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首页> 外文期刊>IEEE Transactions on Geoscience and Remote Sensing >A procedure for the detection and removal of cloud shadow from AVHRR data over land
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A procedure for the detection and removal of cloud shadow from AVHRR data over land

机译:从陆地上的AVHRR数据中检测和去除云影的过程

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摘要

Although the accurate detection of cloud shadow in AVHRR scenes is important for many atmospheric and terrestrial applications, relatively little work in this area has appeared in the literature. This paper presents a new multispectral algorithm for cloud shadow detection and removal in daytime AVHRR scenes over land. It uses a combination of geometric and optical constraints, derived from the pixel-by-pixel cross-track geometry of the scene and image analysis methods to detect cloud shadow. The procedure works well in tropical and midlatitude regions under varying atmospheric conditions (wet-dry) and with different types of terrain. Results also show that underdetected cloud shadow ran produce errors of 30-40% in observed reflectances for affected pixels. Moreover, radiative transfer calculations show that the effects of cloud shadow are comparable to or exceed those of aerosol contamination for affected pixels. The procedure is computationally efficient and hence could be used to produce improved weather forecast, land cover, and land analysis products. The method is not intended for use under conditions of poor solar illumination and/or poor viewing geometry.
机译:尽管准确地检测AVHRR场景中的云影对于许多大气和地面应用都很重要,但文献中在这一领域的工作很少。本文提出了一种新的多光谱算法,用于在陆地上的白天AVHRR场景中进行云影检测和去除。它结合了几何约束和光学约束,这些约束是从场景的逐像素交叉跟踪几何和图像分析方法派生而来的,以检测云影。该程序在热带地区和中纬度地区在变化的大气条件(干湿)和不同类型的地形下均能很好地工作。结果还表明,对于受影响的像素,未检测到的云阴影在观察到的反射率中会产生30-40%的误差。此外,辐射传递计算表明,云影的影响与受影响像素的气溶胶污染相当或超过。该过程在计算上是有效的,因此可用于生成改进的天气预报,土地覆盖和土地分析产品。该方法不适合在太阳光照差和/或观察几何形状差的条件下使用。

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