Elucidating galaxy assembly bias in SDSS

被引:0
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作者
Andrés N. Salcedo
Ying Zu
Youcai Zhang
Huiyuan Wang
Xiaohu Yang
Yiheng Wu
Yipeng Jing
Houjun Mo
David H. Weinberg
机构
[1] The Ohio State University,Department of Astronomy and Center for Cosmology and AstroParticle Physics
[2] Shanghai Jiao Tong University,Department of Astronomy, School of Physics and Astronomy
[3] Shanghai Jiao Tong University,Shanghai Key Laboratory for Particle Physics and Cosmology
[4] Shanghai Astronomical Observatory,Key Laboratory for Research in Galaxies and Cosmology
[5] University of Science and Technology of China,CAS Key Laboratory for Research in Galaxies and Cosmology, Department of Astronomy
[6] University of Science and Technology of China,School of Astronomy and Space Science
[7] Shanghai Jiao Tong University,Tsung
[8] University of Massachusetts Amherst,Dao Lee Institute
关键词
spatial distribution of galaxies; large scale structure of the Universe; numerical simulation;
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学科分类号
摘要
We investigate the level of galaxy assembly bias in the Sloan Digital Sky Survey (SDSS) main galaxy sample using ELUCID, a state-of-the-art constrained simulation that accurately reconstructed the initial density perturbations within the SDSS volume. On top of the ELUCID haloes, we develop an extended HOD model that includes the assembly bias of central and satellite galaxies, parameterized as Qcen and Qsat, respectively, to predict a suite of one- and two-point observables. In particular, our fiducial constraint employs the probability distribution of the galaxy number counts measured on 8 h−1 Mpc scales N8g and the projected cross-correlation functions of quintiles of galaxies selected by N8g with our entire galaxy sample. We perform extensive tests of the efficacy of our method by fitting the same observables to mock data using both constrained and non-constrained simulations. We discover that in many cases the level of cosmic variance between the two simulations can produce biased constraints that lead to an erroneous detection of galaxy assembly bias if the non-constrained simulation is used. When applying our method to the SDSS data, the ELUCID reconstruction effectively removes an otherwise strong degeneracy between cosmic variance and galaxy assembly bias in SDSS, enabling us to derive an accurate and stringent constraint on the latter. Our fiducial ELUCID constraint, for galaxies above a stellar mass threshold M*=1010.2h−2M⊙, is Qcen=−0.09 ± 0.05 and Qsat=0.09 ± 0.10, indicating no evidence for a significant (> 2σ) galaxy assembly bias in the local Universe probed by SDSS. Finally, our method provides a promising path to the robust modelling of the galaxy-halo connection within future surveys like DESI and PFS.
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