Modeling nonlinear scales with COLA: preparing for LSST-Y1
Abstract
Year 1 results of the Legacy Survey of Space and Time (LSST) will provide tighter constraints on small-scale cosmology, beyond the validity of linear perturbation theory. This heightens the demand for a computationally affordable prescription that can accurately capture nonlinearities in beyond-CDM models. The COmoving Lagrangian Acceleration (COLA) method, a cost-effective \textit{N}-body technique, has been proposed as a viable alternative to high-resolution \textit{N}-body simulations for training emulators of the nonlinear matter power spectrum. In this study, we evaluate this approach by employing COLA emulators to conduct a cosmic shear analysis with LSST-Y1 simulated data across three different nonlinear scale cuts. We use the CDM model, for which the \textsc{EuclidEmulator2} (\textsc{ee2}) exists as a benchmark, having been trained with high-resolution \textit{N}-body simulations. We primarily utilize COLA simulations with mass resolution and force resolution Mpc, though we also test refined settings with and force resolution Mpc. We find the performance of the COLA emulators is sensitive to the placement of high-resolution \textit{N}-body reference samples inside the prior, which only ensure agreement in their local vicinity. However, the COLA emulators pass stringent criteria in goodness-of-fit and parameter bias throughout the prior, when CDM predictions of \textsc{ee2} are computed alongside every COLA emulator prediction, suggesting a promising approach for extended models.
Cite
@article{arxiv.2404.12344,
title = {Modeling nonlinear scales with COLA: preparing for LSST-Y1},
author = {Jonathan Gordon and Bernardo F. de Aguiar and João Rebouças and Guilherme Brando and Felipe Falciano and Vivian Miranda and Kazuya Koyama and Hans A. Winther},
journal= {arXiv preprint arXiv:2404.12344},
year = {2024}
}
Comments
18 pages, 18 figures, 10 tables. Version accepted for publication