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Article type: Research Article
Authors: Wang, Deganga; * | Song, Wenyanb | Pedrycz, Witoldc | Cai, Lilia
Affiliations: [a] Key Laboratory of Intelligent Control and Optimization for Industrial Equipment of Ministry of Education, Dalian University of Technology, Dalian, China | [b] School of Economics, Dongbei University of Finance and Economics, Dalian, China | [c] Department of Electrical and Computer Engineering, University of Alberta, Edmonton T6G 1H9, Canada
Correspondence: [*] Corresponding author. Degang Wang, Key Laboratory of Intelligent Control and Optimization for Industrial Equipment of Ministry of Education, Dalian University of Technology, Dalian, China. E-mail: [email protected].
Abstract: In this paper, an integrated model combining interval deep belief network (IDBN) and neural network with nonlinear weights, called IDBN-NN, is proposed for interval-valued data modeling. Firstly, the IDBN with variable learning rate is designed to initialize parameters of each sub-model. Based on a modified contrastive divergence algorithm the least square method is adopted to identify the coefficients of nonlinear weights in the output layer. Then, to improve the modeling accuracy, the Fuzzy C-Means (FCM) method and the Particle Swarm Optimization (PSO) algorithm are applied to tune the weights of sub-models. Though each sub-model can capture the nonlinear feature of the original system, by intersecting cut sets the synthesizing modeling scheme can further improve the performance of the proposed model. Some numerical examples show that the IDBN-NN with nonlinear output structure can achieve higher accuracy than some interval-valued data modeling methods.
Keywords: Interval data, neural network, integrated model, fuzzy clustering
DOI: 10.3233/JIFS-200500
Journal: Journal of Intelligent & Fuzzy Systems, vol. 40, no. 1, pp. 673-683, 2021
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