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SATELLITE-DERIVED VEGETATION INDICES AND AN OBJECT-BASED ANALYSIS OF FOREST CONDITIONS IN SEMI-ARID TROPICS

机译:卫星模型在半干旱热带地区的植被状况和森林状况的基于对象的分析

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Changes in forest conditions are influenced by climate and human activities. Variability in the quantity, quality and space of forest conditions is needed for management. The study aims to determine the forest conditions based on an integration of satellite-derived vegetation indices and object- based analysis using Landsat 8 OLI data. The NDVI and NDWI provide the biomass and vegetation water content when combining the landscape-vegetation pattern using the object-based analysis. We can differentiate the flourishing forest from various degree of degraded forest. Our study area, a part of the Phu Khieo-Nam Nao forest complex, covers an area of approximately 2,500 Km~2 and is located in the upper Thailand which has semi-arid climate. Landsat 8 data acquired on January 4, 2015 was geometrically and atmospherically corrected. The image was segmented into image objects, optimizing scale, shape and compactness using the eCognition Developer software package. The supervised classification was performed through the image segmentation using Nearest Neighbor decision algorithm. The Normalized Difference Vegetation Index (NDVI) and Normalized Difference Water Index (NDWI) were digitally performed and combined into one image to categorize the difference in greenness and vegetation wetness. The classified image obtained from the supervised classification was further analyzed to group the segments with respect to the relevant NDVI-NDWI images. As a result, the different forest conditions were classified with a total of 8 classes. The image output was checked against a number of ground truths for validation. The reliability with high Kappa coefficient was confirmed the result. The 8 classes are flourish forest, slightly degraded forest, moderately degraded forest, highly degraded forest, forest plantation, agriculture, resettlement and water body, accounting for 15.54%, 11.89%, 17.00%, 15.43%, 3.46%, 31.70%, 4.04%, and 0.94% respectively. The study indicates that an integration of the object-based analysis and satellite-derived indices yielded significant degree of the forest conditions and its distribution.
机译:森林状况的变化受气候和人类活动的影响。管理需要森林条件的数量,质量和空间可变。这项研究旨在基于卫星衍生的植被指数和使用Landsat 8 OLI数据进行的基于对象的分析的综合,确定森林状况。当使用基于对象的分析结合景观-植被模式时,NDVI和NDWI提供生物量和植被含水量。我们可以将茂盛的森林与不同程度的退化森林区分开来。我们的研究区域是Phu Khieo-Nam Nao森林综合体的一部分,占地面积约2500 Km〜2,位于泰国上半干旱的气候地区。 2015年1月4日获取的Landsat 8数据在几何和大气上进行了校正。使用eCognition Developer软件包将图像分割成图像对象,以优化缩放比例,形状和紧凑性。监督分类是使用最近邻决策算法通过图像分割进行的。对归一化植被指数(NDVI)和归一化水分指数(NDWI)进行数字化处理,并将其合并为一张图像,以对绿色度和植被湿度的差异进行分类。从监督分类中获得的分类图像将被进一步分析,以对相关NDVI-NDWI图像的片段进行分组。结果,将不同的森林条件分为8类。对照大量地面数据检查了图像输出,以进行验证。卡伯系数高的可靠性证实了该结果。这八类分别是茂盛林,轻度退化林,中度退化林,高度退化林,人工林,农业,移民和水体,分别占15.54%,11.89%,17.00%,15.43%,3.46%,31.70%,4.04 %和0.94%。研究表明,将基于对象的分析与卫星得出的指标相结合,可得出很大程度的森林状况及其分布。

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