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Global point dissipativity of neural networks with mixed time-varying delays
Jinde Cao1, Kun Yuan, Daniel W C Ho
1Department of Mathematics, Southeast University, Nanjing 210096, People's Republic of China. jdcao@seu.edu.cn
Abstract:
By employing the Lyapunov method and some inequality techniques, the global point dissipativity is studied for neural networks with both discrete time-varying delays and distributed time-varying delays. Simple sufficient conditions are given for checking the global point dissipativity of neural networks with mixed time-varying delays. The proposed linear matrix inequality approach is computationally efficient as it can be solved numerically using standard commercial software. Illustrated examples are given to show the usefulness of the results in comparison with some existing results.
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