多智能体系统的分布式和协作监督估计。第1部分:框架

S. Azizi, M. M. Tousi, K. Khorasani
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引用次数: 4

摘要

在这项工作中,我们提出了一个多智能体线性时不变(LTI)系统的监督合作估计框架。我们引入了一组子观察者,每个子观察者估计特定的状态,这些状态取决于给定的输入、输出和状态信息。子观测器之间的合作由离散事件系统(DES)监督者进行监督。监督器决定选择和配置一组子观察者来成功地估计系统的所有状态。此外,当出现某些异常时,主管重新配置所选的子观察者集,以便异常对估计性能的影响最小化。该框架适用于包括大规模工业过程在内的任何多智能体系统。在本文(第一部分)中,我们提出的监督估计框架是基于子观察者和DES监督控制的概念开发的。在第二部分中,提出了一种基于des的组合优化方法来选择最优子观测器集,验证了整体集成子观测器的可行性,并通过数值模拟证明了我们提出的方法在实际工业过程中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A distributed and cooperative supervisory estimation of multi-agent systems - Part I: Framework
In this work, we propose a framework for supervisory cooperative estimation of multi-agent linear time-invariant (LTI) systems. We introduce a group of sub-observers, each estimating certain states that are conditioned on given input, output, and state information. The cooperation among the sub-observers is supervised by a discrete-event system (DES) supervisor. The supervisor makes decisions on selecting and configuring a set of sub-observers to successfully estimate all states of the system. Moreover, when certain anomalies are present, the supervisor reconfigures the set of selected sub-observers so that the impact of anomalies on the estimation performance is minimized. This framework is applicable to any multi-agent system including large-scale industrial processes. In this paper (Part I), our proposed framework for supervisory estimation is developed based on the notion of sub-observers and DES supervisory control. In the companion paper (Part II), a DES-based combinatorial optimization method for selection of an optimal set of sub-observers is presented, the feasibility of the overall integrated sub-observers is validated, and the application of our proposed method in a practical industrial process is demonstrated through numerical simulations.
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