Neural Network Design (2nd Edition) - Martin T Hagan - 書籍 - Martin Hagan - 9780971732117 - 2014年9月1日
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Neural Network Design (2nd Edition) 第2 版

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発送予定日 年9月9日 - 年9月25日
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This book, by the authors of the Neural Network Toolbox for MATLAB, provides a clear and detailed coverage of fundamental neural network architectures and learning rules. In it, the authors emphasize a coherent presentation of the principal neural networks, methods for training them and their applications to practical problems. Features Extensive coverage of training methods for both feedforward networks (including multilayer and radial basis networks) and recurrent networks. In addition to conjugate gradient and Levenberg-Marquardt variations of the backpropagation algorithm, the text also covers Bayesian regularization and early stopping, which ensure the generalization ability of trained networks. Associative and competitive networks, including feature maps and learning vector quantization, are explained with simple building blocks. A chapter of practical training tips for function approximation, pattern recognition, clustering and prediction, along with five chapters presenting detailed real-world case studies. Detailed examples and numerous solved problems. Slides and comprehensive demonstration software can be downloaded from hagan.okstate.edu/nnd.html.

メディア 書籍     Paperback Book   (ソフトカバーで背表紙を接着した本)
リリース済み 2014年9月1日
ISBN13 9780971732117
出版社 Martin Hagan
ページ数 800
寸法 191 × 235 × 40 mm   ·   1,35 kg
言語 英語