A Privacy-preserving Approach to Distributed Set-membership Estimation over Wireless Sensor Networks

Xuefeng Yang, Li Liu, Yinggang Zhang, Yihao Li, Pan Liu, Shili Ai
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Abstract

This paper focuses on the system on wireless sensor networks. The system is linear and the time of the system is discrete as well as variable, which named discrete-time linear time-varying systems (DLTVS). DLTVS are vulnerable to network attacks when exchanging information between sensors in the network, as well as putting their security at risk. A DLTVS with privacy-preserving is designed for this purpose. A set-membership estimator is designed by adding privacy noise obeying the Laplace distribution to state at the initial moment. Simultaneously, the differential privacy of the system is analyzed. On this basis, the real state of the system and the existence form of the estimator for the desired distribution are analyzed. Finally, simulation examples are given, which prove that the model after adding differential privacy can obtain accurate estimates and ensure the security of the system state.
无线传感器网络分布式集隶属度估计的隐私保护方法
本文主要研究无线传感器网络系统。系统是线性的,系统的时间是离散的,也是可变的,称为离散时间线性时变系统(DLTVS)。dltv在网络中传感器之间交换信息时容易受到网络攻击,并将其安全性置于危险之中。具有隐私保护功能的dltv就是为此而设计的。通过在初始时刻的状态中加入服从拉普拉斯分布的隐私噪声,设计了一个集隶属度估计器。同时,对系统的差分隐私进行了分析。在此基础上,分析了系统的真实状态和期望分布估计量的存在形式。最后给出了仿真实例,证明了加入差分隐私后的模型能够得到准确的估计,保证了系统状态的安全性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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