Department of Engineering Mathematics, University of Bristol, UK.
Department of Mechanical and Aerospace Engineering, New York University Tandon School of Engineering, USA.
J Theor Biol. 2018 Apr 14;443:39-51. doi: 10.1016/j.jtbi.2018.01.011. Epub 2018 Jan 31.
Zebrafish are rapidly emerging as a powerful model organism in hypothesis-driven studies targeting a number of functional and dysfunctional processes. Mathematical models of zebrafish behaviour can inform the design of experiments, through the unprecedented ability to perform pilot trials on a computer. At the same time, in-silico experiments could help refining the analysis of real data, by enabling the systematic investigation of key neurobehavioural factors. Here, we establish a data-driven model of zebrafish social interaction. Specifically, we derive a set of interaction rules to capture the primary response mechanisms which have been observed experimentally. Contrary to previous studies, we include dynamic speed regulation in addition to turning responses, which together provide attractive, repulsive and alignment interactions between individuals. The resulting multi-agent model provides a novel, bottom-up framework to describe both the spontaneous motion and individual-level interaction dynamics of zebrafish, inferred directly from experimental observations.
斑马鱼作为一种强大的模式生物,在针对许多功能和功能障碍过程的假设驱动研究中迅速崭露头角。斑马鱼行为的数学模型可以通过在计算机上进行前所未有的初步试验,为实验设计提供信息。同时,计算机实验可以通过系统地研究关键神经行为因素,帮助完善对真实数据的分析。在这里,我们建立了一个基于数据的斑马鱼社会互动模型。具体来说,我们得出了一组交互规则,以捕获实验中观察到的主要反应机制。与以前的研究不同,我们除了转向反应外还包括动态速度调节,这两者共同提供了个体之间的吸引、排斥和对齐相互作用。由此产生的多主体模型为描述斑马鱼的自发运动和个体水平相互作用动力学提供了一个新颖的、自下而上的框架,这些都是直接从实验观察中推断出来的。