Forecasting daily chlorophyll a concentration during the spring phytoplankton bloom period in xiangxi bay of the three-gorges reservoir by means of a recurrent artificial neural network

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Abstract

A recurrent artificial neural network was used for 0-and 7-days-ahead forecasting of daily spring phytoplankton bloom dynamics in Xiangxi Bay of Three-Gorges Reservoir with meteorological, hydrological, and limnological parameters as input variables. Daily data from the depth of 0.5 m was used to train the model, and data from the depth of 2.0 m was used to validate the calibrated model. The trained model achieved reasonable accuracy in predicting the daily dynamics of chlorophyll a both in 0-and 7-days-ahead forecasting. In 0-day-ahead forecasting, the R2 values of observed and predicted data were 0.85 for training and 0.89 for validating. In 7-days-ahead forecasting, the R2 values of training and validating were 0.68 and 0.66, respectively. Sensitivity analysis indicated that most ecological relationships between chlorophyll a and input environmental variables in 0-and 7-days-ahead models were reasonable. In the 0-day model, Secchi depth, water temperature, and dissolved silicate were the most important factors influencing the daily dynamics of chlorophyll a. And in 7-days-ahead predicting model, chlorophyll a was sensitive to most environmental variables except water level, DO, and NH3N. © 2009, Copyright Taylor & Francis Group, LLC.

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Ye, L., & Cai, Q. (2009). Forecasting daily chlorophyll a concentration during the spring phytoplankton bloom period in xiangxi bay of the three-gorges reservoir by means of a recurrent artificial neural network. Journal of Freshwater Ecology, 24(4), 609–617. https://doi.org/10.1080/02705060.2009.9664338

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