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Improvement of Coding for Solar Radiation Forecasting in Dili Timor Leste—A WRF Case Study

机译:帝力帝汶举行的太阳辐射预测编码的改进 - 一种WRF案例研究

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This paper investigates the accuracy of weather research and forecasting by improving coding for solar radiation forecasting for location in Dili Timor Leste. Weather Research and Forecasting (WRF) model version 3.9.1 is used in this study for improvement purposes. The shortwave coding of WRF is used to improve in order to decrease error simulation. The importance of improving WRF coding at a specific region will reduce the bias and root mean square root when comparing to the observed data. This study uses high resolution based on the WRF modeling to stabilize the performance of forecasting. The decrease in error performance will be expected to enhance the value of renewable energy. The results show the root mean square error of the WRF default is 233 W/m~(2) higher compared to 205 W/m~(2) from the WRF improvement model. In addition, the Mean Bias Error (MBE) of the WRF default is obtained value 0.06 higher than 0.03 from the WRF improvement in rainy days. Meanwhile, on sunny days, the performance Root Mean Square Error (RMSE) of WRF default is 327 W/m~(2) higher than 223 W/m~(2) from the WRF improvement. The MBE of WRF improvement obtained 0.13 lower compared to 0.21 of WRF default coding. Finally, this study concludes that improving the shortwave code under the WRF model can decrease the error performance of the WRF simulation for local weather forecasting .
机译:本文通过改善Diri Timor Leste中的地理辐射预测的编码来研究天气研究和预测的准确性。天气研究和预测(WRF)模型3.9.1用于本研究以提高目的。 WRF的短波编码用于改进以降低误差仿真。在与观察到的数据相比,改善特定区域在特定区域的WRF编码的重要性将减少偏置和均方根根。本研究采用了基于WRF造型的高分辨率,以稳定预测的性能。预期误差性能的减少将增强可再生能源的价值。结果表明,来自WRF改进模型的205W / m〜(2)相比,WRF默认的根均方误差为233W / m〜(2)。此外,WRF默认的平均偏置误差(MBE)获得0.06的值高于WRF在雨天的WRF改善0.03。同时,在阳光灿烂的日子,WRF默认的性能根均方误差(RMSE)为327 W / m〜(2)高于WRF改进的223 W / m〜(2)。与WRF默认编码的0.21相比,WRF改善的MBE获得0.13。最后,本研究得出结论,在WRF模型下改进短波代码可以降低WRF仿真对当地天气预报的错误性能。

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