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Apache Spark 2.x Cookbook

You're reading from   Apache Spark 2.x Cookbook Over 70 cloud-ready recipes for distributed Big Data processing and analytics

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Product type Paperback
Published in May 2017
Publisher
ISBN-13 9781787127265
Length 294 pages
Edition 1st Edition
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Author (1):
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Rishi Yadav Rishi Yadav
Author Profile Icon Rishi Yadav
Rishi Yadav
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Table of Contents (13) Chapters Close

Preface 1. Getting Started with Apache Spark FREE CHAPTER 2. Developing Applications with Spark 3. Spark SQL 4. Working with External Data Sources 5. Spark Streaming 6. Getting Started with Machine Learning 7. Supervised Learning with MLlib — Regression 8. Supervised Learning with MLlib — Classification 9. Unsupervised Learning 10. Recommendations Using Collaborative Filtering 11. Graph Processing Using GraphX and GraphFrames 12. Optimizations and Performance Tuning

Clustering using k-means


Cluster analysis or clustering is the process of grouping data into multiple groups so that the data in one group would be similar to the data in other groups.

The following are a few examples where clustering is used:

  • Market segmentation: Dividing the target market into multiple segments so that the needs of each segment can be served better
  • Social network analysis: Finding a coherent group of people in the social network for ad targeting through a social networking site, such as Facebook
  • Data center computing clusters: Putting a set of computers together to improve performance
  • Astronomical data analysis: Understanding astronomical data and events, such as galaxy formations
  • Real estate: Identifying neighborhoods based on similar features
  • Text analysis: Dividing text documents, such as novels or essays, into genres

The k-means algorithm is best illustrated using imagery, so let's look at our sample figure again:

The first step in k-means is to randomly select two points called...

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