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Evaluation of statistical methods to estimate forest volume in a mediterranean region

机译:评价估计地中海区域森林量的统计方法

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摘要

The use of three estimation methods was investigated for mapping forest volume over a complex Mediterranean region (Tuscany, central Italy). The first two methods were based on the processing of satellite images, specifically a summer Landsat Thematic Mapper scene. From this scene, information about forest volume was extracted through a nonparametric approach [k-nearest neighbor (k-NN)] and by means of locally calibrated regressions. The last method considered, kriging, instead used only the spatial autocorrelation of tree volume relying on geostatistical principles. The experiments performed demonstrated that, at the original sampling density, the three methods produced nearly equivalent accuracies. This was no more the case when reducing the sampling density to various levels. Whereas, in fact, this reduction marginally affected the performances of the two remote-sensing-based methods, it dramatically degraded that of kriging. Additionally, the investigation showed how per-pixel estimates of error variance were obtainable also by k-NN and locally calibrated regression procedures, in analogy with the same property of kriging. Such estimated error variances were utilized to optimally integrate the outputs of the methods based on remotely sensed data and spatial autocorrelation. In all cases, the integrated estimation outperformed the single procedures. These results are relevant to develop an operational strategy for mapping forest attributes in complex Mediterranean areas.
机译:调查了三种估计方法的使用,以绘制复杂的地中海区域(意大利中部托斯卡纳)的森林量。前两种方法基于卫星图像的处理,特别是夏季Landsat专题制图仪场景。从该场景中,通过非参数方法[k最近邻居(k-NN)]并通过局部校准回归,提取了有关森林容量的信息。最后考虑的方法是克里格(Kriging),它仅依赖于地统计原理使用树体积的空间自相关。进行的实验表明,在原始采样密度下,这三种方法产生的精度几乎相等。将采样密度降低到各种级别时,情况不再如此。实际上,这种减少仅对两种基于遥感的方法的性能产生了一定的影响,但是却大大降低了克里金法的性能。此外,调查显示,与kriging的相同属性类似,如何通过k-NN和局部校准的回归程序也可以获得每个像素的误差方差估计。这种估计的误差方差用于基于遥感数据和空间自相关来最佳地集成方法的输出。在所有情况下,综合评估均优于单一程序。这些结果与制定用于绘制复杂地中海地区森林属性的作业策略有关。

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