English

Euclid: Testing the Copernican principle with next-generation surveys

Cosmology and Nongalactic Astrophysics 2023-03-08 v2 General Relativity and Quantum Cosmology

Abstract

The Copernican principle, the notion that we are not at a special location in the Universe, is one of the cornerstones of modern cosmology and its violation would invalidate the Friedmann-Lema\^{\i}tre-Robertson-Walker (FLRW) metric, causing a major change in our understanding of the Universe. Thus, it is of fundamental importance to perform observational tests of this principle. We determine the precision with which future surveys will be able to test the Copernican principle and their ability to detect any possible violations. We forecast constraints on the inhomogeneous Lema\^{\i}tre-Tolman-Bondi model with a cosmological constant Λ\Lambda (Λ\LambdaLTB), basically a cosmological constant Λ\Lambda and cold dark matter (Λ\LambdaCDM) model, but endowed with a spherical inhomogeneity. We consider combinations of currently available data and simulated Euclid data, together with external data products, based on both Λ\LambdaCDM and Λ\LambdaLTB fiducial models. These constraints are compared to the expectations from the Copernican principle. When considering the Λ\LambdaCDM fiducial model, we find that Euclid data, in combination with other current and forthcoming surveys, will improve the constraints on the Copernican principle by about 30%30\%, with ±10%\pm10\% variations depending on the observables and scales considered. On the other hand, when considering a Λ\LambdaLTB fiducial model, we find that future Euclid data, combined with other current and forthcoming data sets, will be able to detect Gpc-scale inhomogeneities of contrast 0.1-0.1. Next-generation surveys, such as Euclid, will thoroughly test homogeneity at large scales, tightening the constraints on possible violations of the Copernican principle.

Keywords

Cite

@article{arxiv.2207.09995,
  title  = {Euclid: Testing the Copernican principle with next-generation surveys},
  author = {D. Camarena and V. Marra and Z. Sakr and S. Nesseris and A. Da Silva and J. Garcia-Bellido and P. Fleury and L. Lombriser and M. Martinelli and C. J. A. P. Martins and J. Mimoso and D. Sapone and C. Clarkson and S. Camera and C. Carbone and S. Casas and S. Ilić and V. Pettorino and I. Tutusaus and N. Aghanim and B. Altieri and A. Amara and N. Auricchio and M. Baldi and D. Bonino and E. Branchini and M. Brescia and J. Brinchmann and G. P. Candini and V. Capobianco and J. Carretero and M. Castellano and S. Cavuoti and A. Cimatti and R. Cledassou and G. Congedo and L. Conversi and Y. Copin and L. Corcione and F. Courbin and M. Cropper and H. Degaudenzi and F. Dubath and C. A. J. Duncan and X. Dupac and S. Dusini and A. Ealet and S. Farrens and P. Fosalba and M. Frailis and E. Franceschi and M. Fumana and B. Garilli and B. Gillis and C. Giocoli and A. Grazian and F. Grupp and S. V. H. Haugan and W. Holmes and F. Hormuth and A. Hornstrup and K. Jahnke and A. Kiessling and R. Kohley and M. Kunz and H. Kurki-Suonio and P. B. Lilje and I. Lloro and O. Mansutti and O. Marggraf and F. Marulli and R. Massey and M. Meneghetti and E. Merlin and G. Meylan and M. Moresco and L. Moscardini and E. Munari and S. M. Niemi and C. Padilla and S. Paltani and F. Pasian and K. Pedersen and G. Polenta and M. Poncet and L. Popa and L. Pozzetti and F. Raison and R. Rebolo and J. Rhodes and G. Riccio and Hans-Walter Rix and E. Rossetti and R. Saglia and B. Sartoris and A. Secroun and G. Seidel and C. Sirignano and G. Sirri and L. Stanco and C. Surace and P. Tallada-Crespí and A. N. Taylor and I. Tereno and R. Toledo-Moreo and F. Torradeflot and E. A. Valentijn and L. Valenziano and Y. Wang and G. Zamorani and J. Zoubian and S. Andreon and D. Di Ferdinando and V. Scottez and M. Tenti},
  journal= {arXiv preprint arXiv:2207.09995},
  year   = {2023}
}

Comments

15 pages, 5 figures, 3 tables, v2 reflects version accepted for publication in A&A

R2 v1 2026-06-25T01:05:15.180Z