Emergent oscillations assist obstacle negotiation during ant cooperative transport
arXiv:2107.09508 · doi:10.1038/s41567-018-0107-y
Abstract
Collective motion by animal groups is affected by internal interactions, external constraints and the influx of information. A quantitative understanding of how these different factors give rise to different modes of collective motion is, at present, lacking.} Here, we study how ants that cooperatively transport a large food item react to an obstacle blocking their path. Combining experiments with a statistical physics model of mechanically coupled active agents, we show that the constraint induces a deterministic collective oscillatory mode that facilitates obstacle circumvention. We provide direct experimental evidence, backed by theory, that this motion is an emergent group effect that does not require any behavioral changes at the individual level. We trace these relaxation oscillations to the interplay between two forces; informed ants pull the load towards the nest while uninformed ants contribute to the motion's persistence along the tangential direction. The model's predictions that oscillations appear above a critical system size, that the group can spontaneously transition into its ordered phase, and that the system can exhibit complete rotations are all verified experimentally. We expect that similar oscillatory modes emerge in collective motion scenarios where the structure of the environment imposes conflicts between individually held information and the group's tendency for cohesiveness.
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
- Phase transition in the collective migration of tissue cells: experiment and model
- Collective behavior of interacting self-propelled particles
- Does a Single Zealot Affect an Infinite Group of Voters ?
- Finite-size scaling as a way to probe near-criticality in natural swarms
- The Role of Projection in the Control of Bird Flocks
- Limit cycle phase in driven-dissipative spin systems
Cited by in corpus (21)
- Morphological computation and decentralized learning in a swarm of sterically interacting robots
- A review of active matter reviews
- Programming Active Cohesive Granular Matter with Mechanically Induced Phase Changes
- Collective predator evasion: Putting the criticality hypothesis to the test
- Underdamped Active Brownian Heat Engine
- Dynamics of active particles with translational and rotational inertia
- The 2024 Motile Active Matter Roadmap
- Guiding self-assembly of active colloids by temporal modulation of activity
- Phase Transitions and Criticality in the Collective Behavior of Animals -- Self-organization and biological function
- Apparent superballistic dynamics in one-dimensional random walks with biased detachment
- Bioinspired multi-asymmetric magnetized surfaces for tailoring energy-free liquid manipulation and 3-DOF solid transportation
- Inertial self-propelled particles in anisotropic environments
- Inertial Dynamics of Run-and-Tumble Particle
- Harmonically trapped inertial run-and-tumble particle in one dimension
- Patchy landscapes promote stability of small groups
- Collective decision-making with heterogeneous biases: Role of network topology and susceptibility
- Reinforcement Learning for Active Matter
- The Emergence of Lines of Hierarchy in Collective Motion of Biological Systems
- Self-similar inhomogeneous stationary states under constrained dynamics
- A Cooperative Contactless Object Transport with Acoustic Robots
- Micro/Nano Motor Navigation and Localization via Deep Reinforcement Learning