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A novel approach for the extraction of cloud motion vectors using airglow imager measurements

机译:利用防空成像仪测量提取云运动向量的新方法

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The paper explores the possibility of implementing an advanced photogrammetric technique, generally employed for satellite measurements, on airglow imager, a ground-based remote sensing instrument primarily used for upper atmospheric studies, measurements of clouds for the extraction of cloud motion vectors (CMVs). The major steps involved in the algorithm remain the same, including image processing for better visualization of target elements and noise removal, identification of target cloud, setting a proper search window for target cloud tracking, estimation of cloud height, and employing 2-D cross-correlation to estimate the CMVs. Nevertheless, the implementation strategy at each step differs from that of satellite, mainly to suit airglow imager measurements. For instance, climatology of horizontal winds at the measured site has been used to fix the search window for target cloud tracking. The cloud height is estimated very accurately, as required by the algorithm, using simultaneous collocated lidar measurements. High-resolution, both in space and time (4 min), cloud imageries are employed to minimize the errors in retrieved CMVs. The derived winds are evaluated against MST radar-derived winds by considering it as a reference. A very good correspondence is seen between these two wind measurements, both showing similar wind variation. The agreement is also found to be good in both the zonal and meridional wind velocities with RMSEs ?1. Finally, the strengths and limitations of the algorithm are discussed, with possible solutions, wherever required.
机译:本文探讨了在Airglow Imager上实现了一般用于卫星测量的先进摄影测量技术的可能性,该遥感仪主要用于上大气研究的基础遥感仪器,用于提取云运动向量(CMV)的云的测量。算法中涉及的主要步骤保持相同,包括用于更好地可视化目标元素和噪声删除的图像处理,目标云的识别,为目标云跟踪,云高度估计和采用2-D交叉来设置适当的搜索窗口,并采用2-D交叉 - 估计CMV的胶合。尽管如此,每个步骤的实施策略与卫星的实施策略不同,主要是为了适合防空成像仪测量。例如,测量网站上的水平风的气候学已用于修复目标云跟踪的搜索窗口。根据算法的要求,使用同时构建的激光雷达测量,云高度非常准确地估计。空间和时间(4分钟)的高分辨率,都采用云成像,以最小化检索到的CMV中的错误。通过将其视为参考,通过考虑MST雷达导出的风来评估衍生的风。在这两个风测量之间看到了非常好的对应关系,两者都显示出类似的风变化。该协议也被发现在带有RMSES的区域和子午线和子午线的速度良好?1。最后,讨论了算法的强度和局限,在需要的情况下,可能的解决方案。

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