Global robust exponential stability analysis for stochastic interval neural networks with time-varying delays |
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Authors: | Weiwei Su Yiming Chen |
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Institution: | 1. School of Administrative and Economic Science, Universidad Tecnológica Indoamérica, Machala y Sabanilla s/n, 170103 Quito, Ecuador;2. Department of Economics and Management, University of Alcalá, Plaza de la Victoria, 3, 28802 Alcalá de Henares, Madrid, Spain;3. Department of Business Organization, University of Alicante, Ap. de Correos, 99, 03080 Alicante, Spain |
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Abstract: | In this paper, the global exponential stability is investigated for a class of stochastic interval neural networks with time-varying delays. The parameter uncertainties are assumed to be bounded in given compact sets. Based on Lyapunov stable theory and stochastic analysis approaches, the delay-dependent criteria are derived to ensure the global, robust, exponential stability of the addressed system in the mean square. The criteria can be checked easily by the LMI control toolbox in Matlab. A numerical example is given to illustrate the effectiveness and improvement over some existing results. |
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