信息不可靠的多智能体系统的最优分布与协作监督估计

M. M. Tousi, S. Azizi, K. Khorasani
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引用次数: 3

摘要

本文提出了一种新的多智能体线性时不变(LTI)系统的最优协同监督估计框架,该框架适用于大类多智能体系统。该框架是最近由作者基于子观察者和离散事件系统(DES)监督控制的概念开发的。每个子观测器估计某些状态,这些状态取决于给定的输入、输出和状态信息。此外,各分观察员之间的合作由一名环境服务监督员管理。在这项工作中,我们提出的监督估计框架被扩展到组合优化领域。当系统中存在某些异常(故障),或者传感器和子观测器变得不可靠时,所提出的最优DES监督器做出关于子观测器集的选择和重新配置的决策来估计系统的所有状态,同时一个包含通信成本、计算成本和重新配置成本的性能指标,以及无效状态估计的数量最小化。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。
Optimal distributed and cooperative supervisory estimation of multi-agent systems subject to unreliable information
In this work, a novel framework for optimal cooperative supervisory estimation of multi-agent linear time-invariant (LTI) systems is proposed which is applicable to a large class of multi-agent systems. This framework was recently developed by the authors based on the notion of sub-observers and a discrete-event system (DES) supervisory control. Each sub-observer estimates certain states that are conditioned on given inputs, outputs, and states information. Moreover, the cooperation among the sub-observers is managed by a DES supervisor. In this work, our proposed supervisory estimation framework is extended to the combinatorial optimization domain. When certain anomalies (faults) are present in the system, or the sensors and sub-observers become unreliable, the proposed optimal DES supervisor makes decisions regarding the selection and reconfiguration of sets of sub-observers to estimate all the system states, while simultaneously a performance index that incorporates the communication cost, computation cost, and reconfiguration cost, and the number of invalid state estimates is minimized. The application of our proposed methodology in a practical industrial process is demonstrated through numerical simulations.
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