Boltzmann approach to collective motion via nonlocal visual interaction
arXiv:2408.09917 · doi:10.1103/PhysRevE.111.044411
Abstract
Visual cues play crucial roles in the collective motion of animals, birds, fish, and insects. The interaction mediated by visual information is essentially non-local and has many-body nature due to occlusion, which poses a challenging problem in modeling the emergent collective behavior. In this paper, we introduce a Boltzmann-equation approach incorporating non-local visual interaction. Occlusion is treated in a self-consistent manner via a coarse-grained density field, which renders the interaction effectively pairwise. Our model also incorporates the recent finding that each organism stochastically selects a neighbor to interact at each instant. We analytically derive the order-disorder transition point, and show that the visual screening effect raises the transition threshold, which does not vanish when the density of the agents or the range of the intrinsic interaction is taken to infinity. Our analysis suggests that the model exhibits a discontinuous transition as in the local interaction models, and but the discontinuity is weakened by the non-locality. Our study clarifies the essential role of non-locality in the visual interactions among moving organisms.
13 pages, 3 figures
References in corpus (18)
- Novel type of phase transition in a system of self-driven particles
- Collective motion
- Flocks, herds, and schools: A quantitative theory of flocking
- How simple rules determine pedestrian behavior and crowd disasters
- Collective motion of self-propelled particles interacting without cohesion
- Hydrodynamic equations for self-propelled particles: microscopic derivation and stability analysis
- The Role of Projection in the Control of Bird Flocks
- Disentangling and modeling interactions in fish with burst-and-coast swimming
- Noise-Induced Schooling of Fish
- Continuous theory of active matter systems with metric-free interactions
- Zebrafish collective behaviour in heterogeneous environment modeled by a stochastic model based on visual perception
- Fluctuation-induced phase separation in metric and topological models of collective motion
- Understanding dense active nematics from microscopic models
- Comparison between Smoluchowski and Boltzmann approaches for self-propelled rods
- Numerical treatment of the Boltzmann equation for self-propelled particle systems
- Emergence of a giant rotating cluster of fish in three dimensions by local interactions
- Fluctuation-Induced First Order Transition to Collective Motion
- Selective decision-making and collective behavior of fish by the motion of visual attention