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Integrated framework of nonlinear prediction and process monitoring for complex biological processes SCIE SCOPUS

Title
Integrated framework of nonlinear prediction and process monitoring for complex biological processes
Authors
Yoo, CKLee, IB
Date Issued
2006-10
Publisher
SPRINGER
Abstract
Bioprocesses and biosystems have nonlinear and multiple operation patterns depending on the influent loads, temperatures, the activity of microorganisms, and other factors. In this paper, an integrated framework of nonlinear modeling and process monitoring methods is developed for a complex biological process. The proposed method is based on modeling by fuzzy partial least squares (FPLS) and on process monitoring by a statistical decomposition, which is suitable for predicting and supervising a nonlinear biological process. Case studies in the bio-simulated process and industrial biological plant show that the proposed method can give superior prediction and monitoring performance in complex biological plants compared to other linear and nonlinear methods, since it can effectively capture the nonlinear causal relationship within the biosystem. This gives us the integrated framework that is able to both model and monitor the nonlinear bioprocess simultaneously.
Keywords
bioprocess monitoring; fault detection; fuzzy; integrated framework; multivariate statistical process control (MSPC); nonlinear modeling; systems engineering; PRINCIPAL COMPONENT ANALYSIS; NEURAL NETWORKS; MODELS; FUZZY
URI
https://oasis.postech.ac.kr/handle/2014.oak/23825
DOI
10.1007/S00449-006-0
ISSN
1615-7591
Article Type
Article
Citation
BIOPROCESS AND BIOSYSTEMS ENGINEERING, vol. 29, no. 4, page. 213 - 228, 2006-10
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이인범LEE, IN BEUM
Dept. of Chemical Enginrg
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