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Publication Additional Information Download
Publication Type
Journal Article
Authorship
Zolfaghari, K., Pahlevan, N., Binding, C., Gurlin, D., Simis, S. G., Verdú, A. R., LI, L., Crawford, C, J., VanderWoude, A., Errera, A., Zastepa, A.,& Duguay, C. R.
Title
Impact of Spectral Resolution on Quantifying Cyanobacteria in Lakes and Reservoirs: A Machine-Learning Assessment
Year
2021
Publication Outlet
IEEE Transactions on Geoscience and Remote Sensing
DOI
https://doi.org/10.1109/TGRS.2021.3114635
Citation
Zolfaghari, K., Pahlevan, N., Binding, C., Gurlin, D., Simis, S. G., Verdú, A. R., LI, L., Crawford, C, J., VanderWoude, A., Errera, A., Zastepa, A.,& Duguay, C. R. (2021). Impact of Spectral Resolution on Quantifying Cyanobacteria in Lakes and Reservoirs: A Machine-Learning Assessment. IEEE Transactions on Geoscience and Remote Sensing. https://doi.org/10.1109/TGRS.2021.3114635
Abstract
Cyanobacterial harmful algal blooms are an increasing threat to coastal and inland waters. These blooms can be detected using optical radiometers due to the presence of phycocyanin (PC) pigments. The spectral resolution of best-available multispectral sensors limits their ability to diagnostically detect PC in the presence of other photosynthetic pigments. To assess the role of spectral resolution in the determination of PC, a large ( N=905 ) database of colocated in situ radiometric spectra and PC are employed. We first examine the performance of selected widely used machine-learning (ML) models against that of benchmark algorithms for hyperspectral remote sensing reflectance ( Rrs ) spectra resampled to the spectral configuration of the Hyperspectral Imager for the Coastal Ocean (HICO) with a full-width at half-maximum (FWHM) of < 6 nm. Results show that the multilayer perceptron (MLP) neural network applied to HICO spectral configurations (median errors < 65%) outperforms other ML models. This model is subsequently applied to Rrs spectra resampled to the band configuration of existing satellite instruments and of the one proposed for the next Landsat sensor. These results confirm that employing MLP models to estimate PC from hyperspectral data delivers tangible improvements compared with retrievals from multispectral data and benchmark algorithms (with median errors between ∼73 % and 126%) and shows promise for developing a globally applicable cyanobacteria measurement approach.
Program Affiliations
GWF: Global Water Futures
Project Affiliations
GWF-TSTSW: Transformative Sensor Technologies and Smart Watersheds
Publication Stage
Published
Download Links
https://doi.org/10.1109/TGRS.2021.3114635
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