Multistable Synaptic Plasticity Induces Memory Effects and Cohabitation of Chimera and Bump States in Leaky Integrate-and-Fire Networks.

IF 2.1 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Entropy Pub Date : 2025-02-28 DOI:10.3390/e27030257
Astero Provata, Yannis Almirantis, Wentian Li
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Abstract

Chimera states and bump states are collective synchronization phenomena observed independently (in different parameter regions) in networks of coupled nonlinear oscillators. And while chimera states are characterized by coexistence of coherent and incoherent domains, bump states consist of alternating active and inactive domains. The idea of multistable plasticity in the network connections originates from brain dynamics where the strength of the synapses (axons) connecting the network nodes (neurons) may change dynamically in time; when reaching the steady state the network connections may be found in one of many possible values depending on various factors, such as local connectivity, influence of neighboring cells etc. The sign of the link weights is also a significant factor in the network dynamics: positive weights are characterized as excitatory connections and negative ones as inhibitory. In the present study we consider the simplest case of bistable plasticity, where the link dynamics has only two fixed points. During the system/network integration, the link weights change and as a consequence the network organizes in excitatory or inhibitory domains characterized by different synaptic strengths. We specifically explore the influence of bistable plasticity on collective synchronization states and we numerically demonstrate that the dynamics of the linking may, under special conditions, give rise to co-existence of bump-like and chimera-like states simultaneously in the network. In the case of bump and chimera co-existence, confinement effects appear: the different domains stay localized and do not travel around the network. Memory effects are also reported in the sense that the final spatial arrangement of the coupling strengths reflects some of the local properties of the initial link distribution. For the quantification of the system's spatial and temporal features, the global and local entropy functions are employed as measures of the network organization, while the average firing rates account for the network evolution and dynamics. In particular, the spatial minima of the local entropy designate the transition points between domains of different synaptic weights in the hybrid states, while the number of minima corresponds to the number of different domains. In addition, the entropy deviations signify the presence of chimera-like or bump-like states in the network.

多稳定突触可塑性诱导记忆效应及嵌合体和碰撞状态共存的渗漏整合-激发网络。
嵌合态和碰撞态是耦合非线性振子网络中独立观察到的(在不同参数区域)集体同步现象。嵌合体态的特征是相干域和非相干域的共存,而碰撞态则由活跃域和非活跃域交替组成。网络连接的多稳定可塑性的想法源于大脑动力学,其中连接网络节点(神经元)的突触(轴突)的强度可能随时间动态变化;当达到稳定状态时,根据各种因素,如本地连通性、相邻单元的影响等,网络连接可能处于许多可能值中的一个。链路权值的符号也是网络动力学的一个重要因素:正权值表征为兴奋性连接,负权值表征为抑制性连接。在本研究中,我们考虑最简单的双稳塑性情况,其中连杆动力学只有两个不动点。在系统/网络整合过程中,链路权重发生变化,从而导致网络在以不同突触强度为特征的兴奋性或抑制性区域组织。我们具体探讨了双稳塑性对集体同步状态的影响,并通过数值证明,在特殊条件下,连接的动力学可能会导致网络中同时存在类碰撞和类嵌合体状态。在碰撞和嵌合体共存的情况下,约束效应出现了:不同的域保持在局部,不会在网络中传播。记忆效应也在某种意义上被报道,即耦合强度的最终空间排列反映了初始链路分布的一些局部特性。为了量化系统的时空特征,采用全局和局部熵函数作为网络组织的度量,而平均发射率则反映了网络的演化和动态。其中,局部熵的空间极小值表示混合状态下不同突触权值域之间的过渡点,极小值的个数对应不同域的个数。此外,熵偏差表示网络中存在嵌合体或凹凸状态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Entropy
Entropy PHYSICS, MULTIDISCIPLINARY-
CiteScore
4.90
自引率
11.10%
发文量
1580
审稿时长
21.05 days
期刊介绍: Entropy (ISSN 1099-4300), an international and interdisciplinary journal of entropy and information studies, publishes reviews, regular research papers and short notes. Our aim is to encourage scientists to publish as much as possible their theoretical and experimental details. There is no restriction on the length of the papers. If there are computation and the experiment, the details must be provided so that the results can be reproduced.
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