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首页> 外文期刊>Geoinformatica: An international journal of advances of computer science for geographic >Qualitative change detection using sensor networks based on connectivity information
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Qualitative change detection using sensor networks based on connectivity information

机译:使用基于连接信息的传感器网络进行质量变化检测

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摘要

The research reported in this paper uses wireless sensor networks to provide salient information about spatially distributed dynamic fields, such as regional variations in temperature or concentration of a toxic gas. The focus is on deriving qualitative descriptions of salient changes to areas of high-activity that occur during the temporal evolution of the field. The changes reported include region merging or splitting, and hole formation or elimination. Such changes are formally characterized, and a distributed qualitative change reporting (QCR) approach is developed that detects the qualitative changes simply based on the connectivity between the sensor nodes without location information. The efficiency of the QCR approach is investigated using simulation experiments. The results show that the communication cost of the QCR approach in monitoring large-scale phenomena is an order of magnitude lower than that using the standard boundary-based data collection approach, where each node is assumed to have its location information.
机译:本文报道的研究使用无线传感器网络提供有关空间分布动态场的重要信息,例如温度或有毒气体浓度的区域变化。重点是对在田间时间演变过程中发生的高活性区域的显着变化进行定性描述。报告的变化包括区域合并或分裂,以及孔形成或消除。正式描述了此类变化,并开发了一种分布式定性变化报告(QCR)方法,该方法可以简单地基于传感器节点之间的连通性来检测定性变化,而无需位置信息。使用仿真实验研究了QCR方法的效率。结果表明,QCR方法用于监视大规模现象的通信成本比使用基于标准边界的数据收集方法(假定每个节点都有其位置信息)的通信成本低一个数量级。

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