Recurrent Neural Networks: Design, Analysis, Applications to Control and  Robotic Systems - Yunong Zhang - 書籍 - LAP Lambert Academic Publishing - 9783838303826 - 2010年5月30日
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Recurrent Neural Networks: Design, Analysis, Applications to Control and Robotic Systems

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発送予定日 年12月19日 - 年12月31日
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Because of massively parallel distributed nature and very fast convergence rates, recurrent neural networks (RNN) are widely applied to solving many problems in optimization, control and robotic systems, etc. Hence, this book investigates the following RNN models which solve some practical problems, together with their corresponding analysis on stability and convergence. A type of multilayer pole-assignment neural networks is applied to online synthesizing and tuning feedback control systems. Then, a novel RNN model is established by absorbing the first-order time-derivative information to solve the Sylvester equation with time-varying coefficient matrices. A dual neural network is developed to handle quadratic programs subject to linear constraints. The Lagrangian neural network and primal-dual neural network are also reviewed for comparison purposes. The neural networks are then exploited for real-time motion planning of redundant manipulators. The publication is primarily intended for researchers and postgraduates studying in RNN, control and robotics.

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 2010年5月30日
ISBN13 9783838303826
出版社 LAP Lambert Academic Publishing
ページ数 200
寸法 225 × 11 × 150 mm   ·   316 g
言語 ドイツ語  

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