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Finite-Time Stability Analysis for Markovian Jump Memristive Neural Networks With Partly Unknown Transition Probabilities

机译:转移概率未知的马尔可夫跳跃忆阻神经网络的有限时间稳定性分析

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This paper is concerned with the finite-time stochastically stability (FTSS) analysis of Markovian jump memristive neural networks with partly unknown transition probabilities. In the neural networks, there exist a group of modes determined by Markov chain, and thus, the Markovian jump was taken into consideration and the concept of FTSS is first introduced for the memristive model. By introducing a Markov switching Lyapunov functional and stochastic analysis theory, an FTSS test procedure is proposed, from which we can conclude that the settling time function is a stochastic variable and its expectation is finite. The system under consideration is quite general since it contains completely known and completely unknown transition probabilities as two special cases. More importantly, a nonlinear measure method was introduced to verify the uniqueness of the equilibrium point; compared with the fixed point Theorem that has been widely used in the existing results, this method is more easy to implement. Besides, the delay interval was divided into four subintervals, which make full use of the information of the subsystems upper bounds of the time-varying delays. Finally, the effectiveness and superiority of the proposed method is demonstrated by two simulation examples.
机译:本文涉及具有部分未知转移概率的马尔可夫跳跃忆阻神经网络的有限时间随机稳定性(FTSS)分析。在神经网络中,存在由马尔可夫链确定的一组模式,因此,考虑了马尔可夫跳跃,并首次将FTSS的概念引入忆阻模型。通过引入马尔可夫切换Lyapunov函数和随机分析理论,提出了FTSS测试程序,从中可以得出稳定时间函数是随机变量,其期望是有限的。所考虑的系统非常笼统,因为它包含完全已知和完全未知的过渡概率,这是两个特殊情况。更重要的是,引入了一种非线性测量方法来验证平衡点的唯一性。与现有结果中广泛使用的定点定理相比,该方法更易于实现。此外,将延迟间隔分为四个子间隔,它们充分利用了时变延迟的子系统上限的信息。最后,通过两个仿真实例证明了该方法的有效性和优越性。

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