Spark – The Definitive Guide : Big data processing made simple
Book Details
Format
Paperback / Softback
ISBN-10
1491912219
ISBN-13
9781491912218
Publisher
O'Reilly Media
Imprint
O'Reilly Media
Country of Manufacture
US
Country of Publication
GB
Publication Date
Mar 31st, 2018
Print length
450 Pages
Weight
1,016 grams
Dimensions
23.30 x 17.80 x 3.10 cms
Product Classification:
Digital and Information technology: general topicsInformation technology: general issues3D graphics & modelling3D graphics and modellingComputer programming / software developmentComputer programming / software engineeringData capture & analysisData capture and analysisData miningSystems analysis & designSystems analysis and design
Ksh 10,100.00
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Learn how to use, deploy, and maintain Apache Spark with this comprehensive guide, written by the creators of the open-source cluster-computing framework. With an emphasis on improvements and new features in Spark 2.0, authors Bill Chambers and Matei Zaharia break down Spark topics into distinct sections, each with unique goals.
Learn how to use, deploy, and maintain Apache Spark with this comprehensive guide, written by the creators of the open-source cluster-computing framework. With an emphasis on improvements and new features in Spark 2.0, authors Bill Chambers and Matei Zaharia break down Spark topics into distinct sections, each with unique goals. You’ll explore the basic operations and common functions of Spark’s structured APIs, as well as Structured Streaming, a new high-level API for building end-to-end streaming applications. Developers and system administrators will learn the fundamentals of monitoring, tuning, and debugging Spark, and explore machine learning techniques and scenarios for employing MLlib, Spark’s scalable machine-learning library. Get a gentle overview of big data and Spark Learn about DataFrames, SQL, and Datasets—Spark’s core APIs—through worked examples Dive into Spark’s low-level APIs, RDDs, and execution of SQL and DataFrames Understand how Spark runs on a cluster Debug, monitor, and tune Spark clusters and applications Learn the power of Structured Streaming, Spark’s stream-processing engine Learn how you can apply MLlib to a variety of problems, including classification or recommendation
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