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Early Detection of Cyanobacterial Blooms and Associated Cyanotoxins using Fast Detection Strategy
Published on: February 25, 2021
Seohui Park1,2, Alqamah Sayeed3,4, Junhyeon Seo1,2
1Goddard Earth Sciences Technology and Research (GESTAR) II, Morgan State University, Baltimore, Maryland 21251, United States.
This study uses satellite data and machine learning to estimate ground-level fine particulate matter (PM2.5) concentrations. A Deep Neural Network model, enhanced with TEMPO satellite data, significantly improved accuracy, especially during wildfire smoke events.
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