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Finite-time H_∞ asynchronous state estimation for discrete-time fuzzy Markov jump neural networks with uncertain measurements

机译:具有不确定测量的离散时间模糊马尔可夫跳跃神经网络的有限时间H_∞异步状态估计

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This paper is concerned with the problem of the H-infinity asynchronous state estimation for fuzzy Markov jump neural networks (FMJNNs) with uncertain measurements over a finite-time interval. In terms of a Bernoulli distributed white sequence, the phenomenon of the randomly occurring uncertainties in the output equation is represented by exploiting a random variable with known occurrence probabilities. The main focus of this paper is to present a state estimator such that the resulting error system is finite-time bounded and satisfies an H-infinity performance requirement. Then, by employing the stochastic analysis technique, sufficient conditions are provided to ensure that the state estimator is designed by means of solving a convex optimization problem. An example is finally given to explain the effectiveness and potentiality of the proposed design method. (C) 2018 Elsevier B.V. All rights reserved.
机译:本文涉及模糊Markov跳神经网络(FMJNN)的H无限异步状态估计问题,该网络在有限时间间隔内具有不确定的测量值。根据伯努利分布的白色序列,通过利用具有已知发生概率的随机变量来表示输出方程中随机发生的不确定性现象。本文的主要重点是提出一种状态估计器,以使所产生的误差系统受到有限时间限制,并满足H-无穷大性能要求。然后,通过采用随机分析技术,提供了充分的条件以确保通过解决凸优化问题来设计状态估计器。最后给出一个例子来说明所提出的设计方法的有效性和潜力。 (C)2018 Elsevier B.V.保留所有权利。

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