Landsat 8/OLI Two Bands Ratio Algorithm for Chlorophyll-A Concentration Mapping in Hypertrophic Waters: An Application to West Lake in Hanoi (Vietnam)

Nguyen Thi Thu Ha1, Katsuaki Koike2, Mai Trong Nhuan1, Bui Dinh Canh1, Nguyen Thien Phuong Thao1, Michael Parsons2
1Faculty of Geology, VNU University of Science, Vietnam National University, Hanoi, Vietnam
2Department of Urban Management, Graduate School of Engineering, Kyoto University, Kyoto, Japan

Tóm tắt

Monitoring chlorophyll-a concentration (Chl-a) in inland waters, particularly hypertrophic lake waters in megacities, is a critically important environmental issue. To enable long-term Chl-a monitoring using Landsat series sensors, development of a Chl-a estimation algorithm for the new Landsat sensor is requisite. This study aims to identify the most accurate algorithm for Chl-a estimation in hypertrophic waters using Landsat 8 images and in situ Chl-a data from West Lake and nine other hypertrophic lakes in Hanoi (Vietnam's capital). The best estimation was obtained by the ratio of two reflectances at 562 and 483 nm, corresponding to the ratio of the OLI band 3 versus band 2, termed the GrB2 algorithm. The GrB2 values using the reflectances of water samples and the Landsat images were correlated with the Chl-a by an exponential function (r2 = 0.64 to 0.82), and the estimated Chla were verified by the smallness of standard error (smaller than 10%) and degree of conformity with recent fish-kill phenomena that commonly occur in those lakes in summer and early spring. Because the availability of GrB2 is limited to waters with low levels of inorganic suspended matter, its extension to waters with much higher levels requires further investigation.

Từ khóa

#Algorithms #lakes #monitoring #spectral analysis #water pollution

Tài liệu tham khảo

schalles, 2000, Remote detection and seasonal patterns of phycocyanin, carotenoid, and chlorophyll pigments in eutrophic waters, Arch Hydrobiol Spec Issues Advanc Limnol, 55, 153 10.1080/01431169208904125 rice, 2012, Spectrophotometric determination of chlorophyll: 10200H.2, Standard Methods for the Examination of Water and Wastewater, 10?23:10?24 10.1364/AO.38.007442 mueller, 1995, Volume 25 of ocean optics protocols for SeaWiFS validation, revision 1, 1 2005, Overview of wetland status in Vietnam following 15 Years of ramsar convention implementation, 1 carder, 2003, Case 2 chlorophyll-a, MODIS Ocean Science Team Algorithm Theoretical Basis Document, 4 o'reilly, 2000, Volume 11, SeaWiFS postlaunch calibration and validation analyses, Part 3, SeaWiFS Technical Report Series, 9 10.1029/LN004 10.4319/lo.1977.22.4.0709 2017, Product Guide, Landsat 8 Surface Reflectance Code (LaSRC) Product, 1 2016 10.1364/OE.22.007906 10.1017/CBO9780511623370 2015, Lakes in Ha Noi 2015 Report schalles, 0, Estimation of algal and suspended sediment loads (singly and combined) using hyperspectral sensors and experiments, Proc 4th Int Conf Remote Sens Marine Coastal Environ, 247 10.3390/s16081298 tinh, 0, 3D numerical simulation of Westlake water quality using the EFDC open-source model, Proc Int Conf Estuaries and Coasts, 117 10.1080/01431169308953956 10.1007/1-4020-3968-9_3 10.1016/S0048-9697(00)00685-9 10.1016/j.csr.2006.10.006 10.1109/JSTARS.2014.2333540 10.1364/OE.18.024109 10.3390/rs6010421 lilles and, 2014, Remote Sensing and Image Interpretation 10.1080/01431169308904379 ha, 2011, Integrating satellite imagery and geostatistics of point samples for monitoring spatio-temporal changes of total suspended solids in bay waters: Application to Tien Yen Bay (Northern Vietnam), Earth Science Frontier, 5, 305, 10.1007/s11707-011-0187-9 10.1007/BF02696068 2016 nam, 2016 dinh, 2016 2016 thuan, 2016 hieu, 2016 10.1080/07438149809354110 10.4319/lo.1977.22.2.0361 10.1080/01431160500419311 10.1016/j.rse.2003.10.014 10.1016/S0034-4257(97)00106-5 10.1007/s10750-010-0537-8 10.1016/j.rsase.2015.09.002 10.1007/s10661-015-4616-1 10.3390/ijerph120910391 yang, 2016, Estimating chlorophyll-a concentration in a freshwater lake using Landsat 8 Imagery, Environ Earth Sci, 6, 134 10.1364/AO.20.001704 10.1109/36.103296 10.1080/01431169508954609 carlson, 1996, Coordinator's guide to volunteer lake monitoring methods 10.1016/j.rse.2014.09.021 giardino, 2014, Optical remote sensing of lakes: An overview on lake Maggiore, Limnology, 73, 201 steissberg, 2010, Monitoring past, present, and future water quality using remote sensing 10.1080/01431160010006917 verdin, 1985, Monitoring water quality conditions in a large western reservoir with landsat imagery, Photogramm Eng Remote Sens, 51, 343 jorge, 0, Efficiency estimation of four different atmospheric correction algorithms in a sediment loaded tropic lake for Landsat 8 OLI sensor, Proc Anais XVI Simpósio Brasileiro de Sensoriamento Remoto (SBSR), 4428 10.1080/01431169508954386 10.1029/2003GL018065 pierson, 2000, A modelling approach to evaluate preliminary remote sensing algorithms: Use of water quality data from Swedish great lakes, Geophysica, 36, 177 10.1016/j.rse.2008.04.015 10.1364/AO.44.000412 10.3390/rs6043492 10.1046/j.1529-8817.1998.340383.x 10.1093/plankt/17.11.2155 cauwer, 0, Optical remote sensing in support of eutrophication monitoring in the Southern North Sea, Proc EARSel, 3, 208