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Classification of MODIS EVI time series for crop mapping in the state of Mato Grosso, Brazil

机译:巴西马托格罗索州作物测绘的MODIS EVI时间序列分类

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摘要

Agriculture in Brazilian Amazonia is going through a period of intensification. Crop mapping is important in understanding the way this intensification is occurring and the impact it is having. Two successive classifications based on MODIS (MODerate Resolution Imaging Spectroradiometer)-TERRA/EVI (Enhanced Vegetation Index) time series are applied (1) to map agricultural areas and (2) to identify five crop classes. These classes represent agricultural practices involving three commercial crops (soybean, maize and cotton) planted in single or double cropping systems. Both classifications are based on five steps: (1) analysis of the MODIS/EVI time series, (2) application of a smoothing algorithm, (3) application of a feature selection/extraction process to reduce the data set dimensionality, (4) application of a classifier and (5) application of a post-classification treatment. The first classification detected 95% of the agricultural areas (5 617 250 ha during the 2006-2007 harvest) and correlation coefficients with agricultural statistics exceeded 0.98 for the three crop classes at municipality level. The second classification (overall accuracy = 74% and kappa index = 0.675) allowed us to obtain the spatial variability mapping of agricultural practices in the state of Mato Grosso. A total of 30% of the total planted area was cultivated through double cropping systems, especially along the BR163 highway and in the Parecis plateau region.
机译:巴西亚马逊地区的农业正处于集约化时期。作物作图对理解这种集约化的发生方式及其产生的影响非常重要。应用基于MODIS(中等分辨率成像光谱仪)-TERRA / EVI(增强植被指数)时间序列的两个连续分类(1)绘制农业区域图和(2)识别五种作物类别。这些类别代表了涉及以单作或双作系统种植的三种商品作物(大豆,玉米和棉花)的农业实践。两种分类都基于五个步骤:(1)MODIS / EVI时间序列分析,(2)应用平滑算法,(3)应用特征选择/提取过程以减少数据集维数,(4)分类器的应用和(5)分类后处理的应用。第一次分类检测到95%的农业地区(2006-2007年收成期间为5 617 250公顷),并且市政一级的三种作物类别与农业统计的相关系数超过0.98。第二种分类(总体准确度= 74%,kappa指数= 0.675)使我们可以获得马托格罗索州农业实践的空间变异图。通过双重种植系统,尤其是沿着BR163高速公路和Parecis高原地区,总共种植了30%的种植面积。

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  • 来源
    《International journal of remote sensing》 |2011年第22期|p.7847-7871|共25页
  • 作者单位

    COSTEL UMR 6554 CNRS-LETG, Universite Rennes 2, Place du Recteur H. Le Moal, 35043 Rennes Cedex, France;

    Embrapa Solos, Rua Jardim Botanico, 1024, 22460-000, Rio de Janeiro, RJ, Brazil;

    Embrapa Solos, Rua Jardim Botanico, 1024, 22460-000, Rio de Janeiro, RJ, Brazil,Universidade do Estado do Rio de Janeiro, UERJ, Departamento de Engenharia de Sistemas e Computacao. Pos Graduacao em Geomatica rua Sao Francisco Xavier, 524, 5028-D, Maracana, CEP 20550-900, Rio de Janeiro - RJ, Brazil,Embrapa-Program Labex Europe, Maison de la Teledetection, 500, rue Jean-Francois Breton, 34093 Montpellier Cedex 5, France;

    COSTEL UMR 6554 CNRS-LETG, Universite Rennes 2, Place du Recteur H. Le Moal, 35043 Rennes Cedex, France,Visitante Estrangeiros no Centra de Desenvolvimento Sustentavel - CDS, Universidade de Brasilia (bolsista da CAPES em 2008), CEP 70904-970, Campus Universitario Darcy Ribeiro, Gleba A, Asa Norte, Brasilia-DF, Brazil;

    Institut de Recherche et Developpement, Espace-Dev Unit, INPE/CRA, Parque de Ciencia e Tecnologia do Guama, Av. Perimetral 2651, CEP 66077-830 Belem - PA,Brazil;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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