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Estimation of Rainwater Quality Using GPS-derived Atmospheric Propagation Delay and Meteorological Data

机译:利用GPS大气传播延迟和气象数据估算雨水质量

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We investigated GPS-derived atmospheric propagation delays and meteorological data for estimating rainwater quality by creating a regression model using the combinatorial group method of the datahandling algorithm (COMBI GMDH). The dependent variable was the daily wet deposition, while the independent variables were zenith hydrostatic delay, zenith wet delay, daily rainfall, and daily average wind speed. The model had a coefficient of determination (R-2) of 0.70 and a correlation coefficient of 0.84. The mean absolute error (MAE) was 30.20, mu mol/m(2)-day and the root mean square error (RMSE) was 40.94 mu mol/m(2)-day. Accuracy testing to validate the model revealed an R-2 of 0.95 with a correlation coefficient of 0.98. The MAE was 12.14 mu mol/m(2)-day and the RMSE 15.35 mu mol/m(2)-day. Rainwater quality could be estimated using GPS-derived atmospheric propagation delay (APD) and meteorological data.
机译:我们通过使用数据处理算法(COMBI GMDH)的组合组方法创建回归模型,研究了GPS衍生的大气传播延迟和气象数据,以估算雨水质量。因变量是每日湿沉降,而自变量是天顶静水延迟,天顶湿延迟,每日降雨量和每日平均风速。该模型的确定系数(R-2)为0.70,相关系数为0.84。平均绝对误差(MAE)为30.20,μmol / m(2)-天,均方根误差(RMSE)为40.94μmol / m(2)-天。验证模型的准确性测试显示R-2为0.95,相关系数为0.98。 MAE为12.14μmol/ m(2)-天,而RMSE为15.35μmol/ m(2)-天。可以使用GPS衍生的大气传播延迟(APD)和气象数据来估算雨水质量。

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