9781439826119-1439826110-Knowledge Discovery from Data Streams (Chapman & Hall/CRC Data Mining and Knowledge Discovery Series)

Knowledge Discovery from Data Streams (Chapman & Hall/CRC Data Mining and Knowledge Discovery Series)

ISBN-13: 9781439826119
ISBN-10: 1439826110
Edition: 1
Author: Joao Gama
Publication date: 2010
Publisher: Chapman and Hall/CRC
Format: Hardcover 258 pages
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Book details

ISBN-13: 9781439826119
ISBN-10: 1439826110
Edition: 1
Author: Joao Gama
Publication date: 2010
Publisher: Chapman and Hall/CRC
Format: Hardcover 258 pages

Summary

Knowledge Discovery from Data Streams (Chapman & Hall/CRC Data Mining and Knowledge Discovery Series) (ISBN-13: 9781439826119 and ISBN-10: 1439826110), written by authors Joao Gama, was published by Chapman and Hall/CRC in 2010. With an overall rating of 4.1 stars, it's a notable title among other Statistics (Education & Reference) books. You can easily purchase or rent Knowledge Discovery from Data Streams (Chapman & Hall/CRC Data Mining and Knowledge Discovery Series) (Hardcover) from BooksRun, along with many other new and used Statistics books and textbooks. And, if you're looking to sell your copy, our current buyback offer is $0.3.

Description

Since the beginning of the Internet age and the increased use of ubiquitous computing devices, the large volume and continuous flow of distributed data have imposed new constraints on the design of learning algorithms. Exploring how to extract knowledge structures from evolving and time-changing data, Knowledge Discovery from Data Streams presents a coherent overview of state-of-the-art research in learning from data streams.

The book covers the fundamentals that are imperative to understanding data streams and describes important applications, such as TCP/IP traffic, GPS data, sensor networks, and customer click streams. It also addresses several challenges of data mining in the future, when stream mining will be at the core of many applications. These challenges involve designing useful and efficient data mining solutions applicable to real-world problems. In the appendix, the author includes examples of publicly available software and online data sets.

This practical, up-to-date book focuses on the new requirements of the next generation of data mining. Although the concepts presented in the text are mainly about data streams, they also are valid for different areas of machine learning and data mining.

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