Asymmetric Interactions Induce Bistability and Switching Behavior in Models of Collective Motion

D. Strömbom, Grace Tulevech, R. Giunta, Zachary Cullen
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引用次数: 2

Abstract

Moving animal groups often spontaneously change their group structure and dynamics, but standard models used to explain collective motion in animal groups are typically unable to generate changes of this type. Recently, a model based on attraction, repulsion and asymmetric interactions designed for specific fish experiments was shown capable of producing such changes. However, the origin of the model’s ability to generate them, and the range of this capacity, remains unknown. Here we modify and extend this model to address these questions. We establish that its ability to generate groups exhibiting changes depends on the size of the blind zone parameter β. Specifically, we show that for small β swarms and mills are generated, for larger β polarized groups forms, and for a region of intermediate β values there is a bistability region where continuous switching between milling and polarized groups occurs. We also show that the location of the bistability region depends on group size and the relative strength of velocity alignment when this interaction is added to the model. These findings may contribute to advance the use of self-propelled particle models to explain a range of disruptive phenomena previously thought to be beyond the capabilities of such models.
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非对称相互作用诱导集体运动模型中的双稳态和切换行为
运动的动物群体经常自发地改变它们的群体结构和动态,但用于解释动物群体集体运动的标准模型通常无法产生这种类型的变化。最近,一个基于吸引力、排斥力和不对称相互作用的模型被证明能够产生这种变化。然而,该模型产生它们的能力的起源,以及这种能力的范围,仍然是未知的。这里我们修改和扩展这个模型来解决这些问题。我们确定其产生具有变化的群的能力取决于盲区参数β的大小。具体来说,我们证明了对于小的β群和铣削产生,对于较大的β极化群形成,对于中间β值区域存在一个双稳定区域,在该区域内铣削和极化群之间发生连续切换。我们还表明,当这种相互作用被添加到模型中时,双稳区域的位置取决于群体大小和速度对准的相对强度。这些发现可能有助于推进自推进粒子模型的使用,以解释以前认为超出此类模型能力的一系列破坏性现象。
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