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A Novel Adaptive NARMA-L2 Controller Based on Online Support Vector Regression for Nonlinear Systems

机译:基于在线支持向量回归的非线性系统新型自适应NARMA-L2控制器

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In this study, a novel nonlinear autoregressive moving average (NARMA)-L2 controller based on online support vector regression (SVR) is proposed. The main idea is to obtain a SVR based NARMA-L2 model of a nonlinear single input single output system (SISO) by decomposing a single SVR which estimates the nonlinear autoregressive with exogenous inputs (NARX) model of the system. Consequently, using the obtained SVR-NARMA-L2 submodels, a NARMA-L2 controller is designed. The performance of the proposed SVR based NARMA-L2 controller has been evaluated by simulations carried out on a bioreactor system, and the results show that the SVR based NARMA-L2 model and controller attain good modelling and control performances. Robustness of the controller in the case of system parameter uncertainty and measurement noise have also been examined.
机译:提出了一种基于在线支持向量回归(SVR)的非线性自回归移动平均(NARMA)-L2控制器。主要思想是通过分解单个SVR来获得基于SVR的非线性单输入单输出系统(SISO)的NARMA-L2模型,该SVR估计系统的外源输入的非线性自回归模型(NARX)。因此,使用获得的SVR-NARMA-L2子模型,设计了NARMA-L2控制器。通过在生物反应器系统上进行的仿真评估了所提出的基于SVR的NARMA-L2控制器的性能,结果表明基于SVR的NARMA-L2模型和控制器具有良好的建模和控制性能。还检查了系统参数不确定性和测量噪声情况下控制器的鲁棒性。

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