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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >AUTOMATED FOREST STRUCTURE MAPPING FROM HIGH RESOLUTION IMAGERY BASED ON DIRECTIONAL SEMIVARIOGRAM ESTIMATES
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AUTOMATED FOREST STRUCTURE MAPPING FROM HIGH RESOLUTION IMAGERY BASED ON DIRECTIONAL SEMIVARIOGRAM ESTIMATES

机译:基于方向半变异估计的高分辨率影像的自动森林结构映射

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A new segmentation approach that allows forest stands identification on high spatial resolution (less than or equal to 1 m) optical imagery is presented. Texture information rc;as first derived by measuring the range of the semivariogram of monochrome image values in three different directions using a moving window. The semivariogram ranges were then used to predict, on a per-pixel basis, three stand structure parameters through regression equations developed for crown diameter stand density, and crown closure. A region grouping algorithm was applied to these three regression estimate images to identify the limits of the forest stands. Calibration of the prediction equations was made using artificial images created by a geometrical-optical process. It cas found that forest stands boundaries can be adequately identified on artificial images and that average forest structure estimates within each delineated stand are close to the actual values. Preliminary application of the proposed method to real images acquired with the MEIS-II airborne sensor yielded good segmentation and per stand structure estimates. Some errors were generated due to the fact that the moving window sometimes overlapped two different forest stands because of the presence of areas covered by nonforest vegetation or human made structures. The issue of the moving window size and means to increase the precision of the method are discussed. (C) Elsevier Science Inc., 1997. [References: 50]
机译:提出了一种新的分割方法,该方法可以在高空间分辨率(小于或等于1 m)光学图像上识别林分。首先通过使用移动窗口在三个不同方向上测量单色图像值的半变异函数的范围来得出纹理信息rc。然后将半变异函数范围用于通过每个像素的基础,通过针对冠部直径支架密度和冠部闭合度开发的回归方程,预测三个支架结构参数。将区域分组算法应用于这三个回归估计图像,以识别林分的极限。使用通过几何光学过程创建的人工图像对预测方程进行校准。案例研究发现,在人工图像上可以充分识别林分的界限,每个划定林分内的平均森林结构估计值都接近实际值。将该方法初步应用于使用MEIS-II机载传感器获取的真实图像,可以产生良好的分割效果和每个机架的结构估算值。由于存在由于非森林植被或人造结构覆盖的区域而导致移动窗口有时与两个不同的林分重叠的事实,因此产生了一些错误。讨论了移动窗口大小的问题以及提高方法精度的方法。 (C)Elsevier Science Inc.,1997年。[参考:50]

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