Dynamic Event-Triggered Quadratic Nonfragile Filtering for Non-Gaussian Systems: Tackling Multiplicative Noises and Missing Measurements

被引:0
|
作者
Shaoying Wang [1 ]
Zidong Wang [2 ,3 ,4 ]
Hongli Dong [5 ,6 ]
Yun Chen [7 ]
Guoping Lu [8 ]
机构
[1] the College of Science, Shandong University of Aeronautics
[2] IEEE
[3] the College of Electrical Engineering and Automation,Shandong University of Science and Technology
[4] the Department of Computer Science, Brunel University London
[5] the Artificial Intelligence Energy Research Institute,Northeast Petroleum University
[6] the Heilongjiang Provincial Key Laboratory of Networking and Intelligent Control, Northeast Petroleum University
[7] the School of Automation, Hangzhou Dianzi University
[8] the School of Electrical Engineering, Nantong University
基金
中国国家自然科学基金;
关键词
D O I
暂无
中图分类号
TN713 [滤波技术、滤波器];
学科分类号
080902 ;
摘要
This paper focuses on the quadratic nonfragile filtering problem for linear non-Gaussian systems under multiplicative noises, multiple missing measurements as well as the dynamic event-triggered transmission scheme. The multiple missing measurements are characterized through random variables that obey some given probability distributions, and thresholds of the dynamic event-triggered scheme can be adjusted dynamically via an auxiliary variable. Our attention is concentrated on designing a dynamic event-triggered quadratic nonfragile filter in the well-known minimum-variance sense. To this end, the original system is first augmented by stacking its state/measurement vectors together with second-order Kronecker powers, thus the original design issue is reformulated as that of the augmented system. Subsequently, we analyze statistical properties of augmented noises as well as high-order moments of certain random parameters. With the aid of two well-defined matrix difference equations,we not only obtain upper bounds on filtering error covariances,but also minimize those bounds via carefully designing gain parameters. Finally, an example is presented to explain the effectiveness of this newly established quadratic filtering algorithm.
引用
收藏
页码:1127 / 1138
页数:12
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