| Literature DB >> 25045193 |
Daniel Weinberg1, Doron Levy1.
Abstract
We consider a system of particles that simultaneously move on a two-dimensional periodic lattice at discrete times steps. Particles remember their last direction of movement and may either choose to continue moving in this direction, remain stationary, or move toward one of their neighbors. The form of motion is chosen based on predetermined stationary probabilities. Simulations of this model reveal a connection between these probabilities and the emerging patterns and size of aggregates. In addition, we develop a reaction diffusion master equation from which we derive a system of ODEs describing the dynamics of the particles on the lattice. Simulations demonstrate that solutions of the ODEs may replicate the aggregation patterns produced by the stochastic particle model. We investigate conditions on the parameters that influence the locations at which particles prefer to aggregate. This work is a two-dimensional generalization of [Galante & Levy, Physica D, http://dx.doi.org/10.1016/j.physd.2012.10.010], in which the corresponding one-dimensional problem was studied.Entities:
Keywords: Agent-based models; Collective motion; Group dynamics; Reaction-diffusion master equation
Year: 2014 PMID: 25045193 PMCID: PMC4100627 DOI: 10.1016/j.physd.2014.04.001
Source DB: PubMed Journal: Physica D ISSN: 0167-2789 Impact factor: 2.300