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Segmentation and symbolic description for a classification of agricultural areas with multispectral scanner data

机译:使用多光谱扫描仪数据对农业区域进行分类的分段和符号描述

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A procedure that overcomes some of the disadvantages of conventional pixel-based classification is proposed. Several methods for data preprocessing are tested, and the edge-preserving smoothing filter is found to give the best results. The segmentation module uses an easy and efficient region-based algorithm based on a comparison of the intensity value of a single pixel in the 4- or 8-adjacency neighborhood. This algorithm discriminates 97% of the regions in the test area and shows in some selected regions a mean area deviation of 7.8%. Within the symbolic description, 127 attributes of morphologic and internal descriptors are tested on four main criteria. It is shown that the selection of the descriptors has to be done in consideration of the data as well as the application.
机译:提出了克服常规基于像素的分类的一些缺点的过程。测试了几种用于数据预处理的方法,发现保留边缘的平滑滤波器可提供最佳结果。分割模块基于对4或8相邻邻域中单个像素的强度值的比较,使用了一种简单高效的基于区域的算法。该算法可区分测试区域中97%的区域,并在某些选定区域中显示出7.8%的平均区域偏差。在符号描述中,根据四个主要标准测试了127个形态和内部描述符属性。结果表明,描述符的选择必须考虑到数据以及应用。

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