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Spin-up Time Research on the Weather Research and Forecasting Model for Atmospheric Delay Mitigations of Electromagnetic Waves

机译:电磁波大气延迟缓解天气研究和预报模型的加速时间研究

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摘要

Atmosphere causes distortions in the geometry and phases of synthetic aperture radar images denoted by the atmospheric phase screen (APS). Numerical weather models are beneficial in correcting these disturbances. After\udinitialization, the models need time to derive a physical valid state. This is called the spin-up time and it affects delay predictions. The positive impact of a 12-hour spin-up time on delay mitigation has not yet been reported and is the objective of this paper. Hence, four independent experiments are considered revealing the best accuracy in case of the 12-hour predictions and showing best consistency of spatial frequencies. First, global positioning system zenith path delay (ZPD) series are compared with model-predicted ZPD series, which reports a 28% reduction of the root mean squared error. Second, the absolute ranging technique as an application of the delay prediction reports a 21% standard deviation decrease of position estimates. Third, a comparison of spatial frequencies between APS predictions and interferograms shows a closer consistency by using a 12-hour rather than a 6-hour spin-up time. Fourth, the APS mitigation in interferograms as an application of the APS prediction is twice as good with respect to the 12-hour spin-up time than with the 6-hour spin-up time.
机译:大气导致合成孔径雷达图像的几何形状和相位失真,由大气相位屏(APS)表示。数值天气模型有助于纠正这些干扰。初始化后,模型需要时间来导出物理有效状态。这称为加速时间,它会影响延迟预测。尚未报道12小时加速启动对缓解延迟的积极影响,这是本文的目的。因此,考虑进行四个独立的实验,以揭示在进行12小时预测时的最佳准确性,并显示出空间频率的最佳一致性。首先,将全球定位系统天顶路径延迟(ZPD)系列与模型预测的ZPD系列进行比较,后者报告的均方根误差减少了28%。第二,绝对测距技术作为延迟预测的应用报告了位置估计值的标准偏差减少了21%。第三,通过使用12小时而不是6小时的加速时间,APS预测和干涉图之间的空间频率比较显示出更紧密的一致性。第四,应用APS预测后,干涉图中的APS缓解对于12小时加速时间是6小时加速时间的两倍。

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