Adaptive neural network cascade control system with entropy-based design
Zhang, Jianhua and Zhou, Shuqing and Ren, Mifeng and Yue, Hong (2016) Adaptive neural network cascade control system with entropy-based design. IET Control Theory and Applications, 10 (10). pp. 1151-1160. ISSN 1751-8644 (https://doi.org/10.1049/iet-cta.2015.0992)
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Abstract
A neural network (NN) based cascade control system is developed, in which the primary PID controller is constructed by NN. A new entropy-based measure, named the centred error entropy (CEE) index, which is a weighted combination of the error cross correntropy (ECC) criterion and the error entropy criterion (EEC), is proposed to tune the NN-PID controller. The purpose of introducing CEE in controller design is to ensure that the uncertainty in the tracking error is minimised and also the peak value of the error probability density function (PDF) being controlled towards zero. The NN-controller design based on this new performance function is developed and the convergent conditions are. During the control process, the CEE index is estimated by a Gaussian kernel function. Adaptive rules are developed to update the kernel size in order to achieve more accurate estimation of the CEE index. This NN cascade control approach is applied to superheated steam temperature control of a simulated power plant system, from which the effectiveness and strength of the proposed strategy are discussed by comparison with NN-PID controllers tuned with EEC and ECC criterions.
ORCID iDs
Zhang, Jianhua, Zhou, Shuqing, Ren, Mifeng and Yue, Hong ORCID: https://orcid.org/0000-0003-2072-6223;-
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Item type: Article ID code: 55772 Dates: DateEvent27 June 2016Published22 February 2016AcceptedNotes: This paper is a postprint of a paper submitted to and accepted for publication in IET Control Theory and Applications and is subject to Institution of Engineering and Technology Copyright. The copy of record is available at IET Digital Library Subjects: Technology > Electrical engineering. Electronics Nuclear engineering Department: Faculty of Engineering > Electronic and Electrical Engineering Depositing user: Pure Administrator Date deposited: 07 Mar 2016 11:58 Last modified: 19 Dec 2024 01:17 Related URLs: URI: https://strathprints.strath.ac.uk/id/eprint/55772