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I have a file called tester.py, located on /project.

/project has a subdirectory called lib, with a file called BoxTime.py:

/project/tester.py
/project/lib/BoxTime.py

I want to import BoxTime from tester. I have tried this:

import lib.BoxTime

Which resulted:

Traceback (most recent call last):
  File "./tester.py", line 3, in <module>
    import lib.BoxTime
ImportError: No module named lib.BoxTime

Any ideas how to import BoxTime from the subdirectory?

EDIT

The __init__.py was the problem, but don't forget to refer to BoxTime as lib.BoxTime, or use:

import lib.BoxTime as BT
...
BT.bt_function()
share|improve this question
up vote 211 down vote accepted

Take a look at the Packages documentation (Section 6.4) here: http://docs.python.org/tutorial/modules.html

In short, you need to put a blank file named

__init__.py

in the "lib" directory.

share|improve this answer
87  
That is so hacky. – bobobobo Apr 9 '13 at 20:46
28  
@bobobobo __yes_it_is__ – Aurélien Ooms Jan 28 '14 at 13:50
13  
Why does it feel hacky? It's the way python marks safe/available import directories. – IAbstract Aug 26 '14 at 16:52
4  
Not only it marks safe/available import directories, but also provides a way to run some initialization code when importing a directory name. – Sadjad Nov 5 '14 at 10:26
1  
Yes this is hacky and even dirty, and in my opinion the language shouldn't impose its way of loading files across the filesystem. In PHP we solved the problem by letting the userland code register multiple autoloading functions that are called when a namespace/class is missing. Then the community has produced the PSR-4 standard and Composer implements it, and nowadays nobody has to worry about that. And no stupid hardcoded __init__ files (but if you want it, just register an autoloading hook ! This is the difference between hacky and hackable). – Morgan Touverey Quilling Oct 7 '15 at 11:15
  • Create a subdirectory named lib.
  • Create an empty file named lib\__init__.py.
  • In lib\BoxTime.py, write a function foo() like this:

    def foo():
        print "foo!"
    
  • In your client code in the directory above lib, write:

    from lib import BoxTime
    BoxTime.foo()
    
  • Run your client code. You will get:

    foo!
    

Much later -- in linux, it would look like this:

% cd ~/tmp
% mkdir lib
% touch lib/__init__.py
% cat > lib/BoxTime.py << EOF
heredoc> def foo():
heredoc>     print "foo!"
heredoc> EOF
% tree lib
lib
├── BoxTime.py
└── __init__.py

0 directories, 2 files
% python 
Python 2.7.6 (default, Mar 22 2014, 22:59:56) 
[GCC 4.8.2] on linux2
Type "help", "copyright", "credits" or "license" for more information.
>>> from lib import BoxTime
>>> BoxTime.foo()
foo!
share|improve this answer
    
Could you provide a link to the Python documentation where this is explained? Thanks! – Zenon Mar 13 '12 at 0:19
1  
@Zenon, try this: docs.python.org/tutorial/modules.html#packages – hughdbrown Mar 13 '12 at 0:34

You can try inserting it in sys.path:

sys.path.insert(0, './lib')
import BoxTime
share|improve this answer
2  
This is great if you for some reason can't or won't create the init.py file. – jpihl Mar 19 '14 at 8:29
1  
doesn't seem to work for me ('No module..' error) – minsk Apr 11 '14 at 9:44
    
It works if you run python from the "project" directory. The "." is interpreted relative to your current working directory, not relative to the directory where the file you're executing lives. Say you cd /data, python ../project/tester.py. Then it won't work. – morningstar Dec 27 '14 at 20:56
1  
This worked for me. I prefer this over an init.py file, it makes for cleaner import statements. – Taylor Evanson Mar 19 '15 at 21:42
    
This works MUCH better and is the "correct" solution. init.py messes up packages like boto that have their own child folders with modules. – Dave Dopson Jul 3 '15 at 0:47

Does your lib directory contain a __init__.py file?

Python uses __init__.py to determine if a directory is a module.

share|improve this answer

Try import .lib.BoxTime. For more information read about relative import in PEP 328.

share|improve this answer
2  
I don't think I've ever seen that syntax used before. Is there strong reason (not) to use this method? – tgray Aug 11 '09 at 18:53
1  
Why wasn't this the answer. Sure, if you want to do the whole packages thing, you should do that. But that's not what the original question was. – Travis Griggs Jan 29 '14 at 17:53
    
This gives me: ValueError: Attempted relative import in non-package – Alex Mar 7 '14 at 7:51
1  
This only works if the file you're importing from is itself part of a package. If not, you'll receive the error that @Alex pointed out. – Jonathon Reinhart Apr 22 '15 at 23:58

I do this which basically covers all cases (make sure you have the blank __init__.py in relative/path/to/your/lib/folder):

import sys, os
sys.path.append(os.path.dirname(os.path.realpath(__file__)) + "/relative/path/to/your/lib/folder")
import someFileNameWhichIsInTheFolder
...
somefile.foo()


Example:
You have in your project folder:

/root/myproject/app.py

You have in another project folder:

/root/anotherproject/utils.py
/root/anotherproject/__init__.py

You want to use /root/otherproject/utils.py and call foo function which is in it.

So you write in app.py:

import sys, os
sys.path.append(os.path.dirname(os.path.realpath(__file__)) + "/../anotherproject")
import utils

utils.foo()
share|improve this answer

try this:

from lib import BoxTime

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