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An Efficient Approach to Remove Thick Cloud in VNIR Bands of Multi-Temporal Remote Sensing Images

机译:在多时间遥感图像的VNIR频段中删除厚云的有效方法

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摘要

Cloud-free remote sensing images are required for many applications, such as land cover classification, land surface temperature retrieval and agricultural-drought monitoring. Cloud cover in remote sensing images can be pervasive, dynamic and often unavoidable. Current techniques of cloud removal for the VNIR (visible and near-infrared) bands still encounters the problem of pixel values estimated for the cloudy area incomparable and inconsistent with the cloud-free region in the target image. In this paper, we proposed an efficient approach to remove thick clouds and their shadows in VNIR bands using multi-temporal images with good maintenance of DN (digital number) value consistency. We constructed the spectral similarity between the target image and reference one for DN value estimation of the cloudy pixels. The information reconstruction was done with 10 neighboring cloud-free pair-pixels with the highest similarity over a small window centering the cloudy pixel between target and reference images. Four Landsat5 TM images around Nanjing city of Jiangsu Province in Eastern China were used to validate the approach over four representative surface patterns (mountain, plain, water and city) for diverse sizes of cloud cover. Comparison with the conventional approaches indicates high accuracy of the approach in cloud removal for the VNIR bands. The approach was applied to the Landsat8 OLI (Operational Land Imager) image on 29 April 2016 in Nanjing area using two reference images. Very good consistency was achieved in the resulted images, which confirms that the proposed approach could be served as an alternative for cloud removal in the VNIR bands using multi-temporal images.
机译:许多应用需要无云遥感图像,例如土地覆盖分类,土地表面温度检索和农业干旱监测。遥感图像中的云盖可以普及,动态,通常是不可避免的。 VNIR(可见和近红外线)频带的云移除的当前技术仍然遇到对多云区域估计的像素值的问题,该区域是无与伦比的,并且与目标图像中的无云区域不一致。在本文中,我们提出了一种使用多时间图像在VNIR频段中删除厚云的有效方法,以及具有良好维护DN(数字数字)值一致性的VNIR频段。我们在目标图像之间构建了光谱相似性,并参考阴天像素的DN值估计。信息重建是用10个相邻的无云对像素完成的,其在居中目标和参考图像之间的阴天像素的小窗口上具有最高的相似性。中国东部江苏省南​​京市周围的四种Landsat5 TM图像用于验证超过四种代表性表面图案(山地,平原,水和城市)的方法,以实现多种云覆盖。与传统方法的比较表明VNIR频带的云移除中的方法的高精度。使用两个参考图像将该方法应用于2016年4月29日在2016年4月29日的Landsat8 Oli(运营陆地成像仪)图像。在所产生的图像中实现了非常好的一致性,这证实了所提出的方法可以用作使用多时间图像的VNIR频带中云移除的替代方法。

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