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Production of a Dynamic Cropland Mask by Processing Remote Sensing Image Series at High Temporal and Spatial Resolutions

机译:通过以高时空分辨率处理遥感图像系列来生产动态耕地面具

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The exploitation of new high revisit frequency satellite observations is an important opportunity for agricultural applications. The Sentinel-2 for Agriculture project S2Agri (http://www.esa-sen2agri.org/SitePages/Home.aspx) is designed to develop, demonstrate and facilitate the Sentinel-2 time series contribution to the satellite EO component of agriculture monitoring for many agricultural systems across the globe. In the framework of this project, this article studies the construction of a dynamic cropland mask. This mask consists of a binary “annual-croplando-annual-cropland” map produced several times during the season to serve as a mask for monitoring crop growing conditions over the growing season. The construction of the mask relies on two classical pattern recognition techniques: feature extraction and classification. One pixel- and two object-based strategies are proposed and compared. A set of 12 test sites are used to benchmark the methods and algorithms with regard to the diversity of the agro-ecological context, landscape patterns, agricultural practices and actual satellite observation conditions. The classification results yield promising accuracies of around 90% at the end of the agricultural season. Efforts will be made to transition this research into operational products once Sentinel-2 data become available.
机译:利用新的高重载频率卫星观测资料是农业应用的重要机会。 Sentinel-2农业项目S2Agri(http://www.esa-sen2agri.org/SitePages/Home.aspx)旨在开发,演示和促进Sentinel-2时间序列对农业监测卫星EO成分的贡献适用于全球许多农业系统。在该项目的框架中,本文研究了动态农田遮罩的构建。该遮罩由一个在季节中多次生成的二元“年度农作物/非年度农作物”地图组成,用作监视整个生长季节中作物生长状况的一种掩模。遮罩的构建依赖于两种经典的模式识别技术:特征提取和分类。提出并比较了一种基于像素和两种基于对象的策略。一组12个测试地点用于对农业生态环境,景观格局,农业实践和实际卫星观测条件的多样性进行基准测试的方法和算法。分类结果在农业季节结束时可产生约90%的准确度。一旦获得Sentinel-2数据,将努力将这项研究转变为可操作产品。

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