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I am writing a python package with modules that need to open data files in a ./data/ subdirectory. Right now I have the paths to the files hardcoded into my classes and functions. I would like to write more robust code that can access the subdirectory regardless of where it is installed on the user's system.

I've tried a variety of methods, but so far I have had no luck. It seems that most of the "current directory" commands return the directory of the system's python interpreter, and not the directory of the module.

This seems like it ought to be a trivial, common problem. Yet I can't seem to figure it out. Part of the problem is that my data files are not .py files, so I can't use import functions and the like.

Any suggestions?

Right now my package directory looks like:

/
__init__.py
module1.py
module2.py
data/   
   data.txt

I am trying to access data.txt from module*.py

Thanks!

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3 Answers

up vote 17 down vote accepted

You can use underscore-underscore-file-underscore-underscore (__file__) to get the path to the package, like this:

import os
this_dir, this_filename = os.path.split(__file__)
DATA_PATH = os.path.join(this_dir, "data", "data.txt")
print open(DATA_PATH).read()
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The standard way to do this is with setuptools packages and pkg_resources.

You can lay out your package according to the following hierarchy, and configure the package setup file to point it your data resources, as per this link:

http://docs.python.org/distutils/setupscript.html#installing-package-data

You can then re-find and use those files using pkg_resources, as per this link:

http://peak.telecommunity.com/DevCenter/PkgResources#basic-resource-access

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I think that this is the preferred way, I'm not entirely sure of the reason but projects show warnings when you refer to the package/module with __file__. –  lukecampbell Apr 11 '13 at 1:53
    
Won't pkg_resources create a run-time dependency on setuptools? For example, I redistribute a Debian package so why would I depend on python-setuptools just for that? So far __file__ works fine for me. –  mlt Jul 12 '13 at 16:32
1  
Why this is better: The ResourceManager class provides uniform access to package resources, whether those resources exist as files and directories or are compressed in an archive of some kind –  Vardhan Aug 2 '13 at 12:08
    
Brilliant suggestion, thanks. I implemented a standard file open using from pkg_resources import resource_filename open(resource_filename('data', 'data.txt'), 'rb') –  niallsco Feb 26 at 23:32
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I think I hunted down an answer.

I make a module data_path.py, which I import into my other modules containing:

data_path = os.path.join(os.path.dirname(__file__),'data')

And then I open all my files with

open(os.path.join(data_path,'filename'), <param>)
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This will fail to work when the resource is in an archive distribution (such as a zipped egg). Prefer something like that: pkg_resources.resource_string('pkg_name', 'data/file.txt') –  ankostis Jan 1 at 1:04
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