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Practical Data Analysis Cookbook

You're reading from   Practical Data Analysis Cookbook Over 60 practical recipes on data exploration and analysis

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Product type Paperback
Published in Apr 2016
Publisher
ISBN-13 9781783551668
Length 384 pages
Edition 1st Edition
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Author (1):
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Tomasz Drabas Tomasz Drabas
Author Profile Icon Tomasz Drabas
Tomasz Drabas
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Toc

Table of Contents (13) Chapters Close

Preface 1. Preparing the Data 2. Exploring the Data FREE CHAPTER 3. Classification Techniques 4. Clustering Techniques 5. Reducing Dimensions 6. Regression Methods 7. Time Series Techniques 8. Graphs 9. Natural Language Processing 10. Discrete Choice Models 11. Simulations Index

Utilizing Support Vector Machines as a classification engine

Support Vector Machines (SVMs) are a family of extremely powerful models that can be used in classification and regression problems. In contrast to the preceding models, SVMs can handle highly nonlinear problems through a so-called kernel trick that implicitly maps the input vectors to higher-dimensional feature spaces. A broader explanation of SVMs can be found at http://www.statsoft.com/Textbook/Support-Vector-Machines.

Getting ready

To execute the following recipe, you will need Machine Learning PYthon (mlpy). The mlpy does not come with Anaconda so we need to install it manually. The mlpy requires GNU Scientific Library (GSL); on some systems, GSL might already be present, therefore, I recommend starting with installing mlpy first. Go to http://sourceforge.net/projects/mlpy/files/ and download the latest sources for mlpy (mlpy-<version>.tar.gz). Now, go to the command line and navigate to the folder you have downloaded...

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