English

Probing gravity with the DES-CMASS sample and BOSS spectroscopy

Cosmology and Nongalactic Astrophysics 2021-11-17 v2

Abstract

The DES-CMASS sample (DMASS) is designed to optimally combine the weak lensing measurements from the Dark Energy Survey (DES) and redshift-space distortions (RSD) probed by the CMASS galaxy sample from the Baryonic Oscillation Spectroscopic Survey (BOSS). In this paper, we demonstrate the feasibility of adopting DMASS as the equivalent of BOSS CMASS for a joint analysis of DES and BOSS in the framework of modified gravity. We utilize the angular clustering of the DMASS galaxies, cosmic shear of the DES METACALIBRATION sources, and cross-correlation of the two as data vectors. By jointly fitting the combination of the data with the RSD measurements from the BOSS CMASS sample and Planck data, we obtain the constraints on modified gravity parameters μ0=0.370.45+0.47\mu_0 = -0.37^{+0.47}_{-0.45} and Σ0=0.0780.082+0.078\Sigma_0 = 0.078^{+0.078}_{-0.082}. We do not detect any significant deviation from General Relativity. Our constraints of modified gravity measured with DMASS are tighter than those with the DES Year 1 redMaGiC galaxy sample with the same external data sets by 29%29\% for μ0\mu_0 and 21%21\% for Σ0\Sigma_0, and comparable to the published results of the DES Year 1 modified gravity analysis despite this work using fewer external data sets. This improvement is mainly because the galaxy bias parameter is shared and more tightly constrained by both CMASS and DMASS, effectively breaking the degeneracy between the galaxy bias and other cosmological parameters. Such an approach to optimally combine photometric and spectroscopic surveys using a photometric sample equivalent to a spectroscopic sample can be applied to combining future surveys having a limited overlap such as DESI and LSST.

Keywords

Cite

@article{arxiv.2104.14515,
  title  = {Probing gravity with the DES-CMASS sample and BOSS spectroscopy},
  author = {S. Lee and E. M. Huff and A. Choi and J. Elvin-Poole and C. Hirata and K. Honscheid and N. MacCrann and A. J. Ross and M. A. Troxel and T. F. Eifler and H. Kong and A. Ferté and J. Blazek and D. Huterer and A. Amara and A. Campos and A. Chen and S. Dodelson and P. Lemos and C. D. Leonard and V. Miranda and J. Muir and M. Raveri and L. F. Secco and N. Weaverdyck and J. Zuntz and S. L. Bridle and C. Davis and J. DeRose and M. Gatti and J. Prat and M. M. Rau and S. Samuroff and C. Sánchez and P. Vielzeuf and M. Aguena and S. Allam and A. Amon and F. Andrade-Oliveira and G. M. Bernstein and E. Bertin and D. Brooks and D. L. Burke and A. Carnero Rosell and M. Carrasco Kind and J. Carretero and F. J. Castander and R. Cawthon and C. Conselice and M. Costanzi and L. N. da Costa and M. E. S. Pereira and J. De Vicente and S. Desai and H. T. Diehl and J. P. Dietrich and P. Doel and S. Everett and A. E. Evrard and I. Ferrero and P. Fosalba and J. Frieman and J. García-Bellido and E. Gaztanaga and D. W. Gerdes and T. Giannantonio and D. Gruen and R. A. Gruendl and J. Gschwend and G. Gutierrez and W. G. Hartley and S. R. Hinton and D. L. Hollowood and B. Hoyle and D. J. James and K. Kuehn and N. Kuropatkin and O. Lahav and M. Lima and M. A. G. Maia and M. March and J. L. Marshall and F. Menanteau and R. Miquel and J. J. Mohr and R. Morgan and A. Palmese and F. Paz-Chinchón and A. Pieres and A. A. Plazas Malagón and A. Roodman and E. Sanchez and V. Scarpine and M. Schubnell and S. Serrano and I. Sevilla-Noarbe and E. Sheldon and M. Smith and E. Suchyta and M. E. C. Swanson and G. Tarle and D. Thomas and C. To and T. N. Varga and J. Weller},
  journal= {arXiv preprint arXiv:2104.14515},
  year   = {2021}
}

Comments

16 pages, 8 figures, Matches version accepted by MNRAS

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