作者
Dauda Olurotimi Araromi, Olukayode Titus Majekodunmi, Jamiu Adetayo Adeniran, Taofeeq Olalekan Salawudeen
发表日期
2018/9
期刊
Environmental monitoring and assessment
卷号
190
页码范围
1-17
出版商
Springer International Publishing
简介
In this paper, nonlinear system identification of the activated sludge process in an industrial wastewater treatment plant was completed using adaptive neuro-fuzzy inference system (ANFIS) and generalized linear model (GLM) regression. Predictive models of the effluent chemical and 5-day biochemical oxygen demands were developed from measured past inputs and outputs. From a set of candidates, least absolute shrinkage and selection operator (LASSO), and a fuzzy brute-force search were utilized in selecting the best combination of regressors for the GLMs and ANFIS models respectively. Root mean square error (RMSE) and Pearson’s correlation coefficient (R-value) served as metrics in assessing the predicting performance of the models. Contrasted with the GLM predictions, the obtained modeling results show that the ANFIS models provide better predictions of the studied effluent variables. The …
引用总数
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