On the possibility to map submerged aquatic vegetation cover with Sentinel-2 in low-transparency waters

被引:2
作者
Vahtmae, Ele [1 ]
Toming, Kaire [1 ]
Argus, Laura [1 ]
Moller-Raid, Tiia [1 ]
Ligi, Martin [1 ]
Kutser, Tiit [1 ]
机构
[1] Tartu Univ, Estonian Marine Inst, Tallinn, Estonia
关键词
Sentinel-2; Baltic Sea; submerged aquatic vegetation; percent cover; empirical approach; bio-optical inversion; SHALLOW WATERS; LANDSAT TM; SEAGRASS; BATHYMETRY; SATELLITE; DEPTH; REFLECTANCE; COMMUNITY; ABUNDANCE; QUALITY;
D O I
10.1117/1.JRS.17.044506
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Modifications in submerged aquatic vegetation (SAV) spatial and temporal abundance patterns indicate changes in marine environmental conditions or physical disturbances and need to be monitored. Vegetation percent cover (%cover) is recognized as one of the key parameters in SAV monitoring. Coastal waters of the Baltic Sea are often turbid and contain high amount of colored dissolved organic matter. These factors significantly reduce the water depth, where benthic parameters can be detected by remote sensing. Field campaigns were carried out in a low-transparency P & auml;rnu Bay area to assess to what extent multispectral Sentinel-2 (S2) satellite can be used for SAV %cover mapping in such waters. An average depth restriction for S2 benthic vegetation detection remained near 1.5 to 2.0 m. Empirical and physics-based methods were applied to S2 imagery to compare their performance for SAV %cover retrieval. Both methods identified similar %cover patterns. Model validation results showed that R-2 of the best-performing models remained between 0.56 and 0.66 and root-mean-square error between 22.11 and 28.06. As physics-based inversion models do not require extensive set of training data for model calibration, those can be used for retrospective time series analysis across multitemporal images.(c) 2023 Society of Photo-Optical Instrumentation Engineers (SPIE
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页数:20
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