4.7 Article

Density split statistics: Cosmological constraints from counts and lensing in cells in DES Y1 and SDSS data

期刊

PHYSICAL REVIEW D
卷 98, 期 2, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevD.98.023507

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资金

  1. NASA through Einstein Postdoctoral Fellowship - Chandra X-ray Center [PF5-160138]
  2. NASA [NAS8-03060]
  3. Deutsche Forschungsgemeinschaft (DFG) [SFB-Transregio 33]
  4. DFG Cluster of Excellence 'Origin and Structure of the Universe'
  5. U.S. Department of Energy
  6. U.S. National Science Foundation
  7. Ministry of Science and Education of Spain
  8. Science and Technology Facilities Council of the United Kingdom
  9. Higher Education Funding Council for England
  10. National Center for Supercomputing Applications at the University of Illinois at Urbana-Champaign
  11. Kavli Institute of Cosmological Physics at the University of Chicago
  12. Center for Cosmology and Astro-Particle Physics at the Ohio State University
  13. Mitchell Institute for Fundamental Physics and Astronomy at Texas AM University
  14. Financiadora de Estudos e Projetos
  15. Fundacao Carlos Chagas Filho de Amparo a Pesquisa do Estado do Rio de Janeiro
  16. Conselho Nacional de Desenvolvimento Cientifico e Tecnologico and the Ministerio da Ciencia
  17. Tecnologia e Inovacao
  18. Deutsche Forschungsgemeinschaft
  19. Collaborating Institutions in the Dark Energy Survey
  20. Argonne National Laboratory
  21. University of California at Santa Cruz
  22. University of Cambridge
  23. Centro de Investigaciones Energeticas
  24. Medioambientales y Tecnologicas-Madrid
  25. University of Chicago
  26. University College London
  27. DES-Brazil Consortium
  28. University of Edinburgh
  29. Eidgenossische Technische Hochschule (ETH) Zurich
  30. Fermi National Accelerator Laboratory
  31. University of Illinois at Urbana-Champaign
  32. Institut de Ciencies de l'Espai (IEEC/CSIC)
  33. Institut de Fisica d'Altes Energies
  34. Lawrence Berkeley National Laboratory
  35. Ludwig-Maximilians Universitat Munchen
  36. Excellence Cluster Universe
  37. University of Michigan
  38. National Optical Astronomy Observatory
  39. University of Nottingham
  40. Ohio State University
  41. University of Pennsylvania
  42. University of Portsmouth
  43. SLAC National Accelerator Laboratory
  44. Stanford University
  45. University of Sussex
  46. Texas AM University
  47. OzDES Membership Consortium
  48. National Science Foundation [AST-1138766, AST-1536171]
  49. MINECO [AYA2015-71825, ESP2015-88861, FPA2015-68048, SEV-2012-0234, SEV-2016-0597, MDM-2015-0509]
  50. ERDF funds from the European Union
  51. CERCA program of the Generalitat de Catalunya
  52. European Research Council under the European Union's Seventh Framework Program (FP7)
  53. ERC [240672, 291329, 306478]
  54. Australian Research Council Centre of Excellence for All-sky Astrophysics (CAASTRO) [CE110001020]
  55. Fermi Research Alliance, LLC [DE-AC02-07CH11359]
  56. U.S. Department of Energy, Office of Science, Office of High Energy Physics
  57. STFC [ST/R000972/1] Funding Source: UKRI

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We derive cosmological constraints from the probability distribution function (PDF) of evolved large-scale matter density fluctuations. We do this by splitting lines of sight by density based on their count of tracer galaxies, and by measuring both gravitational shear around and counts-in-cells in overdense and underdense lines of sight, in Dark Energy Survey (DES) First Year and Sloan Digital Sky Survey (SDSS) data. Our analysis uses a perturbation theory model [O. Friedrich et al., Phys. Rev. D 98, 023508 (2018)] and is validated using N-body simulation realizations and log-normal mocks. It allows us to constrain cosmology, bias and stochasticity of galaxies with respect to matter density and, in addition, the skewness of the matter density field. From a Bayesian model comparison, we find that the data weakly prefer a connection of galaxies and matter that is stochastic beyond Poisson fluctuations on <= 20 arcmin angular smoothing scale. The two stochasticity models we fit yield DES constraints on the matter density Omega(m) = 0.26(-0.04)(+0.05) and Omega(m) = 0.28(-0.03)(+0.04) that are consistent with each other. These values also agree with the DES analysis of galaxy and shear two-point functions (3x2pt, DES Collaboration et al.) that only uses second moments of the PDF. Constraints on s 8 are model dependent (sigma(8) = 0.97(-0.06)(+0.07) and 0.80(-0.07)(+0.06) for the two stochasticity models), but consistent with each other and with the 3 x 2pt results if stochasticity is at the low end of the posterior range. As an additional test of gravity, counts and lensing in cells allow to compare the skewness S-3 of the matter density PDF to its Lambda CDM prediction. We find no evidence of excess skewness in any model or data set, with better than 25 per cent relative precision in the skewness estimate from DES alone.

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