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Classification of land-cover types in muddy tidal flat wetlands using remote sensing data

机译:利用遥感数据对滩涂湿地湿地类型进行分类

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摘要

Remote sensing classification of tidal flat wetlands is important for obtaining highprecision information on wetland features. In this study, Thematic Mapper (TM) images of the Yancheng National Reserves, Jiangsu Province, China, for the years of 1996, 2002, 2006, and 2010 were considered. First, the optimum combination of bands was chosen. Second, vegetation and nonvegetation regions of interest were established to investigate the spectral reflectance characteristics of the different ground objects. Then we used the knowledge-based decision tree method on different features, such as the normalized difference vegetation index and the spectral reflectance. In particular, the ancillary information is helpful to distinguish the vegetation classes. The results demonstrate that the classification system has advantages in identifying the types of vegetation in ecotones, and it is 4 percentage points higher than the maximum likelihood method in classification accuracy. This study is useful to discriminate vegetation, and it provides an important reference for the effective extraction of tidal flat land-cover information from TM images.
机译:潮滩湿地的遥感分类对于获得有关湿地特征的高精度信息非常重要。在这项研究中,考虑了1996年,2002年,2006年和2010年中国盐城国家级自然保护区的主题地图(TM)图像。首先,选择频段的最佳组合。其次,建立感兴趣的植被和非植被区域,以研究不同地面物体的光谱反射特性。然后针对不同的特征,如归一化的植被指数和光谱反射率,采用基于知识的决策树方法。特别是,辅助信息有助于区分植被类型。结果表明,分类系统在识别过渡带植被类型方面具有优势,分类精度比最大似然法高4个百分点。这项研究对于判别植被是有用的,它为从TM图像中有效提取潮汐平坦土地覆盖物信息提供了重要参考。

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