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Marques de Sa, Joaquim P.; Almeida da Silva, Luis Miguel; Santos, Jorge M.; Alexandre, Luis A. - Minimum Error Entropy Classification - 9783642290282 - V9783642290282
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Minimum Error Entropy Classification

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Description for Minimum Error Entropy Classification Hardback. This book explains the minimum error entropy (MEE) concept applied to data classification machines. Discusses theoretical results, offers a clustering algorithm using a MEE-like concept, and includes tests, evaluation experiments and comparative applications. Series: Studies in Computational Intelligence. Num Pages: 280 pages, biography. BIC Classification: PHS; UYQ. Category: (P) Professional & Vocational. Dimension: 234 x 156 x 17. Weight in Grams: 571.

This book explains the minimum error entropy (MEE) concept applied to data classification machines. Theoretical results on the inner workings of the MEE concept, in its application to solving a variety of classification problems, are presented in the wider realm of risk functionals.

Researchers and practitioners also find in the book a detailed presentation of practical data classifiers using MEE. These include multi‐layer perceptrons, recurrent neural networks, complexvalued neural networks, modular neural networks, and decision trees. A clustering algorithm using a MEE‐like concept is also presented. Examples, tests, evaluation experiments and comparison with similar machines using classic approaches, complement the descriptions.

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Product Details

Format
Hardback
Publication date
2012
Publisher
Springer-Verlag Berlin and Heidelberg GmbH & Co. KG Germany
Number of pages
280
Condition
New
Series
Studies in Computational Intelligence
Number of Pages
262
Place of Publication
Berlin, Germany
ISBN
9783642290282
SKU
V9783642290282
Shipping Time
Usually ships in 15 to 20 working days
Ref
99-15

Reviews for Minimum Error Entropy Classification
From the reviews:   “The paper deals with the theoretical background and corresponding applications of minimum error entropy (MEE) to different data classifications models … . Many examples and tests are also provided to illustrate the practical application of MEE in concrete classification problems. The book is dedicated to researchers and practitioners working on machine learning algorithms interested ... Read more

Goodreads reviews for Minimum Error Entropy Classification


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