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首页> 外文期刊>Photogrammetric Engineering & Remote Sensing: Journal of the American Society of Photogrammetry >Thematic Accuracy Consequences in Cadastre Land-cover Enrichment from a Pixel and from a Polygon Perspective
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Thematic Accuracy Consequences in Cadastre Land-cover Enrichment from a Pixel and from a Polygon Perspective

机译:从一个像素和一个多边形的角度来看地籍丰富的主题准确性后果

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In this paper, cadastre agricultural cartography was enriched using crop raster maps obtained from remote sensing images. The work demonstrates the implications of applying two new terms: fidelity and purity. Per-pixel classifications and polygon enrichments were compared taking into account: (a) the consequences of using a more or less conservative strategy at the classification stage, using fidelity, and (b] the consequences of using modal thresholds at the enrichment stage when deciding which category each polygon is to be assigned to, using purity. More than 300,000 pixels and 2,800 polygons were used to measure the thematic accuracy of ten agricultural categories by means of confusion matrices. These were computed at pixel, polygon, and area level. Thematic accuracy was calculated in the classical way and without taking into account unclassified pixels as errors, as well as by paying special attention to the consequences for the classified area. The results show that polygon enrichment is a useful methodology, achieving thematic accuracies of 95.6 percent, when optimum parameters are used, while classifying 87.4 percent of the area.
机译:在本文中,使用了从遥感图像获得的作物栅格图来丰富地籍农业制图。该作品展示了应用两个新术语的含义:保真度和纯度。比较了每个像素的分类和多边形丰富度,考虑到以下因素:(a)在分类阶段使用或多或少的保守策略,使用保真度的后果,以及(b)在丰富阶段使用模态阈值的决定时的后果使用纯度,将每个多边形分配给哪个类别,超过300,000个像素和2,800个多边形用于通过混淆矩阵来测量十个农业类别的主题精度,这些精度是在像素,多边形和面积级别上计算的。准确度是通过经典方法计算的,没有将未分类的像素视为错误,也没有特别注意分类区域的后果,结果表明,多边形填充是一种有用的方法,可以达到95.6%的主题精度,使用最佳参数时,同时对87.4%的区域进行分类。

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