English

Effect of scale on long-range random graphs and chromosomal inversions

Probability 2012-08-21 v3 Combinatorics

Abstract

We consider bond percolation on nn vertices on a circle where edges are permitted between vertices whose spacing is at most some number L=L(n). We show that the resulting random graph gets a giant component when L(logn)2L\gg(\log n)^2 (when the mean degree exceeds 1) but not when LlognL\ll\log n. The proof uses comparisons to branching random walks. We also consider a related process of random transpositions of nn particles on a circle, where transpositions only occur again if the spacing is at most LL. Then the process exhibits the mean-field behavior described by Berestycki and Durrett if and only if L(n) tends to infinity, no matter how slowly. Thus there are regimes where the random graph has no giant component but the random walk nevertheless has a phase transition. We discuss possible relevance of these results for a dataset coming from D. repleta and D. melanogaster and for the typical length of chromosomal inversions.

Keywords

Cite

@article{arxiv.1102.4479,
  title  = {Effect of scale on long-range random graphs and chromosomal inversions},
  author = {Nathanaël Berestycki and Richard Pymar},
  journal= {arXiv preprint arXiv:1102.4479},
  year   = {2012}
}

Comments

Published in at http://dx.doi.org/10.1214/11-AAP793 the Annals of Applied Probability (http://www.imstat.org/aap/) by the Institute of Mathematical Statistics (http://www.imstat.org)

R2 v1 2026-06-21T17:29:56.193Z