Fractal space-times under the microscope: A Renormalization Group view on Monte Carlo data
Abstract
The emergence of fractal features in the microscopic structure of space-time is a common theme in many approaches to quantum gravity. In this work we carry out a detailed renormalization group study of the spectral dimension and walk dimension associated with the effective space-times of asymptotically safe Quantum Einstein Gravity (QEG). We discover three scaling regimes where these generalized dimensions are approximately constant for an extended range of length scales: a classical regime where , a semi-classical regime where , and the UV-fixed point regime where . On the length scales covered by three-dimensional Monte Carlo simulations, the resulting spectral dimension is shown to be in very good agreement with the data. This comparison also provides a natural explanation for the apparent puzzle between the short distance behavior of the spectral dimension reported from Causal Dynamical Triangulations (CDT), Euclidean Dynamical Triangulations (EDT), and Asymptotic Safety.
Cite
@article{arxiv.1110.5224,
title = {Fractal space-times under the microscope: A Renormalization Group view on Monte Carlo data},
author = {Martin Reuter and Frank Saueressig},
journal= {arXiv preprint arXiv:1110.5224},
year = {2015}
}
Comments
26 pages, 6 figures