A perturbative approach to the redshift space correlation function: beyond the Standard Model

and

Published 23 August 2017 © 2017 IOP Publishing Ltd and Sissa Medialab
, , Citation Benjamin Bose and Kazuya Koyama JCAP08(2017)029 DOI 10.1088/1475-7516/2017/08/029

1475-7516/2017/08/029

Abstract

We extend our previous redshift space power spectrum code to the redshift space correlation function. Here we focus on the Gaussian Streaming Model (GSM). Again, the code accommodates a wide range of modified gravity and dark energy models. For the non-linear real space correlation function used in the GSM we use the Fourier transform of the RegPT 1-loop matter power spectrum. We compare predictions of the GSM for a Vainshtein screened and Chameleon screened model as well as GR. These predictions are compared to the Fourier transform of the Taruya, Nishimichi and Saito (TNS) redshift space power spectrum model which is fit to N-body data. We find very good agreement between the Fourier transform of the TNS model and the GSM predictions, with ⩽ 6% deviations in the first two correlation function multipoles for all models for redshift space separations in 50Mpch ⩽ s ⩽ 180Mpc/h. Excellent agreement is found in the differences between the modified gravity and GR multipole predictions for both approaches to the redshift space correlation function, highlighting their matched ability in picking up deviations from GR. We elucidate the timeliness of such non-standard templates at the dawn of stage-IV surveys and discuss necessary preparations and extensions needed for upcoming high quality data.

Export citation and abstract BibTeX RIS

10.1088/1475-7516/2017/08/029