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Reimagining coastal water quality forecasting with hydrodynamic simulation and advanced machine learning

Seyed Arman Hashemi Monfared1, Jafar Jafari-Asl2, Kourosh Behzadian3

  • 1School of Engineering, University of Warwick, Coventry, CV4 7AL, UK; School of Engineering, Department of Civil Engineering, University of Memphis, Memphis, TN, 38125, USA; AtkinsRealis UK, Newcastle Upon Tyne, NE4 7YB, UK.

Summary

This study introduces a novel hybrid machine learning (ML) framework for accurate coastal water quality forecasting, enhancing nutrient management and ecosystem health. The model effectively predicts nitrate and phosphate levels using hydrodynamic data, supporting sustainable coastal management.