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Urban vegetation classification based on phenology using HJ-1A/B time series imagery

机译:基于物候学的HJ-1A / B时间序列图像的城市植被分类

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Urban vegetation classification need vegetation index especially temporal information of vegetation, thus high spatio-temporal NDVI product is necessary. NDVI time-series data derived from HJ 1A/B time series imagery (HJ NDVI) have relatively high spatio-temporal resolution. In this research, HJ NDVI time series of typical vegetation types in the city of Nanjing are established, the S-G filter is chosen to filtering. Taking filtered HJ NDVI time-series data as “simulated Hyperspectral data”, the linear spectral mixture unmixing algorithm is used to carry out vegetation mapping. The results indicate that unmixing algorithm of linear spectral mixture model can obtain the distribution information of the five kinds of vegetation sub-classes including shrub, grassland, evergreen needle forest, broad-leaved deciduous forest, evergreen and deciduous broad-leaved mixed forest in the research area.
机译:城市植被分类需要植被指数尤其是植被的时间信息,因此需要高时空NDVI产品。 NDVI时间序列数据来自HJ 1A / B时间序列图像(HJ NDVI)具有相对高的时空分辨率。在本研究中,建立了南京市典型植被类型的HJ NDVI时间系列,选择S-G滤波器过滤。将过滤的HJ NDVI时间序列数据作为“模拟高光谱数据”,即用植被映射使用线性谱混合算法。结果表明,线性光谱混合模型的解密算法可以获得五种植被群的分布信息,包括灌木,草原,常绿针林,阔叶落叶林,常绿和落叶阔叶混合森林研究区。

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