Literature DB >> 31395991

Bayesian cosmic density field inference from redshift space dark matter maps.

E G Patrick Bos1,2, Francisco-Shu Kitaura3,4, Rien van de Weygaert2.   

Abstract

We present a self-consistent Bayesian formalism to sample the primordial density fields compatible with a set of dark matter density tracers after a cosmic evolution observed in redshift space. Previous works on density reconstruction did not self-consistently consider redshift space distortions or included an additional iterative distortion correction step. We present here the analytic solution of coherent flows within a Hamiltonian Monte Carlo posterior sampling of the primordial density field. We test our method within the Zel'dovich approximation, presenting also an analytic solution including tidal fields and spherical collapse on small scales. Our resulting reconstructed fields are isotropic and their power spectra are unbiased compared to the true field defined by our mock observations. Novel algorithmic implementations are introduced regarding the mass assignment kernels when defining the dark matter density field and optimization of the time-step in the Hamiltonian equations of motions. Our algorithm, dubbed barcode, promises to be specially suited for analysis of the dark matter cosmic web down to scales of a few megaparsecs. This large-scale structure is implied by the observed spatial distribution of galaxy clusters - such as obtained from X-ray, Sunyaev-Zel'dovich, or weak lensing surveys - as well as that of the intergalactic medium sampled by the Ly α forest or perhaps even by deep hydrogen intensity mapping. In these cases, virialized motions are negligible, and the tracers cannot be modelled as point-like objects. It could be used in all of these contexts as a baryon acoustic oscillation reconstruction algorithm.

Keywords:  cosmology: observations; galaxies: distances and redshifts; large-scale structure of Universe; methods: analytical; methods: statistical

Year:  2019        PMID: 31395991      PMCID: PMC6669761          DOI: 10.1093/mnras/stz1864

Source DB:  PubMed          Journal:  Mon Not R Astron Soc        ISSN: 0035-8711            Impact factor:   5.287


  4 in total

1.  A measurement of the cosmological mass density from clustering in the 2dF Galaxy Redshift Survey.

Authors:  J A Peacock; S Cole; P Norberg; C M Baugh; J Bland-Hawthorn; T Bridges; R D Cannon; M Colless; C Collins; W Couch; G Dalton; K Deeley; R De Propris; S P Driver; G Efstathiou; R S Ellis; C S Frenk; K Glazebrook; C Jackson; O Lahav; I Lewis; S Lumsden; S Maddox; W J Percival; B A Peterson; I Price; W Sutherland; K Taylor
Journal:  Nature       Date:  2001-03-08       Impact factor: 49.962

2.  Void ellipticity distribution as a probe of cosmology.

Authors:  Daeseong Park; Jounghun Lee
Journal:  Phys Rev Lett       Date:  2007-02-21       Impact factor: 9.161

3.  Probing gravity at cosmological scales by measurements which test the relationship between gravitational lensing and matter overdensity.

Authors:  Pengjie Zhang; Michele Liguori; Rachel Bean; Scott Dodelson
Journal:  Phys Rev Lett       Date:  2007-10-04       Impact factor: 9.161

4.  A test of the nature of cosmic acceleration using galaxy redshift distortions.

Authors:  L Guzzo; M Pierleoni; B Meneux; E Branchini; O Le Fèvre; C Marinoni; B Garilli; J Blaizot; G De Lucia; A Pollo; H J McCracken; D Bottini; V Le Brun; D Maccagni; J P Picat; R Scaramella; M Scodeggio; L Tresse; G Vettolani; A Zanichelli; C Adami; S Arnouts; S Bardelli; M Bolzonella; A Bongiorno; A Cappi; S Charlot; P Ciliegi; T Contini; O Cucciati; S de la Torre; K Dolag; S Foucaud; P Franzetti; I Gavignaud; O Ilbert; A Iovino; F Lamareille; B Marano; A Mazure; P Memeo; R Merighi; L Moscardini; S Paltani; R Pellò; E Perez-Montero; L Pozzetti; M Radovich; D Vergani; G Zamorani; E Zucca
Journal:  Nature       Date:  2008-01-31       Impact factor: 49.962

  4 in total

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