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Practical Predictive Analytics

You're reading from   Practical Predictive Analytics Analyse current and historical data to predict future trends using R, Spark, and more

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Product type Paperback
Published in Jun 2017
Publisher Packt
ISBN-13 9781785886188
Length 576 pages
Edition 1st Edition
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Author (1):
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Ralph Winters Ralph Winters
Author Profile Icon Ralph Winters
Ralph Winters
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Table of Contents (13) Chapters Close

Preface 1. Getting Started with Predictive Analytics FREE CHAPTER 2. The Modeling Process 3. Inputting and Exploring Data 4. Introduction to Regression Algorithms 5. Introduction to Decision Trees, Clustering, and SVM 6. Using Survival Analysis to Predict and Analyze Customer Churn 7. Using Market Basket Analysis as a Recommender Engine 8. Exploring Health Care Enrollment Data as a Time Series 9. Introduction to Spark Using R 10. Exploring Large Datasets Using Spark 11. Spark Machine Learning - Regression and Cluster Models 12. Spark Models – Rule-Based Learning

Characterizing the clusters by their mean values

Another way to look at the clusters is by looking directly at their mean values. We can do this directly by using SQL:

  • First, look at any variables which have normalized values >1 or < -1, or high the highest absolute value for that variable. That will give you some clues on how to begin to classify the clusters.
  • Also look at the magnitude and the signs of the coefficients. Coefficients with large absolute values can indicate an important influence of the variable on that particular cluster. Variables with opposite signs are important in terms of characterizing or naming the clusters.
        tmp_agg <- SparkR::sql("SELECT prediction, mean(age),
mean(triceps),
mean(pregnant),mean(pressure),mean(insulin),
mean(glucose),
mean(pedigree) from fitted_tbl group by 1")
head...
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