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Impacted-Region Optimization for Distributed Model Predictive Control Systems With Constraints

机译:具有约束的分布式模型预测控制系统的受影响区域优化

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摘要

For a large-scale distributed system, distributed model predictive control (DMPC) is a method of choice because of its ability to explicitly accommodate constraints and to achieve good dynamic performance. In the design of a DMPC, guaranteeing stability with a strong global performance is known to be a challenge. In this paper, we consider a large-scale distributed system whose input is constrained to given sets in their respective spaces and propose a stabilizing DMPC design, where each subsystem-based model predictive control (MPC) optimizes the cost function of the entire system over the region it directly impacts on. Consistency constraints and stability constraints, which bound the estimation errors of the interaction sequences among subsystems, are designed to guarantee that, if an initially feasible solution can be found, subsequent feasibility of the algorithm is guaranteed at every update, and that the closed-loop system is asymptotically stable. A key feature of the proposed DMPC is that it coordinates the MPCs of the subsystems by redefining the impact region of a subsystem according to the coordination strategy. Simulation results show that the performance of the proposed DMPC is very close to that of a centralized MPC.
机译:对于大型分布式系统,分布式模型预测控制(DMPC)是一种选择方法,因为它能够显式适应约束并实现良好的动态性能。在DMPC的设计中,要保证稳定性和强大的全局性能是一项挑战。在本文中,我们考虑了一个大型分布式系统,其输入被限制在各自空间中的给定集合上,并提出了一种稳定的DMPC设计,其中每个基于子系统的模型预测控制(MPC)都会优化整个系统的成本函数。直接影响的区域。旨在约束子系统之间交互序列的估计误差的一致性约束和稳定性约束旨在确保,如果可以找到最初可行的解决方案,则每次更新时都可以保证算法的后续可行性,并且可以保证闭环系统是渐近稳定的。所提出的DMPC的一个关键特征是,它根据协调策略通过重新定义子系统的影响区域来协调子系统的MPC。仿真结果表明,所提出的DMPC的性能与集中式MPC的性能非常接近。

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