Decentralized Robust Model Predictive Control for Multi-Input Linear Systems

Saeed Adelipour, M. Haeri, G. Pannocchia
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引用次数: 4

Abstract

In this paper, a decentralized model predictive control approach is proposed for discrete linear systems with a high number of inputs and states. The system is decomposed into several interacting subsystems. The interaction among subsystems is modeled as external disturbances. Then, using the concept of robust positively invariant ellipsoids, a robust model predictive control law is obtained for each subsystem solving several linear matrix inequalities. Maintaining the recursive feasibility while considering the attenuation of mutual coupling at each time step and the stability of the overall system are investigated. Moreover, an illustrative simulation example is provided to demonstrate the effectiveness of the method.
多输入线性系统的分散鲁棒模型预测控制
针对具有大量输入和状态的离散线性系统,提出了一种分散模型预测控制方法。该系统被分解为几个相互作用的子系统。子系统之间的相互作用被建模为外部干扰。然后,利用鲁棒正不变椭球的概念,求解若干线性矩阵不等式,得到各子系统的鲁棒模型预测控制律。在保持递归可行性的同时,考虑了各时间步互耦的衰减和整个系统的稳定性。最后,给出了一个说明性的仿真实例,验证了该方法的有效性。
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