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Quality Control for Crowdsourced Personal Weather Stations to Enable Operational Rainfall Monitoring

机译:众包装个人气象站的质量控制,以实现运营降雨监测

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摘要

Automatic personal weather stations owned and maintained by weather enthusiasts provide spatially dense in situ measurements that are often collected and visualized in real time on online weather platforms. While the spatial and temporal resolution of this data source is high, its rainfall observations are prone to typical errors, currently preventing its large-scale, real-time application. This study proposes a quality control methodology consisting of four modules targeting these errors, applicable in real time without requiring auxiliary measurements. The quality control improves the overall accuracy of a year of hourly rainfall depths in Amsterdam to a bias of -11.3% (0.2% when a proxy for overall rainfall underestimation by personal weather stations is used), a Pearson correlation coefficient of 0.82, and a coefficient of variation of 2.70, while maintaining 88% of the original data set. Application on a national scale (average 1 station per similar to 10 km(2)) yields high-resolution nationwide rainfall maps, hence showing the great potential of personal weather stations for complementing existing often sparse traditional rain gauge networks.
机译:天气爱好者拥有和维护的自动个人气象站在出于在线天气平台上实时收集和可视化的原位测量提供空间密集。虽然这种数据源的空间和时间分辨率很高,但其降雨观测易于典型的错误,目前防止其大规模的实时应用。本研究提出了一种质量控制方法,其由针对这些误差的四个模块组成,实时适用而不需要辅助测量。质量控制提高了阿姆斯特丹每小时降雨深度的整体准确性,偏差为-11.3%(当使用个人气象站的整体降雨的代理时,0.2%),Pearson相关系数为0.82,以及变异系数2.70,同时保持88%的原始数据集。在全国范围内的申请(平均1站,每种类似10公里(2))产生高分辨率的全国性降雨地图,因此展示了个人气象站的巨大潜力,用于补充现有的洪水传统的雨量范围网络。

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