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首页> 外文期刊>Geomatics,Natural Hazards & Risk >A texton-based cloud detection algorithm for MSG-SEVIRI multispectral images
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A texton-based cloud detection algorithm for MSG-SEVIRI multispectral images

机译:基于Texton的MSG-SEVIRI多光谱图像云检测算法

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摘要

A new statistical texton-based method for cloud detection through satellite image analysis is presented. The ultimate goal is to improve the performance of remote sensing techniques used to support the observations of active volcanic processes. The proposed method is a supervised classifier that exploits radiance spatial correlation in satellite images using a statistical descriptor of texture called texton. Cloudy and clear-sky models are determined using cluster analysis over the image features. The pixels to be classified are compared with the estimated models and assigned to the closest model. The cloud detection algorithm has been tested on a data set of MSG-SEVIRI images acquired during 2008 (about 35,000 images) of the Sicily area. Results show that the texton-based approach is robust in terms of percentage of correctly classified pixels, reaching more than 85% of success in both daytime and nighttime images.
机译:提出了一种新的基于统计texton的通过卫星图像分析进行云探测的方法。最终目标是提高用于支持活动火山过程观测的遥感技术的性能。所提出的方法是一种监督分类器,它使用称为纹理的纹理统计描述符来利用卫星图像中的辐射空间相关性。使用对图像特征的聚类分析确定多云和晴空模型。将要分类的像素与估计的模型进行比较,然后分配给最接近的模型。已经对西西里岛地区在2008年期间获取的MSG-SEVIRI图像(约35,000张图像)的数据集进行了测试。结果表明,基于Texton的方法在正确分类的像素百分比方面非常可靠,在白天和夜间的图像中,成功率都超过了85%。

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