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Could you tell me how can I read a file that is inside my python package?

I have a following situation: a package that I load has a number of templates (text files used as strings) that I want to load from within the program. But how do I specify the path to such file? Imagine I want to read a file from: package\templates\temp_file

Some kind of path manipulation? Package base path tracking?


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possible duplicate of Finding a file in a Python module distribution – Andreas Jung May 17 '11 at 8:19
possible duplicate of Python Access Data in Package Subdirectory – ankostis Oct 21 '14 at 15:31

6 Answers 6

up vote 3 down vote accepted

import os, mypackage
template = os.path.join(mypackage.__path__[0], 'templates', 'temp_file')
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Perfect!Thanks. Works like magic :) – ronszon May 17 '11 at 8:25
This won't work for a package deployed as zipped egg! – Andreas Jung May 17 '11 at 8:26
This answer is just wrong – Andreas Jung May 17 '11 at 8:36
See the answer from @ankostis for a more pythonic way of doing this, that is zipped-egg safe. – emispowder Mar 5 '14 at 1:52

Assuming your template is located inside your module's package at this path:


the correct way to read your template is to use pkg_resources:

import pkg_resources, os

resource_package = __name__  ## Could be any module/package name.
resource_path = os.path.join('templates', 'temp_file')
template = pkg_resources.resource_string(resource_package, resource_path)

This will read data even if your distribution is zipped, so you may set zip_safe=True in your, and/or use the long-awaited zipapp packer from python-3.5 to create self-contained distributions.

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If you want the full path to the file: pkg_resources.resource_filename('package', 'path_to_file') – emispowder Mar 5 '14 at 1:46
I would also recommend using os.path.join('dir', 'filename') if your path_to_file is more than just a filename for safe cross-platform code. – emispowder Mar 5 '14 at 1:48
Thank you @emispowder, fixed – ankostis Sep 17 at 9:28

Every python module in your package has a __file__ attribute

You can use it as:

import os 
from mypackage

templates_dir = os.path.join(os.path.dirname(mypackage.__file__), 'templates')
template_file = os.path.join(templates_dir, 'template.txt')

For egg resources see:

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This won't work for a package deployed as zipped egg! – Andreas Jung May 17 '11 at 8:25

assuming you are using an egg file; not extracted:

I "solved" this in a recent project, by using a postinstall script, that extracts my templates from the egg (zip file) to the proper directory in the filesystem. It was the quickest, most reliable solution I found, since working with __path__[0] can go wrong sometimes (i don't recall the name, but i cam across at least one library, that added something in front of that list!).

Also egg files are usually extracted on the fly to a temporary location called the "egg cache". You can change that location using an environment variable, either before starting your script or even later, eg.

os.environ['PYTHON_EGG_CACHE'] = path

However there is pkg_resources that might do the job properly.

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You should be able to import portions of your package's name space with something like:

from my_package import my_stuff

... you should not need to specify anything that looks like a filename if this is a properly constructed Python package (that's normally abstracted away).

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