Taming redshift-space distortion effects in the EFTofLSS and its application to data
Abstract
Former analyses of the BOSS data using the Effective Field Theory of Large-Scale Structure (EFTofLSS) have measured that the largest counterterms are the redshift-space distortion ones. This allows us to adjust the power-counting rules of the theory, and to explicitly identify that the leading next-order terms have a specific dependence on the cosine of the angle between the line-of-sight and the wavenumber of the observable, . Such a specific -dependence allows us to construct a linear combination of the data multipoles, , where these contributions are effectively projected out, so that EFTofLSS predictions for have a much smaller theoretical error and so a much higher -reach. The remaining data are organized in wedges in space, have a -dependent -reach because they are not equally affected by the leading next-order contributions, and therefore can have a higher -reach than the multipoles. Furthermore, by explicitly including the highest next-order terms, we define a `one-loop+' procedure, where the wedges have even higher -reach. We study the effectiveness of these two procedures on several sets of simulations and on the BOSS data. The resulting analysis has identical computational cost as the multipole-based one, but leads to an improvement on the determination of some of the cosmological parameters that ranges from to , depending on the survey properties.
Cite
@article{arxiv.2110.00016,
title = {Taming redshift-space distortion effects in the EFTofLSS and its application to data},
author = {Guido D'Amico and Leonardo Senatore and Pierre Zhang and Takahiro Nishimichi},
journal= {arXiv preprint arXiv:2110.00016},
year = {2024}
}
Comments
27 pages, 6 figures. v2: minor modifications, added references, matches JCAP published version