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Prediction of the optimal dose of coagulant for various potable water treatment processes through artificial neural network
Author(s) -
Mohamed Hassen V. Baouab,
Sémia Cherif
Publication year - 2018
Publication title -
journal of hydroinformatics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.654
H-Index - 50
eISSN - 1465-1734
pISSN - 1464-7141
DOI - 10.2166/hydro.2018.014
Subject(s) - turbidity , artificial neural network , approximation error , correlation coefficient , raw water , biological system , process (computing) , scaling , water treatment , particle swarm optimization , mathematics , computer science , environmental engineering , statistics , artificial intelligence , engineering , machine learning , oceanography , geology , geometry , biology , operating system
To overcome classical jar test limits of water treatment plants and offer substantial savings of time and money for operators, artificial neural network technique is applied in this study to large databases of three treatment plants with different processes in order to build models to predict the optimal dose of coagulant. Pre-modeling techniques, like data scaling and training database choice, are used to guarantee models with the lowest errors. Two models are then selected, with turbidity, conductivity, and pH as inputs for both raw and treated water. The first model, L45-MOD, is specific to raw water with less than 45.5 NTU turbidity, or else the second model ATP-MOD would be adopted. Compared to truly injected coagulant doses and to previous models, the selected models have good performances when tested on various databases: a correlation coefficient higher than 0.8, a mean absolute error of 5.47 g/m for the first model and 5.69 g/m for the second model. The strength of this study is the ability of the models to be extrapolated and easily adopted by other treatment plants whatever the process used. doi: 10.2166/hydro.2018.014 s://iwaponline.com/jh/article-pdf/20/6/1215/505678/jh0201215.pdf M. Hassen Baouab Semia Cherif (corresponding author) UR Chimie des Matériaux et de l’Environnement UR11ES25, ISSBAT, Université de Tunis El Manar, Tunis, Tunisia E-mail: semiacherif@yahoo.fr

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