TY - JOUR
T1 - Modeling nonlinear scales with COLA
T2 - preparing for LSST-Y1
AU - Gordon, Jonathan
AU - Aguiar, Bernardo F. de
AU - Rebouças, João
AU - Brando, Guilherme
AU - Falciano, Felipe
AU - Miranda, Vivian
AU - Koyama, Kazuya
AU - Winther, Hans A.
N1 - Will be Gold OA
18 pages, 18 figures, 10 tables. Version accepted for publication
PY - 2024/10/24
Y1 - 2024/10/24
N2 - 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-ΛCDM 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 wCDM 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 Mpart≈8×1010 h−1M⊙ and force resolution ℓforce=0.5 h−1Mpc, though we also test refined settings with Mpart≈1×1010 h−1M⊙ and force resolution ℓforce=0.17 h−1Mpc. 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 ΛCDM predictions of \textsc{ee2} are computed alongside every COLA emulator prediction, suggesting a promising approach for extended models.
AB - 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-ΛCDM 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 wCDM 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 Mpart≈8×1010 h−1M⊙ and force resolution ℓforce=0.5 h−1Mpc, though we also test refined settings with Mpart≈1×1010 h−1M⊙ and force resolution ℓforce=0.17 h−1Mpc. 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 ΛCDM predictions of \textsc{ee2} are computed alongside every COLA emulator prediction, suggesting a promising approach for extended models.
KW - astro-ph.CO
KW - gr-qc
KW - UKRI
KW - STFC
KW - ST/W001225/1
U2 - 10.1103/PhysRevD.110.083529
DO - 10.1103/PhysRevD.110.083529
M3 - Article
SN - 1550-7998
VL - 110
JO - Physical Review D - Particles, Fields, Gravitation and Cosmology
JF - Physical Review D - Particles, Fields, Gravitation and Cosmology
IS - 8
M1 - 083529
ER -