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首页> 外文期刊>Atmospheric Measurement Techniques >A practical information-centered technique to remove a priori information from lidar optimal-estimation-method retrievals
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A practical information-centered technique to remove a priori information from lidar optimal-estimation-method retrievals

机译:一种实用的信息中心技术,用于从LIDAR最佳估计方法检索中删除先验信息

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Lidar retrievals of atmospheric temperature and water vapor mixing ratio profiles using the optimal estimation method (OEM) typically use a retrieval grid with a number of points larger than the number of pieces of independent information obtainable from the measurements. Consequently, retrieved geophysical quantities contain some information from their respective a priori values or profiles, which can affect the results in the higher altitudes of the temperature and water vapor profiles due to decreasing signal-to-noise ratios. The extent of this influence can be estimated using the retrieval's averaging kernels. The removal of formal a priori information from the retrieved profiles in the regions of prevailing a priori effects is desirable, particularly when these greatest heights are of interest for scientific studies. We demonstrate here that removal of a priori information from OEM retrievals is possible by repeating the retrieval on a coarser grid where the retrieval is stable even without the use of formal prior information. The averaging kernels of the fine-grid OEM retrieval are used to optimize the coarse retrieval grid. We demonstrate the adequacy of this method for the case of a large power-aperture Rayleigh scatter lidar nighttime temperature retrieval and for a Raman scatter lidar water vapor mixing ratio retrieval during both day and night.
机译:使用最佳估计方法(OEM)的恒温和水蒸气混合比曲线的LIDAR检索通常使用检索网格,其数量大于可从测量获得的独立信息的数量。因此,检索的地球物理量包含来自它们各自的优先价值或轮廓的一些信息,这可能会影响由于信号 - 噪声比率降低而导致的温度和水蒸气分布的较高高度的结果。可以使用检索的平均内核来估计这种影响的程度。需要从普遍效果的所检测的曲线中删除正式的先验信息是理想的,特别是当这些最大的高度对科学研究感兴趣时。我们在此证明,通过在不使用正式的先前信息的情况下重复检索在粗糙网格上,可以通过重复检索来移除来自OEM检索的先验信息。微电网OEM检索的平均内核用于优化粗略检索网格。我们展示了这种方法的充分性,对于大型电力 - 孔径瑞利散射LIDAR夜间温度检索以及用于在白天和夜晚期间的拉曼散射LIDAR水蒸气混合比。

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