Chiral edge modes in evolutionary game theory: a kagome network of rock-paper-scissors
Abstract
We theoretically demonstrate the realization of a chiral edge mode in a system beyond natural science. Specifically, we elucidate that a kagome network of rock-paper-scissors (K-RPS) hosts a chiral edge mode of the population density which is protected by the non-trivial topology in the bulk. The emergence of the chiral edge mode is demonstrated by numerically solving the Lotka-Volterra (LV) equation. This numerical result can be intuitively understood in terms of cyclic motion of a single RPS cycle which is analogues to the cyclotron motion of fermions. Furthermore, we point out that a linearized LV equation is mathematically equivalent to the Schr\"odinger equation describing quantum systems. This equivalence allows us to clarify the topological origin of the chiral edge mode in the K-RPS; a non-zero Chern number of the payoff matrix induces the chiral edge mode of the population density, which exemplifies the bulk-edge correspondence in two-dimensional systems described by evolutionary game theory.
Keywords
Cite
@article{arxiv.2012.05562,
title = {Chiral edge modes in evolutionary game theory: a kagome network of rock-paper-scissors},
author = {Tsuneya Yoshida and Tomonari Mizoguchi and Yasuhiro Hatsugai},
journal= {arXiv preprint arXiv:2012.05562},
year = {2021}
}
Comments
7 pages, 7 figures