An adaptive strategy for time‐varying batch process fault prediction based on stochastic configuration network
Kai Liu,
Xiaoqiang Zhao,
Yongyong Hui
et al.
Abstract:Fault prediction ensures safe and stable production, and cuts maintenance costs. Due to the changing operating conditions that lead to the changes in the characteristics of industrial processes, there is a need to monitor the fault state of batch processes in real‐time and to accurately predict fault trends. An adaptive slow feature analysis‐neighborhood preserving embedding‐improved stochastic configuration network (SFA‐NPE‐ISCN) algorithm for batch process fault prediction is proposed. Firstly, SFA is used t… Show more
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