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An Improved Tomography Approach Based on Adaptive Smoothing and Ground Meteorological Observations

机译:基于自适应平滑和地面气象观测的改进层析成像方法

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Using the Global Navigation Satellite System (GNSS) to sense three-dimensional water vapor (WV) has been intensively investigated. However, this technique still heavily relies on the a priori information. In this study, we propose an improved tomography approach based on adaptive Laplacian smoothing (ALS) and ground meteorological observations. By using the proposed approach, the troposphere tomography is less dependent on a priori information and the ALS constraints match better with the actual situation than the constant constraints. Tomography experiments in Hong Kong during a heavy rainy period and a rainless period show that the ALS method gets superior results compared with the constant Laplacian smoothing (CLS) method. By validation with radiosonde and European Centre for Medium-Range Weather Forecasts (ECMWF) data, we found that the introduction of ground meteorological observations into tomography can solve the perennial problem of resolving the wet refractivity in the lower troposphere and thus significantly improve the tomography results. However, bad data quality and incompatibility of the ground meteorological observations may introduce errors into tomography results.
机译:已经广泛研究了使用全球导航卫星系统(GNSS)感测三维水蒸气(WV)。但是,该技术仍然严重依赖于先验信息。在这项研究中,我们提出了一种基于自适应拉普拉斯平滑(ALS)和地面气象观测的改进层析成像方法。通过使用所提出的方法,对流层层析成像对先验信息的依赖性较小,并且ALS约束与恒定约束相比更符合实际情况。香港在多雨和无雨期间的层析成像实验表明,相比于恒定拉普拉斯平滑法(CLS),ALS方法获得了更好的结果。通过无线电探空仪和欧洲中距离天气预报中心(ECMWF)数据的验证,我们发现,将层析气象观测引入层析成像中可以解决解决对流层下部湿折射率的长期问题,从而显着改善层析成像结果。但是,不良的数据质量和地面气象观测值的不兼容性可能会在层析成像结果中引入错误。

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