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Smart Clustering for Multimodal WSNs

机译:用于多模式WSN的智能集群

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摘要

Wireless Sensor Network (WSN) is a network of portable and lightweight sensors used to monitor a specific field and report the data they detect wirelessly to a sink node responsible for the analysis and decision making. WSNs have limited power as well as resources. More advanced sensors known as "multimodal sensors" can report more than one feature, which requires even more efficient utilization of the power. Clustering lessens the amount of power lost in WSN. Many clustering algorithms have been proposed for WSNs. However, up to our knowledge, this is the first work that considers multimodal WSNs. In this paper, we propose new techniques for efficient clustering in Multimodal WSN. Through an extensive set of experiments, our proposed algorithms applied to Fuzzy C-Means and K-Means, which are not designed for WSN, have showed an out performance over LEACH-C, which is a clustering algorithm designed especially for WSN.
机译:无线传感器网络(WSN)是一种便携式轻便传感器网络,用于监视特定领域并将其无线检测到的数据报告给负责分析和决策的接收节点。 WSN具有有限的功能和资源。称为“多模式传感器”的更先进的传感器可以报告多个功能,这需要更有效地利用电源。群集减少了WSN中的功耗。已经为WSN提出了许多聚类算法。但是,据我们所知,这是考虑多模式WSN的第一项工作。在本文中,我们提出了用于多模式WSN中有效聚类的新技术。通过广泛的实验,我们针对非WSN设计的,应用于Fuzzy C-Means和K-Means的算法提出了优于LEACH-C的性能,LEACH-C是专门为WSN设计的聚类算法。

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