Symbolic dynamics of joint brain states during dyadic coordination.

IF 2.7 2区 数学 Q1 MATHEMATICS, APPLIED
Chaos Pub Date : 2025-01-01 DOI:10.1063/5.0234902
Italo Ivo Lima Dias Pinto, Zhibin Zhou, Javier Omar Garcia, Ramesh Srinivasan
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Abstract

We propose a novel approach to investigate the brain mechanisms that support coordination of behavior between individuals. Brain states in single individuals defined by the patterns of functional connectivity between brain regions are used to create joint symbolic representations of brain states in two or more individuals to investigate symbolic dynamics that are related to interactive behaviors. We apply this approach to electroencephalographic data from pairs of subjects engaged in two different modes of finger-tapping coordination tasks (synchronization and syncopation) under different interaction conditions (uncoupled, leader-follower, and mutual) to explore the neural mechanisms of multi-person motor coordination. Our results reveal that dyads exhibit mostly the same joint symbols in different interaction conditions-the most important differences are reflected in the symbolic dynamics. Recurrence analysis shows that interaction influences the dwell time in specific joint symbols and the structure of joint symbol sequences (motif length). In synchronization, increasing feedback promotes stability with longer dwell times and motif length. In syncopation, leader-follower interactions enhance stability (increase dwell time and motif length), but mutual interaction dramatically reduces stability. Network analysis reveals distinct topological changes with task and feedback. In synchronization, stronger coupling stabilizes a few states, preserving a core-periphery structure of the joint brain states while in syncopation we observe a more distributed flow amongst a larger set of joint brain states. This study introduces symbolic representations of metastable joint brain states and associated analytic tools that have the potential to expand our understanding of brain dynamics in human interaction and coordination.

二元协调过程中关节脑状态的符号动力学。
我们提出了一种新方法来研究支持个体间行为协调的大脑机制。根据脑区之间的功能连接模式定义的单个个体的大脑状态被用来创建两个或更多个体大脑状态的联合符号表征,以研究与互动行为相关的符号动态。我们将这种方法应用于在不同互动条件(无耦合、领导-追随者和相互)下参与两种不同模式的手指敲击协调任务(同步和切分)的成对受试者的脑电数据,以探索多人运动协调的神经机制。我们的研究结果表明,在不同的互动条件下,二人组表现出的联合符号基本相同--最重要的差异体现在符号动态上。递归分析表明,互动会影响特定联合符号的停留时间和联合符号序列的结构(图案长度)。在同步中,反馈的增加会促进停留时间和图案长度的稳定。在切分音中,领导者与跟随者之间的互动会增强稳定性(增加停留时间和图案长度),但相互之间的互动会显著降低稳定性。网络分析揭示了任务和反馈所带来的截然不同的拓扑变化。在同步过程中,更强的耦合会稳定少数状态,从而保持大脑联合状态的核心-外围结构;而在切分过程中,我们观察到大脑联合状态在更大范围内的分布式流动。本研究介绍了可变联合大脑状态的符号表示法和相关分析工具,这些工具有望拓展我们对人际互动和协调中大脑动态的理解。
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
Chaos
Chaos 物理-物理:数学物理
CiteScore
5.20
自引率
13.80%
发文量
448
审稿时长
2.3 months
期刊介绍: Chaos: An Interdisciplinary Journal of Nonlinear Science is a peer-reviewed journal devoted to increasing the understanding of nonlinear phenomena and describing the manifestations in a manner comprehensible to researchers from a broad spectrum of disciplines.
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