Performance analysis and modeling of bio-hydrogen recovery from agro-industrial wastewater

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作者
Safdar Hossain, S.K. [1 ]
Sadiq Ali, Syed [1 ]
Cheng, Chin Kui [2 ]
Ayodele, Bamidele Victor [3 ,4 ]
机构
[1] Department of Chemical Engineering, College of Engineering, King Faisal University, Al-Ahsa, Saudi Arabia
[2] Centre for Catalysis and Separation (CeCaS), Department of Chemical Engineering, College of Engineering, Khalifa University of Science and Technology, Abu Dhabi, United Arab Emirates
[3] Department of Chemical Engineering, Universiti Teknologi Petronas, Perak, Malaysia
[4] Centre of Contaminant Control and Utilization (CenCoU), Institute of Contaminant Management for Oil and Gas, Universiti Teknologi Petronas, Perak, Malaysia
关键词
Errors - Forecasting - Gaussian distribution - Gaussian noise (electronic) - Learning algorithms - Mean square error - Recovery - Regression analysis - Vectors;
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摘要
Significant volumes of wastewater are routinely generated during agro-industry processing, amounting to millions of tonnes annually. In line with the circular economy concept, there could be a possibility of simultaneously treating the wastewater and recovering bio-energy resources such as bio-hydrogen. This study aimed to model the effect of different process parameters that could influence wastewater treatment and bio-energy recovery from agro-industrial wastewaters. Three agro-industrial wastewaters from dairy, chicken processing, and palm oil mills were investigated. Eight data-driven machine learning algorithms namely linear support vector machine (LSVM), quadratic support vector machine (QSVM), cubic support vector machine (CSVM), fine Gaussian support vector machine (FGSVM), binary neural network (BNN), rotation quadratic Gaussian process regression (RQGPR), exponential quadratic Gaussian process regression (EQGPR) and exponential Gaussian process regression (EGPR) were employed for the modeling process. The datasets obtained from the three agro-industrial processes were employed to train and test the models. The LSVM, QSVM, and CSVM did not show an impressive performance as indicated by the coefficient of determination (R2) 2 > 0.9, an indication of better predictability with minimized prediction errors as indicated by the low root mean square error (RMSE), mean square error (MSE), and mean absolute error (MAE). Copyright © 2022 Safdar Hossain, Sadiq Ali, Cheng and Ayodele.
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