Support Vector Machines and Evolutionary Algorithms for Classification

Lieferzeit: Lieferbar innerhalb 14 Tagen

106,99 

Single or Together?, Intelligent Systems Reference Library 69

ISBN: 3319382438
ISBN 13: 9783319382432
Autor: Stoean, Catalin/Stoean, Ruxandra
Verlag: Springer Verlag GmbH
Umfang: xvi, 122 S., 31 s/w Illustr., 122 p. 31 illus.
Erscheinungsdatum: 17.09.2016
Auflage: 1/2014
Produktform: Kartoniert
Einband: Kartoniert

When discussing classification, support vector machines are known to be a capable and efficient technique to learn and predict with high accuracy within a quick time frame. Yet, their black box means to do so make the practical users quite circumspect about relying on it, without much understanding of the how and why of its predictions. The question raised in this book is how can this ‚masked hero‘ be made more comprehensible and friendly to the public: provide a surrogate model for its hidden optimization engine, replace the method completely or appoint a more friendly approach to tag along and offer the much desired explanations? Evolutionary algorithms can do all these and this book presents such possibilities of achieving high accuracy, comprehensibility, reasonable runtime as well as unconstrained performance.

Artikelnummer: 9882260 Kategorie:

Beschreibung

When discussing classification, support vector machines are known to be a capable and efficient technique to learn and predict with high accuracy within a quick time frame. Yet, their black box means to do so make the practical users quite circumspect about relying on it, without much understanding of the how and why of its predictions. The question raised in this book is how can this masked hero be made more comprehensible and friendly to the public: provide a surrogate model for its hidden optimization engine, replace the method completely or appoint a more friendly approach to tag along and offer the much desired explanations? Evolutionary algorithms can do all these and this book presents such possibilities of achieving high accuracy, comprehensibility, reasonable runtime as well as unconstrained performance.

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E-Mail: juergen.hartmann@springer.com

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