Utilize este identificador para referenciar este registo: https://hdl.handle.net/1822/21802

TítuloPrediction of the quality of public water supply using artificial neural networks
Autor(es)Vicente, Henrique
Dias, Susana
Fernandes, Ana
Abelha, António
Machado, José Manuel
Neves, José
Palavras-chaveartificial neural networks
monitoring of public water supply
prediction of water quality parameters
Data2012
EditoraIWA Publishing
RevistaJournal of Water Supply: Research and Technology - AQUA
Resumo(s)The Health Surveillance Program was established by the Regional Health Authority of Alentejo to control the quality of public water supply. This authority divides the water quality parameters into three distinct groups, namely P1 (pH and conductivity), P2 (nitrate and manganese) and P3 (sodium and potassium), for which the sampling frequency is dissimilar. Thus, the development of formal models is essential to predict the chemical parameters included in group P2 and included in group P3,for which the sampling frequency is lower, based on the chemical parameters included in group P1. In the present work, artificial neural networks (ANNs) were used to predict the concentration of nitrate, manganese, sodium and potassium from pH and conductivity. Different network structures have been elaborated and evaluated using the mean absolute deviation and the mean squared error. The ANN selected to predict the concentration of nitrate, sodium and potassium from pH and conductivity has a 2-18-14-3 topology while the network selected to predict the concentration of nitrate and manganese has a 2-19-10-2 topology. A good match between the observed and predicted values was observed with the R2 values varying in the range 0.9960–0.9989 for the training set and 0.9993–0.9952 for the test set.
TipoArtigo
URIhttps://hdl.handle.net/1822/21802
DOI10.2166/aqua.2012.014
ISSN0003-7214
Arbitragem científicayes
AcessoAcesso restrito UMinho
Aparece nas coleções:DI/CCTC - Artigos (papers)

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