Publication | Open Access
A Novel Algorithm for Predicting Phycocyanin Concentrations in Cyanobacteria: A Proximal Hyperspectral Remote Sensing Approach
91
Citations
18
References
2009
Year
Environmental MonitoringEngineeringCyanobacteriaBand Ratio AlgorithmsCyanobacterial AbundanceCyanobacterial SpeciesMicrobial EcologyEnvironmental MicrobiologyPhycocyanin ConcentrationsPhotosynthesisImaging SpectroscopySpectral ImagingPhytoplankton EcologyNovel AlgorithmHyperspectral ImagingSpectroscopyRemote SensingSpectral SearchingMicrobiologyMedicine
The purpose of this research was to evaluate the performance of existing spectral band ratio algorithms and develop a novel algorithm to quantify phycocyanin (PC) in cyanobacteria using hyperspectral remotely-sensed data. We performed four spectroscopic experiments on two different laboratory cultured cyanobacterial species and found that the existing band ratio algorithms are highly sensitive to chlorophylls, making them inaccurate in predicting cyanobacterial abundance in the presence of other chlorophyll-containing organisms. We present a novel spectral band ratio algorithm using 700 and 600 nm that is much less sensitive to the presence of chlorophyll.
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