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Output feedback MPC based on smoothed projected kinky inference

机译:基于平滑投影变态推断的输出反馈MPC

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In this study, the authors propose a stabilising data-based model predictive controller for systems subject to constraints in which the prediction model is inferred from experimental data of the plant using a machine learning technique. The inference method is a modification of the kinky inference tailored for model predictive control. In particular, the modified method has a lower computational effort and provides smoother predictions than the original method. The controller formulation considers soft constraints in the outputs, hard constraints in the inputs and guarantees closed-loop robust stability as well as performance by means of the use of different control and prediction horizons and a weighted terminal cost. Under the assumption that the model of the system is Holder continuous, they prove that the closed-loop system is input-to-state stable with respect to the estimation errors. The results are demonstrated in a case study of a continuously stirred-tank reactor.
机译:在这项研究中,作者为受约束的系统提出了一种基于稳定数据的模型预测控制器,其中使用机器学习技术从植物的实验数据中推断出预测模型。推理方法是为模型预测控制量身定制的变态推理的一种改进。特别地,与原始方法相比,改进的方法具有较低的计算工作量并提供了更平滑的预测。控制器公式考虑了输出中的软约束,输入中的硬约束,并通过使用不同的控制和预测范围以及加权的终端成本来确保闭环鲁棒稳定性和性能。在系统模型为Holder连续的假设下,他们证明了闭环系统对于估计误差是输入到状态稳定的。在连续搅拌釜反应器的案例研究中证明了结果。

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