控制理论(社会学)
同步(交流)
计算机科学
控制器(灌溉)
伯努利原理
非线性系统
伯努利分布
二部图
传输(电信)
基质(化学分析)
可靠性(半导体)
拓扑(电路)
数学
频道(广播)
工程类
控制(管理)
随机变量
理论计算机科学
物理
组合数学
图形
航空航天工程
统计
人工智能
生物
复合材料
功率(物理)
材料科学
电信
量子力学
计算机网络
农学
作者
N. Birundha Devi,Ramalingam Sakthivel,S. Priyanka,O.M. Kwon
摘要
Abstract The problem of input–output finite-time (IO-FT) bipartite synchronization for a class of nonlinear multiweighted complex dynamical networks (CDNs) in the presence of multiple coupling delays, external disturbances, and deception attacks is explored in this study. To be precise, the limited communication resources have been mitigated with the aid of undertaken hybrid triggered strategy, which reduces the unwanted network transmission and simultaneously improves the system's performance. Specifically, in the hybrid-trigger scheme, a Bernoulli distributed random variable has been employed to switch between the two communication channels. Moreover, the event-triggered scheme involving the dynamic trigger conditions is incorporated in the sensor-to-controller, which reduces the number of triggers compared to static event-triggered strategy. Further, the adequate conditions are derived in terms of linear matrix inequalities by constructing a Lyapunov–Krasovskii functional candidate. In light of this, the required parameters involved in triggering and the gain matrix are acquired by solving the developed linear matrix inequalities. Eventually, the reliability of the developed approach is verified via the illustration of two numerical examples, including the Chua's circuit with simulation verifications.
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