Monitoring cyanobacteria occurrence in freshwater reservoirs using semi-analytical algorithms and orbital remote sensing

被引:11
作者
Borges, Henrique Dantas [1 ]
Cicerelli, Rejane Ennes [1 ]
de Almeida, Tati [1 ]
Roig, Henrique L. [1 ]
Olivetti, Diogo [1 ]
机构
[1] Univ Brasilia, Geociences Inst, Campus Univ Darcy Ribeiro ICC Ala Cent, BR-71910900 Brasilia, DF, Brazil
关键词
eutrophication; quasi-analytical algorithm; tropical freshwater; water quality monitoring; DISSOLVED ORGANIC-MATTER; ESTIMATING CHLOROPHYLL-A; INVERSION MODEL; INLAND; BLOOMS; LAKE; COASTAL; REFLECTANCE; MICROCYSTIN; ESTABLISHMENT;
D O I
10.1071/MF18377
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Cyanobacterial blooms pose a serious threat to the multiple uses of inland waters because of their adverse effects on the environment and human health. Monitoring cyanobacteria concentrations using traditional methods can be expensive and impractical. Recently, alternative efforts using remote sensing techniques have been successful. In particular, semi-analytical modelling approaches have been used to successfully predict chlorophyll (Chl)-a concentrations from remote sensing reflectance. The aims of this study were to test the performance of different semi-analytical algorithms in the estimation of Chl-a concentrations and the applicability of Sentinel-2 multispectral instrument (MSI) imagery, and its atmospheric correction algorithms, in the estimation of Chl-a concentrations. For our dataset, phycocyanin concentration was strongly correlated with Chl-a concentration and the inversion model of inland waters (IIMIW) semi-analytical algorithm was the best performing model, achieving a root mean square error of 4.6 mg m(-3) in the prediction of Chl-a. When applying the IIMIW model to MSI data, the use of top-of-atmosphere reflectance performed better than the atmospheric correction algorithm tested. Overall, the results were satisfactory, demonstrating that even without an adequate atmospheric correction pipeline, the monitoring of cyanobacteria can be successfully achieved by applying a semi-analytical bio-optical model to MSI data.
引用
收藏
页码:569 / 578
页数:10
相关论文
共 55 条
[1]   Effects of iron, ammonium and temperature on microcystin content by a natural concentrated Microcystis aeruginosa population [J].
Amé, MV ;
Wunderlin, DA .
WATER AIR AND SOIL POLLUTION, 2005, 168 (1-4) :235-248
[2]  
[Anonymous], 1989, STANDARD METHODS EXA
[3]   Cyanobacterial harmful algal blooms (CyanoHABs): Developing a public health response [J].
Backer, LC .
LAKE AND RESERVOIR MANAGEMENT, 2002, 18 (01) :20-31
[4]   Cyanotoxin production and phylogeny of benthic cyanobacterial strains isolated from the northeast of Brazil [J].
Borges, H. L. F. ;
Branco, L. H. Z. ;
Martins, M. D. ;
Lima, C. S. ;
Barbosa, P. T. ;
Lira, G. A. S. T. ;
Bittencourt-Oliveira, M. C. ;
Molica, R. J. R. .
HARMFUL ALGAE, 2015, 43 :46-57
[5]   Estimating chlorophyll a concentrations from remote-sensing reflectance in optically shallow waters [J].
Cannizzaro, JP ;
Carder, KL .
REMOTE SENSING OF ENVIRONMENT, 2006, 101 (01) :13-24
[6]   Human fatalities from cyanobacteria: Chemical and biological evidence for cyanotoxins [J].
Carmichael, WW ;
Azevedo, SMFO ;
An, JS ;
Molica, RJR ;
Jochimsen, EM ;
Lau, S ;
Rinehart, KL ;
Shaw, GR ;
Eaglesham, GK .
ENVIRONMENTAL HEALTH PERSPECTIVES, 2001, 109 (07) :663-668
[7]   Toxin-producing cyanobacteria in freshwater: A review of the problems, impact on drinking water safety, and efforts for protecting public health [J].
Cheung, Melissa Y. ;
Liang, Song ;
Lee, Jiyoung .
JOURNAL OF MICROBIOLOGY, 2013, 51 (01) :1-10
[8]  
Chorus I., 1999, Toxic cyanobacteria in water: a guide to their public health consequences, monitoring and management
[9]   Multisource data for seasonal variability analysis of cyanobacteria in a tropical inland aquatic environment [J].
Cicerelli, Rejane Ennes ;
Trindade Galo, Maria de Lourdes B. ;
Roig, Henrique Llacer .
MARINE AND FRESHWATER RESEARCH, 2017, 68 (12) :2344-2354
[10]   Nitrogen, phosphorus, and eutrophication in streams [J].
Dodds, Walter K. ;
Smith, Val H. .
INLAND WATERS, 2016, 6 (02) :155-164