Temporal Data Mining via Unsupervised Ensemble Learning

★★★★★ 4.9 125 reviews

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Management number 236920620 Release Date 2026/07/10 List Price $17.50 Model Number 236920620
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Temporal Data Mining via Unsupervised Ensemble Learning provides the principle knowledge of temporal data mining in association with unsupervised ensemble learning and the fundamental problems of temporal data clustering from different perspectives. By providing three proposed ensemble approaches of temporal data clustering, this book presents a practical focus of fundamental knowledge and techniques, along with a rich blend of theory and practice.Furthermore, the book includes illustrations of the proposed approaches based on data and simulation experiments to demonstrate all methodologies, and is a guide to the proper usage of these methods. As there is nothing universal that can solve all problems, it is important to understand the characteristics of both clustering algorithms and the target temporal data so the correct approach can be selected for a given clustering problem.Scientists, researchers, and data analysts working with machine learning and data mining will benefit from this innovative book, as will undergraduate and graduate students following courses in computer science, engineering, and statistics.- Includes fundamental concepts and knowledge, covering all key tasks and techniques of temporal data mining, i.e., temporal data representations, similarity measure, and mining tasks- Concentrates on temporal data clustering tasks from different perspectives, including major algorithms from clustering algorithms and ensemble learning approaches- Presents a rich blend of theory and practice, addressing seminal research ideas and looking at the technology from a practical point-of-view Read more

ASIN B01MXMB37J
XRay Not Enabled
ISBN13 978-0128118412
Edition 1st
Language English
File size 42.7 MB
Page Flip Enabled
Publisher Elsevier
Word Wise Not Enabled
Print length 161 pages
Accessibility Learn more
Screen Reader Supported
Publication date November 15, 2016
Enhanced typesetting Enabled

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