Cosmology with the Roman Space Telescope – multiprobe strategies

Author:

Eifler Tim1ORCID,Miyatake Hironao2345ORCID,Krause Elisabeth16,Heinrich Chen2,Miranda Vivian1,Hirata Christopher7,Xu Jiachuan1,Hemmati Shoubaneh3,Simet Melanie28,Capak Peter9,Choi Ami7,Doré Olivier210,Doux Cyrille11ORCID,Fang Xiao1ORCID,Hounsell Rebekah1213,Huff Eric2,Huang Hung-Jin1ORCID,Jarvis Mike11,Kruk Jeffrey13,Masters Dan2,Rozo Eduardo6,Scolnic Dan14ORCID,Spergel David N1516,Troxel Michael14ORCID,von der Linden Anja17,Wang Yun9,Weinberg David H7,Wenzl Lukas18,Wu Hao-Yi7ORCID

Affiliation:

1. Department of Astronomy/Steward Observatory, University of Arizona, 933 North Cherry Avenue, Tucson, AZ 85721-0065, USA

2. Jet Propulsion Laboratory, California Institute of Technology, Pasadena, CA 91109, USA

3. Institute for Advanced Research, Nagoya University, Nagoya 464-8601, Japan

4. Division of Physics and Astrophysical Science, Graduate School of Science, Nagoya University, Nagoya 464-8602, Japan

5. Kavli IPMU (WPI), UTIAS, The University of Tokyo, Chiba 277-8583, Japan

6. Department of Physics, University of Arizona, 1118 E Fourth Str, Tucson, AZ 85721, USA

7. Center for Cosmology and AstroParticle Physics, The Ohio State University, 191 West Woodruff Avenue, Columbus, OH 43210, USA

8. University of California Riverside, 900 University Ave, Riverside, CA 92521, USA

9. IPAC, California Institute of Technology, Pasadena, CA 91125, USA

10. California Institute of Technology, 1200 E. California Blvd, Pasadena, CA 91125, USA

11. Department of Physics and Astronomy, University of Pennsylvania, Philadelphia, PA 19104, USA

12. University of Maryland, Baltimore County, Baltimore, MD 21250, USA

13. NASA Goddard Space Flight Center, Greenbelt, MD 20771, USA

14. Department of Physics, Duke University, Durham, NC 27708, USA

15. Center for Computational Astrophysics, Flatiron Institute, New York, NY 10010, USA

16. Department of Astrophysical Sciences, Princeton University, Princeton, NJ 08544, USA

17. Department of Physics and Astronomy, Stony Brook University, Stony Brook, NY 11794, USA

18. Department of Astronomy, Cornell University, Ithaca, NY 14853, USA

Abstract

ABSTRACT We simulate the scientific performance of the Nancy Grace Roman Space Telescope High Latitude Survey (HLS) on dark energy and modified gravity. The 1.6-yr HLS Reference survey is currently envisioned to image 2000 deg2 in multiple bands to a depth of ∼26.5 in Y, J, H and to cover the same area with slit-less spectroscopy beyond z = 3. The combination of deep, multiband photometry and deep spectroscopy will allow scientists to measure the growth and geometry of the Universe through a variety of cosmological probes (e.g. weak lensing, galaxy clusters, galaxy clustering, BAO, Type Ia supernova) and, equally, it will allow an exquisite control of observational and astrophysical systematic effects. In this paper, we explore multiprobe strategies that can be implemented, given the telescope’s instrument capabilities. We model cosmological probes individually and jointly and account for correlated systematics and statistical uncertainties due to the higher order moments of the density field. We explore different levels of observational systematics for the HLS survey (photo-z and shear calibration) and ultimately run a joint likelihood analysis in N-dim parameter space. We find that the HLS reference survey alone can achieve a standard dark energy FoM of >300 when including all probes. This assumes no information from external data sets, we assume a flat universe however, and includes realistic assumptions for systematics. Our study of the HLS reference survey should be seen as part of a future community-driven effort to simulate and optimize the science return of the Roman Space Telescope.

Funder

Simons Foundation

University of Arizona

JSPS

National Aeronautics and Space Administration

MEXT

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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