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AFLCH: Self-adaptive unequal fuzzy based clustering of heterogeneous sensors in wireless sensor networks

机译:AFLCH:无线传感器网络中基于异构传感器的自适应不等式模糊聚类

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In this study, an adaptive fuzzy logic based algorithm for clustering heterogeneous sensors is proposed (AFLCH) which considers the environmental conditions of each sensor to select the best candidates as cluster centers. The proposed method uses three different clustering algorithms, different clustering parameters and adaptive threshold in order to control the number of total messages inside the network to increase the life of the sensors as well as the life of the network. AFLCH is compared to other methods using criteria such as the first node dies (FND), total residual energy (TRE), half node die (HND), the total number of the dead sensors and the last sensor dies (LND). The results indicate that AFLCH is able to control more energy and also increase network lifetime compared to other methods by decreasing the number of received and sent messages.
机译:在这项研究中,提出了一种基于自适应模糊逻辑的异构传感器聚类算法(AFLCH),该算法考虑了每个传感器的环境条件来选择最佳候选者作为聚类中心。所提出的方法使用三种不同的聚类算法,不同的聚类参数和自适应阈值,以控制网络内部的总消息数,以增加传感器的寿命以及网络的寿命。使用标准将AFLCH与其他方法进行比较,例如第一节点裸片(FND),总剩余能量(TRE),半节点裸片(HND),失效传感器的总数和最后一个传感器裸片(LND)。结果表明,与其他方法相比,AFLCH可以控制更多的能量,并且可以通过减少接收和发送的消息数来延长网络寿命。

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