具有能量收集约束和译码转发中继的复杂网络递归状态估计

IF 8.6 1区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS
Miaomiao Shi;Lifeng Ma;Xiaojian Yi
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引用次数: 0

摘要

本文研究了一类包含解码转发(DaF)中继和能量收集(EH)技术的复杂网络的递归估计问题。随机互耦拓扑被高斯噪声捕获。针对传感器传输能力不足的问题,采用DaF中继将传感器与远程估计器连接起来,扩大了传输范围,提高了通信质量。信号传输所需的能量可以通过部署在传感器和继电器上的EH技术来提供。本研究的重点是设计一个递归状态估计器,以保证准确的估计性能。通过两个递归方程给出了估计误差协方差矩阵的上界,并通过合理设计估计增益使其最小化。此外,通过详细的理论分析对所开发的估计量进行了评估,重点讨论了它的一致有界性和单调性。仿真实例验证了底层分布式估计器的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recursive State Estimation for Complex Networks With Energy Harvesting Constraints and Decode-and-Forward Relays
This article examines the recursive estimation issue for a class of complex networks that incorporates decode-and-forward (DaF) relays and energy harvesting (EH) techniques. The random intercoupling topologies are captured by Gaussian noise. Owing to the insufficient transmission capacity of sensors, DaF relays are implemented to connect sensors with remote estimators, augmenting the transmission range and improving communication quality. The energy required for signal transmission can be supplied through EH techniques deployed at sensors and relays. This study focuses on designing a recursive state estimator aimed at guaranteeing accurate estimation performance. An upper bound for the estimation error covariance matrix is formulated via two recursive equations, and subsequently minimized by properly designing the estimation gain. Moreover, the developed estimator is evaluated through detailed theoretical analysis, with emphasis on its uniform boundedness and monotonic behavior. Simulated examples confirm the efficacy of the underlying distributed estimator.
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来源期刊
IEEE Transactions on Systems Man Cybernetics-Systems
IEEE Transactions on Systems Man Cybernetics-Systems AUTOMATION & CONTROL SYSTEMS-COMPUTER SCIENCE, CYBERNETICS
CiteScore
18.50
自引率
11.50%
发文量
812
审稿时长
6 months
期刊介绍: The IEEE Transactions on Systems, Man, and Cybernetics: Systems encompasses the fields of systems engineering, covering issue formulation, analysis, and modeling throughout the systems engineering lifecycle phases. It addresses decision-making, issue interpretation, systems management, processes, and various methods such as optimization, modeling, and simulation in the development and deployment of large systems.
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