2014 IEEE 10th International Colloquium on Signal Processing and Its Applications 2014
DOI: 10.1109/cspa.2014.6805748
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Flood water level modeling and prediction using NARX neural network: Case study at Kelang river

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Cited by 42 publications
(19 citation statements)
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“…This model was developed using MATLAB neural network toolbox. Rainfall intensity is based on various factors (variables) like pressure, temperature, wind, speed and direction, therefore the flood forecast warning system must be very accurate and intelligent to provide an initial warning [32]. The procedure was an extension of ARX model; five inputs were feed to the NNARX model to guess the hazard (flood water level).…”
Section: B Artificial Intelligence Based Methodsmentioning
confidence: 99%
“…This model was developed using MATLAB neural network toolbox. Rainfall intensity is based on various factors (variables) like pressure, temperature, wind, speed and direction, therefore the flood forecast warning system must be very accurate and intelligent to provide an initial warning [32]. The procedure was an extension of ARX model; five inputs were feed to the NNARX model to guess the hazard (flood water level).…”
Section: B Artificial Intelligence Based Methodsmentioning
confidence: 99%
“…Artificial neural networks (ANNs) are one approach to artificial intelligence (AI) [25], [26] which simulate the behavior of biological brains based on a system of interconnected neurons used to compute values from inputs. They represent a form of machine learning, which have proven particularly effective in pattern recognition.…”
Section: E Artificial Neural Networkmentioning
confidence: 99%
“…Over the past decades, ANN had been successfully applied to predict the flood discharge [1][2][3]. An important factor that influenced the widely used ANN model in flood prediction was the input-output relationship of the ANN model.…”
Section: Introductionmentioning
confidence: 99%