高密度无线传感器网络:一种新的聚类方法用于基于预测的监测

Pieter Beyens, A. Nowé, K. Steenhaut
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引用次数: 17

摘要

我们提出了一种新的基于集群的方法,该方法简化了由大量小节点组成的均匀高密度无线传感器网络的基于预测的监测。基于预测的监控可以通过减少通信来增加网络的自主生命周期。在我们的聚类方法中,簇头在时空上相互关联,并通过执行其预测模型来预测簇成员的测量值。路由仅由集群周边的网关节点完成,而位于集群头和它们的网关节点之间的非网关节点,只要它们的测量值满足它们的集群头的预测,就允许关闭它们的无线电通信。关闭无线电通信可节省大量能源,并可大大提高系统寿命。我们的主要贡献是对这种聚类方法的描述,而预测模型超出了本文的范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High-density wireless sensor networks: a new clustering approach for prediction-based monitoring
We propose a new cluster-based approach that simplifies prediction-based monitoring for homogeneous, high-density wireless sensor networks composed of a large number of small, power-restricted nodes. Prediction-based monitoring can increase the autonomous lifetime of the network by reducing communication. In our clustering approach, the cluster-heads spatio-temporally correlate and predict the measurements of the cluster-members by executing their prediction model. Routing is only done by the gateway nodes at the circumference of the clusters while the nongateway nodes, which are positioned between the cluster-heads and their gateway nodes, are allowed to turn off their radio communication as long as their measurements satisfy the predictions of their cluster-head. Turning off radio communication results in high energy savings and can greatly improve system lifetime. Our main contribution is the description of this clustering approach while the prediction models are beyond the scope of this paper.
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