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Upper bounds on Liouville first passage percolation and Watabiki's prediction

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arxiv 1610.09998 v4 pith:OVCPDPU2 submitted 2016-10-31 math.PR

classification math.PR
keywords mathcaldeltaliouvillegammadistancefirstgaussianpassage
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abstract

Given a planar continuum Gaussian free field $h^{\mathcal U}$ in a domain $\mathcal U$ with Dirichlet boundary condition and any $\delta>0$, we let $\{h_\delta^{\mathcal U}(v): v\in \mathcal U\}$ be a real-valued smooth Gaussian process where $h_\delta^{\mathcal U}(v)$ is the average of $h^{\mathcal U}$ along a circle of radius $\delta$ with center $v$. For $\gamma > 0$, we study the Liouville first passage percolation (in scale $\delta$), i.e., the shortest path distance in $\mathcal U$ where the weight of each path $P$ is given by $\int_P \mathrm{e}^{\gamma h_\delta^{\mathcal U}(z)} |dz|$. We show that the distance between two typical points is $O(\delta^{c^* \gamma^{4/3}/\log \gamma^{-1}})$ for all sufficiently small but fixed $\gamma>0$ and some constant $c^* > 0$. In addition, we obtain similar upper bounds on the Liouville first passage percolation for discrete Gaussian free fields, as well as the Liouville graph distance which roughly speaking is the minimal number of Euclidean balls with comparable Liouville quantum gravity measure whose union contains a continuous path between two endpoints. Our results contradict with some reasonable interpretations of Watabiki's prediction (1993) on the random distance of Liouville quantum gravity at high temperatures.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Precision measurements of Hausdorff dimensions in two-dimensional quantum gravity

    gr-qc 2019-08 conditional novelty 6.0 of 10

    Simulations of random planar maps and discrete Liouville quantum gravity contradict Watabiki's formula for the Hausdorff dimension and support the Ding-Gwynne formula for central charges in [-12.5, 0).

  2. Random surfaces and Liouville quantum gravity

    math.PR 2019-08 unverdicted

    An expository overview of the definition of Liouville quantum gravity surfaces, the three senses in which random planar maps converge to them, and the major open problems.

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