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A Phenology-Based Classification of Time-Series MODIS Data for Rice Crop Monitoring in Mekong Delta, Vietnam

机译:基于现象的时间序列MODIS数据分类,用于越南湄公河三角洲的水稻作物监测

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Rice crop monitoring is an important activity for crop management. This study aimed to develop a phenology-based classification approach for the assessment of rice cropping systems in Mekong Delta, Vietnam, using Moderate Resolution Imaging Spectroradiometer (MODIS) data. The data were processed from December 2000, to December 2012, using empirical mode decomposition (EMD) in three main steps: (1) data pre-processing to construct the smooth MODIS enhanced vegetation index (EVI) time-series data; (2) rice crop classification; and (3) accuracy assessment. The comparisons between the classification maps and the ground reference data indicated overall accuracies and Kappa coefficients, respectively, of 81.4% and 0.75 for 2002, 80.6% and 0.74 for 2006 and 85.5% and 0.81 for 2012. The results by comparisons between MODIS-derived rice area and rice area statistics were slightly overestimated, with a relative error in area (REA) from 0.9–15.9%. There was, however, a close correlation between the two datasets (R2 ≥ 0.89). From 2001 to 2012, the areas of triple-cropped rice increased approximately 31.6%, while those of the single-cropped rain-fed rice, double-cropped irrigated rice and double-cropped rain-fed rice decreased roughly −5.0%, −19.2% and −7.4%, respectively. This study demonstrates the validity of such an approach for rice-crop monitoring with MODIS data and could be transferable to other regions.
机译:水稻作物监测是作物管理的一项重要活动。这项研究旨在使用中等分辨率成像光谱仪(MODIS)数据,开发一种基于物候学的分类方法来评估越南湄公河三角洲的稻作系统。从2000年12月至2012年12月,采用经验模态分解(EMD)对数据进行了三个主要步骤:(1)数据预处理以构建平滑的MODIS增强植被指数(EVI)时间序列数据; (2)水稻作物分类; (3)准确性评估。分类图和地面参考数据之间的比较表明,总精度和Kappa系数分别为2002年的81.4%和0.75,2006年的80.6%和0.74以及2012年的85.5%和0.81。通过MODIS得出的比较结果稻米面积和稻米面积统计数据被略高估了,面积的相对误差(REA)为0.9-15.9%。但是,两个数据集之间存在紧密的相关性(R 2 ≥0.89)。从2001年到2012年,三季稻的面积增加了约31.6%,而单季雨养稻,双季灌溉稻和双季雨育稻的面积分别下降了约-5.0%,-19.2% %和-7.4%。这项研究证明了用MODIS数据监测水稻作物的这种方法的有效性,并且可以转移到其他地区。

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