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A water pollution source localization method in three-dimensional space using sensor networks

机译:一种使用传感器网络三维空间中的水污染源定位方法

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Most existing water pollution source localization methods via sensor networks focus on two-dimensional pollution source. In this paper a three-dimensional water pollution source localization problem is discussed, and the spatial-temporal Unscented Kalman Filter(UKF) based on concentration samples in time and space is applied to solve the problem. In the simulation part, the performances of the spatial-temporal UKF and the temporal UKF are compared. The simulation results show that the localization based on spatial-temporal UKF performs better and has a higher stability, although the localization results of the methods are affected by the number of sensor nodes.
机译:大多数现有的水污染源定位方法通过传感器网络专注于二维污染源。本文讨论了三维水污染源定位问题,并且基于时间和空间的浓度样品基于浓度样品的空间临时无容的卡尔曼滤波器(UKF)来解决问题。在模拟部分中,比较空间 - 时间UKF和时间UKF的性能。仿真结果表明,基于空间 - 时间UKF的定位更好地执行且具有更高的稳定性,尽管方法的定位结果受传感器节点的数量的影响。

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