Feature Selection for Knowledge Discovery and Data Mining

Feature Selection for Knowledge Discovery and Data Mining

EnglishHardback
Huan Liu
Kluwer Academic Publishers
EAN: 9780792381983
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With advanced computer technologies and their omnipresent usage, data accumulates in a speed unmatchable by the human's capacity to process data. To meet this growing challenge, the research community of knowledge discovery from databases emerged. The key issue studied by this community is, in layman's terms, to make advantageous use of large stores of data. In order to make raw data useful, it is necessary to represent, process, and extract knowledge for various applications. This work offers an overview of the methods developed since the 1970s and provides a general framework in order to examine these methods and categorize them. This book employs simple examples to show the essence of representative feature selection methods and compares them using data sets with combinations of intrinsic properties according to the objective of feature selection. In addition, the book suggests guidelines on how to use different methods under various circumstances and points out new challenges in this area of research. The text is intended to be used by researchers in machine learning, data mining, knowledge discovery and databases as a toolbox of relevant tools that help in solving large real-world problems. The book is also intended to serve as a reference or secondary text for courses on machine learning, data mining, and databases.
EAN 9780792381983
ISBN 079238198X
Binding Hardback
Publisher Kluwer Academic Publishers
Publication date July 31, 1998
Pages 214
Language English
Dimensions 235 x 155
Country United States
Readership Professional & Scholarly
Authors Huan Liu; Motoda Hiroshi
Illustrations XXIII, 214 p.
Edition 1998 ed.
Series Springer International Series in Engineering and Computer Science
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