TL;DR
This paper improves the halofit model for predicting the nonlinear matter power spectrum by recalibrating it with high-resolution N-body simulations across various cosmologies, achieving higher accuracy especially at small scales.
Contribution
The authors provide a revised halofit fitting formula calibrated with high-resolution simulations, enhancing precision for small-scale power spectrum predictions in cosmology.
Findings
Achieves 5% accuracy for k ≤ 1 h/Mpc at 0 ≤ z ≤ 10
Provides improved predictions for weak lensing signals
Recalibrated parameters extend model validity to smaller scales
Abstract
Based on a suite of state-of-the-art high-resolution -body simulations, we revisit the so-called halofit model (Smith et al. 2003) as an accurate fitting formula for the nonlinear matter power spectrum. While the halofit model has been frequently used as a standard cosmological tool to predict the nonlinear matter power spectrum in a universe dominated by cold dark matter, its precision has been limited by the low-resolution of -body simulations used to determine the fitting parameters, suggesting the necessity of improved fitting formula at small scales for future cosmological studies. We run high-resolution -body simulations for 16 cosmological models around the Wilkinson Microwave Anisotropy Probe (WMAP) best-fit cosmological parameters (1, 3, 5, and 7 year results), including dark energy models with a constant equation of state. The simulation results are used to…
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