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An Information Entropy Based Event Boundary Detection Algorithm in Wireless Sensor Networks

机译:基于信息熵的无线传感器网络事件边界检测算法

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摘要

Wireless Sensor Networks (WSNs) have been extensively applied in ecological environment monitoring. Typically, event boundary detection is an effective method to determine the scope of an event area in large-scale environment monitoring. This paper proposes a novel lightweight Entropy based Event Boundary Detection algorithm (EEBD) in WSNs. We first develop a statistic model using information entropy to figure out the probability that a sensor is a boundary sensor. The EEBD is independently executed on each wireless sensor in order to judge whether it is a boundary sensor node, by comparing the values of entropy against the threshold which depends on the boundary width. Simulation results demonstrate that the EEBD is computable and offers valuable detection accuracy of boundary nodes with both low and high network node density. This study also includes experiments that verify the EEBD which is applicable in a real ocean environmental monitoring scenario using WSNs.
机译:无线传感器网络(WSNS)已广泛应用于生态环境监测。通常,事件边界检测是在大规模环境监视中确定事件区域的范围的有效方法。本文提出了一种基于WSN的小型轻质熵的事件边界检测算法(EEBD)。我们首先使用信息熵开发统计模型来弄清楚传感器是边界传感器的概率。 EEBD在每个无线传感器上独立地执行,以便通过将熵的值与取决于边界宽度的阈值来判断它是否是边界传感器节点。仿真结果表明EEBD是可计算的,并提供具有低网络节点密度和高网络节点密度的边界节点的宝贵检测精度。本研究还包括验证EEBD的实验,该实验可使用WSNS适用于真正的海洋环境监测场景。

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