有界加性扰动下基于集合的模型预测一致性

A. Gautam, Y. Soh, Y. Chu
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引用次数: 2

摘要

针对一类需要以最优方式达到一致条件的动态解耦子系统,提出了一种高效的基于模型预测控制(MPC)的控制方案。考虑了具有外部干扰的约束子系统的一般情况,并设置了一个合适的基于集合的近一致条件作为目标条件。该方案在子系统中采用计算效率高的闭环MPC策略,并采用分布式优化方法实时优化全局共识轨迹和子系统控制输入。它还允许在策略制定中结合计算延迟,从而确保所需的控制性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Set-based model predictive consensus under bounded additive disturbances
An efficient, model-predictive-control (MPC)-based scheme is presented for a class of consensus-related control problems involving dynamically decoupled subsystems which are required to reach a consensus condition in some optimal way. A general case of constrained subsystems with external disturbances is considered and a suitable set-based near-consensus condition is set as the target condition to achieve. The proposed scheme employs computationally efficient, closed-loop MPC policies in the subsystems together with a distributed optimization method to optimize the global consensus trajectory and the subsystem control inputs in real time. It also allows the incorporation of computational delays in the policy formulation so that the desired control performance is ensured.
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