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Compressed Data-Gathering Method based on Spatiotemporal Correlation Clustering in Wireless Sensor Networks

机译:无线传感器网络中基于时空相关聚类的压缩数据收集方法

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To solve the problem of high energy consumption in traditional data-gathering protocols and to balance the network load, a spatiotemporal correlation-based clustering method for compressive data gathering (SCCM-CDG) is proposed. First, we present a mathematical model to measure the spatiotemporal correlation of neighborhood nodes. Second, a spatiotemporal correlation-based clustering method (SCCM) is proposed and then applied to the data-gathering protocol. Sensor nodes within a cluster send a small number of linear projections to cluster heads using compressive sensing theory, and then cluster heads send sample data along the shortest square distance spanning tree among cluster heads and the sink. Results of the simulation and experiment verify the accuracy of the SCCM algorithm, revealing that the SCCM-CDG algorithm can substantially reduce energy consumption, prolong network lifetime, and promote improvements in data recovery at the sink compared with existing compressive sensing-based data-gathering schemes.
机译:为了解决传统数据收集协议中的高能耗问题并平衡网络负载,提出了一种基于时空相关性的压缩数据收集聚类方法(SCCM-CDG)。首先,我们提出一个数学模型来测量邻域节点的时空相关性。其次,提出了一种基于时空相关的聚类方法(SCCM),并将其应用于数据收集协议。群集中的传感器节点使用压缩感测理论将少量线性投影发送到群集头,然后群集头沿着群集头和接收器之间的最短平方距离生成树发送样本数据。仿真和实验结果验证了SCCM算法的准确性,表明与现有的基于压缩感测的数据收集相比,SCCM-CDG算法可大幅降低能耗,延长网络寿命并促进接收器数据恢复的改善。计划。

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