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Effect of Different Atmospheric Correction Algorithms on Sentinel-2 Imagery Classification Accuracy in a Semiarid Mediterranean Area

机译:不同大气校正算法对半干旱地中海地区哨区-2图像分类精度的影响

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摘要

Multi-temporal imagery classification using spectral information and indices with random forest allows improving accuracy in land use and cover classification in semiarid Mediterranean areas, where the high fragmentation of the landscape caused by multiple factors complicates the task. Hence, since data come from different dates, atmospheric correction is needed to retrieve surface reflectivity values. The Sen2Cor, MAJA and ACOLITE algorithms have proven their good performances in these areas in different comparative studies, and DOS is a basic method that is widely used. The aim in this study was to test the feasibility of its application to the data set to improve the values of accuracy in classification and the performance in properly labelling different classes. Additionally, we tried to correct accuracy and separability mixing predictors with different algorithms. The results showed that, using a single algorithm, the general accuracy and kappa index from ACOLITE were the highest, 0.80 ± 0.01 and 0.76 ± 0.01., but the separability between problematic classes was slightly improved by using MAJA. Any combination of the different algorithms tested increased the values of classification, although they may help with separability between some pairs of classes.
机译:使用频谱信息的多时间图像分类和随机森林的索引可以提高土地利用和半干旱地中海地区的分类,其中多个因素引起的景观的高碎片复杂化了任务。因此,由于数据来自不同的日期,因此需要大气校正来检索表面反射率值。 Sen2cor,Maja和Acolite算法已经证明了在不同比较研究中的这些领域的良好表现,并且DOS是广泛使用的基本方法。本研究中的目的是测试其应用于数据集的可行性,以提高分类的准确性值和正确标记不同类别的性能。此外,我们尝试使用不同的算法来校正准确性和可分离分离的预测器。结果表明,使用单一算法,Acolite的一般精度和Kappa指数最高,0.80±0.01和0.76±0.01。但是,使用Maja略微改善有问题类之间的可分离性。不同算法的任何组合都会增加分类的值,尽管它们可以有助于某些类别之间的可分离性。

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