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Sensor Placement and Measurement of Wind for Water Quality Studies in Urban Reservoirs

机译:用于城市水库水质研究的传感器位置和风的测量

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We study the water quality in an urban district, where the surface wind distribution is an essential input but undergoes high spatial and temporal variations due to the impact of surrounding buildings. In this work, we develop an optimal sensor placement scheme to measure the wind distribution over a large urban reservoir using a limited number of wind sensors. Unlike existing solutions that assume Gaussian process of target phenomena, this study measures the wind that inherently exhibits strong non-Gaussian yearly distribution. By leveraging the local monsoon characteristics of wind, we segment a year into different monsoon seasons that follow a unique distribution respectively. We also use computational fluid dynamics to learn the spatial correlation of wind. The output of sensor placement is a set of the most informative locations to deploy the wind sensors, based on the readings of which we can accurately predict the wind over the entire reservoir in real time. Ten wind sensors are deployed. The in-field measurement results of more than 3 months suggest that the proposed sensor placement and spatial prediction scheme provides accurate wind measurement that outperforms the state-of-the-art Gaussian model based on interpolation-based approaches.
机译:我们研究了市区的水质,在该地区,地表风的分布是必不可少的输入,但由于周围建筑物的影响,其时空变化很大。在这项工作中,我们开发了一种最佳的传感器布置方案,以使用数量有限的风传感器来测量大型城市水库中的风分布。与假定目标现象为高斯过程的现有解决方案不同,本研究测量的是固有表现出强非高斯年度分布的风。通过利用当地的季风特性,我们将一年分为不同的季风季节,分别遵循独特的分布。我们还使用计算流体动力学来了解风的空间相关性。传感器放置的输出是部署风传感器的一组最有用的位置,根据这些读数,我们可以实时准确地预测整个水库中的风。部署了十个风传感器。超过3个月的现场测量结果表明,所提出的传感器放置和空间预测方案可提供精确的测风,其性能优于基于插值方法的最新高斯模型。

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