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Improved methods of classification of multispectral aerial photographs: evaluation of floodplain forests in the inundation area of the Danube

机译:改进的多光谱航拍照片分类方法:多瑙河淹没地区的漫滩森林评估

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The Gab?íkovo hydroelectric power plant has significantly influenced Danube water regime, thus the condition of floodplain forests in the region. Forest condition has been regularly monitored since 1995 using aerial photos. The subject of this study was to improve the procedure of floodplain forest health evaluation based on digital multispectral aerial images. Firstly, the forest mask was created with overall accuracy 89%, and next, tree health was evaluated using defoliation as health indicator. We applied orthogonal transformation of 4 original bands of multispectral imagery into two-dimensional space. Marginal values of digital numbers (DN) of the first component (New Synthetic Channel - NSC1) were defined by fully foliated willow and poplar. The second component (NSC2) was optimised for damage estimation. Calculated DN values of NSC2 represented a perpendicular distance from the line of DN values of the first component. The distance from the line was proportionate to tree damage extent in a given pixel. We generated linear regression model between pair values of NSC2 and defoliation evaluated for 38 trees in the field, respectively, from aerial photos. A decline prediction resulted in r-square equal 0.86. Finally, we used the model to predict defoliation for each picture element (pixel) of the component NSC2.
机译:加比锡科沃水力发电厂对多瑙河的水情产生了重大影响,从而影响了该地区漫滩森林的状况。自1995年以来,已使用航拍照片定期监测森林状况。本研究的主题是改进基于数字多光谱航拍图像的洪泛区森林健康评估程序。首先,创建森林遮罩的总体精度为89%,然后,使用落叶作为健康指标评估树木的健康状况。我们将多光谱影像的4个原始波段的正交变换转换为二维空间。第一个成分(新合成通道-NSC1)的数字数字(DN)的边际值由全叶杨柳和杨树定义。第二个组件(NSC2)已针对损坏评估进行了优化。计算得出的NSC2的DN值表示与第一个组件的DN值线的垂直距离。在给定像素中,与线条的距离与树木受损程度成正比。我们从航拍照片中分别为野外评估的38棵树生成了NSC2对和脱叶对之间的线性回归模型。下降预测得出r平方等于0.86。最后,我们使用该模型来预测分量NSC2的每个图片元素(像素)的脱叶。

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