Forecasting cosmological parameter constraints using multiple sparsity measurements as tracers of the mass profiles of dark matter haloes

Author:

Corasaniti P S12,Le Brun A M C13ORCID,Richardson T R G1ORCID,Rasera Y1,Ettori S45ORCID,Arnaud M3,Pratt G W3

Affiliation:

1. Laboratoire Univers et Théorie, Observatoire de Paris, Université PSL, Université Paris Cité , CNRS, F-92190 Meudon, France

2. Sorbonne Université , CNRS, UMR 7095, Institut d’Astrophysique de Paris, 98 bis bd Arago, F-75014 Paris, France

3. AIM, CEA, CNRS, Université Paris-Saclay, Université Paris Cité , Sorbonne Paris Cité, F-91191 Gif-sur-Yvette, France

4. INAF , Osservatorio di Astrofisica e Scienza dello Spazio di Bologna, via Piero Gobetti 93/3, I-40129 Bologna, Italy

5. INFN , Sezione di Bologna, viale Berti Pichat 6/2, I-40127 Bologna, Italy

Abstract

ABSTRACT The dark matter halo sparsity, i.e. the ratio between spherical halo masses enclosing two different overdensities, provides a non-parametric proxy of the halo mass distribution that has been shown to be a sensitive probe of the cosmological imprint encoded in the mass profile of haloes hosting galaxy clusters. Mass estimations at several overdensities would allow for multiple sparsity measurements, which can potentially retrieve the entirety of the cosmological information imprinted on the halo profile. Here, we investigate the impact of multiple sparsity measurements on the cosmological model parameter inference. For this purpose, we analyse N-body halo catalogues from the Raygal and M2Csims simulations and evaluate the correlations among six different sparsities from spherical overdensity halo masses at Δ = 200, 500, 1000, and 2500 (in units of the critical density). Remarkably, sparsities associated to distinct halo mass shells are not highly correlated. This is not the case for sparsities obtained using halo masses estimated from the Navarro-Frenk-White (NFW) best-fitting profile, which artificially correlates different sparsities to order one. This implies that there is additional information in the mass profile beyond the NFW parametrization and that it can be exploited with multiple sparsities. In particular, from a likelihood analysis of synthetic average sparsity data, we show that cosmological parameter constraints significantly improve when increasing the number of sparsity combinations, though the constraints saturate beyond four sparsity estimates. We forecast constraints for the CHEX-MATE cluster sample and find that systematic mass bias errors mildly impact the parameter inference, though more studies are needed in this direction.

Funder

Agence Nationale de la Recherche

European Research Council

European Union Seventh Framework Programme

ASI

INAF

Horizon 2020

Munich Institute for Astro- and Particle Physics

Deutsche Forschungsgemeinschaft

GENCI

STFC

BEIS

Durham University

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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