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The initial beta release consists of four major topics
Each of the above has at least three IPython Notebooks covering
One or more of these may have supplementary material. Each of these have worksheets that contain mostly the code sections so you can iteratively explore the code.
Three openly available data sets are used.
There's a need for open content to raise the level of awareness and training in basics, in the Data Science field (circa early 2013).
IPython Notebook provides an appropriate platform for rapid iterative exploration and learning.
Starting in 2013 and intended to extend for a long while.
Today github, tomorrow the world. Google Group "learnds"
Learn Data Science is based on content developed by me (Nitin Borwankar) for the Open Data Science Training project http://opendst.org Most of the content (circa July 2013) is copyright (c) Alpine Data Labs as per the license at opendst.org, and is freely available. Extensions to the content embodied in this projects content are also released under the same license - see the LICENSE.txt file.
If you are unfamiliar with IPython Notebook you can start with http://ipython.org/notebook
Prerequisites
One of the following distributions is needed. Please note that even if you have Python installed it is important to have one of these distributions installed and the binary for this installation in your path. This is because these distributions come packaged with all the supplementary libraries needed and these have been historically difficult to install separately.
The following steps assume you have installed one of the distributions mentioned in prerequisites.
From a zip or tar file
From the git repo
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