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Variance-constrained resilient H-infinity filtering for time-varying nonlinear networked systems subject to quantization effects

机译:受变量影响的时变非线性网络系统的方差约束弹性H无限滤波

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This paper deals with the resilient variance-constrained H-infinity finite-horizon filtering problem for a class of discrete time-varying nonlinear networked system with quantization effects. The nonlinearity enters the system in a probabilistic way that is characterized by a binary sequence with known distribution. The system parameters under investigation are all time-varying and the randomly occurring filter gain variations are modeled by utilizing a random variable obeying prespecified binary distribution which is uncorrelated with other stochastic variables. The nonlinearities and exogenous disturbances we adopt are non-zero mean, which makes the variance analysis become more difficult. Furthermore, the quantization effects are also taken into account to describe the unavoidable constraints imposed on the signal during the transmission in networked systems. Sufficient conditions are established for the finite-horizon filter guaranteeing the constraints imposed on both estimation error variance and H-infinity specification. By means of the recursive linear matrix inequality approach, the algorithm for computing the desired filtering gains is provided. Finally, a numerical illustrative example is used to verify the effectiveness of the proposed design method. (C) 2017 Elsevier B.V. All rights reserved.
机译:针对一类具有量化效应的离散时变非线性网络系统,研究了具有弹性方差约束的H-无限有限水平滤波问题。非线性以概率方式进入系统,其特征在于具有已知分布的二进制序列。研究中的系统参数都是随时间变化的,并且通过利用随机变量服从与其他随机变量不相关的预先指定的二进制分布来对随机发生的滤波器增益变化进行建模。我们采用的非线性和外生干扰是非零均值,这使得方差分析变得更加困难。此外,还考虑了量化效应,以描述在联网系统中传输过程中不可避免地施加在信号上的约束。为有限水平滤波器建立了充分的条件,从而保证了对估计误差方差和H-无穷大规范施加的约束。通过递归线性矩阵不等式方法,提供了用于计算所需滤波增益的算法。最后,使用一个数字示例性例子来验证所提出的设计方法的有效性。 (C)2017 Elsevier B.V.保留所有权利。

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