数学
独特性
人工神经网络
终端(电信)
插值(计算机图形学)
二次方程
控制理论(社会学)
理论(学习稳定性)
平衡点
区间(图论)
常微分方程
线性矩阵不等式
凸组合
应用数学
正多边形
数学分析
凸优化
计算机科学
数学优化
微分方程
组合数学
控制(管理)
人工智能
运动(物理)
电信
几何学
机器学习
出处
期刊:AIMS mathematics
[American Institute of Mathematical Sciences]
日期:2023-01-01
卷期号:8 (8): 17744-17764
被引量:2
摘要
<abstract><p>In the paper, the existence and uniqueness of the equilibrium point in the Cohen-Grossberg neural network (CGNN) are first studied. Additionally, a switched Cohen-Grossberg neural network (SCGNN) model with time-varying delay is established by introducing a switched system to the CGNN. Based on reducing the conservativeness of the system, a flexible terminal interpolation method is proposed. Using an adjustable parameter to divide the invariant time-delay interval into multiple adjustable terminal interpolation intervals $ (2^{\imath +1}-3) $, more moments when signals are transmitted slowly can be captured. To this end, a new Lyapunov-Krasovskii functional (LKF) is constructed, and the stability of SCGNN can be estimated. Using the LKF method, a quadratic convex inequality, linear matrix inequalities (LMIs) and ordinary differential equation theory, a new form of stability criterion is obtained and specific instances are given to prove the applicability of the new stability criterion.</p></abstract>
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