Glauber Dynamics for the mean-field Potts Model
Abstract
We study Glauber dynamics for the mean-field (Curie-Weiss) Potts model with states and show that it undergoes a critical slowdown at an inverse-temperature strictly lower than the critical for uniqueness of the thermodynamic limit. The dynamical critical is the spinodal point marking the onset of metastability. We prove that when the mixing time is asymptotically and the dynamics exhibits the cutoff phenomena, a sharp transition in mixing, with a window of order . At the dynamics no longer exhibits cutoff and its mixing obeys a power-law of order . For the mixing time is exponentially large in . Furthermore, as with , the mixing time interpolates smoothly from subcritical to critical behavior, with the latter reached at a scaling window of around . These results form the first complete analysis of mixing around the critical dynamical temperature --- including the critical power law --- for a model with a first order phase transition.
Keywords
Cite
@article{arxiv.1204.4503,
title = {Glauber Dynamics for the mean-field Potts Model},
author = {Paul Cuff and Jian Ding and Oren Louidor and Eyal Lubetzky and Yuval Peres and Allan Sly},
journal= {arXiv preprint arXiv:1204.4503},
year = {2015}
}
Comments
45 pages, 5 figures