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基于时变复杂网络的不完全观测和动态偏差的延迟补偿状态估计。

Delay Compensation-Based State Estimation for Time-Varying Complex Networks With Incomplete Observations and Dynamical Bias.

出版信息

IEEE Trans Cybern. 2022 Nov;52(11):12071-12083. doi: 10.1109/TCYB.2020.3043283. Epub 2022 Oct 17.

Abstract

In this article, a delay-compensation-based state estimation (DCBSE) method is given for a class of discrete time-varying complex networks (DTVCNs) subject to network-induced incomplete observations (NIIOs) and dynamical bias. The NIIOs include the communication delays and fading observations, where the fading observations are modeled by a set of mutually independent random variables. Moreover, the possible bias is taken into account, which is depicted by a dynamical equation. A predictive scheme is proposed to compensate for the influences induced by the communication delays, where the predictive-based estimation mechanism is adopted to replace the delayed estimation transmissions. This article focuses on the problems of estimation method design and performance discussions for addressed DTVCNs with NIIOs and dynamical bias. In particular, a new distributed state estimation approach is presented, where a locally minimized upper bound is obtained for the estimation error covariance matrix and a recursive way is designed to determine the estimator gain matrix. Furthermore, the performance evaluation criteria regarding the monotonicity are proposed from the analytic perspective. Finally, some experimental comparisons are proposed to show the validity and advantages of the new DCBSE approach.

摘要

在本文中,针对一类具有网络诱导不完全观测(NIIO)和动态偏差的离散时变复网络(DTVCN),提出了一种基于延迟补偿的状态估计(DCBSE)方法。NIIO 包括通信延迟和衰落观测,其中衰落观测由一组相互独立的随机变量建模。此外,还考虑了可能的偏差,该偏差由一个动态方程来描述。提出了一种预测方案来补偿由通信延迟引起的影响,其中采用基于预测的估计机制来代替延迟的估计传输。本文重点研究了具有 NIIO 和动态偏差的所研究的 DTVCN 的估计方法设计和性能讨论问题。特别是,提出了一种新的分布式状态估计方法,其中获得了估计误差协方差矩阵的局部最小上界,并设计了一种递归方法来确定估计器增益矩阵。此外,从分析角度提出了关于单调性的性能评估标准。最后,提出了一些实验比较,以显示新的 DCBSE 方法的有效性和优势。

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