Predictive Control of Nonlinear System Based on Neural Networks: Predictive Control of Nonlinear Systems Using Feedback Linearisation Based on Dynamic Neural  Networks - Jiamei Deng - 書籍 - LAP LAMBERT Academic Publishing - 9783844300093 - 2011年2月14日
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Predictive Control of Nonlinear System Based on Neural Networks: Predictive Control of Nonlinear Systems Using Feedback Linearisation Based on Dynamic Neural Networks

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Model predictive control (MPC) is an important industrial control technique. Most conventional MPC schemes use linear models. However, the use of linear models can result in a serious deterioration of control performance with many types of nonlinear plants. Feedback linearisation is an important nonlinear control technique which can transform a nonlinear system into a linear system. Dynamic neural networks have the ability to approximate multi-input multi-output general nonlinear systems and have the differential equation structure. This book presents a hybrid control strategy integrating dynamic neural networks and feedback linearisation into a predictive control scheme. This book can be used as a course textbook, a source for practising control engineers with an interest in nonlinear control techniques and also a reference material for academic researchers in nonlinear control theory.

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 2011年2月14日
ISBN13 9783844300093
出版社 LAP LAMBERT Academic Publishing
ページ数 200
寸法 226 × 11 × 150 mm   ·   316 g
言語 ドイツ語