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Neural Networks and Statistical Learning

Produktform: Buch / Einband - fest (Hardcover)

This book provides a broad yet detailed introduction to neural networks and machine learning in a statistical framework. A single, comprehensive resource for study and further research, it explores the major popular neural network models and statistical learning approaches with examples and exercises and allows readers to gain a practical working understanding of the content. This updated new edition presents recently published results and includes four new chapters that correspond to the recent advances in neural networks, spar coding, deep learning, big data and cloud computing.Each chapter features state-of-the-art descriptions and significant research findings. The topics covered include: •         multilayer perceptron;•         the Hopfield network;•         associative memory models;•         clustering models and algorithms;•         the radial basis function network;•         recurrent neural networks;•         nonnegative matrix factorization;•         independent component analysis;•         probabilistic and Bayesian networks; and•         fuzzy sets and logic. Focusing on the prominent accomplishments and their practical aspects, this book provides academic and technical staff, as well as graduate students and researchers with a solid foundation and comprehensive reference on the fields of neural networks, pattern recognition, signal processing, and machine learning. weiterlesen

Sprache(n): Englisch

ISBN: 978-1-4471-7451-6 / 978-1447174516 / 9781447174516

Verlag: Springer London

Erscheinungsdatum: 25.09.2019

Seiten: 988

Auflage: 2

Autor(en): Ke-Lin Du, M. N. S. Swamy

149,79 € inkl. MwSt.
kostenloser Versand

lieferbar - Lieferzeit 10-15 Werktage

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