Secure data aggregation and intrusion detection in wireless sensor networks

P. Vamsi, K. Kant
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引用次数: 10

Abstract

Data Aggregation (DA) is a technique of data gathering in Wireless Sensor Networks (WSNs). It provide advantages such as reporting consolidated data, reducing data redundancy, improving network lifetime etc. However, deploying WSNs in hostile and remote environments presents security vulnerabilities that can lead to various security attacks such as energy based attacks, attacks on data aggregation etc. Numerous secure DA techniques have been proposed in the literature. However, lightweight models using Trust Monitoring System (TMS) and Intrusion Detection Systems (IDS) are limited. This paper presents a secure data aggregation framework for Wireless Sensor Networks (WSNs) using TMS at node level and IDS at Base Station (BS) side. Each node in the network assesses the behavior of its neighbors using trust ratings and performs the network activities such as cluster head selection, data aggregation, and reporting to the BS. Then, BS analyzes the received information using IDS and reports the information about the malicious activities back to nodes in the network. In this way, the proposed model identifies and isolates the malicious nodes from the data aggregation process. Simulation results show the effectiveness of this model.
无线传感器网络中的安全数据聚合与入侵检测
数据聚合(Data Aggregation, DA)是无线传感器网络中的一种数据采集技术。它具有报告合并数据、减少数据冗余、提高网络寿命等优点。然而,在敌对和远程环境中部署wsn存在安全漏洞,可能导致各种安全攻击,如基于能量的攻击、对数据聚合的攻击等。文献中提出了许多安全的数据处理技术。然而,使用信任监控系统(TMS)和入侵检测系统(IDS)的轻量级模型是有限的。提出了一种基于节点级TMS和基站侧IDS的无线传感器网络安全数据聚合框架。网络中的每个节点使用信任评级来评估其邻居的行为,并执行诸如簇头选择、数据聚合和向BS报告等网络活动。然后,BS使用IDS对接收到的信息进行分析,并将有关恶意活动的信息报告给网络中的节点。通过这种方法,该模型可以识别并隔离数据聚合过程中的恶意节点。仿真结果表明了该模型的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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