English

The angle-averaged squeezed limit of nonlinear matter N-point functions

Cosmology and Nongalactic Astrophysics 2015-09-09 v1

Abstract

We show that in a certain, angle-averaged squeezed limit, the NN-point function of matter is related to the response of the matter power spectrum to a long-wavelength density perturbation, P1dnP(kδL)/dδLnδL=0P^{-1}d^nP(k|\delta_L)/d\delta_L^n|_{\delta_L=0}, with n=N2n=N-2. By performing N-body simulations with a homogeneous overdensity superimposed on a flat Friedmann-Robertson-Lema\^itre-Walker (FRLW) universe using the \emph{separate universe} approach, we obtain measurements of the nonlinear matter power spectrum response up to n=3n=3, which is equivalent to measuring the fully nonlinear matter 33- to 55-point function in this squeezed limit. The sub-percent to few percent accuracy of those measurements is unprecedented. We then test the hypothesis that nonlinear NN-point functions at a given time are a function of the linear power spectrum at that time, which is predicted by standard perturbation theory (SPT) and its variants that are based on the ideal pressureless fluid equations. Specifically, we compare the responses computed from the separate universe simulations and simulations with a rescaled initial (linear) power spectrum amplitude. We find discrepancies of 10\% at k0.20.5hMpc1k\simeq 0.2 - 0.5 \,h\,{\rm Mpc}^{-1} for 55- to 33-point functions at z=0z=0. The discrepancy occurs at higher wavenumbers at z=2z=2. Thus, SPT and its variants, carried out to arbitrarily high order, are guaranteed to fail to describe matter NN-point functions (N>2N>2) around that scale.

Keywords

Cite

@article{arxiv.1503.03487,
  title  = {The angle-averaged squeezed limit of nonlinear matter N-point functions},
  author = {Christian Wagner and Fabian Schmidt and Chi-Ting Chiang and Eiichiro Komatsu},
  journal= {arXiv preprint arXiv:1503.03487},
  year   = {2015}
}

Comments

32 pages, 5 figures. Submitted to JCAP

R2 v1 2026-06-22T08:50:31.157Z