Exact Derivation of a Finite-Size Scaling Law and Corrections to Scaling in the Geometric Galton-Watson Process

PLoS One. 2016 Sep 1;11(9):e0161586. doi: 10.1371/journal.pone.0161586. eCollection 2016.

Abstract

The theory of finite-size scaling explains how the singular behavior of thermodynamic quantities in the critical point of a phase transition emerges when the size of the system becomes infinite. Usually, this theory is presented in a phenomenological way. Here, we exactly demonstrate the existence of a finite-size scaling law for the Galton-Watson branching processes when the number of offsprings of each individual follows either a geometric distribution or a generalized geometric distribution. We also derive the corrections to scaling and the limits of validity of the finite-size scaling law away the critical point. A mapping between branching processes and random walks allows us to establish that these results also hold for the latter case, for which the order parameter turns out to be the probability of hitting a distant boundary.

MeSH terms

  • Models, Theoretical
  • Statistics as Topic / methods*
  • Stochastic Processes
  • Thermodynamics

Grants and funding

This work was supported by FIS2012-31324, from Spanish MINECO, http://www.mineco.gob.es/portal/site/mineco/; and 2014SGR-1307, from AGAUR, http://agaur.gencat.cat/ca/inici/. MINECO (Spanish Government) and AGAUR (Catalan Government) had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.