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A study on state estimation for discrete-time recurrent neural networks with leakage delay and time-varying delay

机译:具有泄漏时变和时变时滞的离散时间递归神经网络的状态估计研究

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We investigate state estimation for a class of discrete-time recurrent neural networks with leakage delay and time-varying delay. The design method for the state estimator to estimate the neuron states through available output measurements is given. A novel delay-dependent sufficient condition is obtained for the existence of state estimator such that the estimation error system is globally asymptotically stable. Based a novel double summation inequality and reciprocally convex approach, an improved stability criterion is obtained for the error-state system. Two numerical examples are given to demonstrate the effectiveness of the proposed design methods. The simulation results show that the leakage delay has a destabilizing influence on a neural network system.
机译:我们研究了一类具有泄漏延迟和时变延迟的离散时间递归神经网络的状态估计。给出了状态估计器通过可用输出测量值估计神经元状态的设计方法。对于状态估计器的存在,获得了一个新的依赖于延迟的充分条件,从而使得估计误差系统全局渐近稳定。基于一种新颖的双重求和不等式和倒数凸方法,获得了误差状态系统的改进稳定性判据。给出两个数值例子,以证明所提出的设计方法的有效性。仿真结果表明,泄漏延迟对神经网络系统具有不稳定的影响。

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