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A New Data Filtering Scheme Based on Statistical Data Analysis for Monitoring Systems in Wireless Sensor Networks

机译:基于统计数据分析的无线传感器网络监控系统数据过滤新方案

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Recently, wireless sensor networks (WSN) are actively used for various monitoring systems. While implementing WSN-based monitoring systems, there are three important issues to be considered. At first, we should consider a node failure detection method to provide continuous monitoring. Secondly, because sensor nodes use limited battery power, we need an efficient data filtering method to reduce energy consumption. At last, we should consider a data filtering method for reducing processing overhead. The existing Kalman filtering scheme has good performance on data filtering, but it causes too much processing overhead for estimating sensed data. To solve this problem, we, in this paper, propose a new data filtering scheme based on statistical data analysis. First, the proposed scheme periodically aggregates nodes' survival massages to support node failure detection. Secondly, to reduce energy consumption, the proposed scheme sends the sample data including node survival massage and perform data filtering based on the messages. Finally, it analyzes the sample data to estimate filtering range at a server. As a result, each sensor node can use only a simple compare operation for filtering data. Through performance analysis, we show that the proposed scheme outperforms the Kalman filtering scheme in terms of the number of messages transmission.
机译:近来,无线传感器网络(WSN)被积极地用于各种监视系统。在实施基于WSN的监视系统时,需要考虑三个重要问题。首先,我们应该考虑使用节点故障检测方法来提供连续监视。其次,由于传感器节点使用的电池电量有限,因此我们需要一种有效的数据过滤方法来减少能耗。最后,我们应该考虑一种减少处理开销的数据过滤方法。现有的卡尔曼滤波方案在数据滤波方面具有良好的性能,但是它会导致过多的处理开销,无法估计感测到的数据。为了解决这个问题,我们在本文中提出了一种基于统计数据分析的新数据过滤方案。首先,提出的方案定期聚合节点的生存消息,以支持节点故障检测。其次,为减少能耗,该方案发送了包含节点生存消息的样本数据,并基于消息进行数据过滤。最后,它分析样本数据以估计服务器上的过滤范围。结果,每个传感器节点只能使用简单的比较操作来过滤数据。通过性能分析,我们表明该方案在消息传输数量方面优于Kalman滤波方案。

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