Minimum Error Entropy Classification

Minimum Error Entropy Classification

Paperback Published on: 09/08/2014
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Synopsis

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.

Publisher information

  • Publisher: Springer-Verlag Berlin and Heidelberg GmbH & Co. KG
  • ISBN: 9783642437427
  • Number of pages: 262
  • Dimensions: 235 x 155 mm
  • Languages: English

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