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Mapping land cover on Reunion Island in 2017 using satellite imagery and geospatial ground data

机译:使用卫星图像和地理空间地面数据在2017年留尼汪岛的土地覆盖图

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摘要

We here present a reference database and three land use maps produced in 2017 over the Reunion island using a machine learning based methodology. These maps are the result of a satellite image analysis performed using the Moringa land cover processing chain developed in our laboratory. The input dataset for map production consists of a single very high spatial resolution Pleiades images, a time series of Sentinel-2 and Landsat-8 images, a Digital Terrain Model (DTM) and the aforementioned reference database. The Moringa chain adopts an object based approach: the Pleiades image provides spatial accuracy with the delineation of land samples via a segmentation process, the time series provides information on landscape and vegetation dynamics, the DTM provides information on topography and the reference database provides annotated samples (6256 polygons) for the supervised classification process and the validation of the results. The three land use maps follow a hierarchical nomenclature ranging from 4 classes for the least detailed level to 34 classes for the most detailed one. The validation of these maps shows a good quality of the results with overall accuracy rates ranging from 86% to 97%. The maps are freely accessible and used by researchers, land managers (State services and local authorities) and also private companies.
机译:我们在此提供参考数据库和2017年使用基于机器学习的方法在留尼汪岛生产的三张土地使用图。这些地图是使用我们实验室开发的辣木土地覆盖处理链进行的卫星图像分析的结果。用于地图生成的输入数据集包括一个非常高的空间分辨率P宿星图像,Sentinel-2和Landsat-8图像的时间序列,一个数字地形模型(DTM)和上述参考数据库。辣木链采用的是基于对象的方法:le宿星影像通过分割过程提供了土地样本轮廓的空间准确性,时间序列提供了景观和植被动态的信息,DTM提供了地形信息,参考数据库提供了带注释的样本(6256个多边形)用于监督分类过程和结果验证。这三幅土地使用图遵循一个分层的命名法,从最不详细级别的4类到最详细级别的34类。这些图的验证显示了结果的良好质量,总体准确率在86%到97%之间。研究人员,土地管理人员(国家服务部门和地方政府)以及私人公司均可免费使用和使用这些地图。

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