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This questions is detailing a behavior that I can't explain to myself.

src/package/__init__.py is empty but present.

src/package/subpackage/__init__.py:

pink = 'It works'

src/package/test/test.py:

import package.subpackage as subpackage
# I also tried `import package.subpackage as subpackage

print subpackage.pink

Calling from src: python package/test/test.py just fails with ImportError: No module named subpackage. Please note that import package doesn't work either.

NB: (Running an interpreter from src and typing the import statement works perfectly well.

Should I understand that I'm not suppose to call subfile of a package? In my project it's a test file so it sounds logical for me have it here.

Why the current working directory is not in the import path?

Many thanks for those who reads and those who answers.

share|improve this question
    
Does your package directory and subpackage directory contain a file named __init__.py? – Daniel Rucci Jan 25 '14 at 15:53
    
Both of them yes. – AsTeR Jan 25 '14 at 15:55
up vote 2 down vote accepted

Because you package is not in $PYTHONPATH. If you what to call test.py, you can move your test.py file to src/ directory, or add src to $PYTHONPATH

PYTHONPATH="/path/to/src:$PYTHONPATH"
export PYTHONPATH

From Documentation

When a module named spam is imported, the interpreter first searches for a built-in module with that name. If not found, it then searches for a file named spam.py in a list of directories given by the variable sys.path

>>> import sys
>>> sys.path

The output is like this

['.', '/usr/bin', ...

This means that the current directory is in sys.path as well. If you want to import a module, please make sure that the module path is in sys.path, by adding your package directory to the environment variable PYTHONPATH, or changing your current directory or script directory to the package directory.

share|improve this answer
    
I've tried it works indeed, but could you tell me why? The current working directory should be in the path ain't it? – AsTeR Jan 25 '14 at 16:32
    
@AsTeR Edited answer. – afkfurion Jan 25 '14 at 16:41
    
So what I was doing should have work? Running the command from src should have made the package visible according to what you say. – AsTeR Jan 25 '14 at 16:50
    
@AsTeR sys.path is initialized from these locations: 1) the directory containing the input script (or the current directory). ... From (docs.python.org/2/tutorial/modules.html#the-module-search-path) – afkfurion Jan 25 '14 at 16:55
    
Your input script is in package/test/ – afkfurion Jan 25 '14 at 16:56

On python package/test/test.py fails, it's also ran from src:

  1. when you starts a intepreter from src, '' is in sys.path, so path of src could be found;
  2. when you run python package/test/test.py from src, '' is missing from sys.path, although os.path.abspath('.') shows current dir is "<xxx>\\src", "<xxx>\\src" is not in sys.path, while "<xxx>\\src\\package\\test" is in sys.path. That's saying, python adds path of the file to sys.path, not the path where you run the script.

see what the docs says:

As initialized upon program startup, the first item of this list, path[0], is the directory containing the script that was used to invoke the Python interpreter. If the script directory is not available (e.g. if the interpreter is invoked interactively or if the script is read from standard input), path[0] is the empty string, which directs Python to search modules in the current directory first. Notice that the script directory is inserted before the entries inserted as a result of PYTHONPATH.

share|improve this answer
    
No, read the question: python package/test/test.py fails, it's also ran from src. – AsTeR Jan 25 '14 at 16:26
    
@AsTeR, updated ;) – zhangxaochen Jan 25 '14 at 16:45

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