Separate universe approach to evaluate nonlinear matter power spectrum for non-flat $\Lambda$CDM model
Ryo Terasawa, Ryuichi Takahashi, Takahiro Nishimichi, Masahiro Takada

TL;DR
This paper introduces an approximate method using the separate universe approach to accurately predict the nonlinear matter power spectrum in non-flat d models, crucial for understanding the universe's curvature and structure formation.
Contribution
The method links non-flat d models to flat models via response functions, enabling efficient prediction of the matter power spectrum for non-zero curvature.
Findings
Predicts P(k) in non-flat models up to k 6 h/Mpc with 1% accuracy.
Uses N-body simulations to validate the method across 0.1 curvature range.
Emulators for flat models can be adapted with minimal loss for non-flat cosmologies.
Abstract
The spatial curvature () of the Universe is one of the most fundamental quantities that could give a link to the early universe physics. In this paper we develop an approximate method to compute the nonlinear matter power spectrum, , for "non-flat" CDM models using the separate universe (SU) ansatz which states that the effect of the curvature on structure formation is equivalent to that of long-wavelength density fluctuation () in a local volume in the "flat" CDM model, via the specific mapping between the background cosmological parameters and redshifts in the non-flat and flat models. By utilizing the fact that the normalized response of to (equivalently ), which describes how the non-zero alters as a function of , is well approximated by the response to the Hubble parameter …
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