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I have package p that has modules a and b. a relies on b:

b.py contents:

import a

However I want to ensure that b imports my a module from the same p package directory and not just any a module from PYTHONPATH.

So I'm trying to change b.py like the following:

from . import a

This works as long as I import b when I'm outside of p package directory. Given the following files:

/tmp
    /p
       a.py
       b.py
       __init__.py

The following works:

$ cd /tmp
$ echo 'import p.b' | python

The following does NOT work:

$ cd /tmp/p
$ echo 'import b' | python
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
  File "b.py", line 1, in <module>
    from . import a
ValueError: Attempted relative import in non-package

Why?

P.S. I'm using Python 2.7.3

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3 Answers 3

up vote 1 down vote accepted

After rereading the Python import documentation, the correct answer to my original problem is:

To ensure that b imports a from its own package its just enough to write the following in the b:

import a

Here is the quote from the docs:

The submodules often need to refer to each other. For example, the surround module might use the echo module. In fact, such references are so common that the import statement first looks in the containing package before looking in the standard module search path.

Note: As J.F. Sebastian suggest in the comment below, use of implicit imports is not advised, and they are, in fact, gone in Python 3.

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2  
don't use implicit relative imports (they are gone in Python 3). Always use absolute import (from p import a (add from __future__ import absolute_import before it if there is p/p.py file)) or explicit relative import (from . import a (if it is not a __main__ module)). Don't run scripts from inside a Python package directory; it prepends this directory to sys.path that might lead to the same module being available under different names that leads to bugs connected with module-level state (if you use implicit relative imports; it also shadows other toplevel modules in this case). –  J.F. Sebastian Jan 8 '13 at 15:22
    
Good notes. Thanks! –  Zaar Hai Jan 8 '13 at 15:43
    
If you re-post is as an answer I'll accept it. –  Zaar Hai Jan 8 '13 at 15:49

Because there is an __init__.py file in /p. This file tells Python: "All modules in this folder are in the package p".

As long as the __init__.py file exists, you can import b as p.b, no matter where you are.

So the correct import in b.py would be: import p.a

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Which version of Python? This behavior changed in the past. –  Aaron Digulla Jan 8 '13 at 13:44
    
Changing b.py as you've suggested. Now running import b yields ImportError: No module named p.a. Python 2.7.3 –  Zaar Hai Jan 8 '13 at 13:52
    
You should never use import b in such a scenario. Always use import p.b or make the necessary symbols available from __init__.py and import p to hide internal details. –  Aaron Digulla Jan 8 '13 at 13:55
    
Your problem is that you're mixing (old) relative imports and new package-based imports. The old imports were fickle, that's why the new style imports were introduced. See "Packages" in docs.python.org/2/tutorial/modules.html#packages –  Aaron Digulla Jan 8 '13 at 13:57
1  
So what is the correct way of accomplishing my task? import p.a in b.py? It works, but if I will ever want to rename p to something else, I'll have to change a lot of files... –  Zaar Hai Jan 8 '13 at 14:12

Relative imports only work within packages.

If you import b from where you are, there is no notion of a package, and thus there is no way for a relative import.

If you import p.b, it is module b within package c.

It is not the directory structure which matters, but the packages structure.

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