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A Novel Method Based on Source Domain Understanding and Modeling to Transfer Labels from Land-Cover Vector Maps to Classifiers for Multispectral Images

机译:基于源域理解和建模的新方法将标签从覆盖矢量地图转移到多光谱图像分类器

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Combining existing thematic vector products and recently acquired satellite images to generate regular updated maps is extremely interesting at operational level. However, employing these maps is not straightforward. They are typically provided at polygon level, where the polygon labels do not necessarily correspond to spectrally homogeneous areas. Moreover, usually there is a semantic gap between the map legend and the set of natural classes discriminable in multispectral images. To overcome these issues, this paper presents a method that first performs a domain understanding to detect the discrepancies between the vector map domain and the multispectral (MS) image domain. Then, it accomplishes a domain modeling which uses a MS image contemporary to the map to extract a set of reliable and informative samples from the map. Finally, the method carries out Domain Adaptation (DA) using a recent MS image to update the map. Experimental results obtained updating a crop thematic map in Czech Republic confirm the effectiveness of the method.
机译:在运营层面,将现有的专题矢量产品与最近获得的卫星图像相结合以生成定期更新的地图非常有趣。但是,采用这些映射并不简单。它们通常在多边形级别提供,其中多边形标签不一定对应于光谱上均一的区域。此外,通常在地图图例与可在多光谱图像中区分的自然类集之间存在语义鸿沟。为了克服这些问题,本文提出了一种方法,该方法首先执行域理解以检测矢量地图域和多光谱(MS)图像域之间的差异。然后,它完成了一个领域建模,该领域建模使用了当代地图上的MS图像从地图中提取出一组可靠且信息丰富的样本。最后,该方法使用最近的MS映像执行域自适应(DA)以更新地图。更新捷克共和国作物专题图获得的实验结果证实了该方法的有效性。

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