Unsupervised feature selection algorithms for wireless sensor networks

C. Alippi, G. Baroni, A. Bersani, M. Roveri
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引用次数: 3

Abstract

A wireless sensor network (WSN) is a distributed measurement system deployed over a geographical area to acquire physical information which, depending on the nature of the monitoring phenomenon, can be spatially correlated in space and time. Spatial correlation, to be intended here at different levels, can be exploited to reduce the communication bandwidth, implement articulated sensing and carry out energy saving policies. The paper aims at investigating unsupervised feature selection algorithms and how they can be used to exploit spatial correlation in WSNs. The interest is due to the fact that generation of a reduced set of features (i.e., aggregated data) has a positive effect on optimal energy management, hierarchical decision making and performance. Six algorithms have been critically discussed and contrasted both at theoretical and experimental levels.
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无线传感器网络的无监督特征选择算法
无线传感器网络(WSN)是部署在地理区域上的分布式测量系统,用于获取物理信息,根据监测现象的性质,这些物理信息在空间和时间上可以是空间相关的。空间相关性,在不同的层次上,可以用来减少通信带宽,实现铰接传感和执行节能政策。本文旨在研究无监督特征选择算法,以及如何利用它们来利用无线传感器网络中的空间相关性。其兴趣在于生成一组简化的特征(即聚合数据)对优化能源管理、分层决策和性能具有积极影响。在理论和实验层面对六种算法进行了批判性的讨论和对比。
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