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Magical Tome

Cover of Subspace learning of neural networks
First published
2018
Publisher
Taylor & Francis Group
Pages
248 pages
ISBN
9781351825320

Subspace learning of neural networks

The outer archives are busy

by Jian Cheng Lv

About this book

"Using real-life examples to illustrate the performance of learning algorithms and instructing readers how to apply them to practical applications, this work offers a comprehensive treatment of subspace learning algorithms for neural networks. The authors summarize a decade of high quality research offering a host of practical applications. They demonstrate ways to extend the use of algorithms to fields such as encryption communication, data mining, computer vision, and signal and image processing to name just a few. The brilliance of the work lies with how it coherently builds a theoretical understanding of the convergence behavior of subspace learning algorithms through a summary of chaotic behaviors"--

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