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Predictive Analytics Using Rattle and Qlik Sense

You're reading from  Predictive Analytics Using Rattle and Qlik Sense

Product type Book
Published in Jun 2015
Publisher
ISBN-13 9781784395803
Pages 242 pages
Edition 1st Edition
Languages
Authors (2):
Ferran Garcia Pagans Ferran Garcia Pagans
Profile icon Ferran Garcia Pagans
Fernando G Pagans Fernando G Pagans
Profile icon Fernando G Pagans
View More author details

Table of Contents (16) Chapters

Predictive Analytics Using Rattle and Qlik Sense
Credits
About the Author
About the Reviewers
www.PacktPub.com
Preface
1. Getting Ready with Predictive Analytics 2. Preparing Your Data 3. Exploring and Understanding Your Data 4. Creating Your First Qlik Sense Application 5. Clustering and Other Unsupervised Learning Methods 6. Decision Trees and Other Supervised Learning Methods 7. Model Evaluation 8. Visualizations, Data Applications, Dashboards, and Data Storytelling 9. Developing a Complete Application Index

Chapter 6. Decision Trees and Other Supervised Learning Methods

In the previous chapter, we introduced Machine Learning, unsupervised methods, and supervised methods. We focused on unsupervised learning and described some algorithms, we also concentrated on classifiers. We took time to study cluster analysis, focusing on centroids-based algorithms, and we also looked at hierarchical clustering.

We used Rattle to process customer data in order to create different clusters of customers, and then, we used Qlik Sense to visualize these different clusters.

The objective of this chapter is to introduce you to supervised learning. As I explained in the previous chapter, in supervised learning, the computer analyzes a set of examples to learn how to predict the output of a new situation.

We'll focus on Decision Tree Learning, or Decision Trees, because they're widely used and the knowledge learned by the tree is easy to translate to rules in any software, such as Qlik Sense. These rules are easy to...

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