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R for Data Science

You're reading from   R for Data Science Learn and explore the fundamentals of data science with R

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Product type Paperback
Published in Dec 2014
Publisher
ISBN-13 9781784390860
Length 364 pages
Edition 1st Edition
Languages
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Author (1):
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Dan Toomey Dan Toomey
Author Profile Icon Dan Toomey
Dan Toomey
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Table of Contents (14) Chapters Close

Chapter 6. Data Analysis – Clustering

Clustering is the process of trying to make groups of objects that are more similar to each other than objects in other groups. Clustering is also called cluster analysis.

R has several tools to cluster your data (which we will investigate in this chapter):

  • K-means, including optimal number of clusters
  • Partitioning Around Medoids (PAM)
  • Bayesian hierarchical clustering
  • Affinity propagation clustering
  • Computing a gap statistic to estimate the number of clusters
  • Hierarchical clustering
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