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Multitemporal WorldView satellites imagery for mapping chestnut trees

机译:Multi8poral WorldView卫星图像用于绘制栗树

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Chestnuts have been part of the landscape and popular culture of the Canary Islands (Spain) since the sixteenth century. Many crops of this species are in state of abandonment and an updated mapping for its study and evaluation is needed. This work proposes the elaboration of this cartography using two satellite images of very high spatial resolution captured on two different dates and representing well-differentiated phenological states of the chestnut: a WorldView-2 image of March 10th, 2015 and a WorldView-3 image of May 12th, 2015 (without and with leaves respectively). Two study areas were selected within the municipality of La Orotava (Tenerife Island). One of the areas contains chestnut trees dispersed in an agricultural and semi-urban environment and in the other one, the specimens are grouped forming a forest merged with Canarian pines and other species of Monteverde. The Maximum Likelihood (ML), the Artificial Neural Networks (ANN) and the Spectral Angle Mapper (SAM) classification algorithms were applied to the multi-temporal image resulting from the combination of both dates. The results show the benefits of using the multi-temporal image for Pinolere with the ANN algorithm and for Chasna area with ML algorithm, in both cases providing an overall accuracy close to 95%.
机译:栗子一直以来,十六世纪的景观及加那利群岛(西班牙)的流行文化的一部分。这个物种的很多农作物被遗弃的状态,并需要为它的研究和评估的更新的映射。这项工作提出了利用两个不同的日期和代表栗高分化物候状态捕获很高的空间分辨率的两张卫星照片这个制图的阐述:2015年3月10日的WorldView-2卫星图像和世界观,3图像2015年5月12日(未经分别与叶)。两个研究领域进行了香格里拉Orotava(特内里费岛岛)的直辖市内选择。其中一个环节的含有分散在农业和半城市环境板栗树和其他一,标本进行分组形成森林合并,加那利群岛的松树和其他物种的蒙特维。最大似然(ML),人工神经网络(ANN)和光谱角映射器(SAM)分类算法被应用于来自两个日期的组合产生的多时间图像。结果表明,使用多时间图像Pinolere与ANN算法与ML算法Chasna区域,在这两种情况下提供总体精度接近95%的收益。

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