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Distributed model predictive control with switching topology network

机译:切换拓扑网络的分布式模型预测控制

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This paper is concerned with distributed model predictive control for a discrete-time target linear system over a controller communication network with switching topology. The global system is decomposed into N subsystems and N optimization problems are solved in parallel to minimize an upper bound on a robust performance objective by using a state-feedback controller for each subsystem. The considered topology evolution of the control network is assumed to be subject to a Markov chain. An extended cone complementarity linearization method (CCLM) is used to solve the constrained linear matrix inequality (CLMI) and a Bisection method based iterative algorithm is adopted to find the optimal solution. Simulation results illustrate the effectiveness of the proposed method.
机译:本文涉及具有切换拓扑的控制器通信网络上离散时间目标线性系统的分布式模型预测控制。将全局系统分解为N个子系统,并通过为每个子系统使用状态反馈控制器,并行解决N个优化问题,以最大程度地降低鲁棒性能目标的上限。假定所考虑的控制网络拓扑演变要服从马尔可夫链。采用扩展锥互补线性化方法(CCLM)求解约束线性矩阵不等式(CLMI),并采用基于二分法的迭代算法寻找最优解。仿真结果说明了该方法的有效性。

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