Non-symmetric interactions trigger collective swings in globally ordered systems
arXiv:1605.00986 · doi:10.1103/PhysRevLett.118.138003
Abstract
Many systems in nature, from ferromagnets to flocks of birds, exhibit ordering phenomena on the large scale. In physical systems order is statistically robust for large enough dimensions, with relative fluctuations due to noise vanishing with system size. Several biological systems, however, are less stable than their physical analogues and spontaneously change their global state on relatively short timescales. In this paper we show that there are two crucial ingredients in these systems that enhance the effect of noise, leading to collective changes of state: the non-symmetric nature of interactions between individuals, and the presence of local heterogeneities in the topology of the network. The consequences of these features can be larger the larger the system size leading to a localization of the fluctuation modes and a relaxation time that remains finite in the thermodynamic limit. The system keeps changing its global state in time, being constantly driven out of equilibrium by spontaneous fluctuations. Our results explain what is observed in several living and social systems and are consistent with recent experimental data on bird flocks and other animal groups.
References in corpus (8)
- Novel type of phase transition in a system of self-driven particles
- Interaction Ruling Animal Collective Behaviour Depends on Topological rather than Metric Distance: Evidence from a Field Study
- Flocking and turning: a new model for self-organized collective motion
- Local equilibrium in bird flocks
- Emergence of collective changes in travel direction of starling flocks from individual birds fluctuations
- Silent Flocks
- Short-range interaction vs long-range correlation in bird flocks
- Entropic forces in a non-equilibrium system: Flocks of birds
Cited by in corpus (8)
- The Emergence of Consensus: A Primer
- Nonmutual torques and the unimportance of motility for long-range order in two-dimensional flocks
- Asymmetric exchange in flocks
- Long-range Order and Directional Defect Propagation in the Nonreciprocal XY Model with Vision Cone Interactions
- Active nonreciprocal attraction between motile particles in an elastic medium
- Fore-aft asymmetric flocking
- The XY model with vision cone: non-reciprocal vs. reciprocal interactions
- Collective response to local perturbations: how to evade threats without losing coherence