具有连续领导者-追随者转换的蜂群动力学动力学描述和宏观极限

IF 4.4 2区 数学 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Mathematics and Computers in Simulation Pub Date : 2024-09-19 DOI:10.1016/j.matcom.2024.09.006
Emiliano Cristiani , Nadia Loy , Marta Menci , Andrea Tosin
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引用次数: 0

摘要

在本文中,我们推导出了在一个以新出现的领导者和追随者为特征的交互式多代理系统中蜂拥粒子动力学的动力学描述。代理的经典特征是其位置和速度,加上一个量化其领导程度的连续参数。在物理空间中,支配速度和领导程度变化的微观过程是独立的、非保守的和非局部的,以便考虑长程相互作用。从动力学描述中,我们得到了一个流体力学极限下的宏观模型,该模型类似于用于处理弱耗散颗粒气体流体力学的模型,因此特别依赖于小的非保守和短程相互作用机制。一维和二维域中的数值模拟表明,极限宏观模型与原始粒子动力学是一致的,而且能再现通常在蜂群中观察到的经典出现模式。
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Kinetic description and macroscopic limit of swarming dynamics with continuous leader–follower transitions
In this paper, we derive a kinetic description of swarming particle dynamics in an interacting multi-agent system featuring emerging leaders and followers. Agents are classically characterized by their position and velocity plus a continuous parameter quantifying their degree of leadership. The microscopic processes ruling the change of velocity and degree of leadership are independent, non-conservative and non-local in the physical space, so as to account for long-range interactions. Out of the kinetic description, we obtain then a macroscopic model under a hydrodynamic limit reminiscent of that used to tackle the hydrodynamics of weakly dissipative granular gases, thus relying in particular on a regime of small non-conservative and short-range interactions. Numerical simulations in one- and two-dimensional domains show that the limiting macroscopic model is consistent with the original particle dynamics and furthermore can reproduce classical emerging patterns typically observed in swarms.
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来源期刊
Mathematics and Computers in Simulation
Mathematics and Computers in Simulation 数学-计算机:跨学科应用
CiteScore
8.90
自引率
4.30%
发文量
335
审稿时长
54 days
期刊介绍: The aim of the journal is to provide an international forum for the dissemination of up-to-date information in the fields of the mathematics and computers, in particular (but not exclusively) as they apply to the dynamics of systems, their simulation and scientific computation in general. Published material ranges from short, concise research papers to more general tutorial articles. Mathematics and Computers in Simulation, published monthly, is the official organ of IMACS, the International Association for Mathematics and Computers in Simulation (Formerly AICA). This Association, founded in 1955 and legally incorporated in 1956 is a member of FIACC (the Five International Associations Coordinating Committee), together with IFIP, IFAV, IFORS and IMEKO. Topics covered by the journal include mathematical tools in: •The foundations of systems modelling •Numerical analysis and the development of algorithms for simulation They also include considerations about computer hardware for simulation and about special software and compilers. The journal also publishes articles concerned with specific applications of modelling and simulation in science and engineering, with relevant applied mathematics, the general philosophy of systems simulation, and their impact on disciplinary and interdisciplinary research. The journal includes a Book Review section -- and a "News on IMACS" section that contains a Calendar of future Conferences/Events and other information about the Association.
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