The completed SDSS-IV extended baryon oscillation spectroscopic survey: pairwise-inverse probability and angular correction for fibre collisions in clustering measurements

Author:

Mohammad Faizan G12,Percival Will J123,Seo Hee-Jong4ORCID,Chapman Michael J12,Bianchi D5,Ross Ashley J6ORCID,Zhao Cheng7ORCID,Lang Dustin3,Bautista Julian8ORCID,Brinkmann Jonathan9,Brownstein Joel R10ORCID,Burtin Etienne11,Chuang Chia-Hsun12ORCID,Dawson Kyle S10,de la Torre Sylvain13,de Mattia Arnaud11,Eftekharzadeh Sarah10,Fromenteau Sebastien14ORCID,Gil-Marín Héctor515ORCID,Hou Jiamin16,Mueller Eva-Maria178,Neveux Richard11,Paviot Romain13,Raichoor Anand7,Rossi Graziano18,Schneider Donald P1920,Tamone Amélie7,Tinker Jeremy L21ORCID,Tojeiro Rita22ORCID,Vargas Magaña Mariana23,Zhao Gong-Bo2425

Affiliation:

1. Waterloo Centre for Astrophysics, Department of Physics and Astronomy, University of Waterloo, Waterloo, ON N2L 3G1, Canada

2. Department of Physics and Astronomy, University of Waterloo, Waterloo, ON N2L 3G1, Canada

3. Perimeter Institute for Theoretical Physics, 31 Caroline St North, Waterloo, ON N2L 2Y5, Canada

4. Department of Physics and Astronomy, Ohio University, 251B Clippinger Labs, Athens, OH 45701, USA

5. Institut de Ciències del Cosmos, Universitat de Barcelona, ICCUB, Martí i Franquès 1, E-08028 Barcelona, Spain

6. Center for Cosmology and AstroParticle Physics, Ohio State University, Columbus, OH 43210, USA

7. Institute of Physics, Laboratory of Astrophysics, École Polytechnique Fédérale de Lausanne (EPFL), Observatoire de Sauverny, CH-1290 Versoix, Switzerland

8. Institute of Cosmology & Gravitation, Dennis Sciama Building, University of Portsmouth, Portsmouth PO1 3FX, UK

9. Apache Point Observatory and New Mexico State University, P.O. Box 59, Sunspot, NM 88349, USA

10. Department Physics and Astronomy, University of Utah, 115 S 1400 E, Salt Lake City, UT 84112, USA

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

12. Kavli Institute for Particle Astrophysics and Cosmology, Stanford University, 452 Lomita Mall, Stanford, CA 94305, USA

13. Aix Marseille Univ, CNRS, CNES, LAM, F-13388 Marseille, France

14. Instituto de Ciencias Físicas, Universidad Nacional Autónoma de México, Av. Universidad s/n, 62210 Cuernavaca, Mor., México

15. Institut d’Estudis Espacials de Catalunya (IEEC), E-08034 Barcelona, Spain

16. Max-Planck-Institut für Extraterrestrische Physik, Postfach 1312, Giessenbachstr, D-85748 Garching bei München, Germany

17. Department of Physics, University of Oxford, Denys Wilkinson Building, Keble Road, Oxford OX1 3RH, UK

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

19. Department of Astronomy and Astrophysics, The Pennsylvania State University, University Park, PA 16802, USA

20. Institute for Gravitation and the Cosmos, The Pennsylvania State University, University Park, PA 16802, USA

21. Center for Cosmology and Particle Physics, Department of Physics, New York University, New York, NY 10003, USA

22. School of Physics and Astronomy, University of St Andrews, St Andrews KY16 9SS, UK

23. Instituto de Física, Universidad Nacional Autónoma de México, Apdo. Postal 20-364, 04510 Ciudad de México, México

24. National Astronomy Observatories, Chinese Academy of Science, Beijing 100101, P.R. China

25. School of Astronomy and Space Science, University of Chinese Academy of Sciences, Beijing 100049, P.R. China

Abstract

ABSTRACT The completed extended Baryon Oscillation Spectroscopic Survey (eBOSS) catalogues contain redshifts of 344 080 quasars at 0.8 < z < 2.2, 174 816 luminous red galaxies between 0.6 < z < 1.0, and 173 736 emission-line galaxies over 0.6 < z < 1.1 in order to constrain the expansion history of the Universe and the growth rate of structure through clustering measurements. Mechanical limitations of the fibre-fed spectrograph on the Sloan telescope prevent two fibres being placed closer than 62 arcsec in a single pass of the instrument. These ‘fibre collisions’ strongly correlate with the intrinsic clustering of targets and can bias measurements of the two-point correlation function resulting in a systematic error on the inferred values of the cosmological parameters. We combine the new techniques of pairwise-inverse probability and the angular upweighting (PIP+ANG) to correct the clustering measurements for the effect of fibre collisions. Using mock catalogues, we show that our corrections provide unbiased measurements, within data precision, of both the projected $\rm {\mathit{ w}_p}\left(\mathit{ r}_p\right)$ and the redshift-space multipole ξ(ℓ = 0, 2, 4)(s) correlation functions down to $0.1\, h^{-1}{\rm Mpc}$, regardless of the tracer type. We apply the corrections to the eBOSS DR16 catalogues. We find that, on scales $s\gtrsim 20\, h^{-1}{\rm Mpc}$ for ξℓ, as used to make baryon acoustic oscillation and large-scale redshift-space distortion measurements, approximate methods such as nearest-neighbour upweighting are sufficiently accurate given the statistical errors of the data. Using the PIP method, for the first time for a spectroscopic program of the Sloan Digital Sky Survey, we are able to successfully access the one-halo term in the clustering measurements down to $\sim 0.1\, h^{-1}{\rm Mpc}$ scales. Our results will therefore allow studies that use the small-scale clustering to strengthen the constraints on both cosmological parameters and the halo occupation distribution models.

Funder

Government of Canada

U.S. Department of Energy

Office of Science

High Energy Physics

Alfred P. Sloan Foundation

H2020 European Research Council

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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