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Detection of cumulus cloud fields in satellite imagery

机译:卫星图像中积云的检测

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Boundary layer cumulus clouds are hard to detect in satellite imagery, especially for GOES imagery due to the coarse resolution of the IR channels. Two different approaches for the detection cumulus clouds in GOES satellite imagery are discussed and intercompared. The first step, structural thresholding, uses the morphology of cumulus cloud fields for detection. The second type, uses 1) classifiers based on texture and spectral, 2) edge detection and spectral, and 3) purely spectral features. For five selected scenes, cumulus cloud masks are created using these various methods and are compared against the expert-labeled masks. The structural thresholding method has the highest percentage of correct classification, followed by classifier based on Laplacian edge detection features. The classification time is lowest for the structural thresholding method, followed by classifiers based on spectral, edge detection, textural features. The structural thresholding method also is capable of detecting individual cumulus clouds within cloud fields. For the five scenes investigated, the average percentage of correct labeling of cumulus clouds by the structural thresholding method is 86 percent.
机译:边界层积云很难在卫星图像中检测,特别是由于IR通道的粗糙分辨率导致的图像。讨论了卫星图像中的检测积云云的两种不同方法。第一步,结构阈值化,使用积云云场的形态进行检测。基于纹理和光谱,2)边缘检测和频谱的第二种类型,使用1)分类器,以及3)纯度谱特征。对于五个选定的场景,使用这些方法创建庞大云掩模,并与专家标记的掩码进行比较。结构阈值化方法具有最高百分比的正确分类,其次是基于拉普拉斯边缘检测特征的分类器。结构阈值方法的分类时间最低,后跟基于光谱,边缘检测,纹理特征的分类器。结构阈值处理方法还能够检测云场内的各个云云。对于调查的五场场景,结构阈值方法的正确标记的平均百分比为86%。

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