Engineering sensorial delay to control phototaxis and emergent collective behaviors
arXiv:1511.04528 · doi:10.1103/PhysRevX.6.011008
Abstract
Collective motions emerging from the interaction of autonomous mobile individuals play a key role in many phenomena, from the growth of bacterial colonies to the coordination of robotic swarms. For these collective behaviours to take hold, the individuals must be able to emit, sense and react to signals. When dealing with simple organisms and robots, these signals are necessarily very elementary, e.g. a cell might signal its presence by releasing chemicals and a robot by shining light. An additional challenge arises because the motion of the individuals is often noisy, e.g. the orientation of cells can be altered by Brownian motion and that of robots by an uneven terrain. Therefore, the emphasis is on achieving complex and tunable behaviors from simple autonomous agents communicating with each other in robust ways. Here, we show that the delay between sensing and reacting to a signal can determine the individual and collective long-term behavior of autonomous agents whose motion is intrinsically noisy. We experimentally demonstrate that the collective behaviour of a group of phototactic robots capable of emitting a radially decaying light field can be tuned from segregation to aggregation and clustering by controlling the delay with which they change their propulsion speed in response to the light intensity they measure. We track this transition to the underlying dynamics of this system, in particular, to the ratio between the robots' sensorial delay time and the characteristic time of the robots' random reorientation. Supported by numerics, we discuss how the same mechanism can be applied to control active agents, e.g. airborne drones, moving in a three-dimensional space.
8 pages, 5 figures
References in corpus (5)
- Novel type of phase transition in a system of self-driven particles
- Self-motile colloidal particles: from directed propulsion to random walk
- Experimental study of the behavioural mechanisms underlying self-organization in human crowds
- Self-propelled particles with fluctuating speed and direction of motion
- Delay Induced Instabilities in Self-Propelling Swarms
Cited by in corpus (43)
- Active Particles in Complex and Crowded Environments
- The 2019 Motile Active Matter Roadmap
- Inertial delay of self-propelled particles
- Large-scales patterns in a minimal cognitive flocking model: incidental leaders, nematic patterns, and aggregates
- Generalized thermodynamics of Motility-Induced Phase Separation: Phase equilibria, Laplace pressure, and change of ensembles
- Feedback-Controlled Active Brownian Colloids with Space-Dependent Rotational Dynamics
- Traveling fronts in active-passive particle mixtures
- Perspectives on adaptive dynamical systems
- Chemotactic smoothing of collective migration
- Phototactic Robot Tunable by Sensorial Delays
- Heat flow due to time-delayed feedback
- Light, Matter, Action: Shining light on active matter
- Synchronization in dynamical networks of locally coupled self-propelled oscillators
- Finite-size scaling at the edge of disorder in a time-delay Vicsek model
- Cellular Sensing Governs the Stability of Chemotactic Fronts
- The 2024 Motile Active Matter Roadmap
- Influence of Sensorial Delay on Clustering and Swarming
- Self-propelling colloidal finite state machines
- Taxis of Artificial Swimmers in a Spatio-Temporally Modulated Activation Medium
- Markovian robots: minimal navigation strategies for active particles
- Collective Transport for Active Matter Run and Tumble Disk Systems on a Traveling Wave Substrate
- Polarization-Density Patterns of Active Particles in Motility Gradients
- Jerky active matter: a phase field crystal model with translational and orientational memory
- Brownian Molecules Formed by Delayed Harmonic Interactions
- Active particles in non-inertial frames: how to self-propel on a carousel
- Effects of hydrodynamic interactions on rectified transport of self-propelled particles
- Metastable Clusters and Channels Formed by Active Particles with Aligning Interactions
- Density and Polarization of Active Brownian Particles in Curved Activity Landscapes
- Active hydrodynamics of synchronization and ordering in moving oscillators
- Orbital Magnetism of Active Viscoelastic Suspension
- Persistent motion of a Brownian particle subject to repulsive feedback with time delay
- Hydrodynamic Equations for Flocking Models without Velocity Alignment
- Chemokinetic scattering, trapping, and avoidance of active Brownian particles
- Equilibrium Stochastic Delay Processes
- Non-reciprocal hidden degrees of freedom: A unifying perspective on memory, feedback, and activity
- Heat production in a stochastic system with nonlinear time-delayed feedback
- Cluster dynamics in macroscopic photoactive particles
- Visual collective behaviors on spherical robots
- Inverted Sedimentation of Active Particles in Unbiased ac Fields
- Bistability in orbital trajectories of a chiral self-propelled particle interacting with an external field
- Better stability with measurement errors
- Informational Memory Shapes Collective Behavior in Intelligent Swarms
- Delayed Active Swimmer in a Velocity Landscape