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Comparison of feature based segmentation of full polarimetric SAR satellite sea ice images with manually drawn ice charts

机译:全极化SAR卫星海冰图像与手动绘制冰图的基于特征的分割比较

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In this paper we investigate the performance of an algorithm for automatic segmentation of full polarimetric, synthetic aperture radar (SAR) sea ice scenes. The algorithm uses statistical and polarimetric properties of the backscattered radar signals to segment the SAR image into a specified number of classes. This number was determined in advance from visual inspection of the SAR image and by available in situ measurements. The segmentation result was then compared to ice charts drawn by ice service analysts. The comparison revealed big discrepancies between the charts of the analysts, and between the manual and the automatic segmentations. In the succeeding analysis, the automatic segmentation chart was labeled into ice types by sea ice experts, and the SAR features used in the segmentation were interpreted in terms of physical sea ice properties. Utilizing polarimetric information in sea ice charting will increase the efficiency and exactness of the maps. The number of classes used in the segmentation has shown to be of significant importance. Thus, studies of automatic and robust estimation of the number of ice classes in SAR sea ice scenes will be highly relevant for future work.
机译:在本文中,我们研究了自动分割全极化合成孔径雷达(SAR)海冰场景的算法的性能。该算法使用后向散射雷达信号的统计和极化特性,将SAR图像分割为指定数量的类别。该数字是通过对SAR图像进行目视检查并通过可用的原位测量预先确定的。然后将分割结果与冰服务分析师绘制的冰图进行比较。比较结果表明,分析师的图表之间,手动和自动分段之间存在很大差异。在随后的分析中,海冰专家将自动分割图标记为冰的类型,并根据海冰的物理特性解释了分割中使用的SAR特征。在海冰制图中使用极化信息将提高地图的效率和准确性。分割中使用的类的数量已显示非常重要。因此,对SAR海冰场景中冰类数量的自动和鲁棒估计的研究与未来工作高度相关。

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