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Mapping fractional forest cover across the highlands of mainland Southeast Asia using MODIS data and regression tree modelling

机译:使用MODIS数据和回归树模型绘制东南亚大陆高地的部分森林覆盖图

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摘要

Data from the moderate-resolution imaging spectroradiometer (MODIS) sensor, in combination with new mapping techniques, has the potential to improve regional research on tropical forest resources and land use dynamics. In this study, a supervised regression tree model was used to map fractions of (1) mature forest, (2) secondary forest, and (3) non-forest, using multi-temporal MODIS 250-m data as explanatory variables, and land cover information derived from high-spatial resolution image data as the response variables. From independent validation data, the overall mean absolute deviation of the resulting maps are estimated at 14.6% for mature forest, 21.6% for secondary forest, and 17.1% for non-forest cover. This study shows the increased potential of this new mapping technique to infer human imprints on forest cover across the highlands of mainland Southeast Asia, compared to other existing map sources.
机译:来自中分辨率成像光谱仪(MODIS)传感器的数据与新的制图技术相结合,具有改善热带森林资源和土地利用动态的区域研究潜力。在这项研究中,使用多时态MODIS 250-m数据作为解释变量,采用监督回归树模型来绘制(1)成熟林,(2)次生林和(3)非林的分数。从高空间分辨率图像数据中得出的覆盖信息作为响应变量。根据独立的验证数据,结果图的总体平均绝对偏差估计为成熟森林为14.6%,次生森林为21.6%,非森林覆盖为17.1%。这项研究表明,与其他现有地图来源相比,这种新的地图绘制技术可以推断出东南亚大陆高地森林覆盖上的人类烙印。

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