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检测集体运动中的切换领导。

Detecting switching leadership in collective motion.

机构信息

Department of Mechanical Engineering, Northern Illinois University, DeKalb, Illinois 60115, USA.

Department of Mechanical and Aerospace Engineering and Department of Biomedical Engineering, New York University, Tandon School of Engineering, Brooklyn, New York 11201, USA.

出版信息

Chaos. 2019 Jan;29(1):011102. doi: 10.1063/1.5079869.

Abstract

Detecting causal relationships in complex systems from the time series of the individual units is a pressing area of research that has attracted the interest of a broad community. As an open area of study, this entails the development of methodologies to unravel causal relationships that evolve over time, such as switching of leader-follower roles in animal groups. Here, we augment the information theoretic measure of transfer entropy to establish a fitness function suitable for optimal partitioning of time series data to robustly detect leadership switches in collective behavior. The fitness function computes the information outflow from any agent in the group and rewards large sample sizes while normalizing with respect to available information. Our results indicate that for information-rich interactions, leadership switches within a group can be detected over relatively short time durations, with more than 90% accuracy. On a real soccer dataset, instances of leadership counted using the proposed approach are interestingly correlated with ball possession.

摘要

从个体单元的时间序列中检测复杂系统中的因果关系是一个紧迫的研究领域,引起了广泛关注。作为一个开放的研究领域,这需要开发方法来揭示随时间演变的因果关系,例如动物群体中领导者-跟随者角色的切换。在这里,我们扩展了转移熵的信息论度量方法,以建立一个适合最优分割时间序列数据的适应度函数,以稳健地检测集体行为中的领导切换。适应度函数计算任何组内代理的信息流,并对大样本量进行奖励,同时相对于可用信息进行归一化。我们的结果表明,对于信息丰富的相互作用,在相对较短的时间内可以检测到组内的领导切换,准确率超过 90%。在一个真实的足球数据集上,使用所提出的方法计算的领导实例与控球数有趣地相关。

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