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Super Resolution Mapping of Trees for Urban Forest Monitoring in Madurai City Using Remote Sensing

机译:玛杜赖市城市森林监测树木的超分辨率地图

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This paper proposes a super resolution mapping of trees pixel swapping method in Madurai city. Identifying and mapping the vegetation specifically trees is a significant issue in remote sensing applications where the lack of height information becomes a hard monocular recognition task. The density and shape of the trees gets affected by other man-made objects which gives rise to an erroneous recognition. The quality of recognition may be affected by various terms like resolution, visibility, sizes or scale. Predicting trees when they are partially blocked from view is also a challenging task. A common problem associated with the application of satellite images is the frequent occurrence of mixed pixels. The motivation of this work is to extract trees using pixel swapping method. Pixel-swapping algorithm is a simple and efficient technique for super resolution mapping to change the spatial arrangement of sub-pixels in such a way that the spatial correlation between neighboring sub-pixels would be maximized. Soft classification techniques were introduced to avoid the loss of information by assigning a pixel to multiple land-use/land-cover classes according to the area represented within the pixel. This soft classification technique generates a number of fractional images equal to the number of classes. Super resolution mapping was then used to know where each class is located within the pixel, in order to obtain detailed spatial patterns. The aim of supper resolution mapping is to determine a fine resolution map of the trees from the soft classification result. The experiment is conducted with images of Madurai city obtained from WorldView2 satellite. The accuracy of the pixel swapping algorithm was 98.74%.
机译:提出了马杜赖市树木像素交换的超分辨率映射方法。在缺少高度信息成为一项艰巨的单眼识别任务的遥感应用中,特别是对树木的识别和制图是一个重要的问题。树木的密度和形状会受到其他人造物体的影响,这会导致错误的识别。识别的质量可能会受到诸如分辨率,可见性,大小或比例之类的各种术语的影响。当树木被部分遮挡时,对其进行预测也是一项艰巨的任务。与卫星图像的应用相关的常见问题是混合像素的频繁出现。这项工作的动机是使用像素交换方法提取树。像素交换算法是一种用于超分辨率映射的简单有效的技术,它可以改变子像素的空间排列,以使相邻子像素之间的空间相关性最大化。引入了软分类技术,通过根据像素内表示的面积将像素分配给多个土地利用/土地覆盖类别,来避免信息丢失。这种软分类技术生成的分数图像数量等于类的数量。然后使用超分辨率映射来了解每个类别在像素内的位置,以便获得详细的空间图案。超分辨率映射的目的是根据软分类结果确定树木的精细分辨率图。实验是使用从WorldView2卫星获得的马杜赖市的图像进行的。像素交换算法的准确性为98.74%。

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