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Modelling of COD removal in a biological wastewater treatment plant using adaptive neuro-fuzzy inference system and artificial neural network

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dc.creator Civelekoglu, Gökhan
dc.creator KİTİŞ, Mehmet
dc.creator YİĞİT, Nevzat Özgü
dc.creator Diamadopoulos, E.
dc.date 2008-12-31T22:00:00Z
dc.date.accessioned 2020-10-06T10:15:00Z
dc.date.available 2020-10-06T10:15:00Z
dc.identifier 5a8a29e8-737e-49ce-88cc-ea0bc128b0d2
dc.identifier 10.2166/wst.2009.482
dc.identifier https://avesis.sdu.edu.tr/publication/details/5a8a29e8-737e-49ce-88cc-ea0bc128b0d2/oai
dc.identifier.uri http://acikerisim.sdu.edu.tr/xmlui/handle/123456789/60957
dc.description This work evaluated artificial neural network (ANN) and adaptive neuro-fuzzy inference system (ANFIS) modelling methods to estimate organic carbon removal using the correlation among the past information of influent and effluent parameters in a full-scale aerobic biological wastewater treatment plant. Model development focused on providing an adaptive, useful, practical and alternative methodology for modelling of organic carbon removal. For both models, measured and predicted effluent COD concentrations were strongly correlated with determination coefficients over 0.96. The errors associated with the prediction of effluent COD by the ANFIS modelling appeared to be within the error range of analytical measurements. The results overall indicated that the ANFIS modelling approach may be suitable to describe the relationship between wastewater quality parameters and may have application potential for performance prediction and control of aerobic biological processes in wastewater treatment plants.
dc.language eng
dc.rights info:eu-repo/semantics/closedAccess
dc.title Modelling of COD removal in a biological wastewater treatment plant using adaptive neuro-fuzzy inference system and artificial neural network
dc.type info:eu-repo/semantics/article


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