Dark Energy Survey Year 3 results: Cosmology with peaks using an emulator approach
Abstract
We constrain the matter density and the amplitude of density fluctuations within the CDM cosmological model with shear peak statistics and angular convergence power spectra using mass maps constructed from the first three years of data of the Dark Energy Survey (DES Y3). We use tomographic shear peak statistics, including cross-peaks: peak counts calculated on maps created by taking a harmonic space product of the convergence of two tomographic redshift bins. Our analysis follows a forward-modelling scheme to create a likelihood of these statistics using N-body simulations, using a Gaussian process emulator. We include the following lensing systematics: multiplicative shear bias, photometric redshift uncertainty, and galaxy intrinsic alignment. Stringent scale cuts are applied to avoid biases from unmodelled baryonic physics. We find that the additional non-Gaussian information leads to a tightening of the constraints on the structure growth parameter yielding (68% confidence limits), with a precision of 1.8%, an improvement of ~38% compared to the angular power spectra only case. The results obtained with the angular power spectra and peak counts are found to be in agreement with each other and no significant difference in is recorded. We find a mild tension of between our study and the results from Planck 2018, with our analysis yielding a lower . Furthermore, we observe that the combination of angular power spectra and tomographic peak counts breaks the degeneracy between galaxy intrinsic alignment and , improving cosmological constraints. We run a suite of tests concluding that our results are robust and consistent with the results from other studies using DES Y3 data.
Keywords
Cite
@article{arxiv.2110.10135,
title = {Dark Energy Survey Year 3 results: Cosmology with peaks using an emulator approach},
author = {D. Zürcher and J. Fluri and R. Sgier and T. Kacprzak and M. Gatti and C. Doux and L. Whiteway and A. Refregier and C. Chang and N. Jeffrey and B. Jain and P. Lemos and D. Bacon and A. Alarcon and A. Amon and K. Bechtol and M. Becker and G. Bernstein and A. Campos and R. Chen and A. Choi and C. Davis and J. Derose and S. Dodelson and F. Elsner and J. Elvin-Poole and S. Everett and A. Ferte and D. Gruen and I. Harrison and D. Huterer and M. Jarvis and P. F. Leget and N. Maccrann and J. Mccullough and J. Muir and J. Myles and A. Navarro Alsina and S. Pandey and J. Prat and M. Raveri and R. P. Rollins and A. Roodman and C. Sanchez and L. F. Secco and E. Sheldon and T. Shin and M. Troxel and I. Tutusaus and B. Yin and M. Aguena and S. Allam and F. Andrade-Oliveira and J. Annis and E. Bertin and D. Brooks and D. Burke and A. Carnero Rosell and M. Carrasco Kind and J. Carretero and F. Castander and R. Cawthon and C. Conselice and M. Costanzi and L. da Costa and M. E. da Silva Pereira and T. Davis and J. De Vicente and S. Desai and H. T. Diehl and J. Dietrich and P. Doel and K. Eckert and A. Evrard and I. Ferrero and B. Flaugher and P. Fosalba and D. Friedel and J. Frieman and J. Garcia-Bellido and E. Gaztanaga and D. Gerdes and T. Giannantonio and R. Gruendl and J. Gschwend and G. Gutierrez and S. Hinton and D. L. Hollowood and K. Honscheid and B. Hoyle and D. James and K. Kuehn and N. Kuropatkin and O. Lahav and C. Lidman and M. Lima and M. Maia and J. Marshall and P. Melchior and F. Menanteau and R. Miquel and R. Morgan and A. Palmese and F. Paz-Chinchon and A. Pieres and A. Plazas Malagón and K. Reil and M. Rodriguez Monroy and K. Romer and E. Sanchez and V. Scarpine and M. Schubnell and S. Serrano and I. Sevilla and M. Smith and E. Suchyta and G. Tarle and D. Thomas and C. To and T. N. Varga and J. Weller and R. Wilkinson},
journal= {arXiv preprint arXiv:2110.10135},
year = {2022}
}