Performance Evaluation of Hydroponic Wastewater Treatment Plant Integrated with Ensemble Learning Techniques: A Feature Selection Approach

Author:

Mustafa Hauwa123ORCID,Hayder Gasim45ORCID,Abba S.6ORCID,Algarni Abeer7,Mnzool Mohammed8ORCID,Nour Abdurahman9

Affiliation:

1. College of Graduate Studies, Universiti Tenaga Nasional (UNITEN), Kajang 43000, Selangor Darul Ehsan, Malaysia

2. Department of Pure and Applied Chemistry, Kaduna State University (KASU), Tafawa Balewa Way, Kaduna PMB 2339, Nigeria

3. Centre for Energy and Environmental Strategy Research, Kaduna State University (KASU), Tafawa Balewa Way, Kaduna PMB 2339, Nigeria

4. Department of Civil Engineering, College of Engineering, Universiti Tenaga Nasional (UNITEN), Kajang 43000, Selangor Darul Ehsan, Malaysia

5. Institute of Energy Infrastructure (IEI), Universiti Tenaga Nasional (UNITEN), Kajang 43000, Selangor Darul Ehsan, Malaysia

6. Interdisciplinary Research Center for Membranes and Water Security, King Fahd University of Petroleum and Minerals, Dhahran 31261, Saudi Arabia

7. Department of Information Technology, College of Computer and Information Sciences, Princess Nourah Bint Abdulrahman University, P.O. Box 84428, Riyadh 11671, Saudi Arabia

8. Department of Civil Engineering, College of Engineering, Taif University, P.O. Box 11099, Taif 21944, Saudi Arabia

9. Faculty of Chemical and Natural Resources Engineering, Universiti Malaysia Pahang (UMP), Gambang 26300, Pahang, Malaysia

Abstract

Wastewater treatment and reuse are being regarded as the most effective strategy for combating water scarcity threats. This study examined and reported the applications of the Internet of Things (IoT) and artificial intelligence in the phytoremediation of wastewater using Salvinia molesta plants. Water quality (WQ) indicators (total dissolved solids (TDS), temperature, oxidation-reduction potential (ORP), and turbidity) of the S. molesta treatment system at a retention time of 24 h were measured using an Arduino IoT device. Finally, four machine learning tools (ML) were employed in modeling and evaluating the predicted concentration of the total dissolved solids after treatment (TDSt) of the water samples. Additionally, three nonlinear error ensemble methods were used to enhance the prediction accuracy of the TDSt models. The outcome obtained from the modeling and prediction of the TDSt depicted that the best results were observed at SVM-M1 with 0.9999, 0.0139, 1.0000, and 0.1177 for R2, MSE, R, and RMSE, respectively, at the training stage. While at the validation stage, the R2, MSE, R, and RMSE were recorded as 0.9986, 0.0356, 0.993, and 0.1887, respectively. Furthermore, the error ensemble techniques employed significantly outperformed the single models in terms of mean square error (MSE) and root mean square error (RMSE) for both training and validation, with 0.0014 and 0.0379, respectively.

Funder

Universiti Tenaga Nasional (UNITEN) BOLD Refresh Fund, Malaysia

Princess Nourah bint Abdulrahman University, Riyadh, Saudi Arabia

Publisher

MDPI AG

Subject

Process Chemistry and Technology,Chemical Engineering (miscellaneous),Bioengineering

Reference41 articles.

1. Four billion people facing severe water scarcity;Mekonnen;Sci. Adv.,2016

2. Breida, M., Younssi, S.A., Ouammou, M., Bouhria, M., and Hafsi, M. (2019). Water Chemistry, IntechOpen.

3. Cultivation of S. molesta plants for phytoremediation of secondary treated domestic wastewater;Mustafa;Ain Shams Eng. J.,2021

4. Cultivation of Aquatic Plants for Biofiltration of Wastewater;Hayder;Lett. Appl. NanoBioScience,2021

5. Performance of Salvinia molesta plants in tertiary treatment of domestic wastewater;Mustafa;Heliyon,2021

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