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Assessing the MODIS Crop Detection Algorithm for Soybean Crop Area Mapping and Expansion in the Mato Grosso State Brazil

机译:评估MODIS作物检测算法用于巴西马托格罗索州的大豆作物面积制图和扩展

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摘要

Estimations of crop area were made based on the temporal profiles of the Enhanced Vegetation Index (EVI) obtained from moderate resolution imaging spectroradiometer (MODIS) images. Evaluation of the ability of the MODIS crop detection algorithm (MCDA) to estimate soybean crop areas was performed for fields in the Mato Grosso state, Brazil. Using the MCDA approach, soybean crop area estimations can be provided for December (first forecast) using images from the sowing period and for February (second forecast) using images from the sowing period and the maximum crop development period. The area estimates were compared to official agricultural statistics from the Brazilian Institute of Geography and Statistics (IBGE) and from the National Company of Food Supply (CONAB) at different crop levels from 2000/2001 to 2010/2011. At the municipality level, the estimates were highly correlated, with R 2 = 0.97 and RMSD = 13,142 ha. The MCDA was validated using field campaign data from the 2006/2007 crop year. The overall map accuracy was 88.25%, and the Kappa Index of Agreement was 0.765. By using pre-defined parameters, MCDA is able to provide the evolution of annual soybean maps, forecast of soybean cropping areas, and the crop area expansion in the Mato Grosso state.
机译:基于从中分辨率成像光谱仪(MODIS)图像获得的增强植被指数(EVI)的时间剖面,对作物面积进行了估算。对巴西马托格罗索州的田地进行了MODIS作物检测算法(MCDA)估计大豆作物面积的能力评估。使用MCDA方法,可以使用播种期的图像提供12月(第一次预报)的大豆作物面积估计,使用播种期和最大作物发育期的图像提供2月(第二次预报)大豆作物面积的估算。将面积估计值与巴西地理和统计研究所(IBGE)和国家粮食供应公司(CONAB)在2000/2001年至2010/2011年不同作物水平上的官方农业统计数据进行比较。在市一级,估计值高度相关,R 2 = 0.97和RMSD = 13,142 ha。使用来自2006/2007作物年度的田间运动数据验证了MCDA。整体地图准确度为88.25%,协定Kappa指数为0.765。通过使用预定义的参数,MCDA能够提供年度大豆图的演变,大豆种植面积的预测以及马托格罗索州的种植面积扩展。

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