Data Analysis with Python and PySpark

Data Analysis with Python and PySpark book cover

Data Analysis with Python and PySpark

Author(s): Jonathan Rioux (Author)

  • Publisher: Manning Publications
  • Publication Date: 16 Mar. 2022
  • Edition: 1st
  • Language: English
  • Print length: 425 pages
  • ISBN-10: 1617297208
  • ISBN-13: 9781617297205

Book Description

When it comes to data analytics, it pays tothink big. PySpark blends the powerful Spark big data processing engine withthe Python programming language to provide a data analysis platform that can scaleup for nearly any task. Data Analysis with Python and PySpark is yourguide to delivering successful Python-driven data projects.

Data Analysis with Python and PySpark is a carefully engineered tutorial that helps you use PySpark to deliver your data-driven applications at any scale. This clear and hands-on guide shows you how to enlarge your processing capabilities across multiple machines with data from any source, ranging from Had oop-based clusters to Excel worksheets. You’ll learn how to break down big analysis tasks into manageable chunks and how to choose and use the best PySpark data abstraction for your unique needs.

The Spark data processing engine is an amazing analytics factory: raw data comes in,and insight comes out. Thanks to its ability to handle massive amounts of data distributed across a cluster, Spark has been adopted as standard by organizations both big and small. PySpark, which wraps the core Spark engine with a Python-based API, puts Spark-based data pipelines in the hands of programmers and data scientists working with the Python programming language. PySpark simplifies Spark’s steep learning curve, and provides a seamless bridge between Spark and an ecosystem of Python-based data science tools.

Editorial Reviews

Review

“A great and gentle introduction to spark.” Javier Collado Cabeza

“A phenomenal introduction to PySpark from the ground up.”Anonymous Reviewer

“A great book to get you started with PySpark!” Jeremy Loscheider

“Takes you on an example focused tour of building pyspark data structures from the data you provide and processing them at speed.” Alex Lucas

“If you need to learn PySpark (as a Data Scientist or Data Wrangler) start with this book!”Geoff Clark

From the Back Cover

Data Analysis with Python and PySpark is a carefully engineered tutorial that helps you use PySpark to deliver your data-driven applications at any scale.This clear and hands-on guide shows you how to enlarge your processing capabilities across multiple machines with data from any source, ranging from Had oop-based clusters to Excel worksheets. You’ll learn how to break down big analysis tasks into manageable chunks and how to choose and use the best PySpark data abstraction for your unique needs. By the time you’re done, you’ll be able towrite and run incredibly fast PySpark programs that are scalable, efficient tooperate, and easy to debug.

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