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Functional link hybrid artificial neural network for predicting continuous biohydrogen production in dynamic membrane bioreactor

Authors
Pandey Ashutosh KumarNayak, Sarat ChandraKim, Sang-Hyoun
Issue Date
Apr-2024
Publisher
ELSEVIER SCI LTD
Citation
BIORESOURCE TECHNOLOGY, v.397
Journal Title
BIORESOURCE TECHNOLOGY
Volume
397
URI
https://yscholarhub.yonsei.ac.kr/handle/2021.sw.yonsei/23010
DOI
10.1016/j.biortech.2024.130496
ISSN
0960-8524
1873-2976
Abstract
Conventional machine learning approaches have shown limited predictive power when applied to continuous biohydrogen production due to nonlinearity and instability. This study was aimed at forecasting the dynamic membrane reactor performance in terms of the hydrogen production rate (HPR) and hydrogen yield (HY) using laboratory -based daily operation datapoints for twelve input variables. Hybrid algorithms were developed by integrating particle swarm optimized with functional link artificial neural network (PSO-FLN) which outperformed other hybrid algorithms for both HPR and HY, with determination coefficients (R2) of 0.97 and 0.80 and mean absolute percentage errors of 0.014 % and 0.023 %, respectively. Shapley additive explanations (SHAP) explained the two positive -influencing parameters, OLR_added (1.1-1.3 mol/L/d) and butyric acid (7.5-16.5 g COD/L) supports the highest HPR (40-60 L/L/d). This research indicates that PSO-FLN model are capable of handling complicated datasets with high precision in less computational time at 9.8 sec for HPR and 10.0 sec for HY prediction.
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College of Engineering > 공과대학 사회환경시스템공학부 > 공과대학 건설환경공학과 > 1. Journal Articles

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공과대학 건설환경공학과
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