Angular systematics-free cosmological analysis of galaxy clustering in configuration space

Author:

Paviot Romain12,de la Torre Sylvain1,de Mattia Arnaud3,Zhao Cheng4,Bautista Julian2,Burtin Etienne3,Dawson Kyle5,Escoffier Stéphanie2,Jullo Eric1,Raichoor Anand4ORCID,Ross Ashley J6ORCID,Rossi Graziano7

Affiliation:

1. Aix Marseille Univ , CNRS, CNES, LAM, F-13007 Marseille, France

2. Aix Marseille Univ , CNRS/IN2P3, CPPM, F-13007 Marseille, France

3. IRFU, CEA, Université Paris-Saclay , F-91191 Gif-sur-Yvette, France

4. Institute of Physics, Laboratory of Astrophysics, École Polytechnique Fédérale de Lausanne (EPFL) , Observatoire de Sauverny, CH-290 Versoix, Switzerland

5. Department of Physics and Astronomy, University of Utah , Salt Lake City, UT 84112, USA

6. Center for Cosmology and Astro-Particle Physics Ohio State University , Columbus, OH 43210, USA

7. Department of Physics and Astronomy, Sejong University , Seoul, 143-747, Korea

Abstract

ABSTRACT Galaxy redshift surveys are subject to incompleteness and inhomogeneous sampling due to the various constraints inherent to spectroscopic observations. This can introduce systematic errors on the summary statistics of interest, which need to be mitigated in cosmological analysis to achieve high accuracy. Standard practices involve applying weighting schemes based on completeness estimates across the survey footprint, possibly supplemented with additional weighting schemes accounting for density-dependent effects. In this work, we concentrate on pure angular systematics and describe an alternative approach consisting in analysing the galaxy two-point correlation function where angular modes are nulled. By construction, this procedure removes all possible known and unknown sources of angular observational systematics, but also part of the cosmological signal. We use a modified Landy–Szalay estimator for the two-point correlation function that relies on an additional random catalogue where angular positions are randomly drawn from the galaxy catalogue, and provide an analytical model to describe this modified statistic. We test the model by performing an analysis of the full anisotropic clustering in mock catalogues of luminous red and emission-line galaxies at 0.43 < z < 1.1. We find that the model fully accounts for the modified correlation function in redshift space, without introducing new nuisance parameters. The derived cosmological parameters from the analysis of baryon acoustic oscillations and redshift-space distortions display slightly larger statistical uncertainties, mostly for the growth rate of structure parameter fσ8 that exhibits a $50{{\ \rm per\ cent}}$ statistical error increase, but free from angular systematic error.

Funder

French National Research Agency

Alfred P. Sloan Foundation

Carnegie Mellon University

Harvard-Smithsonian Center for Astrophysics

University of Tokyo

Lawrence Berkeley National Laboratory

New Mexico State University

New York University

University of Notre Dame

Pennsylvania State University

Universidad Nacional Autónoma de México

University of Arizona

University of Colorado Boulder

University of Portsmouth

University of Utah

University of Virginia

University of Washington

Vanderbilt University

Yale University

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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