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Improvements of One-dimensional Variational Assimilation Algorithm Based on Occultation Technique

机译:基于掩星技术的一维变分同化算法的改进

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摘要

Utilizing the occultation data observed by LEO (low earth orbit) satellites, we can invert the profiles of air pressure, water vapor, temperature of terrestrial atmosphere and so on, and they are the valuable data resources for studying the meteorology and atmospheric sciences. The assimilation techniques with the occultation data can effectively improve these profiles of meteorological parameters, thus they can improve the accuracy of current numerical weather forecasting. The greatest difficulty is the huge amount of calculation to enter into the meteorological operational processes for applying the parameter profiles observed by occultation with the method of variational assimilation. With the improvements of the function of one-dimensional variational assimilation and the new design for iterative process, the defects of repeated calculation of the large dimension matrix can be avoided, thereby improving the computational efficiency of variational assimilation. In the discussion of applicability, it is used as the true value of the vectors of the background field plus one white Gaussian noise to test the variational assimilation results on the occultation data of satellite CHAMP.
机译:利用低地球轨道(LEO)卫星观测到的掩星数据,我们可以反转气压,水蒸气,陆地大气温度等的概况,它们对于研究气象学和大气科学是有价值的数据资源。利用掩星数据同化技术可以有效地改善这些气象参数的分布,从而可以提高当前数值天气预报的准确性。最大的困难是进入气象操作过程的大量计算,以应用通过变分同化方法掩盖观测得到的参数剖面。随着一维变分同化函数的改进和迭代过程的新设计,可以避免大维矩阵重复计算的缺陷,从而提高了变分同化的计算效率。在适用性的讨论中,将其用作背景场向量的真实值加上一个白色高斯噪声,以测试卫星CHAMP掩星数据的变分同化结果。

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