import lib1.py in some other, unrelated file I do from library import lib1. – Alex Feb 5 '13 at 12:49
    
If library/ is in your PYTHONPATH, then you should just import lib absolutely from your test module. i.e. from library import lib1. – tom Feb 5 '13 at 12:51

Try adding a __init__.py to the tools directory. The relative import should work.

share|improve this answer
    
Not it does not. I cut it back in the question. – Alex Feb 5 '13 at 12:36
    
Oh, you also have to run testlib1 as a package -- like this: python -m library.tools.testlib1 – tom Feb 5 '13 at 12:40
    
This also is not a solution: I require testlib1.py to be run from ANYWHERE in my system without going into this directory. When I try to do this as you suggested I get an error /usr/bin/python: No module named testrunner. Also please see updated question regarding PYTHONPATH – Alex Feb 5 '13 at 12:46

You can't. If you plan to use relative imports then you can't run the module by itself. Either drop the relative imports or drop the idea of running testlib1.py directly.

Also I believe a test file should never use relative imports. Test should check whether the library works, and thus the code should be as similar as possible to the code that the users would actually use. And usually users do not add files to the library to use relative imports but use absolute imports.

By the way, I think your file organization is too much "java-like": mixing source code and tests. If you want to do tests then why not have something like:

project/
   |
   +-- src/
   |    |
   |    +--library/
   |    |     |
   |    |     +- lib1.py
   |    |     |
   |    |    #...
   |    +--library2/ #etc.
   |
   +-- tests/
        |
        +--testlibrary/
        |      |
        |      +- testlib1.py
        #etc

To run the tests just use a tool like nosetests which automatically looks for this kind of folder structure and provide tons of options to change the search/test settings.

share|improve this answer
up vote 0 down vote accepted

Actually, I found a solution, which does

  1. works with the current implementation
  2. does not require any changes in PYTHONPATH
  3. without the need to hardcode the top-lebel directory

In testlib1.py the following code will do (has been tested):

import os
import sys
dirparts = os.path.dirname(os.path.abspath(__file__)).split('/')
sys.path.append('/'.join(dirparts[:-1]))

import  mylib1

Not exactly sure this is a very clean or straightforward solution, but it allows to import any module from the directory one level up, which is what I need (as the test code or extra code or whetever is always located one level below the actual module files).

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