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Delay Neural Network Security Event Triggered Filtering Unde...

Delay Neural Network Security Event Triggered Filtering Under Dos Attack

作     者:Yaru Feng Hongqian Lu 

作者单位:School of Information and Automation QiLu University Of Technology 

会议名称:《第43届中国控制会议》

会议日期:1000年

学科分类:12[管理学] 1201[管理学-管理科学与工程(可授管理学、工学学位)] 081104[工学-模式识别与智能系统] 0839[工学-网络空间安全] 08[工学] 0835[工学-软件工程] 081201[工学-计算机系统结构] 0811[工学-控制科学与工程] 0812[工学-计算机科学与技术(可授工学、理学学位)] 

关 键 词:Delayed neural networks Denial-of-Service Attack Event triggering mechanism Linear matrix inequality filter 

摘      要:Neural networks(NNs) are a type of artificial network system comprised of numerous interconnected basic processing units. In recent years, neural networks have been widely applied in computer technology, bioinformatics, image recognition,automation, and other fields, becoming an area of active research. In the relevant studies of neural networks, the filtering problem holds significant theoretical significance and practical value. This paper investigates the event-triggered filtering problem of delayed neural networks under Denial-of-Service(DoS) attacks. Firstly, a denial-of-service attack model is established;secondly,deep neural networks, event-triggering mechanisms, and denial-of-service attacks are integrated integrated into a cohesive framework, defining a switching filtering system and establishing a new filtering error model;then, using Lyapunov stability theory and Linear Matrix Inequality(LMI) techniques, the sufficient conditions for exponential mean-square stability of this mathematical model are derived. Reasonable boundary techniques are selected to handle delay-related terms in the Lyapunov-Krasowski functional derivative. Additionally, a new sufficient condition for the coordinated design of the filter and event-triggering parameters is derived in LMI form. At last, the proposed method s effectiveness has been validated through numerical examples.

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