具有多时滞的分数阶Cohen-Grossberg神经网络的分支检测

IF 3.1 3区 工程技术 Q2 NEUROSCIENCES Cognitive Neurodynamics Pub Date : 2024-06-01 Epub Date: 2023-02-28 DOI:10.1007/s11571-023-09934-2
Chengdai Huang, Shansong Mo, Jinde Cao
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引用次数: 0

摘要

带有时间延迟的整数阶 Cohen-Grossberg 神经网络的动力学近来引起了广泛关注。它揭示了分数微积分对神经网络(NN)动力学行为的重要影响。本文讨论了具有两种不同泄漏延迟和通信延迟的分数阶科恩-格罗斯伯格神经网络(FOCGNN)的稳定性和分岔问题。首先获得了泄漏延迟的分岔结果。然后,将通信延迟视为分岔参数,以检测所处理的 FOCGNN 的分岔临界值,并获得通信延迟诱导的分岔条件。我们进一步发现,分数阶可以扩大(缩小)所求解 FOCGNN 的稳定区域。此外,我们还发现,在系统参数相同的情况下,FONN 到平衡点的收敛时间比整数阶 NN 短(长)。在本文中,由于巧妙地避开了错综复杂的分类讨论,处理延迟 FOCGNN 中带有三重超越项的特征方程的方法与之前的机制相比简洁、新颖和灵活。最后,模拟实例很好地展示了所得出的分析结果。
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Detections of bifurcation in a fractional-order Cohen-Grossberg neural network with multiple delays.

The dynamics of integer-order Cohen-Grossberg neural networks with time delays has lately drawn tremendous attention. It reveals that fractional calculus plays a crucial role on influencing the dynamical behaviors of neural networks (NNs). This paper deals with the problem of the stability and bifurcation of fractional-order Cohen-Grossberg neural networks (FOCGNNs) with two different leakage delay and communication delay. The bifurcation results with regard to leakage delay are firstly gained. Then, communication delay is viewed as a bifurcation parameter to detect the critical values of bifurcations for the addressed FOCGNN, and the communication delay induced-bifurcation conditions are procured. We further discover that fractional orders can enlarge (reduce) stability regions of the addressed FOCGNN. Furthermore, we discover that, for the same system parameters, the convergence time to the equilibrium point of FONN is shorter (longer) than that of integer-order NNs. In this paper, the present methodology to handle the characteristic equation with triple transcendental terms in delayed FOCGNNs is concise, neoteric and flexible in contrast with the prior mechanisms owing to skillfully keeping away from the intricate classified discussions. Eventually, the developed analytic results are nicely showcased by the simulation examples.

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来源期刊
Cognitive Neurodynamics
Cognitive Neurodynamics 医学-神经科学
CiteScore
6.90
自引率
18.90%
发文量
140
审稿时长
12 months
期刊介绍: Cognitive Neurodynamics provides a unique forum of communication and cooperation for scientists and engineers working in the field of cognitive neurodynamics, intelligent science and applications, bridging the gap between theory and application, without any preference for pure theoretical, experimental or computational models. The emphasis is to publish original models of cognitive neurodynamics, novel computational theories and experimental results. In particular, intelligent science inspired by cognitive neuroscience and neurodynamics is also very welcome. The scope of Cognitive Neurodynamics covers cognitive neuroscience, neural computation based on dynamics, computer science, intelligent science as well as their interdisciplinary applications in the natural and engineering sciences. Papers that are appropriate for non-specialist readers are encouraged. 1. There is no page limit for manuscripts submitted to Cognitive Neurodynamics. Research papers should clearly represent an important advance of especially broad interest to researchers and technologists in neuroscience, biophysics, BCI, neural computer and intelligent robotics. 2. Cognitive Neurodynamics also welcomes brief communications: short papers reporting results that are of genuinely broad interest but that for one reason and another do not make a sufficiently complete story to justify a full article publication. Brief Communications should consist of approximately four manuscript pages. 3. Cognitive Neurodynamics publishes review articles in which a specific field is reviewed through an exhaustive literature survey. There are no restrictions on the number of pages. Review articles are usually invited, but submitted reviews will also be considered.
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