Validation of satellite water products based on HYPERNETS in situ data using a Match-up Database (MDB) file structure

Luis González Vilas, V. E. Brando, Javier A. Concha, C. Goyens, A. Dogliotti, D. Doxaran, Antoine Dille, D. Van der Zande
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引用次数: 1

Abstract

A Match-up Database (MDB) file structure and tools were developed to ease the validation analysis of satellite water products and to improve the exchange and processing of match-up data from different sites, missions and atmospheric correction processors. In situ remote sensing reflectance (Rrs) measurements were available from the HYPSTAR® (HYperspectral Pointable System for Terrestrial and Aquatic Radiometry), a new automated hyperspectral radiometer. An MDB file is a NetCDF file containing all the potential match-ups between satellite and in situ data on a specific site and within a given time window. These files are generated and manipulated with three modules developed in Python to implement the validation protocols: extract satellite data, associate each extract with co-located in situ radiometry data, and then perform the validation analysis. This work provides details on the implementation of the open-source MDB file structure and tools. The approach is demonstrated by a multi-site matchup comparison based on satellite data from the Sentinel-2 MSI and Sentinel-3 OLCI sensors, and HYPSTAR® data acquired over six water sites with diverse optical regimes from February 2021 to March 2023.The analysis of Sentinel-3 OLCI matchups across the six sites shows consistency with previous comparisons based on AERONET-OC data over extended reflectance range. We evaluated Sentinel-2 MSI reflectance data corrected with two atmospheric correction processors (ACOLITE and C2RCC) over four sites with clear to highly turbid waters. Results showed that the performance of the processors depends on the optical regime of the sites. Overall, we proved the suitability of the open-source MDB-based approach to implement validation protocols and generate automated matchup analyses for different missions, processors and sites.
利用匹配数据库(MDB)文件结构验证基于 HYPERNETS 现场数据的卫星水产品
开发了匹配数据库(MDB)文件结构和工具,以简化卫星水产品的验证分析,并改进来自不同站点、任务和大气校正处理器的匹配数据的交换和处理。新型自动高光谱辐射计 HYPSTAR®(用于陆地和水生辐射测量的高光谱可定点系统)提供了原地遥感反射率(Rrs)测量数据。MDB 文件是一种 NetCDF 文件,其中包含特定地点和特定时间窗口内卫星数据与原地数据之间的所有潜在匹配。这些文件用 Python 开发的三个模块生成和处理,以执行验证协议:提取卫星数据、将每个提取数据与同位原地辐射测量数据关联,然后执行验证分析。这项工作详细介绍了开源 MDB 文件结构和工具的实施。基于哨兵-2 MSI 和哨兵-3 OLCI 传感器的卫星数据,以及 2021 年 2 月至 2023 年 3 月期间在具有不同光学机制的六个水域站点获取的 HYPSTAR® 数据,对该方法进行了多站点匹配对比演示。我们评估了使用两种大气校正处理器(ACOLITE 和 C2RCC)校正的哨兵-2 MSI 反射率数据,涉及四个水质清澈到高度浑浊的站点。结果表明,处理器的性能取决于站点的光学机制。总之,我们证明了基于 MDB 的开源方法适用于实施验证协议和生成不同任务、处理器和站点的自动匹配分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
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