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Fuzzy based novel clustering technique by exploiting spatial correlation in wireless sensor network

机译:无线传感器网络中利用空间相关性的基于模糊的新型聚类技术

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In wireless sensor networks, the event is detected by multiple closely placed sensor nodes. The spatial relationship can be utilized productively in order to conserve the power banks by halting some sensors to transmit the same information. This paper deals with the segregation of network into the correlated clusters based on correlation value. On the one hand, unlike existing clustering techniques relying on residual energy and distance to select cluster heads, this paper defines more realistic three-dimensional correlation model where cluster heads are elected on the basis of the correlation value, residual energy, and required energy. On the other hand, other than developing theoretical three-dimensional correlation model, a fuzzy-based clustering technique is also proposed to further implement the developed correlation model, where the nodes with similar information are gathered in such a way that data from a solitary node suffices the fidelity constraint to the sink. The effects of node density, sensing range, and the threshold value is studied in detail. Also, the correlation model is clubbed with clustering technique to further take the advantages of exploiting spatial correlation at the network layer. The results have revealed that proposed approach extend network lifetime by 30, 35 and 78% as compared to the FBUC, CHEF, and LEACH respectively. The results of clustering using correlation model show that the number of participating nodes get reduced by 33% when correlation threshold value is decreased from 0.8 to 0.6. Also, it is found that network lifetime gets improved by decreasing the correlation threshold value.[GRAPHICS].
机译:在无线传感器网络中,事件是由多个紧密放置的传感器节点检测到的。通过停止一些传感器以传输相同的信息,可以有效地利用空间关系以节省电源。本文基于相关值将网络隔离为相关的簇。一方面,与现有的依靠剩余能量和距离来选择聚类头的聚类技术不同,本文定义了更现实的三维相关模型,其中基于相关值,剩余能量和所需能量选择了聚类头。另一方面,除了开发理论上的三维相关模型外,还提出了一种基于模糊的聚类技术以进一步实现所开发的相关模型,在该模型中,具有相似信息的节点被收集为来自孤立节点的数据对信宿的逼真度约束就足够了。详细研究了节点密度,感应范围和阈值的影响。而且,相关模型与聚类技术结合在一起,以进一步利用在网络层利用空间相关的优势。结果表明,与FBUC,CHEF和LEACH相比,该方法可将网络寿命分别延长30%,35%和78%。使用相关模型进行聚类的结果表明,当相关阈值从0.8降低到0.6时,参与节点的数量减少了33%。此外,还发现通过降低相关阈值可以提高网络寿命。[GRAPHICS]。

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