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Abstracting of suspected illegal land use in urban areas using case-based classification of remote sensing images

机译:基于遥感图像案例分类的城市地区怀疑违法土地利用的抽象

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This paper proposed a method that uses a case-based classification of remote sensing images and applied this method to abstract the information of suspected illegal land use in urban areas. Because of the discrete cases for imagery classification, the proposed method dealt with the oscillation of spectrum or backscatter within the same land use category, and it not only overcame the deficiency of maximum likelihood classification (the prior probability of land use could not be obtained) but also inherited the advantages of the knowledge-based classification system, such as artificial intelligence and automatic characteristics. Consequently, the proposed method could do the classifying better. Then the researchers used the object-oriented technique for shadow removal in highly dense city zones. With multi-temporal SPOT 5 images whose resolution was 2.5x2.5 meters, the researchers found that the method can abstract suspected illegal land use information in urban areas using post-classification comparison technique.
机译:本文提出了一种使用基于遥感图像的案例分类的方法,并应用了这种方法,以摘要在城市地区涉嫌非法土地使用的信息。由于成像分类的离散情况,所提出的方法在同一块土地使用类别中处理频谱或反向散射的振荡,并且它不仅克服了最大似然分类的不足(无法获得土地使用的现有概率)而且还继承了基于知识的分类系统的优势,例如人工智能和自动特征。因此,所提出的方法可以更好地进行分类。然后,研究人员使用了面向对象的技术来在高密度的城市区域中移除。研究人员发现,使用多时间点5张分辨率的分辨率2.5x2.5米,通过分类后比较技术,该方法可以摘要涉嫌涉嫌涉嫌非法土地利用城市地区的信息。

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