Handbook on Neural Information Processing

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160,49 

Intelligent Systems Reference Library 49

ISBN: 3642429890
ISBN 13: 9783642429897
Herausgeber: Monica Bianchini/Marco Maggini/Lakhmi C Jain
Verlag: Springer Verlag GmbH
Umfang: xx, 538 S.
Erscheinungsdatum: 22.05.2015
Auflage: 1/2015
Produktform: Kartoniert
Einband: KT

This handbook presents some of the most recent topics in neural information processing, covering both theoretical concepts and practical applications. The contributions include:                         Deep architectures                         Recurrent, recursive, and graph neural networks                         Cellular neural networks                         Bayesian networks                         Approximation capabilities of neural networks                         Semi-supervised learning                         Statistical relational learning                         Kernel methods for structured data                         Multiple classifier systems                         Self organisation and modal learning                         Applications to content-based image retrieval, text mining in large document collections, and bioinformatics  This book is thought particularly for graduate students, researchers and practitioners, willing to deepen their knowledge on more advanced connectionist models and related learning paradigms.

Artikelnummer: 2873603 Kategorie:

Beschreibung

This handbook presents some of the most recent topics in neural information processing, covering both theoretical concepts and practical applications. The contributions include: - Deep architectures Recurrent, recursive, and graph neural networks Cellular neural networks Bayesian networks Approximation capabilities of neural networks Semisupervised learning Statistical relational learning  Kernel methods for structured data  Multiple classifier systems  Self organisation and modal learning  Applications to contentbased image retrieval, text mining in large document collections, and bioinformatics  This book is thought particularly for graduate students, researchers and practitioners, willing to deepen their knowledge on more advanced connectionist models and related learning paradigms.

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