基于数据关联技术的无线传感器网络事件检测数据信任模型

Karthik N, V. S. Ananthanarayana
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引用次数: 20

摘要

无线传感器网络(WSN)是由分散的自组织传感器节点组成的集合体,用于愉快地监测物理和周围环境。这些传感器节点配备了有限的资源,如内存、处理能力、电池电量和收发器,用于监测、处理和交流观察到的现象,以便根据收集到的数据做出关键决策。数据可信度评估是无线传感器网络事件检测的主要预处理过程。在无线传感器网络中,使用无数据错误、不准确和不一致的可信数据来识别感兴趣的事件和关键决策。本文介绍了基于数据信任模型的研究现状,重点从数据故障检测、数据重构、数据质量估计等方面对WSN的可靠事件检测进行了研究。针对恶劣环境下的无线传感器网络,提出了一种新的数据信任模型来识别事件和奇怪的环境数据行为。该框架通过数据关联技术将不同的数据处理方法组合在一起,以减轻普适环境中的数据安全风险。
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Data trust model for event detection in wireless sensor networks using data correlation techniques
A wireless sensor network (WSN) is a conglomeration of scattered self organized sensor nodes to agreeably monitor the physical and surrounding conditions. These sensor nodes are equipped with limited resources such as memory, processing capability, battery power and transceiver for monitoring, processing and communicating the observed phenomena to make critical decisions with respect to collected data. Evaluating the trustworthiness of data is a primary preprocessing process of event detection in WSN. The trustworthy data which is free from data fault, inaccuracy and inconsistency is used to identify the interesting events and critical decision making in WSN. In this paper, we present our current work on data trust model that focuses on data fault detection, data reconstruction, data quality estimation for reliable event detection in WSN. The aim of this paper is to propose a novel data trust model for harsh environment of WSN to identify the events and strange environmental data behavior. This proposed framework combines different data processing methods through data correlation techniques to mitigate the data security risks of pervasive environments.
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