Accès ouvert déclaré
2026
preprint
Euclid: The linear-construction covariance and cosmology
V. Lindholm, Elina Sihvola, J. Valiviita, A. Fumagalli, B. Altieri, S. Andreon, N. Auricchio, C. Baccigalupi, M. Baldi, Sandro Bardelli, Pietro Battaglia, A. Biviano, E. Branchini, Mattia Brescia, Stefano Camera, V. Capobianco, Chris Carbone, V. F. Cardone, J. Carretero, S. Casas, M. Castellano, German Castignani, Stefano Cavuoti, K. C. Chambers, A. Cimatti, C Colodro-Conde, G. Congedo, Luca Conversi, Yannick Copin, F Courbin, H. M. Courtois, A. Da Silva, Hubert Degaudenzi, G. De Lucia, H. Dole, F. Dubath, Xavier Dupac, S. Dusini, Stephanie Escoffier, Marcelo Farina, R Farinelli, S. Ferriol, F. Finelli, P Fosalba, S. Fotopoulou, M. Frailis, E. Franceschi, M. Fumana, S. Galeotta, K. George, B. Gillis, C. Giocoli, J. Gracia-Carpio, A. Grazian, F. Grupp, S. V. H. Haugan, Warren Holmes, F. Hormuth, A. Hornstrup, K. Jahnke, M. Jhabvala, Smain Kermiche, A. Kiessling, B. Kubik, Martina Kunz, Hannu Kurki-Suonio, A. M. C. Le Brun, Sebastiano Ligori, P. B. Lilje, I. Lloro, G. Mainetti, E. Maiorano, O. Mansutti, S. Marcin, Ole Marggraf, M. Martinelli, Nadine Martinet, F. Marulli, R. J. Massey, E. Medinaceli, S. Mei, M. Melchior, M. Meneghetti, E. Merlin, G. Meylan, A. Mora, Michele Ennio Maria Moresco, Lauro Moscardini, R. Nakajima, C. Neissner, S. -M. Niemi, C. Padilla, S. Paltani, F. Pasian, K. Pedersen, Pettorino, S. Pires, G. Polenta, Marion Poncet, L. A. Popa, F. Raison, A. Renzi, J. Rhodes, G. Riccio, E. Romelli, M. Roncarelli, C. Rosset, Roberto P. Saglia, Ziad Bou Sakr, A. G. Sánchez, D. Sapone, P. Schneider, T. Schrabback, A. Secroun, G. Seidel, P. Simon, C. Sirignano, G. Sirri, L. Stanco, P. Tallada-Crespí, A. N. Taylor, I. Tereno, Sune Toft, R. Toledo-Moreo, F. Torradeflot, I. Tutusaus, T. Vassallo, G. Verdoes Kleijn, Y. Wang, Julia M. Weller, G. Zamorani, E. Zucca, T. Castro, J. Martín-Fleitas, P. Monaco, A Pezzotta, V. Scottez, M. Sereno, M. Viel, Davide Sciotti
0Citations signalées, ce qui n’est pas une note de qualité
93Institutions déclarées
16Pays d’affiliation déclarés
Rattachement africain : fi, it, es, de, us, fr, gb, pt, ch, ro, no, dk, nl, lb, cl, at.
Niveau de preuve : code pays fourni par la source.
Le résumé fourni par la source
We study the properties of galaxy cluster 2-point correlation function covariance matrices estimated using the linear-construction (LC) method, which is computationally up to 20 times faster than the standard sample-covariance method. Our goal is to assess how well the LC method performs in cosmological parameter estimation compared to the sample covariance. We use a set of 1000 mock dark matter halo catalogues to compute both the LC-covariance and the sample-covariance estimates in four redshift shells. These numerical matrices are used to fit a theoretical four-parameter model for the covariance. We then use the two fitted covariance models in a likelihood function to estimate two cosmological parameters - the matter density parameter $Ω_{\rm m}$ and the amplitude of the matter density fluctuations $σ_8$ - from the simulated mock catalogues. The purpose of this is to validate the LC-covariance-based model against the sample-covariance model. The catalogues were simulated assuming the spatially flat $Λ$CDM cosmology, with $Ω_{\rm m} = 0.30711$ and $σ_8=0.8288$. We find that the parameter posteriors obtained using the sample- and LC-covariance models agree well with each other and with the simulation cosmology. The two pairs of marginalized constraints are $Ω_{\rm m} = 0.307 \pm 0.003$ and $σ_8 = 0.826\pm 0.009$ (sample covariance), and $Ω_{\rm m} = 0.308 \pm 0.003$ and $σ_8 = 0.825 \pm 0.009$ (LC covariance). The posterior widths are the same, and the difference in the median values is less than $0.16\,σ$ for both parameters.
Ce résumé expose les affirmations des auteurs. BNTIC ne l’interprète pas comme une validation indépendante des résultats.
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Les sujets associés
Galaxies: Formation, Evolution, PhenomenaAstronomy and Astrophysical ResearchCosmology and Gravitation Theories