The Scale of Cosmic Isotropy
arXiv:1205.3309 · doi:10.1088/1475-7516/2012/10/036
Abstract
The most fundamental premise to the standard model of the universe, the Cosmological Principle (CP), states that the large-scale properties of the universe are the same in all directions and at all comoving positions. Demonstrating this theoretical hypothesis has proven to be a formidable challenge. The cross-over scale R_{iso} above which the galaxy distribution becomes statistically isotropic is vaguely defined and poorly (if not at all) quantified. Here we report on a formalism that allows us to provide an unambiguous operational definition and an estimate of R_{iso}. We apply the method to galaxies in the Sloan Digital Sky Survey (SDSS) Data Release 7, finding that R_{iso}\sim 150h^{-1} Mpc. Besides providing a consistency test of the Copernican principle, this result is in agreement with predictions based on numerical simulations of the spatial distribution of galaxies in cold dark matter dominated cosmological models.
15 pages, 4 figures, accepted by JCAP. The text matches the published version
References in corpus (9)
- A general test of the Copernican Principle
- The WiggleZ Dark Energy Survey: the transition to large-scale cosmic homogeneity
- Time drift of cosmological redshifts as a test of the Copernican principle
- A Test of the Copernican Principle
- Living in a Void: Testing the Copernican Principle with Distant Supernovae
- Fractal Dimensions of a Weakly Clustered Distribution and the Scale of Homogeneity
- Redshift spherical shell energy in isotropic Universes
- Second-order matter fluctuations via higher-order galaxy correlators
- Can the Copernican principle be tested by cosmic neutrino background?
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