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Energy efficient spatiotemporal threshold level detection in large scale wireless sensor fields

机译:大规模无线传感器领域中的节能时空阈值水平检测

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摘要

A class of energy efficient schemes is proposed for detection and tracking of the boundaries of correlated spatial distributions, such as air pollution in large cities at a known threshold level, using large scale wireless sensor network. It is shown that without having the exact statistics of the signal, distributed collaborative space and time oriented filtering can be used to efficiently detect the boundary of the threshold level of a correlated spatial distribution over time. Collaborative signal processing is used to reduce the effect of noisy observations and distributed space and time domain filtering is applied for energy conservative threshold level tracking. It is shown that by using spatial and time oriented filtering, the operating mode of the wireless sensor network is shifted from communication dominant mode toward computation and sensing dominant mode, which significantly saves the in-network energy. The performance of the discussed approach for a few correlated random spatial distributions is evaluated using computer simulations.
机译:提出了一种节能方案,该方案使用大规模无线传感器网络来检测和跟踪相关空间分布的边界,例如在已知阈值水平的大城市中的空气污染。结果表明,在没有确切信号统计信息的情况下,可以使用分布式协作空间和面向时间的过滤来有效地检测随时间变化的相关空间分布的阈值水平的边界。协作信号处理用于减少噪声观测的影响,而分布式空间和时域滤波则用于能量保守阈值水平跟踪。结果表明,通过使用面向空间和时间的滤波,无线传感器网络的操作模式从通信主导模式转变为计算主导和传感主导模式,从而大大节省了网络内能量。使用计算机仿真评估了所讨论方法对一些相关随机空间分布的性能。

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