Reachable Set Estimation for Delayed Memristive Neural Networks With Bounded Disturbances

Publisher:
Institute of Electrical and Electronics Engineers (IEEE)
Publication Type:
Journal Article
Citation:
IEEE Transactions on Systems, Man, and Cybernetics: Systems, 2024, 54, (9), pp. 5523-5528
Issue Date:
2024-01-01
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This brief discusses the reachable set estimation (RSE) problem for memristive neural networks (MNNs) involving time-varying delays and bounded disturbances. The reachable sets of the considered MNNs under zero and nonzero initial conditions are estimated by two novel algebraic criteria, respectively. Compared with the existing results, the conclusions are easy to verify, and the obtained reachable sets are more accurate. Finally, the validity of the theoretical results is illustrated by two examples.
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