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首页> 外文期刊>Atmospheric Measurement Techniques >Cloud screening and quality control algorithm for star photometer data: assessment with lidar measurements and with all-sky images
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Cloud screening and quality control algorithm for star photometer data: assessment with lidar measurements and with all-sky images

机译:恒星光度计数据的云筛查和质量控制算法:利用激光雷达测量和全天空图像进行评估

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This paper presents the development and set up of a cloud screening and data quality control algorithm for a star photometer based on CCD camera as detector. These algorithms are necessary for passive remote sensing techniques to retrieve the columnar aerosol optical depth, (delta)_(Ae)(lambda), and precipitable water vapor content, W, at nighttime. This cloud screening procedure consists of calculating moving averages of (delta)_(Ae)(lambda) and W under different time-windows combined with a procedure for detecting outliers. Additionally, to avoid undesirable (delta)_(Ae)(lambda) and W fluctuations caused by the atmospheric turbulence, the data are averaged on 30 min. The algorithm is applied to the star photometer deployed in the city of Granada (37.16 deg N, 3.60 deg W, 680 ma.s.l.; South-East of Spain) for the measurements acquired between March 2007 and September 2009. The algorithm is evaluated with correlative measurements registered by a lidar system and also with all-sky images obtained at the sunset and sunrise of the previous and following days. Promising results are obtained detecting cloud-affected data. Additionally, the cloud screening algorithm has been evaluated under different aerosol conditions including Saharan dust intrusion, biomass burning and pollution events.
机译:本文提出了一种基于CCD摄像机作为检测器的星光光度计云筛选和数据质量控制算法的开发与建立。这些算法对于被动遥感技术在夜间检索柱状气溶胶光学深度δ_(Ae)(λ)和可沉淀的水蒸气含量W是必需的。该云筛选过程包括计算在不同时间窗口下的δ_(Ae)λ和W的移动平均值,以及检测异常值的过程。另外,为了避免由大气湍流引起的不希望的δ_(Ae)λ和W波动,将数据平均30分钟。该算法应用于部署在格​​拉纳达市(北纬37.16度,西经3.60度,680 ma.sl;西班牙东南部)的恒星光度计,用于2007年3月至2009年9月之间获得的测量结果。激光雷达系统记录的相关测量值,以及在前几天和后几天的日落和日出时获得的全天图像。通过检测受云影响的数据可以获得有希望的结果。此外,已经在包括撒哈拉粉尘入侵,生物质燃烧和污染事件在内的不同气溶胶条件下对云筛查算法进行了评估。

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