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Fuzzy clustering in radar sensor networks for target detection

机译:雷达传感器网络中的模糊聚类用于目标检测

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摘要

Fuzzy clustering has been an efficient tool for data science. In this paper, we present two fuzzy clustering schemes in radar sensor networks (RSN) data processing for target detection. We design cluster-head (CH) election for both intra-cluster single-hop and multi-hop data transmission on a basis of constant false alarm rate (CFAR) under fading environment. Small scale fading is considered in our fuzzy logic system (FLS) design (FLS with three-antecedents, F3) to compute the likelihood to be a CH for each radar sensor (RS) at the first stage. In case of single-hop routing, fuzzy c-means with singular value decomposition-QR (FCMSVDQR) approach is proposed to decide the final CH. As for multi-hop routing, firstly the RS with the highest FLS likelihood will be elected a CH. Secondly a graphical optimal routing selection (GORS) algorithm is applied for multi-hop data transmission. We also propose CFAR fusion approaches for both single-hop and multi-hop transmission at low SNR channel regime. Performances of our designs are compared with CHEF, a commonly adopted scheme, in terms of target detection and the lifetime of RSN. Numerical results show that F3&FCMSVDQR provides superior detection performances and the longest lifetime at large amount of residual alive RSs, while F3&GORS takes the second place in improving the detection performances at moderate-to-high SNRs, and has the same lowest power loss as CHEF&GORS at small amount of residual alive RSs. (C) 2016 Elsevier B.V. All rights reserved.
机译:模糊聚类一直是数据科学的有效工具。在本文中,我们提出了两种用于目标检测的雷达传感器网络(RSN)数据处理中的模糊聚类方案。我们在衰落环境下基于恒定虚警率(CFAR)设计用于集群内单跳和多跳数据传输的簇头(CH)选举。在我们的模糊逻辑系统(FLS)设计(具有三个先验的FLS,F3)中考虑了小规模衰落,以计算在第一阶段每个雷达传感器(RS)成为CH的可能性。在单跳路由的情况下,提出了具有奇异值分解-QR(FCMSVDQR)方法的模糊c均值来确定最终的CH。对于多跳路由,首先将将FLS可能性最高的RS选为CH。其次,将图形最优路由选择(GORS)算法应用于多跳数据传输。我们还针对低SNR信道体制下的单跳和多跳传输提出了CFAR融合方法。在目标检测和RSN寿命方面,我们的设计性能与常用方案CHEF进行了比较。数值结果表明,F3&FCMSVDQR在大量残留活动RS的情况下具有出色的检测性能和最长的使用寿命,而F3&GORS在改善中等至高SNR时的检测性能方面排名第二,并且与CHEF&GORS相比具有最低的功耗少量剩余的活动RS。 (C)2016 Elsevier B.V.保留所有权利。

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