English

Monte Carlo Control Loops for cosmic shear cosmology with DES Year 1

Cosmology and Nongalactic Astrophysics 2020-05-06 v1

Abstract

Weak lensing by large-scale structure is a powerful probe of cosmology and of the dark universe. This cosmic shear technique relies on the accurate measurement of the shapes and redshifts of background galaxies and requires precise control of systematic errors. The Monte Carlo Control Loops (MCCL) is a forward modelling method designed to tackle this problem. It relies on the Ultra Fast Image Generator (UFig) to produce simulated images tuned to match the target data statistically, followed by calibrations and tolerance loops. We present the first end-to-end application of this method, on the Dark Energy Survey (DES) Year 1 wide field imaging data. We simultaneously measure the shear power spectrum CC_{\ell} and the redshift distribution n(z)n(z) of the background galaxy sample. The method includes maps of the systematic sources, Point Spread Function (PSF), an Approximate Bayesian Computation (ABC) inference of the simulation model parameters, a shear calibration scheme, and the fast estimation of the covariance matrix. We find a close statistical agreement between the simulations and the DES Y1 data using an array of diagnostics. In a non-tomographic setting, we derive a set of CC_\ell and n(z)n(z) curves that encode the cosmic shear measurement, as well as the systematic uncertainty. Following a blinding scheme, we measure the combination of Ωm\Omega_m, σ8\sigma_8, and intrinsic alignment amplitude AIAA_{\rm{IA}}, defined as S8DIA=σ8(Ωm/0.3)0.5DIAS_8D_{\rm{IA}} = \sigma_8(\Omega_m/0.3)^{0.5}D_{\rm{IA}}, where DIA=10.11(AIA1)D_{\rm{IA}}=1-0.11(A_{\rm{IA}}-1). We find S8DIA=0.8950.039+0.054S_8D_{\rm{IA}}=0.895^{+0.054}_{-0.039}, where systematics are at the level of roughly 60\% of the statistical errors. We discuss these results in the context of earlier cosmic shear analyses of the DES Y1 data. Our findings indicate that this method and its fast runtime offer good prospects for cosmic shear measurements with future wide-field surveys.

Keywords

Cite

@article{arxiv.1906.01018,
  title  = {Monte Carlo Control Loops for cosmic shear cosmology with DES Year 1},
  author = {T. Kacprzak and J. Herbel and A. Nicola and R. Sgier and F. Tarsitano and C. Bruderer and A. Amara and A. Refregier and S. L. Bridle and A. Drlica-Wagner and D. Gruen and W. G. Hartley and B. Hoyle and L. F. Secco and J. Zuntz and J. Annis and S. Avila and E. Bertin and D. Brooks and E. Buckley-Geer and A. Carnero Rosell and M. Carrasco Kind and J. Carretero and L. N. da Costa and J. De Vicente and S. Desai and H. T. Diehl and P. Doel and J. García-Bellido and E. Gaztanaga and R. A. Gruendl and J. Gschwend and G. Gutierrez and D. L. Hollowood and K. Honscheid and D. J. James and M. Jarvis and M. Lima and M. A. G. Maia and J. L. Marshall and P. Melchior and F. Menanteau and R. Miquel and F. Paz-Chinchón and A. A. Plazas and E. Sanchez and V. Scarpine and S. Serrano and I. Sevilla-Noarbe and M. Smith and E. Suchyta and M. E. C. Swanson and G. Tarle and V. Vikram and J. Weller},
  journal= {arXiv preprint arXiv:1906.01018},
  year   = {2020}
}

Comments

31 pages, 15 figures, 2 tables