Neural Model Predictive Control for Nonlinear Chemical Processes
[摘要] References(29)Cited-By(7)A neural model predictive control strategy combining a neural network for plant identification and a nonlinear programming algorithm for solving nonlinear control problems is proposed. A constrained nonlinear optimization approach using successive quadratic programming combined with a neural identification network is used to generate the optimum control law for complex continuous chemical reactor systems that have inherent nonlinear dynamics. The neural model predictive controller (NMPC) shows good performance and robustness.
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[关键词] Neural Network;Model Predictive Control;Identification;Intelligent Control;Nonlinear Control [时效性]