Testing the theory of gravity with DESI: estimators, predictions and simulation requirements
Abstract
Shortly after its discovery, General Relativity (GR) was applied to predict the behavior of our Universe on the largest scales, and later became the foundation of modern cosmology. Its validity has been verified on a range of scales and environments from the Solar system to merging black holes. However, experimental confirmations of GR on cosmological scales have so far lacked the accuracy one would hope for -- its applications on those scales being largely based on extrapolation and its validity sometimes questioned in the shadow of the unexpected cosmic acceleration. Future astronomical instruments surveying the distribution and evolution of galaxies over substantial portions of the observable Universe, such as the Dark Energy Spectroscopic Instrument (DESI), will be able to measure the fingerprints of gravity and their statistical power will allow strong constraints on alternatives to GR. In this paper, based on a set of -body simulations and mock galaxy catalogs, we study the predictions of a number of traditional and novel estimators beyond linear redshift distortions in two well-studied modified gravity models, chameleon gravity and a braneworld model, and the potential of testing these deviations from GR using DESI. These estimators employ a wide array of statistical properties of the galaxy and the underlying dark matter field, including two-point and higher-order statistics, environmental dependence, redshift space distortions and weak lensing. We find that they hold promising power for testing GR to unprecedented precision. The major future challenge is to make realistic, simulation-based mock galaxy catalogs for both GR and alternative models to fully exploit the statistic power of the DESI survey and to better understand the impact of key systematic effects. Using these, we identify future simulation and analysis needs for gravity tests using DESI.
Keywords
Cite
@article{arxiv.2011.05771,
title = {Testing the theory of gravity with DESI: estimators, predictions and simulation requirements},
author = {Shadab Alam and Christian Arnold and Alejandro Aviles and Rachel Bean and Yan-Chuan Cai and Marius Cautun and Jorge L. Cervantes-Cota and Carolina Cuesta-Lazaro and N. Chandrachani Devi and Alexander Eggemeier and Sebastien Fromenteau and Alma X. Gonzalez-Morales and Vitali Halenka and Jian-hua He and Wojciech A. Hellwing and Cesar Hernandez-Aguayo and Mustapha Ishak and Kazuya Koyama and Baojiu Li and Axel de la Macorra and Jennifer Menesses Rizo and Christopher Miller and Eva-Maria Mueller and Gustavo Niz and Pierros Ntelis and Matias Rodriguez Otero and Cristiano G. Sabiu and Zachary Slepian and Alejo Stark and Octavio Valenzuela and Georgios Valogiannis and Mariana Vargas-Magana and Hans A. Winther and Pauline Zarrouk and Gong-Bo Zhao and Yi Zheng},
journal= {arXiv preprint arXiv:2011.05771},
year = {2021}
}
Comments
69 pages, 36 figures, 6 tables; accepted for publication in JCAP. The modified gravity HOD galaxy catalogues used in this paper can be downloaded from http://icc.dur.ac.uk/data/, by searching for the title of this paper from the dataset table