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Recent Advances in Ensembles for Feature Selection (Intelligent Systems Reference Library, Vol. 147) '18

Bolón-Canedo, Verónica, Alonso-Betanzos, Amparo  著

在庫状況 お取り寄せ  お届け予定日 1ヶ月  数量 冊 
価格 \18,283(税込)         

発行年月 2018年05月
出版社/提供元
出版国 スイス
言語 英語
媒体 冊子
装丁 hardcover
ページ数/巻数 XIV, 205 p.
ジャンル 洋書/理工学/情報科学/人工知能
ISBN 9783319900797
商品コード 1027294036
本の性格 学術書
新刊案内掲載月 2018年06月
商品URL
参照
https://kw.maruzen.co.jp/ims/itemDetail.html?itmCd=1027294036

内容

This book offers a comprehensive overview of ensemble learning in the field of feature selection (FS), which consists of combining the output of multiple methods to obtain better results than any single method. It reviews various techniques for combining partial results, measuring diversity and evaluating ensemble performance.
With the advent of Big Data, feature selection (FS) has become more necessary than ever to achieve dimensionality reduction. With so many methods available, it is difficult to choose the most appropriate one for a given setting, thus making the ensemble paradigm an interesting alternative.
The authors first focus on the foundations of ensemble learning and classical approaches, before diving into the specific aspects of ensembles for FS, such as combining partial results, measuring diversity and evaluating ensemble performance. Lastly, the book shows examples of successful applications of ensembles for FS and introduces the new challenges that researchers now face. As such, the book offers a valuable guide for all practitioners, researchers and graduate students in the areas of machine learning and data mining.

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