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Water quality retrievals from combined Landsat TM data and ERS-2 SAR data in the Gulf of Finland

机译:从芬兰湾的Landsat TM数据和ERS-2 SAR组合数据中获取水质

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摘要

This paper presents the applicability of combined Landsat Thematic Mapper and European Remote Sensing 2 synthetic aperture radar (SAR) data to turbidity, Secchi disk depth, and suspended sediment concentration retrievals in the Gulf of Finland. The results show that the estimated accuracy of these water quality variables using a neural network is much higher than the accuracy using simple and multivariate regression approaches. The results also demonstrate that SAR is only a marginally helpful to improve the estimation of these three variables for the practical use in the study area. However, the method still needs to be refined in the area under study.
机译:本文介绍了结合Landsat专题测绘仪和欧洲遥感2号合成孔径雷达(SAR)数据对芬兰湾的浊度,Secchi盘深度和悬浮沉积物浓度反演的适用性。结果表明,使用神经网络估计的这些水质变量的准确度远高于使用简单多元回归方法的准确度。结果还表明,SAR对于改善这三个变量的估计值在研究区域中的实际应用只是微不足道的帮助。但是,该方法仍需要在研究区域中完善。

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