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SUNBIRD : a simulation-based model for full-shape density-split clustering

delete2024-06-06
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OA
AI
C
Carolina Cuesta-Lazaro *
E
E. Paillas
S
Sihan Yuan
Y
Yan-Chuan Cai
S
S. Nadathur
W
Will J. Percival
F
Florian Beutler
A
Arnaud de Mattia
D
Daniel J. Eisenstein
D
D. Forero-Sánchez
N
Nelson Padilla
M
Mathilde Pinon
V
V. Ruhlmann-Kleider
A
Ariel G. Sánchez
G
Georgios Valogiannis
P
Pauline Zarrouk
DOI:10.1093/mnras/stae1234delete
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摘要

摘要

En 中文
Combining galaxy clustering information from regions of different environmental densities can help break cosmological parameter degeneracies and access non-Gaussian information from the density field that is not readily captured by the standard two-point correlation function (2PCF) analyses. However, modelling these density-dependent statistics down to the non-linear regime has so far remained challenging. We present a simulation-based model that is able to capture the cosmological dependence of the full shape of the density-split clustering (DSC) statistics down to intra-halo scales. Our models are based on neural-network emulators that are trained on high-fidelity mock galaxy catalogues within an extended-Lambda CDM framework, incorporating the effects of redshift-space, Alcock-Paczynski distortions, and models of the halo-galaxy connection. Our models reach sub-per cent level accuracy down to 1 h(-1 )Mpc and are robust against different choices of galaxy-halo connection modelling. When combined with the galaxy 2PCF, DSC can tighten the constraints on omega(cdm), sigma(8), and n(s) by factors of 2.9, 1.9, and 2.1, respectively, compared to a 2PCF-only analysis. DSC additionally puts strong constraints on environment-based assembly bias parameters.
Keyword:
cosmological parameters
large-scale structure of Universe

期刊

Monthly Notices of the Royal Astronomical Society 封面图
Monthly Notices of the Royal Astronomical Society
IF:
4.8
论文数:
7.0W
被引数:
25.0W

机构

S
Stanford University
学者数:
9.6W
论文数: 8.2W
被引数: 17.0W
C
CEA
学者数:
3.5W
论文数: 2.3W
被引数: 62
U
University of Portsmouth
学者数:
5.1K
论文数: 5.5K
被引数: 9.2K
E
Ecole Polytechnique Federale de Lausanne
学者数:
1.7W
论文数: 1.3W
被引数: 25
S
swiss federal institutes of technology domain
学者数:
9.0W
论文数: 8.0W
被引数: 163
M
Max Planck Society
学者数:
8.2W
论文数: 7.7W
被引数: 3.3W
U
Universite Paris Saclay
学者数:
7.3W
论文数: 5.3W
被引数: 540
U
University of Edinburgh
学者数:
5.2W
论文数: 4.6W
被引数: 71
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