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Event-based filtering for time-varying nonlinear systems subject to multiple missing measurements with uncertain missing probabilities

机译:基于事件的超变非线性系统的过滤,其具有不确定缺失概率的多个缺失测量的

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This paper is concerned with the recursive filtering problem for a class of time-varying nonlinear stochastic systems in the presence of event-triggered transmissions and multiple missing measurements with uncertain missing probabilities. The measurements from different sensors may undergo the missing phenomena, which are characterized by a set of mutually independent Bernoulli random variables and the missing probabilities could be uncertain. In addition, the event-triggered transmission mechanism is introduced to reduce the network communication burden, where the current measurement is transmitted to the remote filter only when it changes greatly compared with the previous one. The aim of this paper is to design a time-varying filter such that, in the presence of the multiple missing measurements, event triggered transmission mechanism and stochastic nonlinearities, an upper bound of the filtering error covariance is obtained and then minimized by properly designing the filter gain. The explicit form of the filter gain is given in terms of the solutions to two recursive matrix equations. It is shown that the developed filtering scheme is of a recursive form applicable for the online computations. Finally, we provide two illustrative examples to demonstrate the feasibility and applicability of the developed event-triggered filtering scheme. (C) 2017 Elsevier B.V. All rights reserved.
机译:本文涉及在存在事件触发的传输存在下的一类时变非线性随机系统的递归过滤问题和具有不确定缺失概率的多个缺失测量。来自不同传感器的测量可以经历缺失的现象,其特征在于一组相互独立的伯努利随机变量,缺失的概率可能是不确定的。此外,引入了事件触发的传输机制以降低网络通信负担,其中当前测量仅在与前一个相比之下变化时仅传输到远程滤波器。本文的目的是设计时变滤波器,使得在多次缺失测量的存在下,事件触发的传输机构和随机非线性,获得了滤波误差协方差的上限,然后通过适当地设计了滤波误差协方差的上限过滤器增益。滤波器增益的显式形式是以解决方案到两个递归矩阵方程的解决方案给出的。结果表明,发达的滤波方案是适用于在线计算的递归形式。最后,我们提供了两个说明性的例子,以证明开发的事件触发过滤方案的可行性和适用性。 (c)2017 Elsevier B.v.保留所有权利。

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