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Robust model predictive control based on a category of dynamic output feedback

机译:基于一类动态输出反馈的鲁棒模型预测控制

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For the polytopic uncertain systems with unmea-surable system states, this paper considers the synthesis of robust model predictive control (RMPC). A category of dynamic output feedback is adopted as the control strategy. Compared with common dynamic output feedback approach, the adopted approach adds some new freedom, which is optimized online by RMPC with some parameters of the controller given in advance. The proposed RMPC is proven to be robustly stable and recursively feasible. And the system constraints can be satisfied. Meanwhile, in order to reduce the online computational complexity of RMPC, an off-line version of the proposed output feedback RMPC is also developed. This makes the design more practical.
机译:对于具有监控系统状态的多孔不确定系统,本文考虑了鲁棒模型预测控制(RMPC)的合成。采用了一种动态输出反馈作为控制策略。与常见的动态输出反馈方法相比,采用的方法增加了一些新的自由度,该自由度由RMPC在线优化,并提前给出的控制器的一些参数。已拟议的RMPC被证明是强大的稳定性和递归可行的。可以满足系统约束。同时,为了降低RMPC的在线计算复杂性,还开发了建议输出反馈RMPC的离线版本。这使得设计更加实用。

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