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A Biologically-Inspired Clustering Algorithm Dependent on Spatial Data in Sensor Networks.

机译:一种基于传感器网络中空间数据的生物启发式聚类算法。

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摘要

Sensor networks in environmental monitoring applications aim to provide scientists with a useful spatio-temporal representation of the observed phenomena. This helps to deepen their understanding of the environmental signals that cover large geographic areas. In this paper, the spatial aspect of this data handling requirement is met by creating clusters in a sensor network based on the rate of change of an oceanographic signal with respect to space. Inspiration was drawn from quorum sensing, a biological process that is carried out within communities of bacterial cells. The paper demonstrates the control the user has over the sensitivity of the algorithm to the data variation and the energy consumption of the nodes while they run the algorithm.
机译:环境监测应用中的传感器网络旨在为科学家提供观察到的现象的有用的时空表示。这有助于加深他们对覆盖大地理区域的环境信号的理解。在本文中,通过基于海洋信号相对于空间的变化率在传感器网络中创建簇来满足此数据处理要求的空间方面。灵感来自群体感应,群体感应是在细菌细胞群落内进行的生物学过程。本文演示了用户在运行算法时可以控制算法对数据变化的敏感性和节点的能耗。

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