无线传感器网络数据约简的数据聚类技术

M. K. Alam, A. Aziz, S. A. Latif, A. Awang
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引用次数: 5

摘要

在无线传感器网络(wsn)中,通常在现场部署大量传感器节点以提供长期监测设施。随着时间的推移,这些传感器节点通常会收集大量数据。由于传感器节点的能量限制,将海量数据从传感器节点传输到汇聚节点给网络带来了很大的挑战。因此,为设计有效的无线传感器网络数据聚类技术,人们进行了大量的研究工作。这些技术的主要目的是在保留其基本属性的同时减少网络上的数据量。本文旨在开发一种在簇头(CH)上基于直方图的数据聚类(HDC)技术,用于网络内数据缩减。HDC将同构数据分组,然后选择每个集群的中心值(而不是所有数据点)进行网内数据约简。对真实传感器数据的仿真表明,所提出的HDC可以有效地减少大量冗余数据,并且优于现有技术。
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Data Clustering Technique for In-Network Data Reduction in Wireless Sensor Network
In wireless sensor networks (WSNs), plenty of sensor nodes are typically deployed in the field to provide a long-term monitoring facility. These sensor nodes are usually collect a huge amount of data over time. Transmitting the huge data from the sensor nodes to a sink introduces a big challenge to the network due to energy constraint of the sensor nodes. Therefore, many research efforts have been carried out so far to design efficient data clustering techniques for WSNs. The main purpose of these techniques is to reduce the amount of data over the network while retaining their fundamental properties. This paper aims to develop a Histogram-based Data Clustering (HDC) technique at the cluster-head (CH) for in-network data reduction. The HDC groups the homogeneous data into clusters and then performs in-network data reduction by selecting the central values (instead of all data points) of each cluster. Simulations on real-world sensor data show that the proposed HDC can effectively reduce a significant amount of redundant data and outperform existing techniques.
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