Advanced Analytics with Spark: Patterns for Learning from Data at Scale
Ryza, Sandy; Laserson, Uri; Owen, Sean
Language: English
Published by O'Reilly Media, 2017
- Softcover
- Used

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- Title
- Advanced Analytics with Spark: Patterns for Learning from Data at Scale
- Author
- Ryza, Sandy; Laserson, Uri; Owen, Sean
- Publisher
- O'Reilly Media
- Publication year
- 2017
- Condition
- very_good
- Binding
- Soft cover
- Language
- English
- ISBN 10
- 1491972955
- ISBN 13
- 9781491972953
- Edition
- 2nd Edition
In the second edition of this practical book, four Cloudera data scientists present a set of self-contained patterns for performing large-scale data analysis with Spark. The authors bring Spark, statistical methods, and real-world data sets together to teach you how to approach analytics problems by example. Updated for Spark 2.1, this edition acts as an introduction to these techniques and other best practices in Spark programming.
You’ll start with an introduction to Spark and its ecosystem, and then dive into patterns that apply common techniques—including classification, clustering, collaborative filtering, and anomaly detection—to fields such as genomics, security, and finance.
If you have an entry-level understanding of machine learning and statistics, and you program in Java, Python, or Scala, you’ll find the book’s patterns useful for working on your own data applications.
With this book, you will:
- Familiarize yourself with the Spark programming model
- Become comfortable within the Spark ecosystem
- Learn general approaches in data science
- Examine complete implementations that analyze large public data sets
- Discover which machine learning tools make sense for particular problems
- Acquire code that can be adapted to many uses
"Synopsis" may belong to another edition of this title.
About the Author
Sandy Ryza develops algorithms for public transit at Remix. Prior, he was a senior data scientist at Cloudera and Clover Health. He is an Apache Spark committer, Apache Hadoop PMC member, and founder of the Time Series for Spark project. He holds the Brown University computer science department's 2012 Twining award for "Most Chill".
"About the title" may belong to another edition of this title.
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