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Distributed Clustering-Based Aggregation Algorithm for Spatial Correlated Sensor Networks

机译:基于分布聚类的空间相关传感器网络聚合算法

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摘要

In wireless sensor networks, it is already noted that nearby sensor nodes monitoring an environmental feature typically register similar values. This kind of data redundancy due to the spatial correlation between sensor observations inspires the research of in-network data aggregation. In this paper, an α -local spatial clustering algorithm for sensor networks is proposed. By measuring the spatial correlation between data sampled by different sensors, the algorithm constructs a dominating set as the sensor network backbone used to realize the data aggregation based on the information description/summarization performance of the dominators. In order to evaluate the performance of the algorithm a pattern recognition scenario over environmental data is presented. The evaluation shows that the resulting network achieved by our algorithm can provide environmental information at higher accuracy compared to other algorithms.
机译:在无线传感器网络中,已经注意到,监视环境特征的附近传感器节点通常会记录相似的值。由于传感器观测值之间存在空间相关性,这种数据冗余激发了网络内数据聚合的研究。提出了一种传感器网络的α局部空间聚类算法。通过测量不同传感器采样的数据之间的空间相关性,该算法根据控制因素的信息描述/汇总性能,构造了一个控制数据集作为传感器网络骨干,用于实现数据聚合。为了评估算法的性能,提出了一种基于环境数据的模式识别方案。评估表明,与其他算法相比,通过我们的算法获得的结果网络可以提供更高的精度的环境信息。

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