预测基于gps的PWV测量使用指数平滑

Shilpa Manandhar, Soumyabrata Dev, Y. Lee, Stefan Winkler
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引用次数: 8

摘要

全球定位系统(GPS)衍生的可降水量(PWV)在大气遥感中被广泛应用于降雨预测等应用。许多应用程序需要具有良好分辨率的PWV值,并且没有任何缺失值。在本文中,我们实现了一种指数平滑方法来准确地预测缺失的PWV值。该方法在捕获PWV值的季节变化方面表现出良好的性能。我们报告了15分钟前置时间的均方根误差为0.1毫米,使用过去30小时的数据,每隔5分钟测量一次。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Predicting GPS-based PWV Measurements Using Exponential Smoothing
Global Positioning System (GPS) derived precipitable water vapor (PWV) is extensively being used in atmospheric remote sensing for applications like rainfall prediction. Many applications require PWV values with good resolution and without any missing values. In this paper, we implement an exponential smoothing method to accurately predict the missing PWV values. The method shows good performance in terms of capturing the seasonal variability of PWV values. We report a root mean square error of 0.1 mm for a lead time of 15 minutes, using past data of 30 hours measured at 5-minute intervals.
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