Exponential stability of impulsive delayed reaction-diffusion cellular neural networks via Poincaré integral inequality (Q369704)
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scientific article; zbMATH DE number 6209169
| Language | Label | Description | Also known as |
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| English | Exponential stability of impulsive delayed reaction-diffusion cellular neural networks via Poincaré integral inequality |
scientific article; zbMATH DE number 6209169 |
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Exponential stability of impulsive delayed reaction-diffusion cellular neural networks via Poincaré integral inequality (English)
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19 September 2013
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Summary: This work is devoted to the stability study of impulsive cellular neural networks with time-varying delays and reaction-diffusion terms. By means of new Poincaré integral inequality and Gronwall-Bellman-type impulsive integral inequality, we summarize some novel and concise sufficient conditions ensuring the global exponential stability of equilibrium point. The provided stability criteria are applicable to Dirichlet boundary condition and show that not only the reaction-diffusion coefficients but also the regional features including the boundary and dimension of spatial variable can influence the stability. Two examples are finally illustrated to demonstrate the effectiveness of our obtained results.
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