IEEE Access | 2021

Designing Deep-Based Learning Flood Forecast Model With ConvLSTM Hybrid Algorithm

 
 
 
 
 

Abstract


Efficient, robust, and accurate early flood warning is a pivotal decision support tool that can help save lives and protect the infrastructure in natural disasters. This research builds a hybrid deep learning (ConvLSTM) algorithm integrating the predictive merits of Convolutional Neural Network (CNN) and Long Short-Term Memory (LSTM) Network to design and evaluate a flood forecasting model to forecast the future occurrence of flood events. Derived from precipitation dataset, the work adopts a Flood Index (<inline-formula> <tex-math notation= LaTeX >$I_{F}$ </tex-math></inline-formula>), in form of a mathematical representation, to capture the gradual depletion of water resources over time, employed in a flood monitoring system to determine the duration, severity, and intensity of any flood situation. The newly designed predictive model utilizes statistically significant lagged <inline-formula> <tex-math notation= LaTeX >$I_{F}$ </tex-math></inline-formula>, improved by antecedent and real-time rainfall data to forecast the next daily <inline-formula> <tex-math notation= LaTeX >$I_{F}$ </tex-math></inline-formula> value. The performance of the proposed ConvLSTM model is validated against 9 different rainfall datasets in flood prone regions in Fiji which faces flood-driven devastations almost annually. The results illustrate the superiority of ConvLSTM-based flood model over the benchmark methods, all of which were tested at the 1-day, 3-day, 7-day, and the 14-day forecast horizon. For instance, the Root Mean Squared Error (RMSE) for the study sites were 0.101, 0.150, 0.211 and 0.279 for the four forecasted periods, respectively, using ConvLSTM model. For the next best model, the RMSE values were 0.105, 0.154, 0.213 and 0.282 in that same order for the four forecast horizons. In terms of the difference in model performance for individual stations, the Legate-McCabe Efficiency Index (LME) were 0.939, 0.898, 0.832 and 0.726 for the four forecast horizons, respectively. The results demonstrated practical utility of ConvLSTM in accurately forecasting <inline-formula> <tex-math notation= LaTeX >$I_{F}$ </tex-math></inline-formula> and its potential use in disaster management and risk mitigation in the current phase of extreme weather events.

Volume 9
Pages 50982-50993
DOI 10.1109/ACCESS.2021.3065939
Language English
Journal IEEE Access

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