Determination of the abundance of cosmic matter via the cell count moments of the galaxy distribution (1)
arXiv:1310.3196 · doi:10.1051/0004-6361/201321941
Abstract
We demonstrate that accurate and precise information about the matter content of the universe can be retrieved via a simple cell count analysis of the 3D spatial distribution of galaxies. A new clustering statistic, the {\it galaxy clustering ratio} , is the key in this process. This is defined as the ratio between one- and two-point second-order moments of the smoothed galaxy density distribution. The distinguishing feature of this statistic is its universality: on large cosmic scales both galaxies (in redshift space) and mass (in real space) display the same amplitude. This quantity, in addition, does not evolve as a function of redshift. As a consequence, the statistic provides insight into characteristic parameters of the real-space power spectrum of mass density fluctuations without the need to specify the galaxy biasing function, a model for galaxy redshift distortions nor the growing mode of density ripples. We demonstrate the method with the luminous red galaxy (LRG) sample extracted from the spectroscopic Sloan Digital Sky Survey (SDSS) data release 7 (DR7) catalogue. Taking weak (flat) priors of the curvature of the universe () and of the constant value of the dark energy equation of state (), and strong (gaussian) priors of the physical baryon density , of the Hubble constant and of the spectral index of primordial density perturbations , we estimate the abundance of matter with a relative error of 8% (). We expect that this approach will be instrumental in searching for evidence of new physics beyond the standard model of cosmology and in planning future redshift surveys such as BigBOSS or EUCLID.
This paper has been withdrawn because of duplicate version, arXiv:1210.2365
References in corpus (14)
- Dynamics of dark energy
- Dark Energy and the Accelerating Universe
- Five-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Likelihoods and Parameters from the WMAP data
- Dark Matter Candidates from Particle Physics and Methods of Detection
- Everything You Always Wanted To Know About The Cosmological Constant Problem (But Were Afraid To Ask)
- Cosmology and fundamental physics with the Euclid satellite
- A test of the nature of cosmic acceleration using galaxy redshift distortions
- Dark matter and cosmic structure
- Deuterium Abundance in the Most Metal-Poor Damped Lyman alpha System: Converging on Omega_baryons
- The Scale of Cosmic Isotropy
- Determination of the abundance of cosmic matter via the cell count moments of the galaxy distribution (1)
- The VIMOS VLT Deep Survey: Testing the gravitational instability paradigm at z ~ 1
- Second-order matter fluctuations via higher-order galaxy correlators
- Geometrical tests of cosmological models. I. Probing dark energy using the kinematics of high-redshift galaxies
Cited by in corpus (15)
- Fisher for complements: Extracting cosmology and neutrino mass from the counts-in-cells PDF
- Phenomenology of dark energy: exploring the space of theories with future redshift surveys
- Cosmological constraints from galaxy clustering in the presence of massive neutrinos
- The best fit for the observed galaxy Counts-in-Cell distribution function
- Constraining spatial curvature with large-scale structure
- The VIMOS Public Extragalactic Redshift Survey (VIPERS): from the galaxy clustering ratio measured at
- Cosmological tests of modified gravity: constraints on theories from the galaxy clustering ratio
- Cylinders out of a top hat: counts-in-cells for projected densities
- The VIMOS Public Extragalactic Redshift Survey (VIPERS). Measuring nonlinear galaxy bias at z~0.8
- The VIMOS Public Extragalactic Redshift Survey (VIPERS). Hierarchical scaling and biasing
- The VIMOS Public Extragalactic Redshift Survey (VIPERS). The matter density and baryon fraction from the galaxy power spectrum at redshift
- Determination of the abundance of cosmic matter via the cell count moments of the galaxy distribution (1)
- Halo Counts-in-cells for Cosmological Models with Different Dark Energy
- Position-dependent Voronoi probability distribution functions for matter and halos
- Bounds on galaxy stochasticity from halo occupation distribution modeling