articleIEEE Transactions on CyberneticsJan 9, 2013Closed access

Stochastic Synchronization of Markovian Jump Neural Networks With Time-Varying Delay Using Sampled Data

Zhejiang University · Victoria University · +1 more institution

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Abstract

In this paper, the problem of sampled-data synchronization for Markovian jump neural networks with time-varying delay and variable samplings is considered. In the framework of the input delay approach and the linear matrix inequality technique, two delay-dependent criteria are derived to ensure the stochastic stability of the error systems, and thus, the master systems stochastically synchronize with the slave systems. The desired mode-independent controller is designed, which depends upon the maximum sampling interval. The effectiveness and potential of the obtained results is verified by two simulation examples.

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611
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FWCI
102.58
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100%
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Authors

4

Topics & keywords

Keywords
  • Control theory (sociology)
  • Synchronization (alternating current)
  • Jump
  • Computer science
  • Interval (graph theory)
  • Controller (irrigation)
  • Artificial neural network
  • Markov process
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