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Mapping Fractional Cropland Distribution in Mato Grosso, Brazil Using Time Series MODIS Enhanced Vegetation Index and Landsat Thematic Mapper Data

机译:使用时间序列MODIS增强的植被指数和Landsat专题制图仪数据绘制巴西马托格罗索州的小片农田分布图

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Mapping cropland distribution over large areas has attracted great attention in recent years, however, traditional pixel-based classification approaches produce high uncertainty in cropland area statistics. This study proposes a new approach to map fractional cropland distribution in Mato Grosso, Brazil using time series MODIS enhanced vegetation index (EVI) and Landsat Thematic Mapper (TM) data. The major steps include: (1) remove noise and clouds/shadows contamination using the Savizky–Gloay filter and temporal resampling algorithm based on the time series MODIS EVI data; (2) identify the best periods to extract croplands through crop phenology analysis; (3) develop a seasonal dynamic index (SDI) from the time series MODIS EVI data based on three key stages: sowing, growing, and harvest; and (4) develop a regression model to estimate cropland fraction based on the relationship between SDI and Landsat-derived fractional cropland data. The root mean squared error of 0.14 was obtained based on the analysis of randomly selected 500 sample plots. This research shows that the proposed approach is promising for rapidly mapping fractional cropland distribution in Mato Grosso, Brazil.
机译:近年来,绘制大面积农田分布图备受关注,但是,传统的基于像素的分类方法在农田面积统计中产生很大的不确定性。这项研究提出了一种使用时间序列MODIS增强植被指数(EVI)和Landsat Thematic Mapper(TM)数据绘制巴西马托格罗索州分数农田分布的新方法。主要步骤包括:(1)使用Savizky-Gloay滤波器和基于时间序列MODIS EVI数据的时间重采样算法消除噪声和云/阴影污染; (2)通过作物物候分析确定提取农田的最佳时期; (3)根据三个关键阶段,从MODIS EVI时间序列数据中得出季节动态指数(SDI):播种,生长和收获; (4)根据SDI和Landsat衍生的分数耕地数据之间的关系,开发估算农地分数的回归模型。根据对随机选择的500个样地的分析,得出均方根误差为0.14。这项研究表明,提出的方法对于快速绘制巴西马托格罗索州的部分农田分布很有希望。

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